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WO2017050072A1 - Unité de refroidissement et de chauffage d'eau de pompe à chaleur refroidie à l'air et procédé de commande de dégivrage associé - Google Patents

Unité de refroidissement et de chauffage d'eau de pompe à chaleur refroidie à l'air et procédé de commande de dégivrage associé Download PDF

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Publication number
WO2017050072A1
WO2017050072A1 PCT/CN2016/096049 CN2016096049W WO2017050072A1 WO 2017050072 A1 WO2017050072 A1 WO 2017050072A1 CN 2016096049 W CN2016096049 W CN 2016096049W WO 2017050072 A1 WO2017050072 A1 WO 2017050072A1
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WIPO (PCT)
Prior art keywords
machine
module
modular
module machine
machines
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CN2016/096049
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English (en)
Chinese (zh)
Inventor
李钱生
谯愚
何理
魏贺庆
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Midea Group Co Ltd
GD Midea Heating and Ventilating Equipment Co Ltd
Original Assignee
Midea Group Co Ltd
GD Midea Heating and Ventilating Equipment Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from CN201510615502.XA external-priority patent/CN105241141B/zh
Priority claimed from CN201510616090.1A external-priority patent/CN105135775B/zh
Priority claimed from CN201510617615.3A external-priority patent/CN105115210B/zh
Priority claimed from CN201510612961.2A external-priority patent/CN105135774B/zh
Application filed by Midea Group Co Ltd, GD Midea Heating and Ventilating Equipment Co Ltd filed Critical Midea Group Co Ltd
Publication of WO2017050072A1 publication Critical patent/WO2017050072A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B47/00Arrangements for preventing or removing deposits or corrosion, not provided for in another subclass
    • F25B47/02Defrosting cycles

Definitions

  • the invention relates to the technical field of air conditioners, in particular to a defrosting control method for an air-cooled heat pump cold and hot water unit and an air-cooling heat pump cold and hot water unit.
  • the air heat pump type air conditioner For the air heat pump type air conditioner, it is necessary to absorb heat from the air during the heating operation, but the change of the ambient temperature causes the air conditioner side heat exchanger to frost, which causes the air heat pump type air conditioner to have lower heating capacity and energy efficiency. In order to avoid the deterioration of the heating effect, the air heat pump type air conditioner operates the defrosting mode for defrosting, and the defrosting mode does not heat, and finally has a great influence on the overall heating effect.
  • the air heat pump type air conditioner when the air heat pump type air conditioner is in the defrosting process, the compressor is operated, the four-way valve is reversed, and the fan is stopped at the same time, the air heat pump type air conditioner is switched to the cooling operation, and the high temperature refrigerant is used for defrosting, and when the frost is completely melted After that, quit the defrosting and then continue to heat.
  • the defrosting process is a cooling process, which will affect the water temperature, thereby affecting the overall machine capacity and affecting the user experience.
  • an object of the present invention is to provide a defrosting control method for an air-cooled heat pump cold and hot water unit, which does not need to be converted into a cooling operation and a fan stop for defrosting, but is switched by controlling the module machine to utilize The fan itself continues to operate to defoase, improve the heating effect of the air-cooled heat pump hot and cold water unit, and improve the user experience.
  • Another object of the present invention is to provide an air-cooled heat pump water chiller unit.
  • an embodiment of the present invention provides a defrosting control method for an air-cooled heat pump cold and hot water unit, wherein the air-cooled heat pump cold and hot water unit includes N modular machines, and N is an integer greater than or equal to 2.
  • the outlet pipes of each of the modular machines are respectively connected to the total outlet pipes of the air-cooled heat pump hot and cold water units, and the inlet pipes of each of the modular machines are respectively connected to the air-cooled heat pump hot and cold water units a total inlet pipe to achieve parallel connection of the N modular machines, each of the modular machines comprising a plurality of hot water systems, each of the hot water systems comprising a compressor and an air conditioning heat exchanger, said
  • the frost control method comprises the following steps: detecting the outdoor ambient temperature T4 in real time, and obtaining the operating parameters of each of the modular machines; when the air-cooled heat pump hot and cold water unit enters the defrosting mode, determining according to the outdoor ambient temperature T4 Whether to control the air-cooled heat pump water chiller unit to operate in a rotating defrosting mode; if the air-cooling heat pump chiller unit operates in a rotating defrosting mode, controlling at least one of the N module machines to be turned on, And protect At least one module of the N machine module machine is shut down; and controlling
  • the defrosting control method of the air-cooled heat pump water chiller unit when the air-cooling heat pump cold and hot water unit is operated in the rotation defrosting mode by the outdoor environment temperature T4 detected in real time, the N module machines are controlled. At least one module machine is turned on, and at least one of the N modular machines is stopped, and then any module that is turned on is controlled according to the outdoor ambient temperature T4 and the operating parameters of any of the opened modular machines. Any modular machine in the state alternately performs heating operation, and keeps the fan in any of the module machines that are turned on and the fan in any module machine in the stopped state continue to operate, thereby performing defrosting by forced convection heat transfer of the fan.
  • the operating parameters of each of the modular machines include an influent water temperature Tin corresponding to each of the modular machines, an outlet water temperature Tout corresponding to each of the modular machines, and each of the air conditioning heat exchangers in each of the modular machines.
  • an embodiment of the present invention provides a defrosting control method for an air-cooled heat pump cold and hot water unit, wherein the air-cooled heat pump hot and cold water unit includes N modular machines, and N is greater than or equal to 2 An integral number, the outlet pipes of each of the modular machines are respectively connected to the total outlet pipes of the air-cooled heat pump cold and hot water unit, and the inlet pipes of each of the modular machines are respectively connected to the air-cooled heat pump
  • the total water inlet pipe of the water unit is configured to realize the parallel connection of the N module machines
  • the defrosting control method comprises the following steps: detecting the outdoor environment temperature T4 in real time and the inlet water temperature Tin corresponding to each of the module machines; When the air-cooling heat pump hot and cold water unit enters the defrosting mode, it is determined according to the outdoor ambient temperature T4 whether to control the air-cooled heat pump cold and hot water unit to operate in a rotating defrosting mode; if the air-cooled heat pump hot and cold water unit Operating in a rotating de
  • the N module machines are controlled. At least one module machine is turned on, and at least one of the N modular machines is kept in a shutdown state, and then any module that is turned on is controlled according to the outdoor ambient temperature T4 and the inlet water temperature Tin of any of the opened modular machines. Any modular machine in the shutdown state alternates heating operation, and keeps the fan in any module machine that is turned on and the fan in any module machine in the shutdown state continue to operate to defoam by forced convection heat transfer of the fan.
  • the machine is used for defrosting, reducing the heating attenuation during heating and defrosting, greatly improving the heating effect of the air-cooled heat pump chiller and hot water unit, and improving the user experience.
  • the air-cooled heat pump cold and hot water unit enters a defrosting mode, wherein the outdoor air temperature T4 is greater than the first preset temperature, the air-cooled heat pump is controlled to be hot and cold The unit operates in a rotating defrosting mode; if the outdoor ambient temperature T4 is less than or equal to the first preset temperature, the air-cooled heat pump hot and cold water unit is controlled to operate in a conventional defrosting mode.
  • the outdoor environment temperature T4 and the open The inlet water temperature Tin of a modular machine controls the heating operation of any modular machine that is turned on and any modular machine that is in the shutdown state, and specifically includes: a1, controlling the compressor in the main modular machine to be turned on to enable the main The module mechanism is hot running, and after the first preset time of the main module machine performing the heating operation, determining whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the main module machine meet the first preset condition; b1 If it is determined that the outdoor ambient temperature T4 and the inlet water temperature Tin of the main modular machine meet the first preset condition, controlling the main modular machine to enter a frost accumulation mode, and acquiring the main modular machine Accumulating the frosting time; c1, when the accumulated frosting time of the main modular machine reaches the first time threshold, controlling the compressor in the main modular machine to stop
  • step a1 if it is determined that the outdoor ambient temperature T4 and the inlet water temperature Tin of the main modular machine do not satisfy the first preset condition, then the main module system is controlled. After continuing the heating operation for the third preset time, returning to continue to determine whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the main modular machine meet the first preset condition.
  • step c1 if it is determined that the outdoor ambient temperature T4 and the inflow water temperature Tin of the first slave module machine do not satisfy the second preset condition, then the first After the module machine continues the heating operation for a fourth preset time, it returns to continue to determine whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the first slave module machine satisfy the second preset condition.
  • an air-cooled heat pump cold and hot water unit includes: N modular machines, and outlet pipes of each of the modular machines are respectively connected to the air-cooled heat pump to be cooled.
  • a total outlet pipe of the hot water unit wherein each inlet pipe of the modular machine is respectively connected to a total inlet pipe of the air-cooled heat pump hot and cold water unit to achieve the N module machines are connected in parallel, wherein N is an integer greater than or equal to 2;
  • a first temperature detecting module is configured to detect an outdoor ambient temperature T4 in real time; and a second temperature detecting module is configured to detect each of the module machines in real time.
  • a control module configured to determine, according to the outdoor ambient temperature T4, whether to control the air-cooled heat pump cold and hot water unit to operate in a rotating defrosting mode when the air-cooling heat pump cold and hot water unit enters a defrosting mode
  • the control module controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines, if the air-cooled heat pump hot and cold water unit operates in a rolling defrosting mode a modular machine is in a shutdown state, and according to the outdoor ambient temperature T4 and the inlet water temperature Tin of any modular machine that is turned on, any modular machine that is turned on is alternately heated with any modular machine that is in a shutdown state, and
  • the fan in any of the modular machines that are turned on is continuously operated with the fan in any of the modular machines in the stopped state to be defrosted by forced convection heat transfer of the fan.
  • the control module when operating in the rotation defrosting mode, controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines In the stop state, then according to the outdoor ambient temperature T4 and the inlet water temperature Tin of any modular machine that is turned on, the control of any of the open modular machines and any modular machine in the stopped state is alternately heated, and the open operation is maintained.
  • the fan in a modular machine and the fan in any modular machine in the stop state continue to operate to defrose by forced convection heat transfer of the fan, that is, by switching between the modular machines, using the continuous operation of the fan itself
  • the defrosting eliminates the need to convert the cooling operation and stop the fan to reduce the heating, reduce the heating attenuation during the heating and defrosting, greatly improve the heating effect and improve the user experience.
  • the control module controls the air cooling if the outdoor ambient temperature T4 is greater than a first preset temperature
  • the heat pump hot and cold water unit operates in a rotating defrosting mode; if the outdoor ambient temperature T4 is less than or equal to the first preset temperature, the control module controls the air-cooled heat pump cold and hot water unit to perform conventional defrosting mode run.
  • the control module controls the main control by the following control flow.
  • the module machine and the first slave module machine alternately perform heating operation: a1, controlling a compressor in the main module machine to be powered on to enable the main module mechanism to operate thermally, and performing heating operation on the main module machine
  • a1 controlling a compressor in the main module machine to be powered on to enable the main module mechanism to operate thermally
  • performing heating operation on the main module machine After a preset time, determining whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the main modular machine meet the first preset condition; b1, if the outdoor ambient temperature T4 and the main modular machine are determined to enter The water temperature Tin meets the first preset condition, then controls the main module machine to enter a frost accumulation mode, and acquires a cumulative frosting time of the main module machine; c1, when the main module machine accumulates frost When the time reaches the first time threshold, the compressor in the main module machine is controlled to stop, the fan in the main module machine continues to operate, and the compressor in the first slave
  • the control module controls the main module system to continue. After the heating operation is performed for the third preset time, the process returns to determine whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the main module machine satisfy the first preset condition.
  • the control module controls the first slave After the module machine continues to operate for a fourth predetermined time, it returns to continue to determine whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the first slave module machine satisfy the second preset condition.
  • an embodiment of the present invention provides a defrosting control method for an air-cooled heat pump cold and hot water unit, wherein the air-cooled heat pump hot and cold water unit includes N modular machines, and N is greater than or equal to 2 An integral number, the outlet pipes of each of the modular machines are respectively connected to the total outlet pipes of the air-cooled heat pump cold and hot water unit, and the inlet pipes of each of the modular machines are respectively connected to the air-cooled heat pump a total inlet pipe of the water unit to realize parallel connection of the N modular machines, each of the modular machines comprising a plurality of hot water systems, each of the hot water systems including a compressor and an air conditioner heat exchanger
  • the defrosting control method comprises the following steps: detecting the outdoor ambient temperature T4 in real time, and detecting the inlet temperature T3 of each air conditioner heat exchanger in each of the modular machines in real time; according to the inlet temperature of each air conditioner heat exchanger detected in real time T3 obtains an inlet temperature change rate ⁇ T3 of each air conditioner heat
  • the outdoor ambient temperature T4 is detected in real time
  • the inlet temperature T3 of each air conditioner heat exchanger in each modular machine is detected in real time, and then detected in real time.
