US20180017063A1 - Fan assembly - Google Patents
Fan assembly Download PDFInfo
- Publication number
- US20180017063A1 US20180017063A1 US15/210,173 US201615210173A US2018017063A1 US 20180017063 A1 US20180017063 A1 US 20180017063A1 US 201615210173 A US201615210173 A US 201615210173A US 2018017063 A1 US2018017063 A1 US 2018017063A1
- Authority
- US
- United States
- Prior art keywords
- fan
- central portion
- drive unit
- armature
- fans
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
Links
- 239000012530 fluid Substances 0.000 claims description 19
- 230000005611 electricity Effects 0.000 description 6
- 230000000903 blocking effect Effects 0.000 description 2
- 239000000853 adhesive Substances 0.000 description 1
- 230000001070 adhesive effect Effects 0.000 description 1
- 230000003139 buffering effect Effects 0.000 description 1
- 230000003750 conditioning effect Effects 0.000 description 1
- 230000009977 dual effect Effects 0.000 description 1
- 238000004519 manufacturing process Methods 0.000 description 1
- 238000000465 moulding Methods 0.000 description 1
- 238000004806 packaging method and process Methods 0.000 description 1
- 230000001105 regulatory effect Effects 0.000 description 1
- 230000003319 supportive effect Effects 0.000 description 1
- 238000011144 upstream manufacturing Methods 0.000 description 1
- 238000003466 welding Methods 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01P—COOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
- F01P5/00—Pumping cooling-air or liquid coolants
- F01P5/02—Pumping cooling-air; Arrangements of cooling-air pumps, e.g. fans or blowers
- F01P5/04—Pump-driving arrangements
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D25/00—Pumping installations or systems
- F04D25/02—Units comprising pumps and their driving means
- F04D25/06—Units comprising pumps and their driving means the pump being electrically driven
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01P—COOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
- F01P1/00—Air cooling
- F01P1/06—Arrangements for cooling other engine or machine parts
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01P—COOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
- F01P5/00—Pumping cooling-air or liquid coolants
- F01P5/02—Pumping cooling-air; Arrangements of cooling-air pumps, e.g. fans or blowers
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D25/00—Pumping installations or systems
- F04D25/02—Units comprising pumps and their driving means
- F04D25/026—Units comprising pumps and their driving means with a magnetic coupling
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D25/00—Pumping installations or systems
- F04D25/02—Units comprising pumps and their driving means
- F04D25/08—Units comprising pumps and their driving means the working fluid being air, e.g. for ventilation
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D25/00—Pumping installations or systems
- F04D25/16—Combinations of two or more pumps ; Producing two or more separate gas flows
- F04D25/166—Combinations of two or more pumps ; Producing two or more separate gas flows using fans
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D27/00—Control, e.g. regulation, of pumps, pumping installations or pumping systems specially adapted for elastic fluids
- F04D27/005—Control, e.g. regulation, of pumps, pumping installations or pumping systems specially adapted for elastic fluids by changing flow path between different stages or between a plurality of compressors; Load distribution between compressors
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/26—Rotors specially for elastic fluids
- F04D29/32—Rotors specially for elastic fluids for axial flow pumps
- F04D29/325—Rotors specially for elastic fluids for axial flow pumps for axial flow fans
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/26—Rotors specially for elastic fluids
- F04D29/32—Rotors specially for elastic fluids for axial flow pumps
- F04D29/38—Blades
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/40—Casings; Connections of working fluid
- F04D29/52—Casings; Connections of working fluid for axial pumps
- F04D29/54—Fluid-guiding means, e.g. diffusers
- F04D29/541—Specially adapted for elastic fluid pumps
- F04D29/542—Bladed diffusers
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01P—COOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
- F01P5/00—Pumping cooling-air or liquid coolants
- F01P5/02—Pumping cooling-air; Arrangements of cooling-air pumps, e.g. fans or blowers
- F01P2005/025—Pumping cooling-air; Arrangements of cooling-air pumps, e.g. fans or blowers using two or more air pumps
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01P—COOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
- F01P5/00—Pumping cooling-air or liquid coolants
- F01P5/02—Pumping cooling-air; Arrangements of cooling-air pumps, e.g. fans or blowers
- F01P5/04—Pump-driving arrangements
- F01P2005/046—Pump-driving arrangements with electrical pump drive
Definitions
- the present disclosure relates to a fan assembly.
- a dual fan assembly can be utilized to cool various engine components.
