WO2011101889A1 - 空気調和装置 - Google Patents
空気調和装置 Download PDFInfo
- Publication number
- WO2011101889A1 WO2011101889A1 PCT/JP2010/000973 JP2010000973W WO2011101889A1 WO 2011101889 A1 WO2011101889 A1 WO 2011101889A1 JP 2010000973 W JP2010000973 W JP 2010000973W WO 2011101889 A1 WO2011101889 A1 WO 2011101889A1
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- Prior art keywords
- heat medium
- heat
- heat exchanger
- refrigerant
- control device
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B13/00—Compression machines, plants or systems, with reversible cycle
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B25/00—Machines, plants or systems, using a combination of modes of operation covered by two or more of the groups F25B1/00 - F25B23/00
- F25B25/005—Machines, plants or systems, using a combination of modes of operation covered by two or more of the groups F25B1/00 - F25B23/00 using primary and secondary systems
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2313/00—Compression machines, plants or systems with reversible cycle not otherwise provided for
- F25B2313/004—Outdoor unit with water as a heat sink or heat source
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2313/00—Compression machines, plants or systems with reversible cycle not otherwise provided for
- F25B2313/006—Compression machines, plants or systems with reversible cycle not otherwise provided for two pipes connecting the outdoor side to the indoor side with multiple indoor units
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2313/00—Compression machines, plants or systems with reversible cycle not otherwise provided for
- F25B2313/023—Compression machines, plants or systems with reversible cycle not otherwise provided for using multiple indoor units
- F25B2313/0231—Compression machines, plants or systems with reversible cycle not otherwise provided for using multiple indoor units with simultaneous cooling and heating
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2313/00—Compression machines, plants or systems with reversible cycle not otherwise provided for
- F25B2313/023—Compression machines, plants or systems with reversible cycle not otherwise provided for using multiple indoor units
- F25B2313/0233—Compression machines, plants or systems with reversible cycle not otherwise provided for using multiple indoor units in parallel arrangements
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2313/00—Compression machines, plants or systems with reversible cycle not otherwise provided for
- F25B2313/027—Compression machines, plants or systems with reversible cycle not otherwise provided for characterised by the reversing means
- F25B2313/0272—Compression machines, plants or systems with reversible cycle not otherwise provided for characterised by the reversing means using bridge circuits of one-way valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2313/00—Compression machines, plants or systems with reversible cycle not otherwise provided for
- F25B2313/027—Compression machines, plants or systems with reversible cycle not otherwise provided for characterised by the reversing means
- F25B2313/02732—Compression machines, plants or systems with reversible cycle not otherwise provided for characterised by the reversing means using two three-way valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2313/00—Compression machines, plants or systems with reversible cycle not otherwise provided for
- F25B2313/027—Compression machines, plants or systems with reversible cycle not otherwise provided for characterised by the reversing means
- F25B2313/02741—Compression machines, plants or systems with reversible cycle not otherwise provided for characterised by the reversing means using one four-way valve
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2600/00—Control issues
- F25B2600/02—Compressor control
- F25B2600/025—Compressor control by controlling speed
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2600/00—Control issues
- F25B2600/13—Pump speed control
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B49/00—Arrangement or mounting of control or safety devices
- F25B49/02—Arrangement or mounting of control or safety devices for compression type machines, plants or systems
- F25B49/027—Condenser control arrangements
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B30/00—Energy efficient heating, ventilation or air conditioning [HVAC]
- Y02B30/70—Efficient control or regulation technologies, e.g. for control of refrigerant flow, motor or heating
Definitions
- the present invention relates to an air conditioner applied to, for example, a building multi air conditioner.
- a refrigerant is circulated between an outdoor unit that is a heat source unit arranged outside a building and an indoor unit arranged inside a building.
- the refrigerant coolant thermally radiated and absorbed heat, and air-conditioning object space was cooled or heated with the air heated and cooled.
- an HFC (hydrofluorocarbon) refrigerant is often used.
- a natural refrigerant such as carbon dioxide (CO 2 ) has been proposed.
- an air conditioner called a chiller
- heat or heat is generated by a heat source device arranged outside the building.
- water, antifreeze, etc. are heated and cooled by a heat exchanger arranged in the outdoor unit, and this is transferred to a fan coil unit, a panel heater, etc., which are indoor units, for cooling or heating (for example, Patent Documents) 1).
- a waste heat recovery type chiller which is connected to four water pipes between the heat source unit and the indoor unit, supplies cooled and heated water at the same time, and can freely select cooling or heating in the indoor unit (For example, refer to Patent Document 2).
- Japanese Patent Laying-Open No. 2005-140444 page 4, FIG. 1, etc.
- JP-A-5-280818 (4th, 5th page, FIG. 1 etc.)
- Japanese Patent Laid-Open No. 2001-289465 pages 5 to 8, FIG. 1, FIG. 2, etc.
- JP 2003-343936 A (Page 5, FIG. 1)
- the present invention has been made in order to solve the above-described problems, and provides an air conditioner that can save energy. Moreover, the air conditioner which can aim at the improvement of safety
- An air conditioner includes a refrigerant circulation circuit in which a refrigerant, a heat source side heat exchanger, an expansion device, and a refrigerant side flow path of a heat exchanger between heat mediums are connected in series, and the heat source side refrigerant circulates. And a heat medium side flow path, a pump, a first heat medium flow path switching device, a use side heat exchanger, a heat medium flow rate adjustment device, and a second heat medium flow path switching device of the inter-heat medium heat exchanger in series.
- a heat medium circulation circuit that is connected to a pipe and through which the heat medium circulates, and that houses a first housing that houses the compressor and the outdoor heat exchanger, the heat exchanger related to heat medium, the expansion device, and the pump
- a second housing that houses the first heat medium flow switching device and the third heat medium flow switching device, and a fourth housing that houses the use-side heat exchanger.
- the piping through which the heat medium circulates can be shortened and the conveyance power can be reduced, so that safety can be improved and energy can be saved.
- FIG. 1 is a schematic diagram illustrating an installation example of an air conditioner according to an embodiment of the present invention. Based on FIG. 1, the installation example of an air conditioning apparatus is demonstrated.
- This air conditioner uses a refrigeration cycle (refrigerant circulation circuit A, heat medium circulation circuit B) that circulates refrigerant (heat source side refrigerant, heat medium) so that each indoor unit can be in the cooling mode or the heating mode as an operation mode. It can be freely selected.
- refrigerant circulation circuit A, heat medium circulation circuit B that circulates refrigerant (heat source side refrigerant, heat medium) so that each indoor unit can be in the cooling mode or the heating mode as an operation mode. It can be freely selected.
- refrigerant circulation circuit A heat medium circulation circuit B
- refrigerant circulation circuit A heat source side refrigerant, heat medium
- the relationship of the size of each component may be different from the actual one.
- the air conditioner according to the present embodiment includes one outdoor unit 1 that is a heat source unit, a plurality of indoor units 2, and heat that is interposed between the outdoor unit 1 and the indoor unit 2. It has the medium converter 3 and the heat medium regulator 14 interposed between the heat medium converter 3 and the indoor unit 2.
- the heat medium converter 3 performs heat exchange between the heat source side refrigerant and the heat medium, and the heat medium adjuster 14 controls the flow path and flow rate of the heat medium flowing through the indoor unit 2.
- the outdoor unit 1 and the heat medium relay unit 3 are connected by a refrigerant pipe 4 that conducts the heat source side refrigerant.
- the heat medium converter 3 and the heat medium adjuster 14, and the heat medium adjuster 14 and the indoor unit 2 are connected by a pipe (heat medium pipe) 5 that conducts the heat medium.
- the cold or warm heat generated by the outdoor unit 1 is delivered to the indoor unit 2 via the heat medium converter 3 and the heat medium regulator 14.
- the outdoor unit 1 is usually disposed in an outdoor space 6 that is a space (for example, a rooftop) outside a building 9 such as a building, and cools the indoor unit 2 via the heat medium converter 3 and the heat medium regulator 14. Or it supplies heat.
- the indoor unit 2 is arranged at a position where cooling air or heating air can be supplied to the indoor space 7 that is a space (for example, a living room) inside the building 9, and the cooling air is supplied to the indoor space 7 that is the air-conditioning target space. Alternatively, heating air is supplied.
- the heat medium relay unit 3 is a separate housing from the outdoor unit 1 and the indoor unit 2, and is located at a position different from the outdoor space 6 and the indoor space 7 (for example, a common part such as the back of the ceiling of the building 9 or an elevator hall).
- the outdoor unit 1 is connected to the outdoor unit 1 by the refrigerant pipe 4 and the indoor unit 2 is connected to the indoor unit 2 by the pipe 5 via the heat medium regulator 14 and supplied from the outdoor unit 1.
- the cold or warm heat is transmitted to the indoor unit 2.
- the heat medium adjuster 14 is installed in the vicinity of the indoor unit 2, and controls the flow path and flow rate of the heat medium that is supplied from the heat medium converter 3 and flows to the indoor unit 2.
- the vicinity of the indoor unit 2 where the heat medium adjuster 14 is installed may be a position closer to the indoor unit 2 than the heat medium converter 3, or may be a position very close to the indoor unit 2.
- the indoor unit 2 may be located slightly away from the same floor, may be installed on a different floor from the indoor unit 2, and may be anywhere as long as it is located between the heat medium converter 3 and the indoor unit 2. .
- the outdoor unit 1 and the heat medium converter 3 use two refrigerant pipes 4, and the heat medium converter 3 and the heat medium regulator. 14 is connected to each other using four pipes 5, and the heat medium adjuster 14 and each indoor unit 2 are connected to each other using two pipes 5.
- the heat medium relay unit 3 and the heat medium adjuster 14 are provided, for example, on four main pipes (vertical pipes) 5a installed in a substantially vertical direction on a pipe shaft or the like in the building 9 and on the ceiling inside the building 9 or the like. It is connected with four branch pipes (horizontal pipes) 5b installed in a substantially horizontal direction.
- the air conditioning apparatus according to the present embodiment can be applied to a building where chiller piping (a piping configuration in a chiller system type air conditioning apparatus) has already been constructed. That is, using the existing chiller piping (pipe 5 (main pipe 5a and branch pipe 5b) shown in FIG. 1) as it is, the outdoor unit 1, the heat medium converter 3, the heat medium regulator 14, and the indoor unit 2 are installed. It can be connected and construction becomes easy. Further, since the piping for circulating the heat medium can be made shorter than that of the chiller, less conveyance power is required. Therefore, further energy saving can be achieved.
- the heat medium relay unit 3 can be installed at an arbitrary position, so that it can be saved more energy than the chiller by being installed at a position away from the outdoor unit 1. .
- the outdoor unit 1 and the heat medium relay unit 3 are connected using two pipes (refrigerant pipes 4), it is a system that makes it easier to install pipes outdoors (outdoor space 6) than chillers. ing.