  • the outdoor ambient temperature T4 determines that the air-cooled heat pump hot and cold water unit operates in the rotating defrosting mode, controls at least one of the N modular machines to be turned on, and keeps at least one of the N modular machines in a shutdown state, and then The opening temperature is controlled according to the inlet temperature change rate ⁇ T3a of each air conditioner heat exchanger corresponding to any modular machine that is turned on and the inlet temperature change rate ⁇ T3b of each air conditioner heat exchanger corresponding to any modular machine in the shutdown state.
  • Any modular machine and any module in the shutdown state The block machine alternately performs heating operation, and keeps the fan in any of the opened modular machines and the fan in any of the modular machines in the stopped state continuously, thereby performing defrosting by forced convection heat transfer of the fan, thereby eliminating conversion to
  • the cooling operation and the stop fan are used for defrosting, reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect of the air-cooled heat pump chiller and hot water unit, and improving the user experience.
  • the air-cooled heat pump cold and hot water unit enters a defrosting mode, wherein the outdoor air temperature T4 is greater than the first preset temperature, the air-cooled heat pump is controlled to be hot and cold The unit operates in a rotating defrosting mode; if the outdoor ambient temperature T4 is less than or equal to the first preset temperature, the air-cooled heat pump hot and cold water unit is controlled to operate in a conventional defrosting mode.
  • each of the corresponding module machines according to the opening
  • the inlet temperature change rate ⁇ T3a of the air conditioner heat exchanger and the inlet temperature change rate ⁇ T3b of each air conditioner heat exchanger corresponding to any module machine in the stop state control any one of the module machines that are turned on and any one of the shutdown states
  • the module machine alternate heating operation specifically includes: a2, controlling the compressor in the main module machine to be powered on to enable the main module mechanism to operate hot, and acquiring the accumulation of the main module machine after the main module mechanism is hot running Frosting time; b2, when the cumulative frosting time of the main modular machine reaches a third time threshold or the inlet temperature change rate ⁇ T3a of any one of the main module machines is greater than or equal to the first preset value Controlling the compressor in the main module machine to stop, the fan in the main module machine continues to operate, and controlling the compressor in
  • the inlet temperature change rate ⁇ T3a of each of the air conditioner heat exchangers corresponding to any of the modular machines that are turned on and each of the air conditioner heat exchangers corresponding to any of the modular machines in the shutdown state are
  • the inlet temperature change rate ⁇ T3b controls the alternate heating operation of any of the module machines that are turned on and any module machine that is in the shutdown state, and further includes: when the cumulative frosting time of the main module machine does not reach the third time threshold And when the inlet temperature change rate ⁇ T3a of each of the air conditioner heat exchangers in the main module machine is less than the first preset value, the main module machine is controlled to continue the heating operation.
  • the inlet temperature change rate ⁇ T3a of each of the air conditioner heat exchangers corresponding to any of the modular machines that are turned on and each of the air conditioner heat exchangers corresponding to any of the modular machines in the shutdown state are
  • the inlet temperature change rate ⁇ T3b controls the alternate heating operation of any of the module machines that are turned on and the module machine that is in the shutdown state, and further includes: when the cumulative frosting time of the first slave module machine does not reach the fourth The first slave module machine is controlled to continue the heating operation when the time threshold is exceeded and the inlet temperature change rate ⁇ T3b of each of the first air conditioners in the first slave module machine is less than the first preset value.
  • an air-cooled heat pump cold and hot water unit includes: N modular machines, and outlet pipes of each of the modular machines are respectively connected to the air-cooled heat pump to be cooled. a total outlet pipe of the hot water unit, wherein each inlet pipe of the modular machine is respectively connected to a total inlet pipe of the air-cooled heat pump cold water unit, so that the N module machines are connected in parallel, wherein each The modular machine includes a plurality of hot water heating systems, each of the hot water heating systems includes a compressor and an air conditioning heat exchanger, N is an integer greater than or equal to 2; and the first temperature detecting module is configured to detect an outdoor ambient temperature in real time.
  • a fourth temperature detecting module configured to detect an inlet temperature T3 of each of the air conditioner heat exchangers in each of the modular machines in real time; and a control module configured to obtain an inlet temperature T3 of each of the air conditioner heat exchangers detected in real time
  • the inlet temperature change rate of each air conditioner heat exchanger is ⁇ T3, and when the air-cooling heat pump hot and cold water unit enters the defrosting mode, it is determined whether to control the air-cooled heat pump cold and hot water unit according to the outdoor ambient temperature T4.
  • the control module controls at least one of the N modular machines to be turned on, and maintains the N modular machines At least one of the modular machines is in a shutdown state, and an inlet temperature change rate ⁇ T3a of each of the air conditioner heat exchangers corresponding to any of the open modular machines and each of the air conditioner heat exchangers corresponding to any of the modular machines in the stopped state
  • the inlet temperature change rate ⁇ T3b controls any module machine that is turned on to alternately heat operation with any module machine in the shutdown state, and maintains the fan in any of the open module machines and any module machine in the shutdown state.
  • the fan is continuously operated to defrost by forced convection heat transfer from the fan.
  • the control module when operating in the rotation defrosting mode, controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines In the shutdown state, then according to the inlet temperature change rate ⁇ T3a of each air conditioner heat exchanger corresponding to any modular machine that is turned on, and the inlet temperature change rate of each air conditioner heat exchanger corresponding to any modular machine in the shutdown state ⁇ T3b controls any module machine that is turned on to alternately operate with any module machine in the shutdown state, and keeps the fan in any module machine that is turned on and the fan in any module machine that is in the shutdown state continue to run.
  • Defrost by forced convection heat transfer by the fan that is, through the switching between the modular machines, the defrosting is performed by the continuous operation of the fan itself, thereby eliminating the need for defrosting by converting the cooling operation and stopping the fan, and reducing the heating
  • the heating decay in the frost greatly improves the heating effect and improves the user experience.
  • the control module controls the air cooling if the outdoor ambient temperature T4 is greater than a first preset temperature
  • the heat pump hot and cold water unit operates in a rotating defrosting mode; if the outdoor ambient temperature T4 is less than or equal to the first preset temperature, the control module controls the air-cooled heat pump cold and hot water unit to perform conventional defrosting mode run.
  • the control module controls the main control by the following control flow.
  • the module machine and the first slave module machine alternately perform heating operation: a2, controlling a compressor in the main module machine to be powered on to enable the main module mechanism to operate thermally, and acquiring the hot after the main module mechanism is hot running
  • the cumulative frosting time of the main modular machine b2, when the cumulative frosting time of the main modular machine reaches a third time threshold or the inlet temperature of any air conditioning heat exchanger in the main modular machine
  • the rate of change ⁇ T3a is greater than or equal to the first preset value, the compressor in the main module machine is controlled to stop, the fan in the main module machine continues to operate, and the compressor in the first slave module machine is controlled to be turned on.
  • the control module controls the main module machine to continue the heating operation.
  • the control module controls the first slave module machine to continue the heating operation.
  • an embodiment of the present invention provides a defrosting control method for an air-cooled heat pump cold and hot water unit, wherein the air-cooled heat pump hot and cold water unit includes N modular machines, and N is greater than or equal to 2 An integral number, the outlet pipes of each of the modular machines are respectively connected to the total outlet pipes of the air-cooled heat pump cold and hot water unit, and the inlet pipes of each of the modular machines are respectively connected to the air-cooled heat pump a total inlet pipe of the water unit to realize parallel connection of the N modular machines, each of the modular machines comprising a plurality of hot water systems, each of the hot water systems including a compressor and an air conditioner heat exchanger
  • the defrosting control method includes the following steps: detecting the outdoor ambient temperature T4 in real time, and detecting the low pressure side pressure of each compressor in each of the modular machines in real time; acquiring each according to the low pressure side pressure of each compressor detected in real time.
  • a pressure change rate ⁇ P of the low pressure side of the compressor when the air-cooling heat pump hot and cold water unit enters a defrosting mode, determining the outdoor ambient temperature T4; if the outdoor ambient temperature T4 is greater than the first preset temperature , Controlling the rate of change ⁇ P air to water heat pump according to the low-pressure side pressure of each compressor run in rotation defrosting mode.
  • the air-cooled heat pump cold and hot water unit when operated in a rolling defrosting mode, wherein at least one of the N modular machines is controlled to be turned on, and the N modules are maintained At least one modular machine in the machine is in a stop state; and a low pressure side pressure change rate ⁇ Pa of each compressor corresponding to any of the open modular machines and a low pressure of each compressor corresponding to any of the modular machines in the stopped state
  • the side pressure change rate ⁇ Pb controls any module machine that is turned on to alternately heat the operation with any module machine in the stop state, and maintains the fan in any of the open modules and any module machine in the stop state.
  • the fan is continuously operated to defrost by forced convection heat transfer from the fan.
  • the defrosting control method of the air-cooled heat pump water chiller detects the outdoor ambient temperature T4 in real time, and detects the low pressure side pressure of each compressor in each modular machine in real time, and then passes the real-time detection outdoor environment.
  • the temperature T4 determines that the air-cooling heat pump cold and hot water unit is operating in the rotating defrosting mode
  • at least one of the N modular machines is controlled to be turned on, and at least one of the N modular machines is kept in a shutdown state, and then according to the opening Any module pair
  • the low pressure side pressure change rate ⁇ Pa of each compressor and the low pressure side pressure change rate ⁇ Pb of each compressor corresponding to any modular machine in the stop state control any one of the open modular machines and the shutdown state
  • Any modular machine alternately performs heating operation, and keeps the fan in any of the module machines that are turned on and the fan in any of the module machines in the stopped state continue to operate, thereby performing defrosting by forced convection heat transfer of the fan, thereby eliminating It is converted into a cooling operation and a fan stop for defrosting, reducing the heating attenuation during heating and defrosting, greatly improving the heating effect of the air-cooled heat pump chiller and hot water unit, and improving the user experience.
  • the defrosting control method of the air-cooled heat pump water chiller unit further includes: if the outdoor environment temperature T4 is less than or equal to the first preset temperature, controlling the air cooling The heat pump water chiller unit operates in a conventional defrosting mode.
  • each of the corresponding module machines when any of the module machines that are turned on are the main module machine, and any of the module machines that are in the shutdown state is the first slave module machine, each of the corresponding module machines according to the opening
  • the pressure change rate ⁇ Pa of the low pressure side of the compressor and the pressure change rate ⁇ Pb of the low pressure side of each compressor corresponding to any modular machine in the stop state control any modular machine that is turned on and any modular machine that is in the stop state
  • the alternating heating operation specifically includes: a3, controlling the compressor in the main module machine to be turned on to enable the main module mechanism to operate hot, and acquiring the cumulative frost of the main module machine after the main module mechanism is hot running a time; b3, when the cumulative frosting time of the main modular machine reaches a fifth time threshold or the low pressure side pressure change rate ⁇ Pa of any of the main modular machines is greater than or equal to a second preset value, the control station Stopping the compressor in the main modular machine, the fan in the main modular machine continues to operate, and controlling the
  • the low-pressure side pressure change rate ⁇ Pa of each compressor corresponding to any of the modular machines that are turned on and the low-pressure side pressure of each compressor corresponding to any of the modular machines in the stopped state The change rate ⁇ Pb controls any of the modular machines that are turned on and the alternate heating operation of any of the modular machines that are in the shutdown state, and further includes: when the cumulative frosting time of the main modular machine does not reach the fifth time threshold When the low pressure side pressure change rate ⁇ Pa of each compressor in the main module machine is less than the second preset value, the main module machine is controlled to continue the heating operation.
  • the low-pressure side pressure change rate ⁇ Pa of each compressor corresponding to any of the modular machines that are turned on and the low-pressure side pressure of each compressor corresponding to any of the modular machines in the stopped state The rate of change ⁇ Pb controls any of the modular machines that are turned on and the alternate heating operation of any of the modular machines that are in the shutdown state, and further includes: when the cumulative frosting time of the first slave module machine does not reach the sixth time threshold And when the low-pressure side pressure change rate ⁇ Pb of each compressor in the first slave module machine is less than the second preset value, the first slave module machine is controlled to continue the heating operation.
  • an air-cooled heat pump water chiller unit includes: N a modular machine, the outlet pipes of each of the modular machines are respectively connected to the total outlet pipes of the air-cooled heat pump cold and hot water units, and the inlet pipes of each of the modular machines are respectively connected to the air-cooled heat pump a total inlet pipe of the hot water unit to realize parallel connection of the N modular machines, wherein each of the modular machines includes a plurality of hot water systems, each of which comprises a compressor and an air conditioner N is an integer greater than or equal to 2; a first temperature detecting module for detecting the outdoor ambient temperature T4 in real time; and a first pressure detecting module for detecting the low pressure side pressure of each compressor in each of the modular machines in real time a control module for obtaining a low-pressure side pressure change rate ⁇ P of each compressor according to a low-pressure side pressure of each compressor detected in real time, and when the air-cooled heat pump hot and cold water unit enters a defrost mode
  • N a modular machine, the outlet pipes of each of the modular
  • the control module controls at least one of the N modular machines to be turned on, and maintains the N At least one of the modular machines is in a stop state, and each of the compressors corresponding to the low pressure side pressure change rate ⁇ Pa of each compressor corresponding to any of the open modular machines and each of the modular machines in the stopped state
  • the low-pressure side pressure change rate ⁇ Pb controls any module machine that is turned on to alternately heat operation with any module machine in the shutdown state, and maintains the fan in any of the open modular machines and any module in the shutdown state.