- One motor is coupled to one of the fans and another motor is coupled to the other one of the fans, and when both motors operate, both fans can rotate to move air.
- a single controller is in communication with both of the motors to operate the motors, which causes the fans to rotate when desired. The location of the motors relative to the respective fans blocks movement of the air through the respective fans.
- a single fan assembly has also been developed.
- the single fan assembly includes a plurality of magnets that interact with an armature to rotate the fan.
- a single controller is in communication with the fan and energizes the armature which causes the magnets to move and rotate the fan when desired.
- the present disclosure provides a fan assembly including a first fan and a second fan spaced from the first fan.
- the first fan includes a first central portion disposed along a first axis and a plurality of first fan blades being supported by the first central portion and spaced radially away from the first axis.
- the second fan includes a second central portion disposed along a second axis and a plurality of second fan blades being supported by the second central portion and spaced radially away from the second axis.
- the fan assembly also includes a single drive unit configured to selectively operate both of the first and second fans. The single drive unit is spaced from at least one of the first and second fans to indirectly operate at least one of the fans.
- the present disclosure also provides another fan assembly including a shroud and a first fan supported by the shroud.
- the first fan includes a first central portion and a plurality of first fan blades being supported by the first central portion.
- the fan assembly also includes a second fan spaced from the first fan and supported by the shroud.
- the second fan includes a second central portion and a plurality of second fan blades being supported by the second central portion.
- the fan assembly further includes a single drive unit configured to selectively operate both of the first and second fans.
- the single drive unit is spaced from at least one of the first and second fans to indirectly operate at least one of the fans.
- FIG. 1 is a schematic top view of a vehicle and a fan assembly.
- FIG. 2 is a schematic top view of a condenser, radiator and fan module (CRFM), with the fan assembly being part of the CRFM.
- CRFM condenser, radiator and fan module
- FIG. 3 is a schematic perspective view of the fan assembly.
- FIG. 1 a vehicle 10 and a fan assembly 12 coupled to the vehicle 10 are generally shown in FIG. 1 .
- the fan assembly 12 can be utilized in a vehicle application or a non-vehicle application.
- the vehicles 10 can include cars, trucks, motorcycles, boats, watercrafts, all-terrain vehicles, off-road vehicles, aircrafts, farm equipment or any other suitable vehicle.
- Non-limiting examples of the non-vehicles can include machines, farm equipment or any other suitable non-vehicle.
- the fan assembly 12 includes a first fan 14 and a second fan 16 . As best shown in FIG. 3 , the first and second fans 14 , 16 are spaced from each other.
- the fan assembly 12 can be part of a condenser, radiator and fan module (CRFM).
- FIG. 1 schematically illustrates one non-limiting example of the generally location of the CRFM with the fan assembly 12
- FIG. 2 illustrates a non-limiting example of the assembled components of the CRFM.
- the CRFM of FIG. 2 can include a condenser 18 , a radiator 20 and the fan assembly 12 .
- the CRFM can include an air cooler 22 (see FIG. 2 ).
- the CRFM can be disposed between a first end 24 of the vehicle 10 and a passenger compartment 26 of the vehicle 10 .
- a flow of gaseous fluid (see arrow 28 ) can enter the first end 24 of the vehicle 10 through a vent or a grill in the direction of the arrow 28 which is then directed toward the CRFM.
- the components of the CRFM can be in various locations relative to each other.
- the condenser 18 can be disposed upstream to the air cooler 22 , the radiator 20 and the fan assembly 12 relative to the direction of the flow of the gaseous fluid.
- the air cooler 22 can be disposed between the condenser 18 and the radiator 20 .
- the radiator 20 can be disposed between the air cooler 22 and the fan assembly 12 .
- the fan assembly 12 can be disposed downstream to the condenser 18 , the air cooler 22 and the radiator 20 relative to the direction of the arrow 28 .
- gaseous fluid is expelled either toward the first end 24 of the vehicle 10 or toward the passenger compartment 26 .
- the first fan 14 includes a first central portion 30 and a plurality of first fan blades 32 supported by the first central portion 30 .
- the first central portion 30 is disposed along a first axis 34 and the first fan blades 32 are spaced radially away from the first axis 34 .
- the first fan blades 32 are selectively rotatable about the first axis 34 .
- the first fan blades 32 are spaced from each other to create spaces 35 between each of the first fan blades 32 to allow the flow of gaseous fluid therethrough.