- the heat medium regulator 14 and the indoor unit 2 are connected using two pipes (pipe 5) and hot water or cold water can flow therethrough, a fan coil dedicated to cooling can also be used for heating. .
- the heat medium converter 3 is installed in a space such as the back of the ceiling (hereinafter simply referred to as a space 8) that is inside the building 9 but is different from the indoor space 7.
- the state is shown as an example.
- the heat medium relay 3 can also be installed in a common space where there is an elevator or the like.
- the indoor unit 2 is a ceiling cassette type
- mold is shown as an example, it is not limited to this, It is directly or directly in the indoor space 7, such as a ceiling embedded type and a ceiling suspended type. Any type of air can be used as long as heating air or cooling air can be blown out by a duct or the like.
- FIG. 1 shows an example in which the outdoor unit 1 is installed in the outdoor space 6, but the present invention is not limited to this.
- the outdoor unit 1 may be installed in an enclosed space such as a machine room with a ventilation opening. If the exhaust heat can be exhausted outside the building 9 by an exhaust duct, the outdoor unit 1 may be installed inside the building 9. It may be installed, or may be installed inside the building 9 when the water-cooled outdoor unit 1 is used. Even if the outdoor unit 1 is installed in such a place, no particular problem occurs.
- the heat medium converter 3 can also be installed in the vicinity of the outdoor unit 1. However, it should be noted that if the distance from the heat medium converter 3 to the indoor unit 2 is too long, the heat medium transfer power becomes considerably large, and the energy saving effect is diminished. Furthermore, the number of connected outdoor units 1, indoor units 2, heat medium converters 3, and heat medium regulators 14 is not limited to the number illustrated in FIGS. 1 and 2, but the air according to the present embodiment. What is necessary is just to determine a number according to the building 9 in which a harmony device is installed.
- the heat medium adjuster 14 may be installed so as to correspond to the indoor unit 2 on a one-to-one basis, or a plurality of indoor units 2 in the vicinity may be connected to one heat medium adjuster 14. May be.
- FIG. 2 is a schematic circuit configuration diagram showing an example of a circuit configuration of the air conditioning apparatus according to the present embodiment (hereinafter referred to as the air conditioning apparatus 100). Based on FIG. 2, the detailed structure of the air conditioning apparatus 100 is demonstrated. As shown in FIG. 2, the outdoor unit 1 and the heat medium relay unit 3 are connected to the refrigerant pipe 4 via the heat exchanger related to heat medium 15 a and the heat exchanger related to heat medium 15 b provided in the heat medium converter 3. Connected with. Further, the heat medium relay unit 3 and the heat medium adjuster 14 are also connected by the pipe 5 via the heat medium heat exchanger 15a and the heat medium heat exchanger 15b. The heat medium adjuster 14 and the indoor unit are connected by a pipe 5. The refrigerant pipe 4 will be described in detail later.
- Outdoor unit 1 In the outdoor unit 1, a compressor 10, a first refrigerant flow switching device 11 such as a four-way valve, a heat source side heat exchanger 12, and an accumulator 19 are connected in series through a refrigerant pipe 4 in a first housing. Has been installed and configured.
- the outdoor unit 1 is also provided with a first connection pipe 4a, a second connection pipe 4b, a check valve 13a, a check valve 13b, a check valve 13c, and a check valve 13d. Regardless of the operation that the indoor unit 2 requires, heat is provided by providing the first connection pipe 4a, the second connection pipe 4b, the check valve 13a, the check valve 13b, the check valve 13c, and the check valve 13d.
- the flow of the heat source side refrigerant flowing into the medium converter 3 can be in a certain direction.
- the compressor 10 sucks the heat source side refrigerant and compresses the heat source side refrigerant to be in a high temperature / high pressure state, and may be configured by, for example, an inverter compressor capable of capacity control.
- the first refrigerant flow switching device 11 has a flow of the heat source side refrigerant during heating operation (in the heating only operation mode and heating main operation mode) and a cooling operation (in the cooling only operation mode and cooling main operation mode). The flow of the heat source side refrigerant is switched.
- the heat source side heat exchanger 12 functions as an evaporator during heating operation, functions as a condenser (or radiator) during cooling operation, and between air supplied from a blower such as a fan (not shown) and the heat source side refrigerant. Heat exchange is performed to evaporate or condense the heat-source-side refrigerant.
- the accumulator 19 is provided on the suction side of the compressor 10 and stores excess refrigerant.
- the check valve 13d is provided in the refrigerant pipe 4 between the heat medium converter 3 and the first refrigerant flow switching device 11, and only in a predetermined direction (direction from the heat medium converter 3 to the outdoor unit 1).
- the flow of the heat source side refrigerant is allowed.
- the check valve 13 a is provided in the refrigerant pipe 4 between the heat source side heat exchanger 12 and the heat medium converter 3, and only on a heat source side in a predetermined direction (direction from the outdoor unit 1 to the heat medium converter 3).
- the refrigerant flow is allowed.
- the check valve 13b is provided in the first connection pipe 4a, and causes the heat source side refrigerant discharged from the compressor 10 to flow to the heat medium converter 3 during the heating operation.
- the check valve 13 c is provided in the second connection pipe 4 b and causes the heat source side refrigerant returned from the heat medium relay unit 3 to flow to the suction side of the compressor 10 during the heating operation.
- the first connection pipe 4a is a refrigerant pipe 4 between the first refrigerant flow switching device 11 and the check valve 13d, and a refrigerant between the check valve 13a and the heat medium relay unit 3.
- the pipe 4 is connected.
- the second connection pipe 4b includes a refrigerant pipe 4 between the check valve 13d and the heat medium relay unit 3, and a refrigerant pipe 4 between the heat source side heat exchanger 12 and the check valve 13a.
- FIG. 2 shows an example in which the first connection pipe 4a, the second connection pipe 4b, the check valve 13a, the check valve 13b, the check valve 13c, and the check valve 13d are provided.
- the present invention is not limited to this, and these are not necessarily provided.
- the indoor unit 2 is configured by mounting a use-side heat exchanger 26 in a fourth housing.
- the use side heat exchanger 26 is connected to the heat medium flow control device 25 and the second heat medium flow switching device 23 of the heat medium adjuster 14 by the pipe 5.
- the use-side heat exchanger 26 performs heat exchange between air supplied from a blower such as a fan (not shown) and a heat medium, and generates heating air or cooling air to be supplied to the indoor space 7. To do.
- FIG. 2 shows an example in which four indoor units 2 are connected to the heat medium converter 3 via the heat medium adjuster 14, and the indoor units 2a, 2b, It is illustrated as a machine 2c and an indoor unit 2d.
- the use side heat exchanger 26 also uses the use side heat exchanger 26a, the use side heat exchanger 26b, the use side heat exchanger 26c, and the use side heat exchanger from the left side of the drawing. It is illustrated as 26d.
- the number of connected indoor units 2 is not limited to four as shown in FIG.
- the heat medium adjuster 14 is configured by mounting a first heat medium flow switching device 22, a second heat medium flow switching device 23, and a heat medium flow control device 25 in a third housing. Yes.
- the number of heat medium adjusters 14 according to the number of indoor units 2 installed (here, four) is provided.
- the first heat medium flow switching device 22 and the second heat medium flow switching device 23 are connected to the heat medium inlet / outlet of the first heat medium flow switching device 22 and the second heat medium flow switching device 22. It arrange
- the first heat medium flow switching device 22 (first heat medium flow switching device 22a to first heat medium flow switching device 22d) is composed of a three-way valve or the like, and switches the flow of the heat medium. is there.
- one of the three sides is connected to the heat exchanger related to heat medium 15 a in the heat medium converter 3 via the pipe 5, and one of the three directions is heated via the pipe 5.
- One of the three sides is connected to the heat medium flow control device 25 and is provided on the outlet side of the heat medium flow path of the use side heat exchanger 26, to the heat exchanger 15b between the heat mediums in the medium converter 3. ing.
- the first heat medium flow switching device 22a, the first heat medium flow switching device 22b, the first heat medium flow switching device 22c, and the first heat medium flow switching are performed from the left side of the drawing. Illustrated as device 22d.
- the second heat medium flow switching device 23 (second heat medium flow switching device 23a to second heat medium flow switching device 23d) is composed of a three-way valve or the like, and switches the flow of the heat medium. is there.
- one of the three sides is connected to the heat exchanger related to heat medium 15 a in the heat medium converter 3 via the pipe 5, and one of the three directions is heated via the pipe 5.
- One of the three sides is connected to the use-side heat exchanger 26 and is provided on the inlet side of the heat-medium flow path of the use-side heat exchanger 26, to the heat exchanger related to heat medium 15b in the medium converter 3. ing.
- the second heat medium flow switching device 23a, the second heat medium flow switching device 23b, the second heat medium flow switching device 23c, and the second heat medium flow switching are performed from the left side of the drawing. Illustrated as device 23d.
- the heat medium flow control device 25 (heat medium flow control device 25a to heat medium flow control device 25d) is composed of a two-way valve or the like that can control the opening area, and controls the flow rate of the heat medium flowing through the pipe 5. It is. One of the heat medium flow control devices 25 is connected to the use side heat exchanger 26 and the other is connected to the first heat medium flow switching device 22, and is connected to the outlet side of the heat medium flow channel of the use side heat exchanger 26. Is provided. In correspondence with the indoor unit 2, the heat medium flow adjustment device 25a, the heat medium flow adjustment device 25b, the heat medium flow adjustment device 25c, and the heat medium flow adjustment device 25d are illustrated from the left side of the drawing.
- the heat medium flow control device 25 may be provided on the inlet side of the heat medium flow path of the use side heat exchanger 26. Furthermore, the heat medium flow control device 25 is located at any position in the flow path between the use side heat exchanger 26 and the first heat medium flow switching device 22 or between the use side heat exchanger 26 and the second heat medium. As long as it is installed at any position in the flow path between the flow path switching device 23 and not in or near the heat medium adjuster 14, it is accommodated in or near the indoor unit 2. You may comprise.
- the heat medium adjuster 14 includes a first temperature sensor 31 (first temperature sensor 31a to first temperature sensor 31d) and a second temperature sensor 34 (second temperature sensor 34a to second temperature sensor 34d). Is provided. Information (temperature information) detected by these detection devices is sent to a control device (not shown) that comprehensively controls the operation of the air conditioner 100, and the rotational speed of the blower (not shown) and switching of the flow path of the heat medium are switched. It will be used for control.
- the first temperature sensor 31 is provided between the second heat medium flow switching device 23 and the use side heat exchanger 26, and detects the temperature of the heat medium flowing into the use side heat exchanger 26. It may be composed of a thermistor or the like. In correspondence with the indoor unit 2, the first temperature sensor 31a, the first temperature sensor 31b, the first temperature sensor 31c, and the first temperature sensor 31d are illustrated from the left side of the drawing.