  • the fan in the machine continues to operate to defrost by forced convection heat transfer from the fan.
  • the control module when operating in the rotation defrosting mode, controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines It is in the stop state, and then according to the low pressure side pressure change rate ⁇ Pa of each compressor corresponding to any modular machine that is turned on, and the low pressure side pressure change rate ⁇ Pb of each compressor corresponding to any modular machine in the stop state.
  • Any one of the module machines that are turned on alternates with the heating of any module machine in the shutdown state, and keeps the fan in any of the module machines that are turned on and the fan in any module machine that is in the shutdown state continuously run to pass
  • the forced convection heat transfer of the fan is defrosted, that is, by switching between the modular machines, the defrosting is performed by the continuous operation of the fan itself, thereby eliminating defrosting by converting the cooling operation and stopping the fan, and reducing the heating defrosting time.
  • the heating attenuation greatly improves the heating effect and improves the user experience.
  • the control module controls the The air-cooled heat pump water chiller unit operates in a conventional defrosting mode.
  • the control module controls the main control by the following control flow.
  • the module machine and the first slave module machine alternately perform heating operation: a3, controlling the compressor in the main module machine to be powered on to enable the main module mechanism to operate hot, and acquiring the hot after the main module mechanism is hot running
  • the cumulative frosting time of the main modular machine b3, when the cumulative frosting time of the main modular machine reaches a fifth time threshold or the low pressure side pressure of any compressor in the main modular machine
  • the rate ⁇ Pa is greater than or equal to the second preset value
  • the compressor in the main module machine is controlled to stop, the fan in the main module machine continues to operate, and the compressor in the first slave module machine is controlled to be turned on.
  • the cumulative frosting time of the main modular machine does not reach the fifth time threshold and the low pressure side pressure change rate ⁇ Pa of each compressor in the main modular machine is smaller than the The second preset value controls the main module machine to continue the heating operation.
  • the control module controls the first slave module machine to continue the heating operation.
  • an embodiment of the present invention provides a defrosting control method for an air-cooled heat pump cold and hot water unit, wherein the air-cooled heat pump hot and cold water unit includes N modular machines, and N is greater than or equal to 2 An integral number, the outlet pipes of each of the modular machines are respectively connected to the total outlet pipes of the air-cooled heat pump cold and hot water unit, and the inlet pipes of each of the modular machines are respectively connected to the air-cooled heat pump
  • the total inlet pipe of the water unit is configured to realize parallel connection of the N module machines
  • the defrosting control method comprises the following steps: detecting the outdoor ambient temperature T4 in real time, and detecting the temperature of the inlet water corresponding to each of the module machines in real time.
  • the effluent water temperature obtaining the temperature difference between the inlet and outlet water of each of the modular machines according to the influent water temperature and the effluent water temperature detected in real time; when the air-cooling heat pump cold and hot water unit enters the defrosting mode, determining the outdoor ambient temperature T4 If the outdoor ambient temperature T4 is greater than the first preset temperature, the air-cooled heat pump cold and hot water unit is controlled to operate in a rotating defrosting mode according to the temperature difference between the inlet and outlet water.
  • the air-cooled heat pump cold and hot water unit when operated in a rolling defrosting mode, wherein at least one of the N modular machines is controlled to be turned on, and the N modules are maintained At least one module machine in the machine is in a stop state; and according to the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on and the temperature difference between the inlet and outlet water corresponding to any module machine in the shutdown state, any module machine that is turned on is controlled to be in a shutdown state. Any module machine alternately performs heating operation, and keeps the fan in any of the module machines that are turned on and the fan in any module machine that is in the shutdown state continue to operate, thereby performing defrosting by forced convection heat transfer of the fan.
  • the outdoor environment temperature T4 is detected in real time, and the inlet water temperature and the effluent water temperature corresponding to each module machine are detected in real time to obtain the inlet and outlet water of each module machine.
  • the temperature difference is then determined by the outdoor ambient temperature T4 detected in real time, when the air-cooled heat pump hot and cold water unit is operated in the rotation defrosting mode, at least one of the N modular machines is controlled to be turned on, and at least one of the N modular machines is maintained.
  • the module machine is in the stop state, and then according to the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on, and the corresponding inlet and outlet water of any modular machine in the shutdown state
  • the temperature difference control controls any of the open modular machines to alternately operate with any of the modular machines in the stopped state, and maintains the fan in any of the open modular machines and the fan in any of the modular machines in the stopped state to continue to operate. Defrost by forced convection heat transfer of the fan, so that it does not need to be converted into a cooling operation and a fan stop for defrosting, reducing the heating attenuation during heating and defrosting, and greatly improving the heating effect of the air-cooled heat pump water chiller unit To improve the user experience.
  • the defrosting control method of the air-cooled heat pump water chiller unit further includes: if the outdoor environment temperature T4 is less than or equal to the first preset temperature, controlling the air cooling The heat pump water chiller unit operates in a conventional defrosting mode.
  • the inlet and outlet water corresponding to any module machine that is turned on is The difference between the temperature difference and the temperature difference between the inlet and outlet water of any modular machine in the shutdown state controls the alternate heating operation of any module machine that is turned on and any module machine that is in the shutdown state, and specifically includes: a4, controlling compression in the main module machine Turning on the machine to enable the main module mechanism to run hot, and obtaining the temperature difference between the inlet and outlet water of the main module machine after the fifth preset time of the main module mechanism is hot, and obtaining the initial temperature difference between the first inlet and outlet water, and acquiring the main The cumulative frosting time of the module machine; b4, when the cumulative frosting time of the main module machine reaches the seventh time threshold or the temperature difference between the inlet and outlet of the main module machine is less than the first preset temperature difference, the main module machine is controlled The compressor in
  • the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on and the temperature difference between the inlet and outlet water corresponding to any module machine in the shutdown state control any module machine that is turned on and is in a shutdown state.
  • the heating operation of the module module further includes: when the accumulated frosting time of the main module machine does not reach the seventh time threshold and the temperature difference between the inlet and outlet of the main module machine is greater than or equal to the first preset temperature difference And controlling the main modular machine to continue heating operation.
  • the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on and the temperature difference between the inlet and outlet water corresponding to any module machine in the shutdown state control any module machine that is turned on and is in a shutdown state.
  • the module heating operation of the module further includes: when the accumulated frosting time of the first slave module machine does not reach the eighth time threshold, and the temperature difference between the inlet and outlet of the first slave module machine is greater than or equal to the second When the temperature difference is preset, the first slave module machine is controlled to continue the heating operation.
  • an air-cooled heat pump cold and hot water unit includes: N modular machines, and outlet pipes of each of the modular machines are respectively connected to the air-cooled heat pump to be cooled. a total outlet pipe of the hot water unit, wherein each inlet pipe of the modular machine is respectively connected to a total inlet pipe of the air-cooled heat pump hot and cold water unit, so that the N modular machines are connected in parallel, wherein N is An integer greater than or equal to 2; a first temperature detecting module for detecting an outdoor ambient temperature T4 in real time; a second temperature detecting module for detecting an influent water temperature corresponding to each of the modular devices in real time; and a third temperature detecting module Detecting the effluent water temperature corresponding to each of the modular machines in real time; the control module is configured to obtain the temperature difference between the inlet and outlet water of each of the modular machines according to the influent water temperature and the effluent water temperature detected in real time, and in the air-cooled heat pump The outdoor environment temperature
  • the control module controls at least one of the N modular machines to be turned on, and maintains the N At least one of the module machines is in a shutdown state, and according to the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on, and the temperature difference between the inlet and outlet water corresponding to any module machine in the shutdown state, any modular machine that is turned on is controlled and Any modular machine in the shutdown state alternates heating operation, and keeps the fan in any module machine that is turned on and the fan in any module machine in the shutdown state continue to operate to defoam by forced convection heat transfer of the fan. .
  • the control module when operating in the rotation defrosting mode, controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines In the stop state, then according to the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on and the temperature difference between the inlet and outlet water corresponding to any module machine in the shutdown state, any module machine that is turned on is alternated with any module machine in the shutdown state.
  • the defrosting is carried out by using the continuous operation of the fan itself, thereby eliminating defrosting by converting the cooling operation and stopping the fan, reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the control module controls the The air-cooled heat pump water chiller unit operates in a conventional defrosting mode.
  • the control module controls the main control by the following control flow.
  • the module machine and the first slave module machine alternately perform heating operation: a4, controlling the compressor in the main module machine to be turned on to enable the main module mechanism to operate hot, and the fifth operation is performed in the main module mechanism
  • the temperature difference between the inlet and outlet water of the main module machine is obtained as the initial temperature difference between the first inlet and outlet water, and the cumulative frosting time of the main module machine is acquired;
  • b4 when the main module machine is accumulated When the frosting time reaches the seventh time threshold or the temperature difference between the inlet and outlet water of the main module machine is less than the first preset temperature difference, the compressor in the main module machine is controlled to stop, and the fan in the main module machine continues to run, and Controlling the compressor in the first slave module machine to be powered on to cause the first slave module mechanism to operate hot
  • the control module controls the main module machine to continue the heating operation.
  • the control module controls the first slave module machine to continue the heating operation.
  • An air-cooled heat pump cold and hot water unit further includes: N modular machines, wherein outlet pipes of each of the modular machines are respectively connected to a total outlet pipe of the air-cooled heat pump cold and hot water unit The inlet pipes of each of the modular machines are respectively connected to the total inlet pipes of the air-cooled heat pump water chiller unit to realize parallel connection of the N module machines, wherein N is an integer greater than or equal to 2; a temperature detecting module for detecting an outdoor ambient temperature T4 in real time; an obtaining module for acquiring operating parameters of each of the modular machines; and a control module for when the air-cooling heat pump hot and cold water unit enters a defrost mode Determining whether to control the air-cooled heat pump cold and hot water unit to operate in a rotating defrosting mode according to the outdoor ambient temperature T4, wherein the control module controls if the air-cooled heat pump cold and hot water unit operates in a rotating defrosting mode At least one of the N modular machines is turned on, and at least one of the N
  • the control module when operating in the rotation defrosting mode, controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines In the stop state, then according to the outdoor ambient temperature T4 and the operating parameters of any module machine that is turned on, any one of the module machines that are turned on is alternately heated with any module machine in the stopped state, and any module that is turned on is maintained.
  • the fan in the machine and the fan in any modular machine in the stop state continue to operate to defoam by forced convection heat transfer of the fan, that is, through the switching between the module machines, the defrosting is performed by using the continuous operation of the fan itself. , so that there is no need to change the cooling operation and stop the wind
  • the machine is used for defrosting, reducing the heating decay during heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the operating parameters of each of the modular machines may include an influent water temperature Tin corresponding to each of the modular machines, an outlet water temperature Tout corresponding to each of the modular machines, and an air conditioning heat exchange in each of the modular machines.
  • FIG. 1 is a block diagram showing an air-cooled heat pump water chiller unit according to an embodiment of the present invention
  • FIG. 2 is a schematic structural diagram of a system of a module machine according to an embodiment of the present invention.
  • 3A is a flow chart of a defrosting control method for an air-cooled heat pump water chiller unit according to a first embodiment of the present invention
  • 3B is a flow chart of a defrosting control method for an air-cooled heat pump water chiller unit according to a second embodiment of the present invention
  • 3C is a flow chart of a defrosting control method for an air-cooled heat pump water chiller unit according to a third embodiment of the present invention.
  • 3D is a flow chart of a defrosting control method for an air-cooled heat pump water chiller unit according to a fourth embodiment of the present invention.
  • 4A is a flow chart showing a defrosting control when the air-cooled heat pump cold and hot water unit is operated in a rotating defrosting mode according to the first embodiment of the present invention
  • 4B is a flow chart showing the defrosting control when the air-cooled heat pump water chiller unit is operated in the rotation defrosting mode according to the second embodiment of the present invention
  • 4C is a flow chart showing the defrosting control when the air-cooled heat pump water chiller unit is operated in the rotation defrosting mode according to the third embodiment of the present invention.
  • 4D is a flow chart showing the defrosting control of the air-cooled heat pump water chiller unit in the rotation defrosting mode according to the fourth embodiment of the present invention.
  • an air-cooled heat pump hot and cold water unit includes N modular machines, N is an integer greater than or equal to 2, and the outlet pipes of each modular machine are respectively connected to air cooling.
  • the total outlet pipes of the heat pump hot and cold water units, the inlet pipes of each modular machine are respectively connected to the total inlet pipes of the air-cooled heat pump cold and hot water units, so as to realize the parallel connection of the N modular machines.