- the second fan 16 includes a second central portion 36 and a plurality of second fan blades 38 supported by the second central portion 36 .
- the second central portion 36 is disposed along a second axis 40 and the second fan blades 38 are spaced radially away from the second axis 40 .
- the second fan blades 38 are selectively rotatable about the second axis 40 .
- the second fan blades 38 are spaced from each other to create spaces 41 between each of the second fan blades 38 to allow the flow of gaseous fluid therethrough.
- the first and second axes 34 , 40 are spaced from each other, and in certain embodiments, spaced substantially parallel to each other.
- the fan assembly 12 also includes a single drive unit 42 configured to selectively operate both of the first and second fans 14 , 16 .
- the single drive unit 42 is spaced from at least one of the first and second fans 14 , 16 to indirectly operate at least one of the fans 14 , 16 .
- the phrase “at least one of” as used herein should be construed to include the non-exclusive logical “or”, i.e., A and/or B and so on depending on the number of components.
- the single drive unit 42 can be spaced from both of the first and second fans 14 , 16 to indirectly operate both of the first and second fans 14 , 16 ; or the single drive unit 42 can be spaced from the first fan 14 to indirectly operate the first fan 14 ; or the single drive unit can be spaced from the second fan 16 to indirectly operate the second fan 16 .
- the single drive unit 42 is coupled to one of the first and second central portions 30 , 36 to directly operate the corresponding one of the fans 14 , 16 , and the single drive unit 42 is spaced from the other one of the first and second fans 14 , 16 to indirectly operate the other one of the fans 14 , 16 . Therefore, one drive unit 42 , i.e., the single drive unit 42 , can operate both fans 14 , 16 in a master/slave configuration, which eliminates the need for two separate drive units to operate each fan independently. As such, the number of components for the fan assembly 12 is reduced, which can reduce costs and can provide a space and weight savings.
- the first fan 14 can be operated as the master fan and the second fan 16 can be operated as the slave fan.
- the first fan 14 can be operated as the slave fan and the second fan 16 can be operated as the master fan.
- one of the first and second fans 14 , 16 can include a plurality of magnets 44 .
- the magnets 44 are spaced from each other. Simply stated, the magnets 44 can be spaced such that the magnets 44 do not touch each other. It is to be appreciated that the magnets 44 can be any suitable location relative to each other, and FIG. 3 is one suitable example.
- the single drive unit 42 interacts with the magnets 44 in a spaced apart relationship when indirectly operating the respective one of the first and second fans 14 , 16 , which causes one of the plurality of first and second fan blades 32 , 38 to rotate about the first and second axes 34 , 40 respectively.
- the second fan 16 can include the magnets 44 .
- the first fan 14 can include the magnets 44 .
- both of the fans 14 , 16 can include the magnets 44 .
- the single drive unit 42 can include an armature 46 (best shown in FIG. 3 ) disposed proximal to, and spaced from, the magnets 44 .
- the armature 46 is disposed in a fixed position relative to the magnets 44 .
- the single drive unit 42 is configured to electrify the armature 46 when operating the respective one of the first and second fans 14 , 16 which in turn causes the magnets 44 to interact with the armature 46 and rotate one of the plurality of first and second fan blades 32 , 38 .
- the single drive unit 42 is configured to indirectly operate one of the first and second fans 14 , 16 by electrifying the armature 46 , which in turn causes the magnets 44 to interact with the armature 46 and rotate one of the plurality of first and second fan blades 32 , 38 . More specifically, the armature 46 creates a magnetic field when electrified, and the magnetic field causes the magnets 44 to move to rotate one of the first and second fan blades 32 , 38 .
- the magnets 44 respond to electrification of the armature 46 to selectively rotate one of the plurality of first and second fan blades 32 , 38 due to the armature 46 acting as a stator that drives motion of one of the first and second fan blades 32 , 38 through the magnets 44 as a rotor.
- the armature 46 acts as a stator that drives motion of one of the plurality of first and second fan blades 32 , 38 through the magnets 44 as a rotor.
- the single drive unit 42 is configured to indirectly operate the second fan 16 by electrifying the armature 46 which in turn causes the magnets 44 to interact with the armature 46 and rotate the second fan blades 38 .
- the second fan blades 38 can rotate relative to the fixed armature 46 . Therefore, there is no direct contact between the single drive unit 42 and the second fan blades 38 to cause the second fan blades 38 to rotate.