- the second temperature sensor 34 is provided between the first heat medium flow switching device 22 and the heat medium flow control device 25, and detects the temperature of the heat medium flowing out from the use side heat exchanger 26. It may be composed of a thermistor or the like. In correspondence with the indoor unit 2, the second temperature sensor 34a, the second temperature sensor 34b, the second temperature sensor 34c, and the second temperature sensor 34d are illustrated from the left side of the drawing.
- the pipe 5 for conducting the heat medium is connected to the heat medium converter 3 by four pipes 5 and connected to the indoor unit 2 by two pipes 5.
- the pipe 5 is connected by a first heat medium flow switching device 22 and a second heat medium flow switching device 23.
- the first heat medium flow switching device 22 and the second heat medium flow switching device 23 By controlling the first heat medium flow switching device 22 and the second heat medium flow switching device 23, the heat medium from the heat exchanger related to heat medium 15a flows into the use-side heat exchanger 26, or the heat medium Whether the heat medium from the intermediate heat exchanger 15b flows into the use side heat exchanger 26 is determined.
- the heat medium adjuster 14 may be installed so as to have a one-to-one correspondence with the indoor unit 2, or a plurality of indoor units 2 in the vicinity and one heat medium adjuster.
- the device 14 may be connected.
- one heat medium flow control device 25 and two heat medium flow switching devices are accommodated in one heat medium regulator 14, and in the latter case, one heat medium regulator 14
- the n heat medium flow control devices 25 and the heat medium flow switching devices twice as many as n may be accommodated.
- the heat medium relay unit 3 includes two heat exchangers 15 between the heat mediums, two expansion devices 16, two opening / closing devices 17, and two second refrigerant flow switching devices 18 in the second casing. Two pumps 21 are mounted and configured.
- the two heat exchangers between heat mediums 15 function as a condenser (heat radiator) or an evaporator, and heat is generated by the heat source side refrigerant and the heat medium. Exchange is performed, and the cold or warm heat generated in the outdoor unit 1 and stored in the heat source side refrigerant is transmitted to the heat medium.
- the heat exchanger related to heat medium 15a is provided between the expansion device 16a and the second refrigerant flow switching device 18a in the refrigerant circuit A and serves to cool the heat medium in the cooling / heating mixed operation mode, That is, it functions as a heat exchanger for cooling.
- the heat exchanger related to heat medium 15b is provided between the expansion device 16b and the second refrigerant flow switching device 18b in the refrigerant circuit A, and serves to heat the heat medium in the cooling / heating mixed operation mode. It functions as a heat exchanger for heating.
- the two expansion devices 16 have functions as pressure reducing valves and expansion valves, and expand the heat source side refrigerant by reducing the pressure.
- the expansion device 16a is provided on the upstream side of the heat exchanger related to heat medium 15a in the flow of the heat source side refrigerant during the cooling operation.
- the expansion device 16b is provided on the upstream side of the heat exchanger related to heat medium 15b in the flow of the heat source side refrigerant during the cooling operation.
- the two expansion devices 16 may be configured by a device whose opening degree can be variably controlled, for example, an electronic expansion valve.
- the two opening / closing devices 17 are constituted by two-way valves or the like, and open / close the refrigerant pipe 4.
- the opening / closing device 17a is provided in the refrigerant pipe 4 on the inlet side of the heat source side refrigerant.
- the opening / closing device 17b is provided in a pipe connecting the refrigerant pipe 4 on the inlet side and the outlet side of the heat source side refrigerant.
- the two second refrigerant flow switching devices 18 are constituted by four-way valves or the like, and switch the flow of the heat source side refrigerant according to the operation mode. Is.
- the second refrigerant flow switching device 18a is provided on the downstream side of the heat exchanger related to heat medium 15a in the flow of the heat source side refrigerant during the cooling operation.
- the second refrigerant flow switching device 18b is provided on the downstream side of the heat exchanger related to heat medium 15b in the flow of the heat source side refrigerant during the cooling only operation.
- the two pumps 21 (pump 21a and pump 21b) circulate a heat medium that conducts through the pipe 5.
- the pump 21 a is provided in the pipe 5 between the heat exchanger related to heat medium 15 a and the second heat medium flow switching device 23.
- the pump 21 b is provided in the pipe 5 between the heat exchanger related to heat medium 15 b and the second heat medium flow switching device 23.
- the two pumps 21 may be constituted by, for example, pumps capable of capacity control.
- the heat medium relay machine 3 is provided with two first pressure sensors 32, two third temperature sensors 33, four fourth temperature sensors 35, and one second pressure sensor 36. Information (temperature information, pressure information) detected by these detection devices is sent to a control device (not shown) that performs overall control of the operation of the air conditioner 100, and the driving frequency of the compressor 10, the first refrigerant flow path, and the like. This is used for control of switching of the switching device 11, driving frequency of the pump 21, switching of the second refrigerant flow switching device 18, and the like.
- the two third temperature sensors 33 are the heat medium flowing out from the heat exchanger related to heat medium 15, that is, the temperature of the heat medium at the outlet of the heat exchanger related to heat medium 15.
- a thermistor may be used.
- the third temperature sensor 33a is provided in the pipe 5 on the inlet side of the pump 21a.
- the third temperature sensor 33b is provided in the pipe 5 on the inlet side of the pump 21b.
- the fourth temperature sensor 35 (fourth temperature sensor 35a to fourth temperature sensor 35d) is provided on the inlet side or the outlet side of the heat source side refrigerant of the heat exchanger related to heat medium 15 and flows into the heat exchanger 15 related to heat medium.
- the temperature of the heat source side refrigerant or the temperature of the heat source side refrigerant flowing out of the heat exchanger related to heat medium 15 is detected, and may be constituted by a thermistor or the like.
- the fourth temperature sensor 35a is provided between the heat exchanger related to heat medium 15a and the second refrigerant flow switching device 18a.
- the fourth temperature sensor 35b is provided between the heat exchanger related to heat medium 15a and the expansion device 16a.
- the fourth temperature sensor 35c is provided between the heat exchanger related to heat medium 15b and the second refrigerant flow switching device 18b.
- the fourth temperature sensor 35d is provided between the heat exchanger related to heat medium 15b and the expansion device 16b.
- the two first pressure sensors 32 are the heat medium flowing out from the heat exchanger related to heat medium 15, that is, the pressure of the heat medium at the outlet of the heat exchanger related to heat medium 15. Is detected.
- the first pressure sensor 32a is provided in the pipe 5 on the inlet side of the pump 21a.
- the first pressure sensor 32b is provided in the pipe 5 on the inlet side of the pump 21b. Note that the first pressure sensor 32 may be provided in the pipe 5 on the outlet side of the pump 21.
- the second pressure sensor 36 is provided between the heat exchanger related to heat medium 15b and the expansion device 16b, and is connected between the heat exchanger related to heat medium 15b and the expansion device 16b. The pressure of the heat source side refrigerant flowing between them is detected.
- the control device (not shown) is constituted by a microcomputer or the like, and based on detection information from various detection means and instructions from the remote controller, the driving frequency of the compressor 10 and the rotational speed of the blower (including ON / OFF) , Switching of the first refrigerant flow switching device 11, driving of the pump 21, opening of the expansion device 16, opening / closing of the opening / closing device 17, switching of the second refrigerant flow switching device 18, first heat medium flow switching device 22 The switching of the second heat medium flow switching device 23, the opening degree of the heat medium flow control device 25, and the like are controlled, and each operation mode to be described later is executed.
- the control device may be provided for each unit, or may be provided in the outdoor unit 1 or the heat medium relay unit 3.
- the pipe 5 that conducts the heat medium is composed of one that is connected to the heat exchanger related to heat medium 15a and one that is connected to the heat exchanger related to heat medium 15b.
- the pipe 5 is composed of a main pipe 5a and a branch pipe 5b.
- Four main pipes 5a are connected to the heat medium relay unit 3, and branch pipes 5b are connected to the main pipe 5a. That is, the pipe 5 is branched (here, four branches) according to the number of heat medium regulators 14 connected from the branch pipe 5b.
- the refrigerant in the compressor 10 the first refrigerant flow switching device 11, the heat source side heat exchanger 12, the switching device 17, the second refrigerant flow switching device 18, and the heat exchanger related to heat medium 15a.
- the side flow path, the expansion device 16 and the accumulator 19 are connected by the refrigerant pipe 4 to constitute the refrigerant circuit A.
- the path switching device 23 is connected by a pipe 5 to constitute a heat medium circulation circuit B. That is, a plurality of usage-side heat exchangers 26 are connected in parallel to each of the heat exchangers between heat media 15, and the heat medium circulation circuit B has a plurality of systems.
- the outdoor unit 1 and the heat medium relay unit 3 are connected via the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b provided in the heat medium converter 3.
- the heat medium relay unit 3 and the indoor unit 2 are also connected via the heat medium regulator 14 via the heat medium heat exchanger 15a and the heat medium heat exchanger 15b. That is, in the air conditioner 100, the heat source side refrigerant circulating in the refrigerant circuit A and the heat medium circulating in the heat medium circuit B exchange heat in the intermediate heat exchanger 15a and the intermediate heat exchanger 15b. It is like that.
- the air conditioner 100 can perform a cooling operation or a heating operation in the indoor unit 2 based on an instruction from each indoor unit 2. That is, the air conditioning apparatus 100 can perform the same operation for all the indoor units 2 and can perform different operations for each of the indoor units 2.
- the operation mode executed by the air conditioner 100 includes a cooling only operation mode in which all the driven indoor units 2 execute a cooling operation, and a heating only operation in which all the driven indoor units 2 execute a heating operation.
- each operation mode is demonstrated with the flow of a heat-source side refrigerant
- FIG. 3 is a refrigerant circuit diagram illustrating a refrigerant flow when the air-conditioning apparatus 100 is in the cooling only operation mode.
- the cooling only operation mode will be described by taking as an example a case where a cooling load is generated only in the use side heat exchanger 26a and the use side heat exchanger 26b.
- the piping represented with the thick line has shown the piping through which a refrigerant
- the flow direction of the heat source side refrigerant is indicated by a solid line arrow, and the flow direction of the heat medium is indicated by a broken line arrow.
- the first refrigerant flow switching device 11 is switched so that the heat source side refrigerant discharged from the compressor 10 flows into the heat source side heat exchanger 12.
- the heat medium converter 3 drives the pump 21a and the pump 21b, and the heat medium adjuster 14 opens the heat medium flow rate adjusting device 25a and the heat medium flow rate adjusting device 25b, and the heat medium flow rate adjusting device 25c and the heat medium flow rate.
- the adjusting device 25d is fully closed so that the heat medium circulates between the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b and the use side heat exchanger 26a and the use side heat exchanger 26b. ing.