  • each modular machine may include a plurality of hot water heating systems such as two (a first hot water system and a second hot water system), each of which includes a compressor and an air conditioner. Heat exchanger, where each system
  • the air conditioning heat exchanger in the hot water system for example, the air conditioning heat exchanger in the first hot water system and the air conditioning heat exchanger in the second hot water system share one fan and share the same water side heat exchanger.
  • each air-cooled heat pump cold and hot water machine can form an independent modular machine, each modular machine shares the same main waterway, and the air-cooled heat pump cold and hot water unit composed of N modular machines provides cold heat to the internal machine. .
  • the outdoor temperature T4 can be detected by the outdoor temperature sensor.
  • the operating parameters of each modular machine may include a water inlet temperature Tin corresponding to each modular machine, an outlet water temperature Tout corresponding to each modular machine, and an air conditioning heat exchanger of each modular machine.
  • the inlet temperature T3 the low pressure side pressure of each compressor in each modular machine.
  • the air-cooled heat pump cold and hot water unit when the air-cooled heat pump cold and hot water unit enters the defrosting mode, wherein if the outdoor ambient temperature T4 is greater than the first preset temperature, the air-cooled heat pump hot and cold water unit is controlled to rotate the defrosting mode. Running; if the outdoor ambient temperature T4 is less than or equal to the first preset temperature, then the air-cooled heat pump hot and cold water unit is controlled to operate in a conventional defrosting mode.
  • the first preset temperature can be calibrated according to the specific conditions of the air-cooled heat pump hot and cold water unit.
  • the conventional defrosting method refers to the chilling of the air-cooled heat pump hot and cold water unit or the normal cooling operation and the stopping fan. That is to say, when the outdoor ambient temperature T4 is relatively low, the air-cooled heat pump hot and cold water unit still passes the normal state. Cooling operation and fan stop for defrosting.
  • the air-cooled heat pump water chiller unit operates in a rotating defrosting mode, that is, a defrosting between the module machines, only for a specific outdoor ambient temperature.
  • the air-cooled heat pump hot and cold water unit operates in a rotating defrosting mode, at least one of the N modular machines is controlled to be turned on, and at least one of the N modular machines is kept in a shutdown state.
  • the N module machines are controlled. At least one module machine is turned on, and at least one of the N modular machines is kept in a shutdown state, and then any module that is turned on is controlled according to the outdoor ambient temperature T4 and the inlet water temperature Tin of any of the opened modular machines. Any modular machine in the shutdown state alternates heating operation, and keeps the fan in any module machine that is turned on and the fan in any module machine in the shutdown state continue to operate to defoam by forced convection heat transfer of the fan.
  • the machine is used for defrosting, reducing the heating attenuation during heating and defrosting, greatly improving the heating effect of the air-cooled heat pump chiller and hot water unit, and improving the user experience.
  • the defrosting control method of the air-cooled heat pump cold and hot water unit includes The following steps:
  • the outdoor ambient temperature T4 can be detected by the outdoor temperature sensor, and the inlet water temperature Tin of the corresponding modular machine can be detected by a temperature sensor disposed at the inlet pipe of each modular machine.
  • the air-cooled heat pump cold and hot water unit when the air-cooled heat pump cold and hot water unit enters the defrosting mode, wherein if the outdoor ambient temperature T4 is greater than the first preset temperature, the air-cooled heat pump hot and cold water unit is controlled to rotate the defrosting mode. Running; if the outdoor ambient temperature T4 is less than or equal to the first preset temperature, then the air-cooled heat pump hot and cold water unit is controlled to operate in a conventional defrosting mode.
  • the first preset temperature can be calibrated according to the specific conditions of the air-cooled heat pump hot and cold water unit.
  • the conventional defrosting method refers to the chilling of the air-cooled heat pump hot and cold water unit or the normal cooling operation and the stopping fan. That is to say, when the outdoor ambient temperature T4 is relatively low, the air-cooled heat pump hot and cold water unit still passes the normal state. Cooling operation and fan stop for defrosting.
  • the air-cooled heat pump water chiller unit operates in a rotating defrosting mode, that is, a defrosting between the module machines, only for a specific outdoor ambient temperature.
  • the air-cooled heat pump hot and cold water unit operates in a rotating defrosting mode, at least one of the N modular machines is controlled to be turned on, and at least one of the N modular machines is kept in a shutdown state.
  • the air-cooled heat pump cold and hot water unit when operated in the rotation and defrosting mode, firstly one or more of the N modular machines are turned on, and it is necessary to ensure that at least one of the modular machines is in a shutdown state, and then according to the detected outdoor The ambient temperature T4 and the inlet water temperature Tin parameter are used to feed back the frosting condition of the opened modular machine, and the shutdown and rotation of the inter-compressor compressor are completed by the above-mentioned detected parameters and preset conditions, wherein the rotated modular machine only The compressor is stopped, the fan is not stopped, and the forced convection heat transfer of the fan is defrosted, thereby realizing the rotation and defrosting between the module machine and the module machine.
  • the defrosting control method of the air-cooling heat pump cold and hot water unit controls the air-cooling heat pump cold and hot water unit to operate in a rotating defrosting mode, and does not need to convert the cooling operation and the stop fan to perform defrosting, and It is the switching between the modular machines, and the defrosting is carried out by the continuous operation of the fan itself, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the outdoor environment temperature T4 and the opening in the above step S4 are performed.
  • the inlet water temperature of any module machine controls the operation of any module machine that is turned on and the heating operation of any module machine that is in the shutdown state. Specifically, it includes: a1, controlling the compressor in the main module machine to start up to make the main module mechanism hot.
  • Running and after the first preset time of the heating operation of the main module machine, determining whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the main modular machine satisfy the first preset condition; b1, if judging the outdoor ambient temperature T4 and the main The inlet water temperature Tin of the module machine meets the first preset condition, then the main module machine is controlled to enter the frost accumulation mode, and the cumulative frosting time of the main module machine is obtained; c1, when the cumulative frosting time of the main module machine reaches the first time At the threshold, the compressor in the main module machine is controlled to stop, the fan in the main module machine continues to run, and the compressor in the first slave module machine is controlled to be turned on to enable the first slave module mechanism to operate thermally.
  • the defrosting control process when the air-cooled heat pump cold and hot water unit is operated in the rotating defrosting mode includes the following steps:
  • the air-cooled heat pump hot and cold water unit operates in a heating mode after receiving the power-on command.
  • step S302 Control the compressor in the main module machine to be turned on to make the main module mechanism run hot, and after the main module mechanism is hot to run for the first preset time t1, perform step S303.
  • step S303 judging whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the main modular machine determine whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the main modular machine satisfy the first preset condition, wherein the first preset condition is based on actual conditions The situation is calibrated. If yes, step S304 is performed; if not, control the main module machine to continue the heating operation for a third preset time, and then return to step S303.
  • the main module machine is controlled to continue to perform the third preset time after the heating operation, and then return. It is further determined whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the main modular machine satisfy the first preset condition.
  • step S305 Determine whether the accumulated frosting time Ta reaches the first time threshold, that is, the set rotation total time. If yes, go to step S306; if no, go back to step S305 and continue the judgment.
  • step S306 controlling the compressor in the main module machine to stop, keeping the fan in the main module machine running, and controlling the compressor in the first slave module machine to be turned on to enable the first slave module mechanism to operate hot, and in the first slave module After the mechanism heats up for the second preset time t2, step S307 is performed.
  • step S307 judging whether the outdoor ambient temperature T4 and the inflow water temperature Tin of the first slave module machine determine whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the first slave module machine satisfy the second preset condition, wherein the second pre-condition The conditions are also calibrated according to the actual situation. If yes, step S308 is performed; if not, control the first slave module machine to continue the heating operation for a fourth preset time, and then return to step S307.
  • step S309 Determine whether the accumulated frosting time Tb reaches the second time threshold, that is, the set rotation cumulative time. If yes, go to step S310; if no, go back to step S309 and continue the judgment.
  • the main module machine and the first slave module machine can be alternately switched, and the fan is used.
  • the operation continues to cause the frost on the corresponding air conditioner heat exchanger to absorb the heat of the surrounding environment, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the defrosting is carried out by means of non-stop fan, and the four-way valve reversing is not involved in the defrosting process, so intermittent cooling (refrigeration does not occur).
  • the defrosting causes the water temperature of the air-cooled heat pump water chiller unit to fluctuate, and the heating effect of the air-cooled heat pump chiller and water unit does not decay, improving the user experience.
  • the N module machines are controlled. At least one module machine is turned on, and at least one of the N modular machines is kept in a shutdown state, and then any module that is turned on is controlled according to the outdoor ambient temperature T4 and the inlet water temperature Tin of any of the opened modular machines. Any modular machine in the shutdown state alternates heating operation, and keeps the fan in any module machine that is turned on and the fan in any module machine in the shutdown state continue to operate to defoam by forced convection heat transfer of the fan.
  • the inlet temperature of each of the air conditioner heat exchangers is also T3 obtains the inlet temperature change rate ⁇ T3 of each air conditioner heat exchanger, according to the inlet temperature change rate ⁇ T3a of each air conditioner heat exchanger corresponding to any modular machine that is turned on, and corresponding to any modular machine in the shutdown state.
  • the inlet temperature change rate of each air conditioner heat exchanger is ⁇ T3b control Any one of the modular machines that are turned on alternates with the heating of any of the modular machines in the stopped state, and keeps the fan in any of the opened modular machines and the fan in any of the modular machines in the stopped state continuously running, Defrost by forced convection heat transfer of the fan. That is to say, as shown in FIG. 3B, the defrosting control method of the air-cooled heat pump water chiller unit comprises the following steps:
  • the outdoor ambient temperature T4 can be detected by the outdoor temperature sensor, and the inlet temperature T3 can be detected by a temperature sensor disposed at the inlet of each of the air conditioner heat exchangers.
  • ⁇ T3 is the decay rate of the inlet temperature of each of the air conditioner heat exchangers.
  • the air-cooled heat pump cold and hot water unit when the air-cooled heat pump cold and hot water unit enters the defrosting mode, wherein if the outdoor ambient temperature T4 is greater than the first preset temperature, the air-cooled heat pump hot and cold water unit is controlled to rotate the defrosting mode. Running; if the outdoor ambient temperature T4 is less than or equal to the first preset temperature, then the air-cooled heat pump hot and cold water unit is controlled to operate in a conventional defrosting mode.
  • the first preset temperature can be calibrated according to the specific conditions of the air-cooled heat pump hot and cold water unit.
  • the conventional defrosting method refers to the chilling of the air-cooled heat pump hot and cold water unit or the normal cooling operation and the stopping fan. That is to say, when the outdoor ambient temperature T4 is relatively low, the air-cooled heat pump hot and cold water unit still passes the normal state. Cooling operation and fan stop for defrosting.
  • the air-cooled heat pump water chiller unit operates in a rotating defrosting mode, that is, a defrosting between the module machines, only for a specific outdoor ambient temperature.
  • the air-cooled heat pump hot and cold water unit operates in the rotation and defrosting mode, first one or more of the N modular machines are turned on, and it is necessary to ensure that at least one of the modular machines is in a shutdown state, and then according to each detected
  • the inlet temperature parameter of the air conditioner heat exchanger is used to feedback the frost condition of the opened module machine, and the shutdown and rotation of the compressor between the modules are completed by the above-mentioned detected parameters and preset conditions, wherein the rotated module machine only Stop the compressor, keep the fan,
  • the defrosting is performed by forced convection heat transfer of the fan, thereby realizing the rotation and defrosting between the module machine and the module machine.
  • the defrosting control method of the air-cooling heat pump cold and hot water unit controls the air-cooling heat pump cold and hot water unit to operate in a rotating defrosting mode, and does not need to convert the cooling operation and the stop fan to perform defrosting, and It is the switching between the modular machines, and the defrosting is carried out by the continuous operation of the fan itself, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the corresponding one of the module machines according to the step S51 is corresponding.
  • the inlet temperature change rate ⁇ T3a of each air conditioner heat exchanger and the inlet temperature change rate ⁇ T3b of each air conditioner heat exchanger corresponding to any modular machine in the stop state control any module machine that is turned on and is in a stop state
  • the alternate heating operation of any module machine specifically includes: a2, controlling the compressor in the main module machine to be turned on to enable the main module mechanism to operate hot, and obtaining the cumulative frosting time of the main module machine after the main module mechanism is hot running; b2 When the accumulated frosting time of the main module machine reaches the third time threshold or the inlet temperature change rate ⁇ T3a of any air conditioner heat exchanger in the main module machine is greater than or equal to the first preset value, the compressor in the main module machine is controlled to be stopped.