- each of the first and second fan blades 32 , 38 can include a proximal end 48 and a distal end 50 .
- the proximal end 48 of each of the first and second fan blades 32 , 38 are disposed closer to the respective first and second axes 34 , 40 than the respective distal end 50 of the first and second fan blades 32 , 38 .
- the first and second fan blades 32 , 38 can be any configuration to move gaseous fluid through the respective fans 14 , 16 .
- the magnets 44 are disposed closer to the distal end 50 of one of the plurality of first and second fan blades 32 , 38 than the proximal end 48 of the respective first and second fan blades 32 , 38 .
- the armature 46 can be disposed closer to the distal end 50 of one of the plurality of first and second fan blades 32 , 38 than the proximal end 48 of the respective first and second fan blades 32 , 38 .
- the magnets 44 and the armature 46 are disposed closer to the distal end 50 of the second fan blades 38 than the proximal end 48 of the second fan blades 38 .
- one of the first and second fans 14 , 16 can include an outer ring 52 spaced from the respective first and second central portions 30 , 36 such that the respective plurality of first and second fan blades 32 , 38 are disposed between the outer ring 52 and the respective central portion.
- the magnets 44 are supported by the outer ring 52 of one of the fans 14 , 16 , and the magnets 44 are spaced around the outer ring 52 .
- the magnets 44 are fixed to the outer ring 52 of one of the fans 14 , 16 , and thus, the outer ring 52 , the fan blades 32 , 38 and the magnets 44 rotate about the respective axis simultaneously.
- the magnets 44 can be spaced around the outer ring 52 in any suitable configuration, i.e., evenly spaced from each other, some magnets 44 closer to each other than other magnets 44 , etc.
- the armature 46 can be disposed proximal to, and spaced from, the outer ring 52 .
- the armature 46 can be disposed proximal to, and spaced from the outer ring 52 of the second fan 16 .
- the magnets 44 can be secured or fixed to the outer ring 52 by any suitable way, such as adhesive and/or one or more of fasteners, snaps, tabs, clips, couplers, press fit, friction fit, interference fit, molding, welding, etc.
- the second fan 16 can include the outer ring 52 and the magnets 44 . Therefore, in this configuration, the magnets 44 are supported by the outer ring 52 of the second fan 16 , and the outer ring 52 is spaced radially away from the second axis 40 . In this configuration, the second fan blades 38 are disposed between the outer ring 52 and the second central portion 36 , and the armature 46 is disposed proximal to the outer ring 52 of the second fan 16 .
- the single drive unit 42 is configured to electrify the armature 46 when operating the second fan 16 which in turn causes the magnets 44 to interact with the armature 46 and rotate the plurality of second fan blades 38 .
- the single drive unit 42 indirectly operates the second fan 16 in this configuration. Said differently, the single drive unit 42 operates the second fan 16 as a slave. As such, the armature 46 creates the magnetic field when electrified which causes the magnets 44 to move to rotate the second fan blades 38 .
- the first and second fans 14 , 16 each can include one outer ring 52 spaced radially away from the first and second central portions 30 , 36 respectively.
- the first fan blades 32 can be disposed between the first central portion 30 and the outer ring 52 of the first fan 14
- the second fan blades 38 can be disposed between the second central portion 36 and the outer ring 52 of the second fan 16 .
- the outer ring 52 of the second fan 16 can surround the second fan blades 38 and the outer ring 52 of the first fan 14 can surround the first fan blades 32 .
- only one of the outer rings 52 supports the magnets 44 due to only one of the fans 14 , 16 being the slave fan.
- the magnets 44 are supported by the outer ring 52 of the second fan 16 .
- the magnets 44 are supported by the outer ring 52 of the first fan 14 .
- the second central portion 36 can include a plurality of spokes 54 spaced from each other to create openings 56 through the second central portion 36 .
- the openings 56 allow more gaseous fluid to flow through the second fan 16 than the first fan 14 . Therefore, the openings 56 allow the flow of gaseous fluid therethrough, which increases the amount of gaseous fluid that can be expelled by the second fan 16 than when the second central portion 36 is blocked, and/or allow the fan 16 to be smaller while achieving the same airflow.
- the spokes 54 are spaced radially away from the second axis 40 .
- the first fan 14 can include the spokes 54 and the openings 56 instead of the second fan 16 , and accordingly, the spokes 54 are spaced radially away from the first axis 34 in this configuration.
- the first and second central portions 30 , 36 can each include an inner ring 58 .