- the low-temperature and low-pressure refrigerant is compressed by the compressor 10 and discharged as a high-temperature and high-pressure gas refrigerant.
- the high-temperature and high-pressure gas refrigerant discharged from the compressor 10 flows into the heat source side heat exchanger 12 via the first refrigerant flow switching device 11. Then, the heat source side heat exchanger 12 condenses and liquefies while radiating heat to the outdoor air, and becomes a high-pressure liquid refrigerant.
- the high-pressure liquid refrigerant that has flowed out of the heat source side heat exchanger 12 flows out of the outdoor unit 1 through the check valve 13a, and flows into the heat medium relay unit 3 through the refrigerant pipe 4.
- the high-pressure liquid refrigerant that has flowed into the heat medium relay unit 3 is branched after passing through the opening / closing device 17a and expanded by the expansion device 16a and the expansion device 16b to become a low-temperature / low-pressure two-phase refrigerant.
- This two-phase refrigerant flows into each of the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b acting as an evaporator, and absorbs heat from the heat medium circulating in the heat medium circulation circuit B. It becomes a low-temperature, low-pressure gas refrigerant while cooling.
- the gas refrigerant flowing out of the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b flows out of the heat medium converter 3 via the second refrigerant flow switching device 18a and the second refrigerant flow switching device 18b.
- the refrigerant flows into the outdoor unit 1 again through the refrigerant pipe 4.
- the refrigerant flowing into the outdoor unit 1 passes through the check valve 13d and is sucked into the compressor 10 again via the first refrigerant flow switching device 11 and the accumulator 19.
- the opening of the expansion device 16a is such that the superheat (superheat degree) obtained as the difference between the temperature detected by the fourth temperature sensor 35a and the temperature detected by the fourth temperature sensor 35b is constant. Be controlled.
- the opening degree of the expansion device 16b is controlled so that the superheat obtained as the difference between the temperature detected by the fourth temperature sensor 35c and the temperature detected by the fourth temperature sensor 35d becomes constant.
- the opening / closing device 17a is open and the opening / closing device 17b is closed.
- the flow of the heat medium in the heat medium circuit B will be described.
- the cold heat of the heat source side refrigerant is transmitted to the heat medium in both the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b, and the cooled heat medium is piped 5 by the pump 21a and the pump 21b.
- the inside will be allowed to flow.
- the heat medium pressurized and discharged by the pump 21a and the pump 21b passes through the second heat medium flow switching device 23a and the second heat medium flow switching device 23b, and the use side heat exchanger 26a and the use side heat exchange. Flows into the vessel 26b.
- the heat medium absorbs heat from the indoor air in the use side heat exchanger 26a and the use side heat exchanger 26b, thereby cooling the indoor space 7.
- the heat medium flows out of the use-side heat exchanger 26a and the use-side heat exchanger 26b and flows into the heat medium flow control device 25a and the heat medium flow control device 25b.
- the heat medium flow control device 25a and the heat medium flow control device 25b control the flow rate of the heat medium to a flow rate necessary to cover the air conditioning load required in the room, so that the use-side heat exchanger 26a. And it flows into the use side heat exchanger 26b.
- the heat medium flowing out from the heat medium flow control device 25a and the heat medium flow control device 25b passes through the first heat medium flow switching device 22a and the first heat medium flow switching device 22b, and the heat exchanger related to heat medium 15a. And flows into the heat exchanger related to heat medium 15b, and is sucked into the pump 21a and the pump 21b again.
- the heat medium is directed from the second heat medium flow switching device 23 to the first heat medium flow switching device 22 via the heat medium flow control device 25. Flowing.
- the air conditioning load required in the indoor space 7 is controlled so as to keep the difference between the temperature detected by the first temperature sensor 31 and the temperature detected by the second temperature sensor 34 at the target value. Can be covered.
- the first heat medium flow switching device 22 and the second heat medium flow switching device 23 ensure a flow path that flows to both the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b.
- the intermediate opening is set.
- FIG. 4 is a refrigerant circuit diagram illustrating a refrigerant flow when the air-conditioning apparatus 100 is in the heating only operation mode.
- the heating only operation mode will be described by taking as an example a case where a thermal load is generated only in the use side heat exchanger 26a and the use side heat exchanger 26b.
- the pipes represented by the thick lines indicate the pipes through which the refrigerant (heat source side refrigerant and heat medium) flows.
- the flow direction of the heat source side refrigerant is indicated by solid line arrows
- the flow direction of the heat medium is indicated by broken line arrows.
- the first refrigerant flow switching device 11 uses the heat source side refrigerant discharged from the compressor 10 without passing through the heat source side heat exchanger 12. It switches so that it may flow into converter 3.
- the heat medium converter 3 drives the pump 21a and the pump 21b, and the heat medium adjuster 14 opens the heat medium flow rate adjusting device 25a and the heat medium flow rate adjusting device 25b, and the heat medium flow rate adjusting device 25c and the heat medium flow rate.
- the adjusting device 25d is fully closed so that the heat medium circulates between the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b and the use side heat exchanger 26a and the use side heat exchanger 26b. ing.
- the low-temperature and low-pressure refrigerant is compressed by the compressor 10 and discharged as a high-temperature and high-pressure gas refrigerant.
- the high-temperature and high-pressure gas refrigerant discharged from the compressor 10 passes through the first refrigerant flow switching device 11, conducts through the first connection pipe 4 a, passes through the check valve 13 b, and flows out of the outdoor unit 1.
- the high-temperature and high-pressure gas refrigerant that has flowed out of the outdoor unit 1 flows into the heat medium relay unit 3 through the refrigerant pipe 4.
- the high-temperature and high-pressure gas refrigerant that has flowed into the heat medium relay unit 3 is branched and passes through the second refrigerant flow switching device 18a and the second refrigerant flow switching device 18b, and the heat exchanger related to heat medium 15a and the heat medium. It flows into each of the intermediate heat exchangers 15b.
- the high-temperature and high-pressure gas refrigerant flowing into the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b is condensed and liquefied while dissipating heat to the heat medium circulating in the heat medium circulation circuit B, and becomes a high-pressure liquid refrigerant. .
- the liquid refrigerant flowing out of the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b is expanded by the expansion device 16a and the expansion device 16b to become a low-temperature, low-pressure two-phase refrigerant.
- the two-phase refrigerant flows out of the heat medium relay unit 3 through the opening / closing device 17b, and flows into the outdoor unit 1 through the refrigerant pipe 4 again.
- the refrigerant flowing into the outdoor unit 1 is conducted through the second connection pipe 4b, passes through the check valve 13c, and flows into the heat source side heat exchanger 12 that functions as an evaporator.
- the refrigerant that has flowed into the heat source side heat exchanger 12 absorbs heat from the outdoor air by the heat source side heat exchanger 12, and becomes a low-temperature and low-pressure gas refrigerant.
- the low-temperature and low-pressure gas refrigerant flowing out from the heat source side heat exchanger 12 is again sucked into the compressor 10 via the first refrigerant flow switching device 11 and the accumulator 19.
- the expansion device 16a has a constant subcool (degree of subcooling) obtained as a difference between a value obtained by converting the pressure detected by the second pressure sensor 36 into a saturation temperature and a temperature detected by the fourth temperature sensor 35b.
- the opening is controlled so that
- the expansion device 16b opens so that a subcool obtained as a difference between a value obtained by converting the pressure detected by the second pressure sensor 36 into a saturation temperature and a temperature detected by the fourth temperature sensor 35d is constant.
- the degree is controlled.
- the opening / closing device 17a is closed and the opening / closing device 17b is open.
- the temperature at the intermediate position may be used instead of the second pressure sensor 36, and the system can be configured at low cost.
- the heat of the heat source side refrigerant is transmitted to the heat medium in both the heat exchanger 15a and the heat exchanger 15b, and the heated heat medium is piped 5 by the pump 21a and the pump 21b.
- the inside will be allowed to flow.
- the heat medium pressurized and discharged by the pump 21a and the pump 21b passes through the second heat medium flow switching device 23a and the second heat medium flow switching device 23b, and the use side heat exchanger 26a and the use side heat exchange. Flows into the vessel 26b.
- the heat medium radiates heat to the indoor air in the use side heat exchanger 26a and the use side heat exchanger 26b, thereby heating the indoor space 7.
- the heat medium flows out of the use-side heat exchanger 26a and the use-side heat exchanger 26b and flows into the heat medium flow control device 25a and the heat medium flow control device 25b.
- the heat medium flow control device 25a and the heat medium flow control device 25b control the flow rate of the heat medium to a flow rate necessary to cover the air conditioning load required in the room, so that the use-side heat exchanger 26a. And it flows into the use side heat exchanger 26b.
- the heat medium flowing out from the heat medium flow control device 25a and the heat medium flow control device 25b passes through the first heat medium flow switching device 22a and the first heat medium flow switching device 22b, and the heat exchanger related to heat medium 15a. And flows into the heat exchanger related to heat medium 15b, and is sucked into the pump 21a and the pump 21b again.
- the heat medium is directed from the second heat medium flow switching device 23 to the first heat medium flow switching device 22 via the heat medium flow control device 25. Flowing.
- the air conditioning load required in the indoor space 7 is controlled by maintaining the difference between the temperature detected by the first temperature sensor 31 and the temperature detected by the second temperature sensor 34 at a target value. , Can be covered.
- the first heat medium flow switching device 22 and the second heat medium flow switching device 23 ensure a flow path that flows to both the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b.
- the intermediate opening is set.
- FIG. 5 is a refrigerant circuit diagram illustrating a refrigerant flow when the air-conditioning apparatus 100 is in the cooling main operation mode.
- the cooling main operation mode will be described by taking as an example a case where a cooling load is generated in the use side heat exchanger 26a and a heating load is generated in the use side heat exchanger 26b.
- a pipe represented by a thick line shows a pipe through which the refrigerant (heat source side refrigerant and heat medium) circulates.
- the flow direction of the heat source side refrigerant is indicated by solid line arrows
- the flow direction of the heat medium is indicated by broken line arrows.
- the first refrigerant flow switching device 11 is switched so that the heat source side refrigerant discharged from the compressor 10 flows into the heat source side heat exchanger 12.
- the heat medium converter 3 drives the pump 21a and the pump 21b, and the heat medium adjuster 14 opens the heat medium flow rate adjusting device 25a and the heat medium flow rate adjusting device 25b, and the heat medium flow rate adjusting device 25c and the heat medium flow rate.
- the adjustment device 25d is fully closed, and the heat medium is transferred between the heat exchanger related to heat medium 15a and the use-side heat exchanger 26a, and between the heat exchanger related to heat medium 15b and the use-side heat exchanger 26b. I try to circulate.
- the low-temperature and low-pressure refrigerant is compressed by the compressor 10 and discharged as a high-temperature and high-pressure gas refrigerant.