  • the fan in the main module machine continues to operate, and controls the compressor in the first slave module machine to be powered on to enable the first slave module mechanism to operate hot, and after the first slave module mechanism is hot running
  • the cumulative frosting time of the first slave module machine; c2 when the cumulative frosting time of the first slave module machine reaches the fourth time threshold or the inlet temperature change rate ⁇ T3b of any one of the first slave module machines is greater than
  • the compressor in the first slave module machine is stopped, the fan in the first slave module machine continues to run, and the process returns to step a2.
  • the defrosting control process when the air-cooled heat pump cold and hot water unit is operated in the rotating defrosting mode includes the following steps:
  • the air-cooled heat pump water chiller unit runs in the heating mode after receiving the power-on command.
  • the main module machine performs a frost accumulation accumulation time, and acquires a cumulative frosting time ta.
  • S304B Determine whether an inlet temperature change rate ⁇ T3a of any one of the air conditioners in the main module machine is greater than or equal to a first preset value Tv. If yes, go to step S306B; if no, go to step S305B.
  • the first preset value Tv is calibrated according to a specific situation.
  • step S305B Determine whether the cumulative frosting time ta reaches a third time threshold. If yes, go to step S306B; if no, go back to step S303B, that is, when the cumulative frosting time of the main module machine does not reach the third time threshold and each air conditioner heat exchange in the main module machine
  • the main module machine is controlled to continue the heating operation.
  • the third time threshold can be set according to actual conditions.
  • the first slave module machine performs a frost accumulation accumulation time, and acquires a cumulative frosting time tb.
  • S308B Determine whether an inlet temperature change rate ⁇ T3b of any one of the first slave module machines is greater than or equal to a first preset value Tv. If yes, go to step S310B; if no, go to step S309B.
  • step S309B Determine whether the accumulated frosting time tb reaches the fourth time threshold. If yes, go to step S310B; if no, go back to step S307B, that is, when the cumulative frosting time of the first slave module machine does not reach the fourth time threshold and each of the first slave modules When the inlet temperature change rate ⁇ T3b of the air conditioner heat exchangers is less than the first preset value, the first slave module machine is controlled to continue the heating operation.
  • the fourth time threshold can also be set according to actual conditions.
  • step S310B controlling the compressor stop in the first slave module machine, keeping the fan in the first slave module machine continue to run, and then returning to step S302B.
  • the main module machine and the first slave module machine can be alternately switched, and the fan is used.
  • the operation continues to cause the frost on the corresponding air conditioner heat exchanger to absorb the heat of the surrounding environment, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the defrosting is carried out by means of non-stop fan, and the four-way valve reversing is not involved in the defrosting process, so intermittent cooling (refrigeration does not occur).
  • the defrosting causes the water temperature of the air-cooled heat pump water chiller unit to fluctuate, and the heating effect of the air-cooled heat pump chiller and water unit does not decay, improving the user experience.
  • the outdoor ambient temperature T4 is detected in real time
  • the inlet temperature T3 of each air conditioner heat exchanger in each modular machine is detected in real time, and then detected in real time.
  • the outdoor ambient temperature T4 determines that the air-cooled heat pump hot and cold water unit operates in the rotating defrosting mode, controls at least one of the N modular machines to be turned on, and keeps at least one of the N modular machines in a shutdown state, and then The opening temperature is controlled according to the inlet temperature change rate ⁇ T3a of each air conditioner heat exchanger corresponding to any modular machine that is turned on and the inlet temperature change rate ⁇ T3b of each air conditioner heat exchanger corresponding to any modular machine in the shutdown state.
  • Any module machine alternates with any modular machine in the shutdown state to maintain heating operation, and keeps the fan in any module machine that is turned on and the fan in any module machine that is in the shutdown state continuously run to force the fan through
  • the convection heat transfer is defrosted, so that it does not need to be converted into a cooling operation and a fan stop for defrosting, reducing the heating decay during heating and defrosting, and greatly improving air cooling.
  • Heating effect pump water chiller improve the user experience.
  • each compression is also acquired according to the low-pressure side pressure of each of the compressors
  • the low pressure side pressure change rate ⁇ P of the machine is based on the low pressure side pressure change rate ⁇ Pa of each compressor corresponding to any modular machine that is turned on, and the low pressure side of each compressor corresponding to any modular machine in the stop state.
  • the pressure change rate ⁇ Pb controls any module machine that is turned on to alternately heat the operation with any module machine in the stop state, and keeps the fan in the module machine that is turned on and is in the stop.
  • the fan in any of the modular machines continues to operate to defrost by forced convection heat transfer from the fan. That is to say, as shown in FIG. 3C, the defrosting control method of the air-cooled heat pump water chiller unit comprises the following steps:
  • the outdoor ambient temperature T4 can be detected by the outdoor temperature sensor, and the low pressure side pressure can be detected by a pressure sensor disposed at the return port of each compressor.
  • ⁇ P is the return pressure decay rate of each compressor.
  • the air-cooled heat pump hot and cold water unit is controlled to operate in a rotating defrosting mode according to the low pressure side pressure change rate ⁇ P of each compressor.
  • the air-cooled heat pump hot and cold water unit is controlled to operate in a conventional defrosting mode.
  • the first preset temperature can be calibrated according to the specific conditions of the air-cooled heat pump hot and cold water unit.
  • the conventional defrosting method refers to the chilling of the air-cooled heat pump hot and cold water unit or the normal cooling operation and the stopping fan. That is to say, when the outdoor ambient temperature T4 is relatively low, the air-cooled heat pump hot and cold water unit still passes the normal state. Cooling operation and fan stop for defrosting.
  • the air-cooled heat pump water chiller unit operates in a rotating defrosting mode, that is, a defrosting between the module machines, only for a specific outdoor ambient temperature.
  • the air-cooled heat pump cold and hot water unit when the air-cooled heat pump cold and hot water unit is operated in the rotation defrosting mode, at least one of the N modular machines is controlled to be turned on, and at least one of the N modular machines is kept at The shutdown state; and controlling the low-pressure side pressure change rate ⁇ Pa of each compressor corresponding to any of the modular machines that are turned on and the low-pressure side pressure change rate ⁇ Pb of each compressor corresponding to any of the modular machines in the stopped state
  • Any modular machine that is turned on alternates with any modular machine in the shutdown state to maintain heating operation, and keeps the fan in any module machine that is turned on and the fan in any modular machine that is in the shutdown state continuously run to pass the fan.
  • the forced convection heat transfer is defrosted.
  • the air-cooled heat pump hot and cold water unit operates in the rotation and defrosting mode, first one or more of the N modular machines are turned on, and it is necessary to ensure that at least one of the modular machines is in a shutdown state, and then according to each detected
  • the return air pressure parameter of the compressor feeds back the frosting condition of the open modular machine, and at the same time, the shutdown and rotation of the compressor between the modules are completed by the above-mentioned detected parameters and preset conditions, wherein the rotated modular machine only stops.
  • the compressor and the non-stop fan are defrosted by the forced convection heat transfer of the fan, thereby realizing the rotation and defrosting between the module machine and the module machine.
  • the defrosting control method of the air-cooling heat pump cold and hot water unit controls the air-cooling heat pump cold and hot water unit to operate in a rotating defrosting mode, and does not need to convert the cooling operation and the stop fan to perform defrosting, and It is the switching between the module machines, and the defrosting is carried out by the continuous operation of the fan itself, thereby reducing the heating attenuation during the heating and tempering, greatly improving Heating effect to improve user experience.
  • each compressor corresponding to any of the opened modular machines control any modular machine that is turned on alternates with any modular machine in the stop state
  • the hot operation specifically includes: a3, controlling the compressor in the main module machine to be turned on to make the main module mechanism run hot, and obtaining the cumulative frosting time of the main module machine after the main module mechanism is hot running; b3, when the cumulative accumulation of the main module machine When the frost time reaches the fifth time threshold or the low pressure side pressure change rate ⁇ Pa of any compressor in the main module machine is greater than or equal to the second preset value, the compressor in the main module machine is stopped, and the fan in the main module machine continues.
  • the defrosting control flow when the air-cooled heat pump cold and hot water unit is operated in the rotating defrosting mode includes the following steps:
  • the air-cooled heat pump water chiller unit runs in the heating mode after receiving the power-on command.
  • the main module machine performs a frost accumulation accumulation time and acquires a cumulative frosting time ta.
  • S304C Determine whether the low-pressure side pressure change rate ⁇ Pa of any of the compressors in the main module machine is greater than or equal to a second preset value Pv. If yes, go to step S306C; if no, go to step S305C.
  • the second preset value Pv is calibrated according to a specific situation.
  • step S305C Determine whether the cumulative frosting time ta reaches a fifth time threshold. If yes, go to step S306C; if no, go back to step S303C, that is, when the cumulative frosting time of the main module machine does not reach the fifth time threshold and each compressor in the main module machine When the low pressure side pressure change rate ⁇ Pa is less than the second preset value, the main module machine is controlled to continue the heating operation.
  • the fifth time threshold can be set according to actual conditions.
  • the first slave module machine performs a frost accumulation accumulation time, and acquires a cumulative frosting time tb.
  • step S308C Determine whether the low-pressure side pressure change rate ⁇ Pb of any one of the first slave module machines is greater than or equal to a second preset value Pv. If yes, step S310C is performed; if no, step S309C is performed.
  • step S309C it is determined whether the cumulative frosting time tb reaches the sixth time threshold. If yes, go to step S310C; if no, go back to step S307C, that is, when the cumulative frosting time of the first slave module machine does not reach the sixth
  • the first slave module machine is controlled to continue the heating operation when the time threshold is reached and the low pressure side pressure change rate ⁇ Pb of each compressor in the first slave module machine is less than the second preset value.
  • the sixth time threshold can also be set according to actual conditions.
  • step S310C controlling the compressor stop in the first slave module machine, keeping the fan in the first slave module machine continue to run, and then returning to step S302C.
  • the main module machine and the first slave module machine can be alternately switched, and the fan is used.
  • the operation continues to cause the frost on the corresponding air conditioner heat exchanger to absorb the heat of the surrounding environment, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the defrosting is carried out by means of non-stop fan, and the four-way valve reversing is not involved in the defrosting process, so intermittent cooling (refrigeration does not occur).
  • the defrosting causes the water temperature of the air-cooled heat pump water chiller unit to fluctuate, and the heating effect of the air-cooled heat pump chiller and water unit does not decay, improving the user experience.
  • the defrosting control method of the air-cooled heat pump water chiller detects the outdoor ambient temperature T4 in real time, and detects the low pressure side pressure of each compressor in each modular machine in real time, and then passes the real-time detection outdoor environment.
  • the temperature T4 determines that the air-cooling heat pump cold and hot water unit is operating in the rotating defrosting mode
  • at least one of the N modular machines is controlled to be turned on, and at least one of the N modular machines is kept in a shutdown state, and then according to the opening
  • the pressure change rate ⁇ Pa of the low pressure side of each compressor corresponding to any of the modular machines and the pressure change rate ⁇ Pb of the low pressure side of each compressor corresponding to any modular machine in the stop state control any modular machine that is turned on Alternate heating operation with any modular machine in the stopped state, and keep the fan in any of the open modular machines and the fan in any modular machine in the stopped state continue to operate, through forced convection heat transfer of the fan Defrost, which eliminates the need to convert to a cooling operation and a fan stop for defrosting, reduces the heating decay during heating and defrosting, and greatly improves the air-cooling heat pump
  • the heating effect of the unit improves the user experience.
  • the operating parameters of each of the modular machines include the influent water temperature Tin corresponding to each of the modular machines and the effluent water temperature Tout corresponding to each of the modular machines
  • the inlet water temperature Tin corresponding to the module machine and the outlet water temperature Tout corresponding to each of the module machines obtain the temperature difference between the inlet and outlet water of each module machine, so as to be in accordance with the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on, and is in the shutdown state.
  • the temperature difference between the inlet and outlet water corresponding to any modular machine in the state controls whether any of the modular machines that are turned on alternates with the heating operation of any modular machine that is in the shutdown state, and maintains the fan in the module machine that is turned on and is in the shutdown state.
  • the fan in any modular machine is continuously operated to defrost by forced convection heat transfer of the fan. That is to say, as shown in FIG. 3D, the defrosting control method of the air-cooled heat pump cold and hot water unit includes the following steps:
  • the outdoor temperature sensor T4 can be detected by the outdoor temperature sensor, and can be set in each module machine.
  • the temperature sensor at the water pipe detects the inlet water temperature of the corresponding module machine, and detects the water temperature of the corresponding module machine through a temperature sensor disposed at the outlet pipe of each module machine.
  • the air-cooled heat pump hot and cold water unit is controlled to operate in a rotating defrosting mode according to the temperature difference between the inlet and outlet water.
  • the air-cooled heat pump hot and cold water unit is controlled to operate in a conventional defrosting mode.
  • the first preset temperature can be calibrated according to the specific conditions of the air-cooled heat pump hot and cold water unit.
  • the conventional defrosting method refers to the chilling of the air-cooled heat pump hot and cold water unit or the normal cooling operation and the stopping fan. That is to say, when the outdoor ambient temperature T4 is relatively low, the air-cooled heat pump hot and cold water unit still passes the normal state. Cooling operation and fan stop for defrosting.