- the first fan blades 32 are disposed between the respective outer ring 52 and the respective inner ring 58 .
- the second fan blades 38 are disposed between the respective outer ring 52 and the respective inner ring 58 . Therefore, the first fan blades 32 are surrounded on opposing ends 48 , 50 by the respective outer ring 52 and the respective inner ring 58 .
- the second fan blades 38 are surrounded on opposing ends 48 , 50 by the respective outer ring 52 and the respective inner ring 58 .
- the outer and inner rings 52 , 58 of the second fan 16 can support the second fan blades 38
- the outer and inner rings 52 , 58 of the first fan 14 can support the first fan blades 32 .
- the inner ring 58 When the second fan 16 is operating as the slave fan, the inner ring 58 is disposed between the second fan blades 38 and the spokes 54 . When the first fan 14 is operating as the slave fan, the inner ring 58 is disposed between the first fan blades 32 and the spokes 54 . Therefore, generally, the inner ring 58 surrounds the spokes 54 of one of the first and second fans 14 , 16 in certain configurations.
- the first central portion 30 and the second central portion 36 can be configured different from each other such that one of the central portions 30 , 36 include the spokes 54 and the other one of the central portions 30 , 36 does not include the spokes 54 .
- the inner ring 58 of the first central portion 30 and the inner ring 58 of the second central portion 36 can be configured differently from each other. For example, if the second central portion 36 includes the spokes 54 , then the inner ring 58 of the first central portion 30 can be elongated relative to the first axis 34 to present a wall 60 , and vice versa if the first central portion 30 includes the spokes 54 .
- the first and second fans 14 , 16 can each include an axle 62 about which the first and second fan blades 32 , 38 respectively rotate.
- the axle 62 of the first fan 14 can align with the first axis 34 and the axle 62 of the second fan 16 can align with the second axis 40 .
- a bearing 64 can be disposed between respective axles 62 and respective first and second fans 14 , 16 to minimize friction as the first and second fan blades 32 , 38 rotate.
- the single drive unit 42 When the single drive unit 42 indirectly operates the second fan 16 , then the single drive unit 42 directly operates the first fan 14 .
- at least part of the single drive unit 42 overlaps the first central portion 30 such that the first central portion 30 is at least partially blocked by the at least part of the single drive unit 42 axially relative to the first axis 34 .
- the single drive unit 42 can include a single motor 66 coupled to the first fan 14 to directly operate the first fan 14 to rotate the first fan blades 32 . Therefore, the single motor 66 can be defined as part of the single drive unit 42 that overlaps the first central portion 30 .
- the single motor 66 overlaps the first central portion 30 such that the first central portion 30 is at least partially blocked by the single motor 66 axially relative to the first axis 34 .
- the first central portion 30 is at least partially blocked by the single motor 66 axially relative to the first central portion 30 .
- the single motor 66 blocks part of the first fan 14 .
- the flow of gaseous fluid through the first fan 14 is restricted in the location of the single motor 66 . Therefore, the majority of the gaseous fluid passes through the first fan blades 32 , instead of through the first central portion 30 due to the single motor 66 blocking the first central portion 30 .
- the second fan 16 is not blocked by the single motor 66 which allows more gaseous fluid to move through the second fan 16 .
- the single motor 66 directly operates the first fan 14 and is spaced from the second fan 16 , more gaseous fluid flows through the second fan 16 than the first fan 14 .
- the single motor 66 can be any suitable type of motor that can operate to selectively rotate the first and second fan blades 32 , 38 as described herein.
- Non-limiting examples of the single motor 66 can include an electric motor, a permanent magnet motor, a brushless motor, a brush motor, etc. If utilizing a brushless motor, the voltage of the motor is regulated and an rpm feedback signal loop is utilized to control the speed that the fan blades 32 , 38 rotate.
- a feedback sensor 68 is in communication with the motor and the armature 46 (which is schematically identified by phantom lines) to monitor the position of the fan blades 32 , 38 of the fan 14 , 16 that is indirectly operated and can utilize the rpm feedback signal loop to control the speed that the fan blades 32 , 38 rotate.
- the feedback sensor 68 is not utilized with a brushless motor. Therefore, the feedback sensor 68 is optional depending on the type of motor being utilized.
- the single drive unit 42 indirectly operates the first fan 14
- the single drive unit 42 directly operates the second fan 16 .