- the high-temperature and high-pressure gas refrigerant discharged from the compressor 10 flows into the heat source side heat exchanger 12 via the first refrigerant flow switching device 11. Then, the heat source side heat exchanger 12 condenses while radiating heat to the outdoor air, and becomes a two-phase refrigerant.
- the two-phase refrigerant that has flowed out of the heat source side heat exchanger 12 flows out of the outdoor unit 1 through the check valve 13a, and flows into the heat medium relay unit 3 through the refrigerant pipe 4.
- the two-phase refrigerant that has flowed into the heat medium relay unit 3 flows into the heat exchanger related to heat medium 15b that acts as a condenser through the second refrigerant flow switching device 18b.
- the two-phase refrigerant that has flowed into the heat exchanger related to heat medium 15b is condensed and liquefied while dissipating heat to the heat medium circulating in the heat medium circuit B, and becomes liquid refrigerant.
- the liquid refrigerant flowing out of the heat exchanger related to heat medium 15b is expanded by the expansion device 16b and becomes a low-pressure two-phase refrigerant. This low-pressure two-phase refrigerant flows into the heat exchanger related to heat medium 15a acting as an evaporator via the expansion device 16a.
- the low-pressure two-phase refrigerant that has flowed into the heat exchanger related to heat medium 15a absorbs heat from the heat medium circulating in the heat medium circuit B, and becomes a low-pressure gas refrigerant while cooling the heat medium.
- the gas refrigerant flows out of the heat exchanger related to heat medium 15a, flows out of the heat medium converter 3 via the second refrigerant flow switching device 18a, and flows into the outdoor unit 1 again through the refrigerant pipe 4.
- the refrigerant flowing into the outdoor unit 1 passes through the check valve 13d and is sucked into the compressor 10 again via the first refrigerant flow switching device 11 and the accumulator 19.
- the opening degree of the expansion device 16b is controlled so that the superheat obtained as the difference between the temperature detected by the fourth temperature sensor 35a and the temperature detected by the fourth temperature sensor 35b becomes constant.
- the expansion device 16a is fully open, the opening / closing device 17a is closed, and the opening / closing device 17b is closed.
- the expansion device 16b has an opening degree so that a subcool obtained as a difference between a value obtained by converting the pressure detected by the second pressure sensor 36 into a saturation temperature and a temperature detected by the fourth temperature sensor 35d is constant. May be controlled.
- the expansion device 16b may be fully opened, and the superheat or subcool may be controlled by the expansion device 16a.
- the heat of the heat source side refrigerant is transmitted to the heat medium in the heat exchanger related to heat medium 15b, and the heated heat medium is caused to flow in the pipe 5 by the pump 21b.
- the cold heat of the heat source side refrigerant is transmitted to the heat medium by the heat exchanger related to heat medium 15a, and the cooled heat medium is caused to flow in the pipe 5 by the pump 21a.
- the heat medium pressurized and discharged by the pump 21a and the pump 21b passes through the second heat medium flow switching device 23a and the second heat medium flow switching device 23b, and the use side heat exchanger 26a and the use side heat exchange. Flows into the vessel 26b.
- the heat medium radiates heat to the indoor air, thereby heating the indoor space 7.
- the indoor space 7 is cooled by the heat medium absorbing heat from the indoor air.
- the heat medium flow control device 25a and the heat medium flow control device 25b control the flow rate of the heat medium to a flow rate necessary to cover the air conditioning load required in the room, so that the use-side heat exchanger 26a. And it flows into the use side heat exchanger 26b.
- the heat medium whose temperature has slightly decreased after passing through the use side heat exchanger 26b flows into the heat exchanger related to heat medium 15b through the heat medium flow control device 25b and the first heat medium flow switching device 22b, and again.
- the heat medium whose temperature has slightly increased after passing through the use side heat exchanger 26a flows into the heat exchanger related to heat medium 15a through the heat medium flow control device 25a and the first heat medium flow switching device 22a, and again. It is sucked into the pump 21a.
- the warm heat medium and the cold heat medium are not mixed by the action of the first heat medium flow switching device 22 and the second heat medium flow switching device 23, and the use side has a heat load and a heat load, respectively. It is introduced into the heat exchanger 26.
- the first heat medium flow switching device 22 from the second heat medium flow switching device 23 via the heat medium flow control device 25 on both the heating side and the cooling side.
- the heat medium is flowing in the direction to
- the air conditioning load required in the indoor space 7 is controlled by maintaining the difference between the temperature detected by the first temperature sensor 31 and the temperature detected by the second temperature sensor 34 at a target value. , Can be covered.
- FIG. 6 is a refrigerant circuit diagram showing a refrigerant flow when the air-conditioning apparatus 100 is in the heating main operation mode.
- the heating main operation mode will be described by taking as an example a case where a thermal load is generated in the use side heat exchanger 26a and a cold load is generated in the use side heat exchanger 26b.
- the piping represented with the thick line has shown the piping through which a refrigerant
- coolant a heat-source side refrigerant
- the flow direction of the heat source side refrigerant is indicated by solid line arrows, and the flow direction of the heat medium is indicated by broken line arrows.
- the first refrigerant flow switching device 11 uses the heat source side refrigerant discharged from the compressor 10 without passing through the heat source side heat exchanger 12. It switches so that it may flow into converter 3.
- the heat medium converter 3 drives the pump 21a and the pump 21b, and the heat medium adjuster 14 opens the heat medium flow rate adjusting device 25a and the heat medium flow rate adjusting device 25b, and the heat medium flow rate adjusting device 25c and the heat medium flow rate.
- the adjusting device 25d is fully closed so that the heat medium circulates between the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b and the use side heat exchanger 26a and the use side heat exchanger 26b. ing.
- the low-temperature and low-pressure refrigerant is compressed by the compressor 10 and discharged as a high-temperature and high-pressure gas refrigerant.
- the high-temperature and high-pressure gas refrigerant discharged from the compressor 10 passes through the first refrigerant flow switching device 11, conducts through the first connection pipe 4 a, passes through the check valve 13 b, and flows out of the outdoor unit 1.
- the high-temperature and high-pressure gas refrigerant that has flowed out of the outdoor unit 1 flows into the heat medium relay unit 3 through the refrigerant pipe 4.
- the high-temperature and high-pressure gas refrigerant that has flowed into the heat medium relay unit 3 flows into the heat exchanger related to heat medium 15b that acts as a condenser through the second refrigerant flow switching device 18b.
- the gas refrigerant flowing into the heat exchanger related to heat medium 15b is condensed and liquefied while dissipating heat to the heat medium circulating in the heat medium circuit B, and becomes liquid refrigerant.
- the liquid refrigerant flowing out of the heat exchanger related to heat medium 15b is expanded by the expansion device 16b and becomes a low-pressure two-phase refrigerant.
- This low-pressure two-phase refrigerant flows into the heat exchanger related to heat medium 15a acting as an evaporator via the expansion device 16a.
- the low-pressure two-phase refrigerant that has flowed into the heat exchanger related to heat medium 15a evaporates by absorbing heat from the heat medium circulating in the heat medium circuit B, thereby cooling the heat medium.
- This low-pressure two-phase refrigerant flows out of the heat exchanger related to heat medium 15a, flows out of the heat medium converter 3 via the second refrigerant flow switching device 18a, and flows again into the outdoor unit 1 through the refrigerant pipe 4. To do.
- the refrigerant that has flowed into the outdoor unit 1 passes through the check valve 13c and flows into the heat source side heat exchanger 12 that functions as an evaporator. And the refrigerant
- the low-temperature and low-pressure gas refrigerant flowing out from the heat source side heat exchanger 12 is again sucked into the compressor 10 via the first refrigerant flow switching device 11 and the accumulator 19.
- the expansion device 16b opens so that a subcool obtained as a difference between a value obtained by converting the pressure detected by the second pressure sensor 36 into a saturation temperature and a temperature detected by the fourth temperature sensor 35b becomes constant.
- the degree is controlled.
- the expansion device 16a is fully open, the opening / closing device 17a is closed, and the opening / closing device 17b is closed. Note that the expansion device 16b may be fully opened, and the subcooling may be controlled by the expansion device 16a.
- the heat of the heat source side refrigerant is transmitted to the heat medium in the heat exchanger related to heat medium 15b, and the heated heat medium is caused to flow in the pipe 5 by the pump 21b.
- the cold heat of the heat source side refrigerant is transmitted to the heat medium by the heat exchanger related to heat medium 15a, and the cooled heat medium is caused to flow in the pipe 5 by the pump 21a.
- the heat medium pressurized and discharged by the pump 21a and the pump 21b passes through the second heat medium flow switching device 23a and the second heat medium flow switching device 23b, and the use side heat exchanger 26a and the use side heat exchange. Flows into the vessel 26b.
- the heat medium absorbs heat from the indoor air, thereby cooling the indoor space 7. Moreover, in the use side heat exchanger 26a, the heat medium radiates heat to the indoor air, thereby heating the indoor space 7. At this time, the heat medium flow control device 25a and the heat medium flow control device 25b control the flow rate of the heat medium to a flow rate necessary to cover the air conditioning load required in the room, so that the use-side heat exchanger 26a. And it flows into the use side heat exchanger 26b.
- the heat medium that has passed through the use-side heat exchanger 26b and has risen slightly in temperature passes through the heat medium flow control device 25b and the first heat medium flow switching device 22b, flows into the heat exchanger related to heat medium 15a, and again It is sucked into the pump 21a.
- the heat medium that has passed through the use-side heat exchanger 26a and whose temperature has slightly decreased flows through the heat medium flow control device 25a and the first heat medium flow switching device 22a into the heat exchanger related to heat medium 15b, and again It is sucked into the pump 21b.
- the warm heat medium and the cold heat medium are not mixed by the action of the first heat medium flow switching device 22 and the second heat medium flow switching device 23, and the use side has a heat load and a heat load, respectively. It is introduced into the heat exchanger 26.
- the first heat medium flow switching device 22 from the second heat medium flow switching device 23 via the heat medium flow control device 25 on both the heating side and the cooling side.
- the heat medium is flowing in the direction to
- the air conditioning load required in the indoor space 7 is controlled by maintaining the difference between the temperature detected by the first temperature sensor 31 and the temperature detected by the second temperature sensor 34 at a target value. , Can be covered.
- the air conditioner 100 has several operation modes. In these operation modes, the heat source side refrigerant flows through the refrigerant pipe 4 that connects the outdoor unit 1 and the heat medium relay unit 3.
- the heat medium converter 3 and the heat medium adjuster 14 are connected to the heat medium adjuster 14 and the indoor unit 2, respectively.
- a heat medium such as water or antifreeze flows through the pipe 5.