  • the air-cooled heat pump water chiller unit operates in a rotating defrosting mode, that is, a defrosting between the module machines, only for a specific outdoor ambient temperature.
  • the air-cooled heat pump cold and hot water unit when operated in a rolling defrosting mode, wherein at least one of the N modular machines is controlled to be turned on, and at least one of the N modular machines is maintained.
  • the machine is in a stop state; and according to the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on and the temperature difference between the inlet and outlet water corresponding to any module machine in the shutdown state, any module machine that is turned on is alternated with any module machine in the shutdown state.
  • the heating operation is performed, and the fan in any of the module machines that are turned on and the fan in any of the module machines in the shutdown state are continuously operated to defrost by forced convection heat transfer of the fan.
  • the air-cooled heat pump cold and hot water unit when operated in the rotation and defrosting mode, firstly one or more of the N modular machines are turned on, and it is necessary to ensure that at least one of the modular machines is in a stop state, and then according to the acquired access.
  • the water temperature difference parameter feeds back the frost condition of the opened module machine, and at the same time, the shutdown and rotation of the compressor between the modules are completed by the parameters obtained above and the preset conditions, wherein the rotated module machine only stops the compressor, and does not stop.
  • the fan is defrosted by forced convection heat transfer of the fan, thereby realizing the rotation and defrosting between the module machine and the module machine.
  • the defrosting control method of the air-cooling heat pump cold and hot water unit controls the air-cooling heat pump cold and hot water unit to operate in a rotating defrosting mode, and does not need to convert the cooling operation and the stop fan to perform defrosting, and It is the switching between the modular machines, and the defrosting is carried out by the continuous operation of the fan itself, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on is The temperature difference between the inlet and outlet water of any module machine in the shutdown state controls the alternate heating operation of any module machine that is turned on and any module machine that is in the shutdown state, and specifically includes: a4, controlling the compressor in the main module machine to be turned on to enable The main module mechanism is hot running and in the main module After the fifth preset time of the mechanism heat operation, the temperature difference between the inlet and outlet water of the main module machine is obtained as the initial temperature difference between the first inlet and outlet water, and the cumulative frosting time of the main module machine is acquired; b4, when the cumulative frosting time of the main module machine reaches the seventh time When the threshold or the temperature difference between the inlet and outlet of the main module machine is less than the first preset temperature difference, the compressor in the main module machine is stopped, the fan in
  • the first slave module mechanism is hot running, wherein the first preset temperature difference is calculated according to the initial temperature difference of the first inlet and outlet water; c4, obtaining the inlet and outlet water of the first slave module machine after the first slave module mechanism is thermally operated for a fifth preset time
  • the temperature difference is the initial temperature difference between the second inlet and outlet water, and the cumulative frosting time of the first slave module machine is obtained; d4, when the cumulative frosting time of the first slave module machine reaches the eighth time threshold or the temperature difference between the inlet and outlet of the first slave module machine
  • the compressor in the first slave module machine is controlled to stop, and the fan of the first slave module machine continues to run, and returns to step a4, wherein the second preset temperature According to a second calculated temperature difference between the initial out of the water.
  • the defrosting control process when the air-cooled heat pump cold and hot water unit operates in the rotating defrosting mode includes the following steps:
  • the air-cooled heat pump hot and cold water unit operates in the heating mode after receiving the power-on command.
  • step S302D controlling the compressor in the main module machine to be turned on to make the main module mechanism run hot, and after the main module mechanism is hot running for a fifth preset time t5, executing step S303D.
  • obtaining the temperature difference between the inlet and outlet water of the main module machine is the initial temperature difference Tca of the first inlet and outlet water.
  • the temperature difference between the inlet and outlet water at this time is recorded as the initial temperature difference Tca of the first inlet and outlet water, and the cumulative accumulation time of the frost is obtained to obtain the cumulative frosting time of the main module machine. Ta.
  • step S305D Determine whether the temperature difference between the inlet and outlet water of the main module machine is less than the first preset temperature difference. If yes, go to step S307D; if no, go to step S306D.
  • the first preset temperature difference is calculated according to the first temperature difference Tca of the first inlet and outlet water of the main module machine, for example, the first preset temperature difference is Tca*90%.
  • step S306D Determine whether the cumulative frosting time ta reaches a seventh time threshold, wherein the seventh time threshold is calibrated according to actual conditions. If yes, go to step S307D; if no, go back to step S304D, that is, when the cumulative frosting time of the main module machine does not reach the seventh time threshold and the temperature difference between the inlet and outlet of the main module machine is greater than or equal to When the first preset temperature difference is described, the main module machine is controlled to continue the heating operation.
  • step S307D controlling the compressor in the main module machine to stop, keeping the fan in the main module machine running, and controlling the compressor in the first slave module machine to open, so that the first slave module mechanism is hot running, and in the first slave module After the mechanism hot runs for the fifth preset time t5, step S308D is performed.
  • S308D Obtain a temperature difference between the inlet and outlet water of the first slave module machine as a second temperature difference Tcb of the second inlet and outlet water.
  • S309D Acquire a cumulative frosting time tb of the first slave module machine.
  • the first slave module mechanism is thermally operated for the fifth preset time t5
  • the temperature difference between the inlet and outlet water at this time is recorded as the second temperature difference Tcb of the second inlet and outlet water
  • the frost accumulation cumulative timing is performed to obtain the first slave module machine. Cumulative frosting time Tb.
  • step S310D Determine whether the temperature difference between the inlet and outlet water of the first slave module machine is less than the second preset temperature difference. If yes, go to step S312D; if no, go to step S311D.
  • the second preset temperature difference is calculated according to the second inlet and outlet water temperature difference Tcb of the first slave module machine, for example, the second preset temperature difference is Tcb*90%.
  • step S311D Determine whether the accumulated frosting time tb reaches an eighth time threshold, wherein the eighth time threshold is calibrated according to actual conditions. If yes, go to step S312D; if no, go back to step S309D, that is, when the accumulated frosting time of the first slave module machine does not reach the eighth time threshold and the first slave module machine enters and exits water When the temperature difference is greater than or equal to the second preset temperature difference, the first slave module machine is controlled to continue the heating operation.
  • step S312D controlling the compressor in the first slave module machine to stop, keeping the fan in the first slave module machine continue to run, and then returning to step S302D.
  • the main module machine and the first slave module machine can be alternately switched, and the fan is used.
  • the operation continues to cause the frost on the corresponding air conditioner heat exchanger to absorb the heat of the surrounding environment, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the defrosting is carried out by means of non-stop fan, and the four-way valve reversing is not involved in the defrosting process, so intermittent cooling (refrigeration does not occur).
  • the defrosting causes the water temperature of the air-cooled heat pump water chiller unit to fluctuate, and the heating effect of the air-cooled heat pump chiller and water unit does not decay, improving the user experience.
  • the outdoor environment temperature T4 is detected in real time, and the inlet water temperature and the effluent water temperature corresponding to each module machine are detected in real time to obtain the inlet and outlet water of each module machine.
  • the temperature difference is then determined by the outdoor ambient temperature T4 detected in real time, when the air-cooled heat pump hot and cold water unit is operated in the rotation defrosting mode, at least one of the N modular machines is controlled to be turned on, and at least one of the N modular machines is maintained.
  • the module machine is in the stop state, and then according to the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on and the temperature difference between the inlet and outlet water corresponding to any module machine in the shutdown state, any module machine that is turned on and any module machine that is in the shutdown state are controlled.
  • Alternate heating operation and keep the fan in any module machine that is turned on and the fan in any module machine in the shutdown state continue to operate, to defoam by forced convection heat transfer of the fan, so that there is no need to convert to cooling operation
  • stop the fan to carry out defrosting reduce the heating attenuation during the heating and defrosting, and greatly improve the heating effect of the air-cooled heat pump hot and cold water unit Improve the user experience.
  • the embodiment of the invention further provides an air-cooled heat pump cold and hot water unit, comprising: N modular machines, wherein the outlet pipes of each of the modular machines are respectively connected to the total output of the air-cooled heat pump hot and cold water unit a water pipe, each of the inlet pipes of the modular machine is respectively connected to a total inlet pipe of the air-cooled heat pump water chiller unit, so that the N module machines are connected in parallel, wherein N is an integer greater than or equal to 2; a first temperature detecting module, configured to detect an outdoor ambient temperature T4 in real time; an acquiring module, configured to acquire operating parameters of each of the modular machines; and a control module, configured to enter the air-cooling heat pump hot and cold water unit When entering the defrosting mode, determining whether to control the air-cooling heat pump chiller and hot water unit to operate in a rotating defrosting mode according to the outdoor ambient temperature T4, wherein if the air-cooling heat pump chiller and water unit operates in a rotating defrosting mode,
  • the control module controls at least
  • the operating parameters of each of the modular machines may include an influent water temperature Tin corresponding to each of the modular machines, an outlet water temperature Tout corresponding to each of the modular machines, and an air conditioning heat exchange in each of the modular machines.
  • the control module when operating in the rotation defrosting mode, controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines In the stop state, then according to the outdoor ambient temperature T4 and the operating parameters of any module machine that is turned on, any one of the module machines that are turned on is alternately heated with any module machine in the stopped state, and any module that is turned on is maintained.
  • the fan in the machine and the fan in any modular machine in the stop state continue to operate to defoam by forced convection heat transfer of the fan, that is, through the switching between the module machines, the defrosting is performed by using the continuous operation of the fan itself. Therefore, it is not necessary to perform defrosting by converting the cooling operation and stopping the fan, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the air-cooled heat pump cold and hot water unit comprises: N modular machines 100, The first temperature detecting module, the second temperature detecting module, and the control module, N is an integer greater than or equal to 2.
  • each modular machine 100 are respectively connected to the total outlet pipes of the air-cooled heat pump hot and cold water units, and the inlet pipes of each modular machine 100 are respectively connected to the air-cooled heat pump hot and cold water.
  • the total inlet pipe of the unit is used to realize the parallel connection of N modular machines.
  • each modular machine 100 may include a plurality of hot water heating systems such as two (a first hot water system and a second hot water system), wherein the first hot water system
  • the air conditioner heat exchanger and the air conditioner heat exchanger in the second hot water system share one fan and share the same water side heat exchanger.
  • the first hot water system includes a compressor 11, an exhaust temperature switch 12, a high pressure switch 13, a four-way valve 14, a low pressure switch 15, a low pressure irrigation 16, and an air conditioning heat exchanger 17,
  • the electronic expansion valve 18, the second hot water system also includes a compressor 21, an exhaust temperature switch 22, a high pressure switch 23, a four-way valve 24, a low pressure switch 25, a low pressure irrigation 26, an air conditioning heat exchanger 27, and an electronic expansion valve 28.
  • the air conditioning heat exchanger 17 in the first hot water system and the air conditioning heat exchanger 27 in the second hot water system share a single fan 10, and the first hot water system and the second hot water system also share water.
  • the side heat exchanger is the casing heat exchanger 20, and at the same time, the temperature is set at the outlet pipe of the casing heat exchanger 20 and the inlet pipe.
  • the sensor is provided with a flow sensor at the outlet pipe, and a temperature sensor 19 is provided between the air conditioner heat exchanger 17 and the electronic expansion valve 18, and a temperature sensor 29 is provided between the air conditioner heat exchanger 27 and the electronic expansion valve 28.
  • the first temperature detecting module such as an outdoor temperature sensor
  • the second temperature detecting module (such as the temperature sensor 101 disposed at the inlet of each modular machine) is used for real time. Detecting the influent water temperature Tin corresponding to each modular machine, and the control module is configured to determine whether to control the air-cooled heat pump hot and cold water unit to operate in a rotating defrosting mode according to the outdoor environmental temperature T4 when the air-cooled heat pump hot and cold water unit enters the defrost mode.
  • the control module controls at least one of the N modular machines to be turned on, and keeps at least one of the N modular machines in a shutdown state, and According to the outdoor ambient temperature T4 and the inlet water temperature Tin of any modular machine that is turned on, any modular machine that is turned on is alternately heated with any modular machine that is in a stopped state, and is maintained in any of the modular machines that are turned on.
  • the fan and the fan in any of the modular machines in the shutdown state continue to operate to defrost the forced convection heat transfer of the fan.
  • the control module controls the air-cooled heat pump cold and hot water unit if the outdoor ambient temperature T4 is greater than a first preset temperature The operation is performed in a rotating defrosting mode; if the outdoor ambient temperature T4 is less than or equal to the first preset temperature, the control module controls the air-cooled heat pump cold and hot water unit to operate in a conventional defrosting mode.
  • the first preset temperature can be calibrated according to the specific conditions of the air-cooled heat pump hot and cold water unit.
  • the conventional defrosting method refers to the chilling of the air-cooled heat pump hot and cold water unit or the normal cooling operation and the stopping fan. That is to say, when the outdoor ambient temperature T4 is relatively low, the air-cooled heat pump hot and cold water unit still passes the normal state. Cooling operation and fan stop for defrosting.