- the single motor 66 is coupled to the second fan 16 (instead of the first fan 14 ) to directly operate the second fan 16 to rotate the second fan blades 38 .
- the single motor 66 overlaps the second central portion 36 such that the second central portion 36 is at least partially blocked by the single motor 66 axially relative to the second axis 40 .
- the single motor 66 blocks part of the second fan 16 .
- the flow of gaseous fluid through the second fan 16 is restricted in the location of the single motor 66 . Therefore, the majority of the gaseous fluid passes through the second fan blades 38 , instead of through the second central portion 36 due to the single motor 66 blocking the second central portion 36 .
- the single motor 66 is coupled to one of the first and second fans 14 , 16 by any suitable components to allow the respective first and second fan blades 32 , 38 to rotate when desired. Hence, the manner in which the single motor 66 is coupled to one of the first and second fans 14 , 16 does not restrict the operation of the respective first and second fan blades 32 , 38 .
- the armature 46 cooperates to selective rotate one of the plurality of first and second fan blades 32 , 38 .
- the armature 46 is selectively electrified through the single motor 66 . Therefore, one motor 66 , i.e., the single motor 66 , can be utilized to directly operate one of the fans 14 , 16 and indirectly operate the other one of the fans 14 , 16 through the armature 46 .
- the armature 46 can include a main body 70 and at least one finger 72 extending outwardly away from the main body 70 .
- the finger 72 faces the magnets 44 , and the main body 70 and the finger 72 are spaced from the magnets 44 .
- the single drive unit 42 is configured to electrify the main body 70 and the finger 72 when operating the second fan 16 .
- Any suitable number fingers 72 can be utilized, i.e., one or more fingers 72 can be utilized, and the finger(s) 72 are optional.
- the finger(s) 72 can be any suitable configuration.
- the armature 46 is attached to the single motor 66 by an electrical wire 74 such that the single motor 66 can indirectly operate the armature 46 .
- electricity is delivered or directed to the armature 46 through the single motor 66 by the electrical wire 74 .
- the single motor 66 can receive electricity through a power source 76 . Therefore, another electrical wire 74 can be attached to the single motor 66 and to the power source 76 to deliver or direct electricity to the single motor 66 and then to the armature 46 . It is to be appreciated that any suitable number of electrical wires 74 can be attached to the single motor 66 and the armature 46 .
- the single drive unit 42 can include a controller 78 configured to control the single motor 66 and the armature 46 . Therefore, the controller 78 is in communication with the single motor 66 to selectively operate the first and second fans 14 , 16 , i.e., operate one of the fans 14 , 16 directly by the single motor 66 and operate another one of the fans 14 , 16 indirectly through the armature 46 . Simply stated, one controller 78 is utilized to control both of the first and second fans 14 , 16 . The controller 78 can be in communication with the power source 76 and the single motor 66 to control the single motor 66 and the armature 46 .
- the controller 78 communicates with the single drive unit 42 to directly and indirectly operate the respective first and second fans 14 , 16 when desired. Furthermore, the controller 78 communicates with the power source 76 to deliver or direct electricity to the single motor 66 and/or the armature 46 through the single motor 66 .
- the controller 78 can include a processor 80 and a memory 82 on which is recorded instructions for communicating with the power source 76 and the single motor 66 .
- the controller 78 is configured to execute the instructions from the memory 82 , via the processor 80 .
- the memory 82 can include, tangible, non-transitory computer-readable memory, such as read-only memory (ROM) or flash memory, etc.
- the controller 78 can also have random access memory (RAM), electrically erasable programmable read only memory (EEPROM), a high-speed clock, analog-to-digital (A/D) and/or digital-to-analog (D/A) circuitry, and any required input/output circuitry and associated devices, as well as any required signal conditioning and/or signal buffering circuitry.
- the controller 78 can include all software, hardware, memory 82 , algorithms, connections, sensors, etc., necessary to communication with the power source 76 and the single motor 66 . It is to be appreciated that the controller 78 can be in communication with any other components, modules, vehicle systems, other controllers, etc.
- the fan assembly 12 can also include a shroud 84 .
- the shroud 84 can support the first and second fans 14 , 16 .
- the shroud 84 can define a first aperture 86 disposed along the first axis 34 and a second aperture 88 disposed along the second axis 40 .
- the first and second fans 14 , 16 can be spaced from each other. Therefore, the first and second apertures 86 , 88 can be spaced from each other.