- the opening degree of the heat medium flow control device 25 is controlled so that the temperature difference between the temperature detected by the first temperature sensor 31 and the temperature detected by the second temperature sensor 34 approaches the target value. For example, when the use-side heat exchanger 26a is performing the cooling operation, the temperature difference between the detected temperature of the second temperature sensor 34a and the detected temperature of the first temperature sensor 31a approaches the target value, for example, 5 degrees. Thus, the opening degree of the heat medium flow control device 25a is controlled. Further, when the use side heat exchanger 26a is performing the heating operation, the temperature difference between the detected temperature of the first temperature sensor 31a and the detected temperature of the second temperature sensor 34a approaches the target value, for example, 7 degrees. Thus, the opening degree of the heat medium flow control device 25a is controlled.
- heat medium flow control device 25 the first temperature sensor 31, and the second temperature sensor 34 are accommodated in the heat medium adjuster 14, and the heat medium is obtained from information from the first temperature sensor 31 and the second temperature sensor 34.
- a control device (third control device) (not shown) that controls the opening degree of the flow rate adjustment device 25 is installed in or near the heat medium regulator 14.
- the rotation speed of the pump 21 is controlled so that the first pressure sensor 32 approaches the target value.
- the rotation speed is controlled so that the average pressure of the detected pressure of the first pressure sensor 32a and the detected pressure of the first pressure sensor 32b approaches the target value.
- the rotation speed is controlled so that the detected pressure of the first pressure sensor 32a approaches the target value on the cooling side, and the detected pressure of the first pressure sensor 32b becomes the target on the heating side.
- the rotation speed is controlled so as to approach the value.
- the target value on the heating side and the target value on the cooling side may be the same value or different values, and are set to a value such as 200 kPa, for example.
- the pump 21a, the pump 21b, the first pressure sensor 32a, and the first pressure sensor 32b are accommodated in the heat medium relay unit 3, and the information of the pump 21 is obtained from information from the first pressure sensor 32a and the first pressure sensor 32b.
- a control device (first control device) (not shown) that controls the rotational speed is installed in or near the heat medium relay unit 3.
- the rotation speed of the blower (not shown) attached to the compressor 10 and / or the heat source side heat exchanger 12 is controlled so that the condensation temperature or / and the evaporation temperature approaches the target value.
- the condensation temperature is set to 49 degrees and the evaporation temperature is set to 0 degrees.
- the blower attached to the compressor 10 and the heat source side heat exchanger 12 is housed in the outdoor unit 1 and attached to the compressor 10 and / or the heat source side heat exchanger 12 from the condensation temperature or / and evaporation temperature.
- a control device (second control device) (not shown) that controls the rotational speed of the blower is installed in or near the outdoor unit 1.
- the heat medium adjuster 14, the heat medium converter 3, and the outdoor unit 1 can be independently controlled by the respective control devices. However, it is possible to perform energy saving operation by controlling these in cooperation. For example, the following cooperative control may be performed.
- the pump 21 is housed in the heat medium relay unit 3, and the heat medium flow control device 25 is housed in the heat medium regulator 14, and the respective housings are separated and isolated. In place. Therefore, in the air conditioner 100, both control devices are connected by wire or wirelessly, and the opening information of the heat medium flow control device 25 is transferred from the control device of the heat medium adjuster 14 to the control device of the heat medium converter 3. Can be transmitted by communication.
- the control device of the heat medium converter 3 Based on the opening information of the heat medium flow control device 25, the control device of the heat medium converter 3 adjusts the first pressure sensor 32 so that, for example, the opening of the heat medium flow control device 25 is 85% of full open. The control target value is changed, and the rotational speed control of the pump 21 is performed. When a plurality of heat medium adjusters 14 are connected, the pump 21 may perform control based on the opening information of the heat medium flow control device 25 having the largest opening. . Further, the first pressure sensor 32 may not be installed.
- the pump 21 is controlled to a target rotational speed, for example, 60 Hz, and if cooperative control is performed, the opening information of the heat medium flow control device 25 Based on the above, the rotation speed of the pump 21 may be controlled.
- the temperature of the heat medium sent to the use side heat exchanger 26 is controlled to a constant value.
- the flow rate of the heat medium to be circulated to the use-side heat exchanger 26 is determined by the correlation with the detected pressure of the first pressure sensor 32 or the opening degree of the heat medium flow control device 25, and the temperature of the third temperature sensor 33 becomes the result. . Therefore, the rotation speed of the compressor 10 and / or the heat source side heat exchanger 12 is attached so that the detected temperature of the third temperature sensor 33 becomes a target value, for example, 7 degrees during cooling operation and 45 degrees during heating operation. The rotation speed of the blower is controlled.
- the blower attached to the compressor 10 and the heat source side heat exchanger 12 is accommodated in the outdoor unit 1, the pump 21 is accommodated in the heat medium relay unit 3, and the respective cases accommodated are separate. Installed in an isolated location. Therefore, in the air conditioner 100, both control devices are connected by wire or wirelessly, and the detected temperature and the fourth temperature of the third temperature sensor 33 are transferred from the control device of the heat medium relay 3 to the control device of the outdoor unit 1. Based on the detected temperature of the sensor 35, the control target value of the condensation temperature or / and the evaporation temperature or the deviation value of the control target value can be transmitted by communication.
- the control device of the outdoor unit 1 changes the control target value of the condensation temperature or / and the evaporation temperature based on the control target value of the condensation temperature or / and the evaporation temperature or the deviation value of the control target value, and the compressor 10 or / And the rotation speed control of the air blower attached to the heat source side heat exchanger 12 is performed.
- control interval of the pump 21 is made longer than the control interval of the heat medium flow control device 25 and the control interval of the refrigerant condensing temperature and / or the evaporating temperature is further increased, the controllability is further improved.
- the control interval of the pump 21 may be three times or more than the control interval of the heat medium control device 25, and the control interval of the refrigerant condensing temperature and / or evaporation temperature may be three times or more of the control interval of the pump 21.
- the corresponding first heat medium flow switching device 22 and second heat medium flow switching device 23 are connected.
- the intermediate opening degree is set so that the heat medium flows through both the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b. Accordingly, both the heat exchanger related to heat medium 15a and the heat exchanger related to heat medium 15b can be used for the heating operation or the cooling operation, so that the heat transfer area is increased, and an efficient heating operation or cooling operation is performed. Can be done.
- the first heat medium flow switching device corresponding to the use side heat exchanger 26 performing the heating operation. 22 and the second heat medium flow switching device 23 are switched to flow paths connected to the heat exchanger related to heat medium 15b for heating, and the first heat medium corresponding to the use side heat exchanger 26 performing the cooling operation.
- the flow path switching device 22 and the second heat medium flow path switching device 23 By switching the flow path switching device 22 and the second heat medium flow path switching device 23 to a flow path connected to the heat exchanger related to heat medium 15a for cooling, in each indoor unit 2, heating operation and cooling operation are performed. It can be done freely.
- the first heat medium flow switching device 22 and the second heat medium flow switching device 23 described in the present embodiment can switch a three-way flow path such as a three-way valve, or a two-way flow path such as an on-off valve. What is necessary is just to be able to switch a flow path, such as combining two things that perform opening and closing.
- the first heat medium can be obtained by combining two things that can change the flow rate of the three-way flow path such as a stepping motor drive type mixing valve and two things that can change the flow rate of the two-way flow path such as an electronic expansion valve.
- the flow path switching device 22 and the second heat medium flow path switching device 23 may be used. In this case, it is possible to prevent water hammer due to sudden opening and closing of the flow path.
- the heat medium flow control device 25 is a two-way valve has been described as an example, but with a bypass pipe that bypasses the use side heat exchanger 26 as a control valve having a three-way flow path You may make it install.
- the heat medium flow control device 25 may be a stepping motor driven type that can control the flow rate flowing through the flow path, and may be a two-way valve or a one-way valve with one end closed. Further, as the heat medium flow control device 25, a device that opens and closes a two-way flow path such as an open / close valve may be used, and the average flow rate may be controlled by repeating ON / OFF.
- coolant flow path switching device 18 was shown as if it were a four-way valve, it is not restricted to this, A two-way flow-path switching valve and a plurality of three-way flow-path switching valves are used similarly. You may comprise so that a refrigerant
- the air conditioner 100 has been described as being capable of mixed cooling and heating operation, the present invention is not limited to this.
- One heat exchanger 15 and one expansion device 16 are connected to each other, and a plurality of use side heat exchangers 26 and heat medium flow control devices 25 are connected in parallel to perform either a cooling operation or a heating operation. Even if there is no configuration, the same effect is obtained.
- heat source side refrigerant examples include single refrigerants such as R-22 and R-134a, pseudo-azeotropic mixed refrigerants such as R-410A and R-404A, non-azeotropic mixed refrigerants such as R-407C, It is possible to use a refrigerant containing a double bond, such as CF 3 CF ⁇ CH 2, which has a relatively low global warming potential, a mixture thereof, or a natural refrigerant such as CO 2 or propane.
- single refrigerants such as R-22 and R-134a
- pseudo-azeotropic mixed refrigerants such as R-410A and R-404A
- non-azeotropic mixed refrigerants such as R-407C
- a refrigerant containing a double bond such as CF 3 CF ⁇ CH 2 which has a relatively low global warming potential, a mixture thereof, or a natural refrigerant such as CO 2 or propane.
- the refrigerant that performs a normal two-phase change is condensed and liquefied, and the refrigerant that becomes a supercritical state such as CO 2 is Although it is cooled in a supercritical state, in both cases, the other moves in the same way and produces the same effect.
- the heat exchanger on the high pressure side operates as a gas cooler, and the representative temperature is defined by the temperature etc. at which the constant pressure specific heat in the heat exchanger is maximized. Control may be performed using the pseudo condensing temperature instead of the condensing temperature of the refrigerant changing in two phases.
- the heat medium for example, brine (antifreeze), water, a mixture of brine and water, a mixture of water and an additive having a high anticorrosive effect, or the like can be used. Therefore, in the air conditioning apparatus 100, even if the heat medium leaks into the indoor space 7 through the indoor unit 2, it contributes to the improvement of safety because a highly safe heat medium is used. Become.
- the heat source side heat exchanger 12 and the use side heat exchanger 26 are provided with a blower, and in many cases, condensation or evaporation is promoted by blowing air, but this is not restrictive.
- a panel heater using radiation can be used as the use side heat exchanger 26, and the water source type heat exchanger 12 is a water-cooled type that moves heat by water or antifreeze.
- the case where there are four use-side heat exchangers 26 has been described as an example, but the number is not particularly limited. Further, the case where there are two heat exchangers between heat mediums 15 has been described as an example, but of course, the present invention is not limited to this, and any number of heat exchangers may be installed as long as the heat medium can be cooled or / and heated. May be. Furthermore, the number of pumps 21a and 21b is not limited to one, and a plurality of small-capacity pumps may be arranged in parallel.
- the case where the air conditioner 100 includes the accumulator 19 has been described as an example, but the accumulator 19 may not be provided.