  • the air-cooled heat pump water chiller unit operates in a rotating defrosting mode, that is, a defrosting between the module machines, only for a specific outdoor ambient temperature.
  • control module when any module machine that is turned on is a main module machine, and any module machine in a stopped state is a first slave module machine, the control module implements control by using the following control flow.
  • the main module machine and the first slave module machine alternately perform heating operations:
  • A1 controlling the compressor in the main module machine to be turned on to enable the main module mechanism to operate hot, and determining the outdoor ambient temperature T4 and the location after the main module machine performs heating operation for a first preset time Whether the inlet water temperature Tin of the main module machine satisfies the first preset condition;
  • the first preset condition and the second preset condition are both calibrated according to actual conditions.
  • the control module controls the main module system to continue the heating operation for the third pre-control. After the time is set, the process returns to determine whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the main module machine satisfy the first preset condition. If it is determined that the outdoor ambient temperature T4 and the inlet water temperature Tin of the first slave module machine do not satisfy the second preset condition, the control module controls the first slave module machine to continue heating operation fourth. After the preset time, the process returns to determine whether the outdoor ambient temperature T4 and the inlet water temperature Tin of the first slave module machine satisfy the second preset condition.
  • the switching between the control module machines is alternated between the main module machine and the first slave module machine, for example.
  • the frost on the corresponding air conditioner heat exchanger absorbs the heat of the surrounding environment, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the control module when operating in the rotation defrosting mode, controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines In the stop state, then according to the outdoor ambient temperature T4 and the inlet water temperature Tin of any modular machine that is turned on, the control of any of the open modular machines and any modular machine in the stopped state is alternately heated, and the open operation is maintained.
  • the fan in a modular machine and the fan in any modular machine in the stop state continue to operate to defrose by forced convection heat transfer of the fan, that is, by switching between the modular machines, using the continuous operation of the fan itself
  • the defrosting eliminates the need to convert the cooling operation and stop the fan to reduce the heating, reduce the heating attenuation during the heating and defrosting, greatly improve the heating effect and improve the user experience.
  • the air-cooled heat pump cold and hot water unit comprises: N module machines 100, a first temperature detecting module, a second temperature detecting module and a control module, and N is an integer greater than or equal to 2.
  • each modular machine 100 are respectively connected to the total outlet pipes of the air-cooled heat pump hot and cold water units, and the inlet pipes of each modular machine 100 are respectively connected to the air-cooled heat pump hot and cold water.
  • the total inlet pipe of the unit is used to realize the parallel connection of N modular machines.
  • each modular machine 100 may include a plurality of hot water heating systems such as two (a first hot water system and a second hot water system), each of which includes a compressor and An air conditioner heat exchanger in which an air conditioner heat exchanger in each of the hot water systems, for example, an air conditioner heat exchanger in the first hot water system and an air conditioner heat exchanger in the second hot water system share a fan and share The same water side heat exchanger.
  • a plurality of hot water heating systems such as two (a first hot water system and a second hot water system), each of which includes a compressor and An air conditioner heat exchanger in which an air conditioner heat exchanger in each of the hot water systems, for example, an air conditioner heat exchanger in the first hot water system and an air conditioner heat exchanger in the second hot water system share a fan and share The same water side heat exchanger.
  • the first hot water system includes a compressor 11, an exhaust temperature switch 12, a high pressure switch 13, a four-way valve 14, a low pressure switch 15, a low pressure irrigation 16, and a first air conditioning heat exchanger. 17.
  • An electronic expansion valve 18, the second hot water system comprising a compressor 21, an exhaust temperature switch 22, a high pressure switch 23, a four-way valve 24, a low pressure switch 25, a low pressure irrigation 26, a second air conditioning heat exchanger 27, electronics Expansion valve 28.
  • first air conditioning heat exchanger 17 and the second air conditioning heat exchanger 27 share a single fan 10, and the first hot water system and the second hot water system also share a water side heat exchanger, that is, a casing heat exchanger 20,
  • a temperature sensor is arranged at the outlet pipe of the casing heat exchanger 20 and the inlet pipe (for example, a temperature sensor 101 is provided at the inlet pipe to detect the inlet water temperature), a flow sensor is arranged at the outlet pipe, and the air conditioner is exchanged.
  • a temperature sensor 19 is provided between the heat exchanger 17 and the electronic expansion valve 18, and a temperature sensor 29 is provided between the air conditioner heat exchanger 27 and the electronic expansion valve 28.
  • the temperature sensor 19 is used to detect the inlet temperature of the first air conditioner heat exchanger in real time
  • the temperature sensor 29 is used to detect the inlet temperature of the second air conditioner heat exchanger in real time.
  • the first temperature detecting module such as an outdoor temperature sensor
  • the second temperature detecting module (such as a temperature sensor disposed at the inlet of each air conditioner heat exchanger) is used for real time.
  • the control module is configured to obtain an inlet temperature change rate of each air conditioner heat exchanger according to an inlet temperature T3 of each air conditioner heat exchanger detected in real time.
  • the control module controls at least one of the N modular machines to be turned on, and keeps at least one of the N modular machines in a shutdown state, and each air conditioner corresponding to any modular machine that is turned on is replaced.
  • the inlet temperature change rate ⁇ T3a of the heat exchanger and the inlet temperature change rate ⁇ T3b of each air conditioner heat exchanger corresponding to any modular machine in the shutdown state control Any module machine of the startup is alternately heated with any module machine in the shutdown state, and the fan in any module machine that is turned on and the fan in any module machine in the shutdown state are continuously operated to pass the fan. The forced convection heat transfer is defrosted.
  • the control module controls the air-cooled heat pump cold and hot water unit if the outdoor ambient temperature T4 is greater than a first preset temperature The operation is performed in a rotating defrosting mode; if the outdoor ambient temperature T4 is less than or equal to the first preset temperature, the control module controls the air-cooled heat pump cold and hot water unit to operate in a conventional defrosting mode.
  • the first preset temperature can be calibrated according to the specific conditions of the air-cooled heat pump hot and cold water unit.
  • the conventional defrosting method refers to the chilling of the air-cooled heat pump hot and cold water unit or the normal cooling operation and the stopping fan. That is to say, when the outdoor ambient temperature T4 is relatively low, the air-cooled heat pump hot and cold water unit still passes the normal state. Cooling operation and fan stop for defrosting.
  • the air-cooled heat pump water chiller unit operates in a rotating defrosting mode, that is, a defrosting between the module machines, only for a specific outdoor ambient temperature.
  • the control module is further configured according to each air conditioner.
  • Heat exchanger inlet temperature T3 obtains the inlet temperature change rate ⁇ T3 of each air conditioner heat exchanger, according to the inlet temperature change rate ⁇ T3a of each air conditioner heat exchanger corresponding to any modular machine that is turned on, and corresponding to any modular machine in the shutdown state.
  • the inlet temperature change rate ⁇ T3b of each air conditioner heat exchanger controls the alternate heating operation of any module machine that is turned on and any module machine that is in the shutdown state, and keeps the fan in the module machine that is turned on and is in the shutdown state.
  • the fan in any of the modular machines is continuously operated to defrost by forced convection heat transfer from the fan.
  • the control module controls the main module machine and the first An alternate heating operation from the modular machine:
  • the control module controls the main module machine to continue heating operation.
  • the control module controls the first slave module machine to continue the heating operation.
  • the switching between the control module machines is alternated between the main module machine and the first slave module machine, for example.
  • the frost on the corresponding air conditioner heat exchanger absorbs the heat of the surrounding environment, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the control module when operating in the rotation defrosting mode, controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines In the shutdown state, then according to the inlet temperature change rate ⁇ T3a of each air conditioner heat exchanger corresponding to any modular machine that is turned on, and the inlet temperature change rate of each air conditioner heat exchanger corresponding to any modular machine in the shutdown state ⁇ T3b controls any module machine that is turned on to alternately operate with any module machine in the shutdown state, and keeps the fan in any module machine that is turned on and the fan in any module machine that is in the shutdown state continue to run.
  • Defrost by forced convection heat transfer through a fan ie through
  • the switching between the module machines uses the continuous operation of the fan to perform defrosting, thereby eliminating the need to convert the cooling operation and stopping the fan to perform defrosting, reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving user experience.
  • the air-cooled heat pump cold and hot water unit comprises: N module machines 100, a first temperature detecting module, a first pressure detecting module and a control module, and N is an integer greater than or equal to 2.
  • each modular machine 100 are respectively connected to the total outlet pipes of the air-cooled heat pump hot and cold water units, and the inlet pipes of each modular machine 100 are respectively connected to the air-cooled heat pump hot and cold water.
  • the total inlet pipe of the unit is used to realize the parallel connection of N modular machines 100.
  • each modular machine 100 may include a plurality of hot water heating systems such as two (a first hot water system and a second hot water system), each of which includes a compressor and An air conditioner heat exchanger in which an air conditioner heat exchanger in each of the hot water systems, for example, an air conditioner heat exchanger in the first hot water system and an air conditioner heat exchanger in the second hot water system share a fan and share The same water side heat exchanger.
  • a plurality of hot water heating systems such as two (a first hot water system and a second hot water system), each of which includes a compressor and An air conditioner heat exchanger in which an air conditioner heat exchanger in each of the hot water systems, for example, an air conditioner heat exchanger in the first hot water system and an air conditioner heat exchanger in the second hot water system share a fan and share The same water side heat exchanger.
  • the first hot water system includes a compressor 11, an exhaust temperature switch 12, a high pressure switch 13, a four-way valve 14, a low pressure switch 15, a low pressure irrigation 16, and a first air conditioning heat exchanger. 17.
  • An electronic expansion valve 18, the second hot water system comprising a compressor 21, an exhaust temperature switch 22, a high pressure switch 23, a four-way valve 24, a low pressure switch 25, a low pressure irrigation 26, a second air conditioning heat exchanger 27, electronics Expansion valve 28.
  • first air conditioning heat exchanger 17 and the second air conditioning heat exchanger 27 share a single fan 10, and the first hot water system and the second hot water system also share a water side heat exchanger, that is, a casing heat exchanger 20,
  • a temperature sensor is arranged at the outlet pipe of the casing heat exchanger 20 and the inlet pipe (for example, a temperature sensor 101 is provided at the inlet pipe to detect the inlet water temperature), a flow sensor is arranged at the outlet pipe, and the air conditioner is exchanged.
  • a temperature sensor 19 is provided between the heat exchanger 17 and the electronic expansion valve 18, and a temperature sensor 29 is provided between the air conditioner heat exchanger 27 and the electronic expansion valve 28.
  • the first temperature detecting module such as an outdoor temperature sensor
  • the first pressure detecting module (a pressure sensor disposed at each compressor return port, such as a low pressure switch) is used for Real-time detecting the low-pressure side pressure of each compressor in each of the modular machines
  • the control module is configured to obtain the low-pressure side pressure change rate ⁇ P of each compressor according to the low-pressure side pressure of each compressor detected in real time
  • the air-cooling heat pump hot and cold water unit determines the outdoor ambient temperature T4 when entering the defrosting mode, wherein if the outdoor ambient temperature T4 is greater than the first preset temperature, the control module is based on each compressor
  • the low pressure side pressure change rate ⁇ P controls the air-cooled heat pump cold and hot water unit to operate in a rotating defrosting mode.
  • the control module controls at least one of the N modular machines to be turned on, and maintains the N At least one of the modular machines is in a stop state, and each of the compressors corresponding to the low pressure side pressure change rate ⁇ Pa of each compressor corresponding to any of the open modular machines and each of the modular machines in the stopped state
  • the low pressure side pressure change rate ⁇ Pb controls any one of the modular machines that are turned on to alternately heat the operation with any of the modular machines in the stopped state, and maintains any mode of the opening.
  • the fan in the block machine and the fan in any of the modular machines in the stop state continue to operate to defrost by forced convection heat transfer of the fan.
  • the control module controls the air-cooled heat pump to be hot and cold The water unit operates in a conventional defrost mode.
  • the first preset temperature can be calibrated according to the specific conditions of the air-cooled heat pump hot and cold water unit.
  • the conventional defrosting method refers to the chilling of the air-cooled heat pump hot and cold water unit or the normal cooling operation and the stopping fan. That is to say, when the outdoor ambient temperature T4 is relatively low, the air-cooled heat pump hot and cold water unit still passes the normal state. Cooling operation and fan stop for defrosting.
  • the air-cooled heat pump water chiller unit operates in a rotating defrosting mode, that is, a defrosting between the module machines, only for a specific outdoor ambient temperature.
  • the control module when the operating parameters of each of the modular machines include the low side pressure of each of the compressors in each of the modular machines, the control module is further The low pressure side pressure acquires the low pressure side pressure change rate ⁇ P of each compressor to correspond to the low pressure side pressure change rate ⁇ Pa of each compressor corresponding to any of the open modular machines and any modular machine in the stop state.