- the first fan 14 can be disposed in the first aperture 86 and the second fan 16 can be disposed in the second aperture 88 .
- the armature 46 can be secured to the shroud 84 adjacent to one of the first and second fans 14 , 16 . More specifically, the armature 46 is fixed to the shroud 84 . The armature 46 can be disposed outside of the first and second fans 14 , 16 . Specifically, the armature 46 can be disposed outside of the outer ring 52 . Therefore, the armature 46 remains stationary relative to movement of the first and second fan blades 32 , 38 . For example, when the second fan 16 is indirectly operated by the single drive unit 42 , the armature 46 can be secured or fixed to the shroud 84 proximal to the magnets 44 and the outer ring 52 of the second fan 16 . It is to be appreciated that more than one armature 46 can be secured to the shroud 84 around the fan 14 , 16 that is to be operated indirectly.
- the shroud 84 can include a first wall 90 defining a periphery of the first aperture 86 .
- the first wall 90 faces the first axis 34 and the outer ring 52 of the first fan 14 faces the first wall 90 .
- the shroud 84 can include a second wall 92 defining a periphery of the second aperture 88 .
- the second wall 92 faces the second axis 40 and the outer ring 52 of the second fan 16 faces the second wall 92 .
- the magnets 44 can face the shroud 84 , and more specifically, the magnets 44 can face one of the first and second walls 90 , 92 .
- the magnets 44 either face the first wall 90 or the second wall 92 .
- the armature 46 can be secured or fixed to the shroud 84 adjacent to the second wall 92 such that the armature 46 can interact with the magnets 44 of the second fan 16 .
- the shroud 84 can include a first bracket 94 that indirectly supports the first fan 14 and a second bracket 96 that indirectly supports the second fan 16 . Therefore, the first and second brackets 94 , 96 are stationary, and the first and second fan blades 32 , 38 can be rotatable relative to the shroud 84 and the first and second brackets 94 , 96 .
- the single motor 66 is supported by the first bracket 94 and the axle 62 of the second fan 16 is supported by the second bracket 96 .
- the single motor 66 is supported by the second bracket 96 and the axle 62 of the first fan 14 is supported by the first bracket 94 .
- the single drive unit 42 can include a plurality of armatures 46 , and each of the fans 14 , 16 can include magnets 44 that interact with respective armatures 46 . Therefore, the general configuration of the second fan 16 , with the corresponding armature 46 , magnets 44 , spokes 54 , second bracket 96 , as shown in FIG. 3 can be duplicated for the first fan 14 such that the first fan 14 has those same features.
- the single motor 66 is remote to the first and second fans 14 , 16 .
- the single motor 66 does not block either of the fans 14 , 16 , and can therefore be supported by the shroud 84 spaced from the fans 14 , 16 as shown by phantom lines labeled with reference number 66 in FIG. 3 . Therefore, referring to FIG. 3 , the single motor 66 shown in solid lines would be removed from the center of the first fan 14 , and the single motor 66 would be moved to a location spaced from both of the fans 14 , 16 such as the illustration of the phantom single motor 66 . It is to be appreciated that the phantom lines for the single motor 66 in FIG. 3 is for illustrative purposes only and can be any suitable location spaced from the first and second fans 14 , 16 .
- each of the armatures 46 are attached to the single motor 66 by respective electrical wires 74 such that the single motor 66 can indirectly operate the armatures 46 .
- electricity is delivered or directed to the armatures 46 through the single motor 66 by the electrical wires 74 .
- the single motor 66 can receive electricity through the power source 76 as discussed above.
- the location of the first and second fans 14 , 16 can be switched.
- the location of the fans 14 , 16 can be switched to move the single motor 66 away from a high heat area and/or to eliminate the need for one or more heat shields.
- the single motor 66 can be moved to any suitable location away from the first and second fans 14 , 16 to indirectly operate both of the fan 14 , 16 which allows the single motor 66 to be moved away from a high heat area, and/or to eliminate the need for one or more heat shields, and/or to move the single motor 66 away from a tight packaging area.
- the fan assembly 12 described herein only utilizes one motor 66 and one controller 78 to selectively operate the first and second fans 14 , 16 , which reduces the number of components required and thus reduces the mass of the assembly 12 .
- the fan 14 , 16 that is indirectly operated i.e., the fan 14 , 16 with the spokes 54 , can have a reduced mass (due to the design not requiring two separate motors and/or due to the spokes 54 /openings 56 area), which allows for less power to be utilized to rotate the fan blades 32 , 38 and/or reduce noise, vibration, harshness (NVH).