- the case where the air conditioner 100 includes the check valve 13a to the check valve 13d has been described as an example, but these are not essential components. Therefore, it goes without saying that the same operation is performed and the same effect can be obtained without providing the accumulator 19 and the check valves 13a to 13d.
- the air-conditioning apparatus 100 includes the heat medium side heat medium flow switching devices (the first heat medium flow switching device 22 and the second heat medium flow switching device 23), the heat By controlling the medium flow rate adjusting device 25 and the pump 21, safe and energy-saving operation can be executed. Moreover, the air conditioning apparatus 100 reduces the connection piping between the outdoor unit 1 and the heat medium relay unit 3 or the indoor unit 2 and improves the workability. Furthermore, the air conditioning apparatus 100 can facilitate the construction of a building in which water piping has been constructed.
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Abstract
Description
図1は、本発明の実施の形態に係る空気調和装置の設置例を示す概略図である。図1に基づいて、空気調和装置の設置例について説明する。この空気調和装置は、冷媒(熱源側冷媒、熱媒体)を循環させる冷凍サイクル(冷媒循環回路A、熱媒体循環回路B)を利用することで各室内機が運転モードとして冷房モードあるいは暖房モードを自由に選択できるものである。なお、図1を含め、以下の図面では各構成部材の大きさの関係が実際のものとは異なる場合がある。
室外機1は、第1筐体内に、圧縮機10と、四方弁等の第1冷媒流路切替装置11と、熱源側熱交換器12と、アキュムレーター19とが冷媒配管4で直列に接続されて搭載され、構成されている。また、室外機1には、第1接続配管4a、第2接続配管4b、逆止弁13a、逆止弁13b、逆止弁13c、及び、逆止弁13dが設けられている。第1接続配管4a、第2接続配管4b、逆止弁13a、逆止弁13b、逆止弁13c、及び、逆止弁13dを設けることで、室内機2の要求する運転に関わらず、熱媒体変換機3に流入させる熱源側冷媒の流れを一定方向にすることができる。
室内機2は、第4筐体内に利用側熱交換器26が搭載されて構成されている。この利用側熱交換器26は、配管5によって熱媒体調整器14の熱媒体流量調整装置25と第2熱媒体流路切替装置23に接続するようになっている。この利用側熱交換器26は、図示省略のファン等の送風機から供給される空気と熱媒体との間で熱交換を行ない、室内空間7に供給するための暖房用空気あるいは冷房用空気を生成するものである。
熱媒体調整器14は、第3筐体内に、第1熱媒体流路切替装置22と、第2熱媒体流路切替装置23と、熱媒体流量調整装置25と、が搭載されて構成されている。熱媒体調整器14は、室内機2の設置台数に応じた個数(ここでは4つ)が設けられるようになっている。なお、熱媒体変換機14内においては、第1熱媒体流路切替装置22及び第2熱媒体流路切替装置23が、第1熱媒体流路切替装置22の熱媒体の出入口と、第2熱媒体流路切替装置23の熱媒体の出入口とを、揃えるように配置されている。
熱媒体変換機3は、第2筐体内に、2つの熱媒体間熱交換器15と、2つの絞り装置16と、2つの開閉装置17と、2つの第2冷媒流路切替装置18と、2つのポンプ21と、が搭載されて構成されている。
図3は、空気調和装置100の全冷房運転モード時における冷媒の流れを示す冷媒回路図である。この図3では、利用側熱交換器26a及び利用側熱交換器26bでのみ冷熱負荷が発生している場合を例に全冷房運転モードについて説明する。なお、図3では、太線で表された配管が冷媒(熱源側冷媒及び熱媒体)の流れる配管を示している。また、図3では、熱源側冷媒の流れ方向を実線矢印で、熱媒体の流れ方向を破線矢印で示している。
低温・低圧の冷媒が圧縮機10によって圧縮され、高温・高圧のガス冷媒となって吐出される。圧縮機10から吐出された高温・高圧のガス冷媒は、第1冷媒流路切替装置11を介して熱源側熱交換器12に流入する。そして、熱源側熱交換器12で室外空気に放熱しながら凝縮液化し、高圧液冷媒となる。熱源側熱交換器12から流出した高圧液冷媒は、逆止弁13aを通って室外機1から流出し、冷媒配管4を通って熱媒体変換機3に流入する。熱媒体変換機3に流入した高圧液冷媒は、開閉装置17aを経由した後に分岐されて絞り装置16a及び絞り装置16bで膨張させられて、低温・低圧の二相冷媒となる。
全冷房運転モードでは、熱媒体間熱交換器15a及び熱媒体間熱交換器15bの双方で熱源側冷媒の冷熱が熱媒体に伝えられ、冷やされた熱媒体がポンプ21a及びポンプ21bによって配管5内を流動させられることになる。ポンプ21a及びポンプ21bで加圧されて流出した熱媒体は、第2熱媒体流路切替装置23a及び第2熱媒体流路切替装置23bを介して、利用側熱交換器26a及び利用側熱交換器26bに流入する。そして、熱媒体が利用側熱交換器26a及び利用側熱交換器26bで室内空気から吸熱することで、室内空間7の冷房を行なう。
図4は、空気調和装置100の全暖房運転モード時における冷媒の流れを示す冷媒回路図である。この図4では、利用側熱交換器26a及び利用側熱交換器26bでのみ温熱負荷が発生している場合を例に全暖房運転モードについて説明する。なお、図4では、太線で表された配管が冷媒(熱源側冷媒及び熱媒体)の流れる配管を示している。また、図4では、熱源側冷媒の流れ方向を実線矢印で、熱媒体の流れ方向を破線矢印で示している。
低温・低圧の冷媒が圧縮機10によって圧縮され、高温・高圧のガス冷媒となって吐出される。圧縮機10から吐出された高温・高圧のガス冷媒は、第1冷媒流路切替装置11を通り、第1接続配管4aを導通し、逆止弁13bを通過し、室外機1から流出する。室外機1から流出した高温・高圧のガス冷媒は、冷媒配管4を通って熱媒体変換機3に流入する。熱媒体変換機3に流入した高温・高圧のガス冷媒は、分岐されて第2冷媒流路切替装置18a及び第2冷媒流路切替装置18bを通って、熱媒体間熱交換器15a及び熱媒体間熱交換器15bのそれぞれに流入する。
全暖房運転モードでは、熱媒体間熱交換器15a及び熱媒体間熱交換器15bの双方で熱源側冷媒の温熱が熱媒体に伝えられ、暖められた熱媒体がポンプ21a及びポンプ21bによって配管5内を流動させられることになる。ポンプ21a及びポンプ21bで加圧されて流出した熱媒体は、第2熱媒体流路切替装置23a及び第2熱媒体流路切替装置23bを介して、利用側熱交換器26a及び利用側熱交換器26bに流入する。そして、熱媒体が利用側熱交換器26a及び利用側熱交換器26bで室内空気に放熱することで、室内空間7の暖房を行なう。
図5は、空気調和装置100の冷房主体運転モード時における冷媒の流れを示す冷媒回路図である。この図5では、利用側熱交換器26aで冷熱負荷が発生し、利用側熱交換器26bで温熱負荷が発生している場合を例に冷房主体運転モードについて説明する。なお、図5では、太線で表された配管が冷媒(熱源側冷媒及び熱媒体)の循環する配管を示している。また、図5では、熱源側冷媒の流れ方向を実線矢印で、熱媒体の流れ方向を破線矢印で示している。
低温・低圧の冷媒が圧縮機10によって圧縮され、高温・高圧のガス冷媒となって吐出される。圧縮機10から吐出された高温・高圧のガス冷媒は、第1冷媒流路切替装置11を介して熱源側熱交換器12に流入する。そして、熱源側熱交換器12で室外空気に放熱しながら凝縮し、二相冷媒となる。熱源側熱交換器12から流出した二相冷媒は、逆止弁13aを通って室外機1から流出し、冷媒配管4を通って熱媒体変換機3に流入する。熱媒体変換機3に流入した二相冷媒は、第2冷媒流路切替装置18bを通って凝縮器として作用する熱媒体間熱交換器15bに流入する。
冷房主体運転モードでは、熱媒体間熱交換器15bで熱源側冷媒の温熱が熱媒体に伝えられ、暖められた熱媒体がポンプ21bによって配管5内を流動させられることになる。また、冷房主体運転モードでは、熱媒体間熱交換器15aで熱源側冷媒の冷熱が熱媒体に伝えられ、冷やされた熱媒体がポンプ21aによって配管5内を流動させられることになる。ポンプ21a及びポンプ21bで加圧されて流出した熱媒体は、第2熱媒体流路切替装置23a及び第2熱媒体流路切替装置23bを介して、利用側熱交換器26a及び利用側熱交換器26bに流入する。
図6は、空気調和装置100の暖房主体運転モード時における冷媒の流れを示す冷媒回路図である。この図6では、利用側熱交換器26aで温熱負荷が発生し、利用側熱交換器26bで冷熱負荷が発生している場合を例に暖房主体運転モードについて説明する。なお、図6では、太線で表された配管が冷媒(熱源側冷媒及び熱媒体)の循環する配管を示している。また、図6では、熱源側冷媒の流れ方向を実線矢印で、熱媒体の流れ方向を破線矢印で示している。
低温・低圧の冷媒が圧縮機10によって圧縮され、高温・高圧のガス冷媒となって吐出される。圧縮機10から吐出された高温・高圧のガス冷媒は、第1冷媒流路切替装置11を通り、第1接続配管4aを導通し、逆止弁13bを通過し、室外機1から流出する。室外機1から流出した高温・高圧のガス冷媒は、冷媒配管4を通って熱媒体変換機3に流入する。熱媒体変換機3に流入した高温・高圧のガス冷媒は、第2冷媒流路切替装置18bを通って凝縮器として作用する熱媒体間熱交換器15bに流入する。
暖房主体運転モードでは、熱媒体間熱交換器15bで熱源側冷媒の温熱が熱媒体に伝えられ、暖められた熱媒体がポンプ21bによって配管5内を流動させられることになる。また、暖房主体運転モードでは、熱媒体間熱交換器15aで熱源側冷媒の冷熱が熱媒体に伝えられ、冷やされた熱媒体がポンプ21aによって配管5内を流動させられることになる。ポンプ21a及びポンプ21bで加圧されて流出した熱媒体は、第2熱媒体流路切替装置23a及び第2熱媒体流路切替装置23bを介して、利用側熱交換器26a及び利用側熱交換器26bに流入する。
以上説明したように、本実施の形態に係る空気調和装置100は、幾つかの運転モードを具備している。これらの運転モードにおいては、室外機1と熱媒体変換機3とを接続する冷媒配管4には熱源側冷媒が流れている。