  • the pressure change rate ⁇ Pb of the low-pressure side of each compressor controls the alternate heating operation of any one of the modular machines that are turned on and the one of the modular machines that are in the stopped state, and keeps the fan in the module machine that is turned on and is in the stop state.
  • the fan in any of the modular machines is continuously operated to defrost by forced convection heat transfer of the fan.
  • the control module controls the main module machine and the first An alternate heating operation from the modular machine:
  • A3 controlling the compressor in the main module machine to be powered on to enable the main module mechanism to run hot, and acquiring the accumulated frosting time of the main module machine after the main module mechanism is hot running;
  • the control module controls the main module machine to continue heating operation.
  • the cumulative frosting time of the first slave module machine does not reach the sixth time threshold and the The control module controls the first slave module machine to continue the heating operation when the low pressure side pressure change rate ⁇ Pb of each compressor in the first slave module machine is less than the second preset value.
  • the switching between the control module machines is alternated between the main module machine and the first slave module machine, for example.
  • the frost on the corresponding air conditioner heat exchanger absorbs the heat of the surrounding environment, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the control module when operating in the rotation defrosting mode, controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines It is in the stop state, and then according to the low pressure side pressure change rate ⁇ Pa of each compressor corresponding to any modular machine that is turned on, and the low pressure side pressure change rate ⁇ Pb of each compressor corresponding to any modular machine in the stop state.
  • Any one of the module machines that are turned on alternates with the heating of any module machine in the shutdown state, and keeps the fan in any of the module machines that are turned on and the fan in any module machine that is in the shutdown state continuously run to pass
  • the forced convection heat transfer of the fan is defrosted, that is, by switching between the modular machines, the defrosting is performed by the continuous operation of the fan itself, thereby eliminating defrosting by converting the cooling operation and stopping the fan, and reducing the heating defrosting time.
  • the heating attenuation greatly improves the heating effect and improves the user experience.
  • the air-cooled heat pump cold and hot water unit comprises: N module machines 100, a first temperature detecting module, a second temperature detecting module, a third temperature detecting module and a control module, wherein N is greater than or equal to An integer of 2.
  • each modular machine 100 are respectively connected to the total outlet pipes of the air-cooled heat pump hot and cold water units, and the inlet pipes of each modular machine 100 are respectively connected to the air-cooled heat pump hot and cold water.
  • the total inlet pipe of the unit is used to realize the parallel connection of N modular machines 100.
  • each modular machine 100 may include a plurality of hot water heating systems such as two (a first hot water system and a second hot water system), wherein the first hot water system
  • the air conditioner heat exchanger and the air conditioner heat exchanger in the second hot water system share one fan and share the same water side heat exchanger.
  • the first hot water system includes a compressor 11, an exhaust temperature switch 12, a high pressure switch 13, a four-way valve 14, a low pressure switch 15, a low pressure irrigation 16, and an air conditioning heat exchanger 17,
  • the electronic expansion valve 18, the second hot water system also includes a compressor 21, an exhaust temperature switch 22, a high pressure switch 23, a four-way valve 24, a low pressure switch 25, a low pressure irrigation 26, an air conditioning heat exchanger 27, and an electronic expansion valve 28.
  • the air conditioning heat exchanger 17 in the first hot water system and the air conditioning heat exchanger 27 in the second hot water system share a single fan 10, and the first hot water system and the second hot water system also share water.
  • the side heat exchanger is the casing heat exchanger 20, and at the same time, a temperature sensor is arranged at the outlet pipe and the inlet pipe of the casing heat exchanger 20, a flow sensor is arranged at the outlet pipe, and the air conditioning heat exchanger 17 is A temperature sensor 19 is provided between the electronic expansion valves 18, and a temperature sensor 29 is provided between the air conditioning heat exchanger 27 and the electronic expansion valve 28.
  • the first temperature detecting module such as an outdoor temperature sensor
  • the second temperature detecting module such as the temperature sensor 101 disposed at the inlet pipe of each modular machine
  • the third temperature detecting module for example, a temperature sensor disposed at the outlet pipe of each module machine
  • the control module is used according to Real-time detection of the influent water temperature and the effluent water temperature to obtain the temperature difference between the inlet and outlet water of each of the modular machines, and determining the outdoor ambient temperature T4 when the air-cooled heat pump hot and cold water unit enters the defrosting mode, wherein if The outdoor ambient temperature T4 is greater than the first preset temperature, and the control module controls the air-cooled heat pump cold and hot water unit to operate in a rotating defrosting mode according to the temperature difference between the inlet and outlet water.
  • the control module controls at least one of the N modular machines to be turned on, and maintains the N At least one of the module machines is in a shutdown state, and according to the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on, and the temperature difference between the inlet and outlet water corresponding to any module machine in the shutdown state, any modular machine that is turned on is controlled and Any modular machine in the shutdown state alternates heating operation, and keeps the fan in any module machine that is turned on and the fan in any module machine in the shutdown state continue to operate to defoam by forced convection heat transfer of the fan. .
  • the control module controls the air-cooled heat pump to be hot and cold The water unit operates in a conventional defrost mode.
  • the first preset temperature can be calibrated according to the specific conditions of the air-cooled heat pump hot and cold water unit.
  • the conventional defrosting method refers to the chilling of the air-cooled heat pump hot and cold water unit or the normal cooling operation and the stopping fan. That is to say, when the outdoor ambient temperature T4 is relatively low, the air-cooled heat pump hot and cold water unit still passes the normal state. Cooling operation and fan stop for defrosting.
  • the air-cooled heat pump water chiller unit operates in a rotating defrosting mode, that is, a defrosting between the module machines, only for a specific outdoor ambient temperature.
  • the control module when the operating parameters of each of the modular machines include an influent water temperature Tin corresponding to each of the modular machines and an outlet water temperature Tout corresponding to each of the modular machines, the control module further obtains the temperature difference between the inlet and outlet water of each of the modular machines according to the inlet water temperature Tin corresponding to each of the modular machines and the outlet water temperature Tout corresponding to each of the modular machines, so as to correspond to any modular machine that is turned on.
  • the temperature difference between the inlet and outlet water and the temperature difference between the inlet and outlet water of any module machine in the stop state control alternately heats any module machine that is turned on and any module machine that is in the shutdown state, and maintains the module machine in the open state
  • the fan and the fan in any of the modular machines in the shutdown state continue to operate to defrost the forced convection heat transfer of the fan.
  • A4 controlling the compressor in the main module machine to be powered on to enable the main module mechanism to run hot, and obtaining the temperature difference between the inlet and outlet water of the main module machine after the main module mechanism is hot for a fifth preset time The initial temperature difference between the inlet and outlet water, and the cumulative frosting time of the main module machine;
  • step D4 When the accumulated frosting time of the first slave module machine reaches an eighth time threshold or the temperature difference between the inlet and outlet water of the first slave module machine is less than a second preset temperature difference, controlling the first slave module machine When the compressor is stopped, the fan of the first slave module machine continues to run, and returns to step a4, wherein the second preset temperature difference is calculated according to the initial temperature difference of the second inlet and outlet water.
  • the control module controls the main The modular machine continues to operate in heating.
  • the control module controls the The first slave module machine continues to operate in heating.
  • the switching between the control module machines is alternated between the main module machine and the first slave module machine, for example.
  • the frost on the corresponding air conditioner heat exchanger absorbs the heat of the surrounding environment, thereby reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • the control module when operating in the rotation defrosting mode, controls at least one of the N modular machines to be turned on, and maintains at least one of the N modular machines In the stop state, then according to the temperature difference between the inlet and outlet water corresponding to any module machine that is turned on and the temperature difference between the inlet and outlet water corresponding to any module machine in the shutdown state, any module machine that is turned on is alternated with any module machine in the shutdown state.
  • the defrosting is carried out by using the continuous operation of the fan itself, thereby eliminating defrosting by converting the cooling operation and stopping the fan, reducing the heating attenuation during the heating and defrosting, greatly improving the heating effect and improving the user experience.
  • first and second are used for descriptive purposes only and are not to be construed as indicating or implying a relative importance or implicitly indicating the number of technical features indicated.
  • features defining “first” or “second” may include at least one of the features, either explicitly or implicitly.
  • the meaning of "a plurality” is at least two, such as two, three, etc., unless specifically defined otherwise.
  • the terms “installation”, “connected”, “connected”, “fixed” and the like shall be understood broadly, and may be either a fixed connection or a detachable connection, unless explicitly stated and defined otherwise. , or integrated; can be mechanical or electrical connection; can be directly connected, or indirectly connected through an intermediate medium, can be the internal communication of two elements or the interaction of two elements, unless otherwise specified Limited.
  • the specific meanings of the above terms in the present invention can be understood on a case-by-case basis.
  • the first feature "on” or “under” the second feature may be a direct contact of the first and second features, or the first and second features may be indirectly through an intermediate medium, unless otherwise explicitly stated and defined. contact.
  • the first feature "above”, “above” and “above” the second feature may be that the first feature is directly above or above the second feature, or merely that the first feature level is higher than the second feature.
  • the first feature “below”, “below” and “below” the second feature may be that the first feature is directly below or obliquely below the second feature, or merely that the first feature level is less than the second feature.

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Mechanical Engineering (AREA)
  • Thermal Sciences (AREA)
  • General Engineering & Computer Science (AREA)
  • Air Conditioning Control Device (AREA)

Abstract

La présente invention concerne une unité de refroidissement et de chauffage d'eau de pompe à chaleur refroidie à l'air et un procédé de commande de dégivrage associé. L'unité de refroidissement et de chauffage d'eau de pompe à chaleur refroidie à l'air comprend : N unités modulaires (100), des conduites de sortie d'eau des unités modulaires (100) étant raccordées séparément à une conduite d'entrée d'eau totale de l'unité de refroidissement et de chauffage d'eau de pompe à chaleur refroidie à l'air, de manière à réaliser un raccordement en parallèle des N unités modulaires (100), N étant un nombre entier supérieur à 2 ; un premier module de détection de température, utilisé pour détecter une température d'environnement extérieur (T4) ; un module d'acquisition, utilisé pour l'acquisition de paramètres de fonctionnement de chaque unité modulaire (100) ; et un module de commande, utilisé pour déterminer, en fonction de la température d'environnement extérieur (T4), s'il faut commander à l'unité de refroidissement et de chauffage d'eau de pompe à chaleur refroidie à l'air de passer à un autre mode de dégivrage lorsque l'unité de refroidissement et de chauffage d'eau de pompe à chaleur refroidie à l'air entre dans un mode de dégivrage. Le procédé de commande de dégivrage pour l'unité de refroidissement et de chauffage d'eau de pompe à chaleur refroidie à l'air comprend les étapes suivantes : l'unité de refroidissement et de chauffage d'eau de pompe à chaleur refroidie à l'air passe à un autre mode de dégivrage, et un module de commande commande à au moins l'une des N unités modulaires (100) de démarrer, maintient au moins l'une des N unités modulaires (100) dans un état d'arrêt, commande, en fonction d'une température d'environnement extérieur (T4) et des paramètres de fonctionnement de l'une quelconque des unités modulaires (100) mises en marche, à l'une quelconque des unités modulaires (100) mises en marche et à l'une quelconque des unités modulaires (100) dans l'état d'arrêt de fonctionner dans un autre mode de chauffage, et maintient un ventilateur (10) dans l'une quelconque des unités modulaires (100) mises en marche et un ventilateur (10) dans l'une quelconque des unités modulaires (100) dans l'état d'arrêt dans un fonctionnement en continu, de façon à effectuer un dégivrage au moyen du transfert de chaleur à convection forcée des ventilateurs (10).
PCT/CN2016/096049 2015-09-23 2016-08-19 Unité de refroidissement et de chauffage d'eau de pompe à chaleur refroidie à l'air et procédé de commande de dégivrage associé Ceased WO2017050072A1 (fr)

Applications Claiming Priority (8)

Application Number Priority Date Filing Date Title
CN201510615502.XA CN105241141B (zh) 2015-09-23 2015-09-23 风冷热泵冷热水机组及其化霜控制方法
CN201510617615.3 2015-09-23
CN201510612961.2 2015-09-23
CN201510616090.1A CN105135775B (zh) 2015-09-23 2015-09-23 风冷热泵冷热水机组及其化霜控制方法
CN201510616090.1 2015-09-23
CN201510617615.3A CN105115210B (zh) 2015-09-23 2015-09-23 风冷热泵冷热水机组及其化霜控制方法
CN201510612961.2A CN105135774B (zh) 2015-09-23 2015-09-23 风冷热泵冷热水机组及其化霜控制方法
CN201510615502.X 2015-09-23

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CN115235044A (zh) * 2021-04-23 2022-10-25 美的集团武汉暖通设备有限公司 一种化霜控制方法、存储介质及空调器
CN117366713A (zh) * 2022-07-01 2024-01-09 美的集团股份有限公司 水泵控制方法、装置、冷热水机组及存储介质
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