本実施の形態に係る空気調和装置100が実行する幾つかの運転モードにおいては、熱媒体変換機3と熱媒体調整器14とを、熱媒体調整器14と室内機2とを、それぞれ接続する配管5には水や不凍液等の熱媒体が流れている。
熱媒体流量調整装置25は、第1温度センサー31の検出温度と第2温度センサー34の検出温度との温度差を目標値に近づけるように、開度が制御される。たとえば、利用側熱交換器26aが冷房運転を行なっているときは、第2温度センサー34aの検出温度と第1温度センサー31aの検出温度との温度差が、目標値であるたとえば5度に近づくように熱媒体流量調整装置25aの開度を制御する。また、利用側熱交換器26aが暖房運転を行なっているときは、第1温度センサー31aの検出温度と第2温度センサー34aの検出温度との温度差が、目標値であるたとえば7度に近づくように熱媒体流量調整装置25aの開度を制御する。
熱媒体流量調整装置25の開度が小さい(流路の開口面積が小さい)ときは、流路の圧力損失が大きいため、ポンプ21の回転数は大きい値でバランスし運転される。一方、熱媒体流量調整装置25の開度が大きい(流路の開口面積が大きい)ときは、流路の圧力損失が小さいため、ポンプ21の回転数を小さくすることが可能となる。
ここでは、利用側熱交換器26へ送出する熱媒体の温度を一定値に制御するものとする。利用側熱交換器26へ循環させる熱媒体の流量は、第1圧力センサー32の検出圧力または熱媒体流量調整装置25の開度との相関で決まり、第3温度センサー33の温度は成り行きになる。そこで、第3温度センサー33の検出温度が目標値、たとえば冷房運転時は7度、暖房運転時は45度になるように、圧縮機10の回転数または/および熱源側熱交換器12に付属の送風機の回転数を制御する。
Claims (17)
- 圧縮機、熱源側熱交換器、絞り装置、及び、熱媒体間熱交換器の冷媒側流路が直列に配管接続され、熱源側冷媒が循環する冷媒循環回路と、
前記熱媒体間熱交換器の熱媒体側流路、ポンプ、第1熱媒体流路切替装置、利用側熱交換器、熱媒体流量調整装置、第2熱媒体流路切替装置が直列に配管接続され、熱媒体が循環する熱媒体循環回路と、を有し、
前記圧縮機及び前記室外熱交換器を収容する第1筐体、前記熱媒体間熱交換器、前記絞り装置及び前記ポンプを収容する第2筐体、前記第1熱媒体流路切替装置及び前記第2熱媒体流路切替装置を収容する第3筐体、及び、前記利用側熱交換器を収容する第4筐体を、それぞれ別体とし、前記熱媒体流量調整装置を前記第3筐体又は前記第4筐体に収容している
ことを特徴とする空気調和装置。 - 前記圧縮機及び前記室外熱交換器が前記第1筐体に収容されて室外機を構成し、
前記熱媒体間熱交換器、前記絞り装置及び前記ポンプが前記第2筐体に収容されて熱媒体変換機を構成し、
前記第1熱媒体流路切替装置及び前記第2熱媒体流路切替装置が前記第3筐体に収容されて熱媒体調整器を構成し、
前記利用側熱交換器が前記第4筐体に収容されて室内機を構成し、
前記熱媒体流量調整装置が前記熱媒体調整器又は前記室内機に収容されており、
前記室外機、前記熱媒体変換機、前記熱媒体調整器及び前記室内機は、
それぞれが少なくとも1台以上搭載している
ことを特徴とする請求項1に記載の空気調和装置。 - 前記熱媒体調整器の1台を、前記室内機の複数台と接続させている
ことを特徴とする請求項2に記載の空気調和装置。 - 前記熱媒体間熱交換器を複数台備えるものにおいては、
駆動している前記室内機の全てが冷房運転を実行する全冷房運転モードと、
駆動している前記室内機の全てが暖房運転を実行する全暖房運転モードと、
冷房運転を実行している前記室内機と暖房運転を実行している室内機とが混在している冷房暖房混在運転モードと、を具備している
ことを特徴とする請求項1~3のいずれか一項に記載の空気調和装置。 - 前記冷房暖房混在運転モードにおいては、前記複数台の熱媒体間熱交換器のうちの一部を熱媒体を冷却する冷却用熱交換器として、前記複数台の熱媒体間熱交換器のうちの一部を熱媒体を加熱する加熱用熱交換器として機能させ、
前記全冷房運転モードにおいては、前記複数台の熱媒体間熱交換器のすべてを熱媒体を冷却する冷却用熱交換器として機能させ、
前記全暖房運転モードにおいては、前記複数台の熱媒体間熱交換器のすべてを熱媒体を加熱する加熱用熱交換器として機能させる
ことを特徴とする請求項4に記載の空気調和装置。 - 前記第1熱媒体流路切替装置における熱媒体の出入口の向きと、前記第2熱媒体流路切替装置における熱媒体の出入口の向きとを、揃えるように配置している
ことを特徴とする請求項1~5のいずれか一項に記載の空気調和装置。 - 前記室外機を室外若しくは室外に繋がる空間に、前記熱媒体変換機を室外若しくは室外に繋がる空間または非空調対象空間に、前記室内機を空調対象空間もしくは空調対象空間に繋がる空間に、前記熱媒体調整器を前記室内機の近傍に、それぞれ設置している
ことを特徴とする請求項2~6のいずれか一項に記載の空気調和装置。 - 前記室外機と前記熱媒体変換機とを少なくとも2本の冷媒配管で接続し、前記熱媒体変換機と前記熱媒体調整器とを4本の熱媒体配管で接続し、前記熱媒体調整器と前記室内機とを2本の熱媒体配管で接続している
ことを特徴とする請求項2~7のいずれか一項に記載の空気調和装置。 - 前記熱媒体変換機と前記熱媒体調整器とを接続している4本の熱媒体配管は、
略鉛直方向に設置された4本の縦配管と、略水平方向に設置された4本の横配管と、で構成されている
ことを特徴とする請求項8に記載の空気調和装置。 - 前記ポンプに流入する熱媒体の圧力から前記ポンプの回転数を制御する第1制御装置を前記熱媒体変換機の内部または近傍に設け、
凝縮温度あるいは高圧側が超臨界状態である場合の擬似凝縮温度または/及び蒸発温度から前記圧縮機の回転数を制御する第2制御装置を前記室外機の内部または近傍に設け、
前記第1制御装置と前記第2制御装置とを有線または無線で接続し、連携制御を可能としている
ことを特徴とする請求項1~9のいずれか一項に記載の空気調和装置。 - 前記第2制御装置は、
凝縮温度あるいは高圧側が超臨界状態である場合の擬似凝縮温度または/及び蒸発温度の制御目標値または制御目標値の偏差値に基づいて、凝縮温度または/及び蒸発温度の制御目標値を変更し、前記圧縮機の回転数制御を行なう
ことを特徴とする請求項10に記載の空気調和装置。 - 前記ポンプに流入する熱媒体の圧力または前記ポンプから流出した熱媒体の圧力を検出する圧力センサーを前記熱媒体変換機に設け、
前記第1制御装置は、
前記圧力センサーの検出値を目標値に近づけるように前記ポンプの回転数を制御する
ことを特徴とする請求項11に記載の空気調和装置。 - 前記利用側熱交換器に流出入する熱媒体の温度から前記熱媒体流量調整装置の開度を制御する第3制御装置を前記熱媒体流量調整装置が収容されている筐体の内部または近傍に設け、
前記第3制御装置を前記第1制御装置及び前記第2制御装置のそれぞれと有線または無線で接続し、
前記第1制御装置は、
前記第3制御装置からの前記熱媒体流量調整装置の開度情報に基づいて、前記熱媒体流量調整装置の開度を目標値に近づけるように前記ポンプの回転数を制御する
ことを特徴とする請求項10~12のいずれか一項に記載の空気調和装置。 - 前記利用側熱交換器に流入する熱媒体の温度を検出する第1温度センサーと、
前記利用側熱交換器から流出した熱媒体の温度を検出する第2温度センサーと、を前記熱媒体調整器に設け、
前記第3制御装置は、
前記第1温度センサーの検出温度と前記第2温度センサーの検出温度との温度差を目標値に近づけるように前記熱媒体流量調整装置の開度を制御する
ことを特徴とする請求項13に記載の空気調和装置。 - 前記第1制御装置は、
前記熱媒体流量調整装置の開度情報に基づいて、前記圧力センサーの制御目標値を変更する
ことを特徴とする請求項13または14に記載の空気調和装置。 - 前記熱媒体流量調整装置の制御間隔よりも、前記ポンプの制御間隔を長くし、熱源側冷媒の凝縮温度または/及び蒸発温度の制御間隔を更に長くしている
ことを特徴とする請求項13~15のいずれか一項に記載の空気調和装置。 - 前記ポンプの制御間隔を、前記熱媒体流量調整装置の制御間隔の3倍以上とし、熱源側冷媒の凝縮温度または/および蒸発温度の制御間隔を、前記ポンプの制御間隔の3倍以上としている
ことを特徴とする請求項16に記載の空気調和装置。
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| US13/576,369 US9188371B2 (en) | 2010-02-17 | 2010-02-17 | Air-conditioning apparatus with separate component casings |
| CN201080064099.1A CN102762932B (zh) | 2010-02-17 | 2010-02-17 | 空调装置 |
| EP10846033.8A EP2538154B1 (en) | 2010-02-17 | 2010-02-17 | Air conditioning device |
| PCT/JP2010/000973 WO2011101889A1 (ja) | 2010-02-17 | 2010-02-17 | 空気調和装置 |
| JP2012500374A JP5420057B2 (ja) | 2010-02-17 | 2010-02-17 | 空気調和装置 |
| ES10846033.8T ES2655891T3 (es) | 2010-02-17 | 2010-02-17 | Dispositivo acondicionador de aire |
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| US9891005B2 (en) * | 2013-11-21 | 2018-02-13 | David Rich | High efficiency ventilation system |
| WO2017119137A1 (ja) * | 2016-01-08 | 2017-07-13 | 三菱電機株式会社 | 空気調和装置 |
| WO2020116551A1 (en) * | 2018-12-07 | 2020-06-11 | Daikin Industries, Ltd. | Air-conditioner |
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Also Published As
| Publication number | Publication date |
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| CN102762932A (zh) | 2012-10-31 |
| EP2538154A4 (en) | 2016-11-02 |
| US20120297803A1 (en) | 2012-11-29 |
| EP2538154A1 (en) | 2012-12-26 |
| ES2655891T3 (es) | 2018-02-22 |
| CN102762932B (zh) | 2015-04-15 |
| EP2538154B1 (en) | 2017-12-13 |
| US9188371B2 (en) | 2015-11-17 |
| JP5420057B2 (ja) | 2014-02-19 |
| JPWO2011101889A1 (ja) | 2013-06-17 |
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