- the fan 14 , 16 that is indirectly operated can be reduced in size (due to the design moving the single drive unit 42 away from the fan 14 , 16 ).
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Abstract
Description
- The present disclosure relates to a fan assembly.
- A dual fan assembly can be utilized to cool various engine components. One motor is coupled to one of the fans and another motor is coupled to the other one of the fans, and when both motors operate, both fans can rotate to move air. A single controller is in communication with both of the motors to operate the motors, which causes the fans to rotate when desired. The location of the motors relative to the respective fans blocks movement of the air through the respective fans.
- A single fan assembly has also been developed. The single fan assembly includes a plurality of magnets that interact with an armature to rotate the fan. A single controller is in communication with the fan and energizes the armature which causes the magnets to move and rotate the fan when desired.
- The present disclosure provides a fan assembly including a first fan and a second fan spaced from the first fan. The first fan includes a first central portion disposed along a first axis and a plurality of first fan blades being supported by the first central portion and spaced radially away from the first axis. The second fan includes a second central portion disposed along a second axis and a plurality of second fan blades being supported by the second central portion and spaced radially away from the second axis. The fan assembly also includes a single drive unit configured to selectively operate both of the first and second fans. The single drive unit is spaced from at least one of the first and second fans to indirectly operate at least one of the fans.
- The present disclosure also provides another fan assembly including a shroud and a first fan supported by the shroud. The first fan includes a first central portion and a plurality of first fan blades being supported by the first central portion. The fan assembly also includes a second fan spaced from the first fan and supported by the shroud. The second fan includes a second central portion and a plurality of second fan blades being supported by the second central portion. The fan assembly further includes a single drive unit configured to selectively operate both of the first and second fans. The single drive unit is spaced from at least one of the first and second fans to indirectly operate at least one of the fans.
- The detailed description and the drawings or Figures are supportive and descriptive of the disclosure, but the claim scope of the disclosure is defined solely by the claims. While some of the best modes and other embodiments for carrying out the claims have been described in detail, various alternative designs and embodiments exist for practicing the disclosure defined in the appended claims.
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FIG. 1 is a schematic top view of a vehicle and a fan assembly. -
FIG. 2 is a schematic top view of a condenser, radiator and fan module (CRFM), with the fan assembly being part of the CRFM. -
FIG. 3 is a schematic perspective view of the fan assembly. - Those having ordinary skill in the art will recognize that all directional references (e.g., above, below, upward, up, downward, down, top, bottom, left, right, vertical, horizontal, etc.) are used descriptively for the figures to aid the reader's understanding, and do not represent limitations (for example, to the position, orientation, or use, etc.) on the scope of the disclosure, as defined by the appended claims. Furthermore, the term “substantially” can refer to a slight imprecision or slight variance of a condition, quantity, value, or dimension, etc., some of which that are within manufacturing variance or tolerance ranges.
- Referring to the Figures, wherein like numerals indicate like or corresponding parts throughout the several views, a
vehicle 10 and afan assembly 12 coupled to thevehicle 10 are generally shown inFIG. 1 . - The
fan assembly 12 can be utilized in a vehicle application or a non-vehicle application. Non-limiting examples of thevehicles 10 can include cars, trucks, motorcycles, boats, watercrafts, all-terrain vehicles, off-road vehicles, aircrafts, farm equipment or any other suitable vehicle. Non-limiting examples of the non-vehicles can include machines, farm equipment or any other suitable non-vehicle. - Referring to
FIGS. 2 and 3 , thefan assembly 12 includes afirst fan 14 and asecond fan 16. As best shown inFIG. 3 , the first and 14, 16 are spaced from each other. In certain vehicle applications, thesecond fans fan assembly 12 can be part of a condenser, radiator and fan module (CRFM).FIG. 1 schematically illustrates one non-limiting example of the generally location of the CRFM with thefan assembly 12, andFIG. 2 illustrates a non-limiting example of the assembled components of the CRFM. The CRFM ofFIG. 2 can include acondenser 18, aradiator 20 and thefan assembly 12. Additionally, the CRFM can include an air cooler 22 (seeFIG. 2 ). - The CRFM can be disposed between a
first end 24 of thevehicle 10 and apassenger compartment 26 of thevehicle 10. Generally, a flow of gaseous fluid (see arrow 28) can enter thefirst end 24 of thevehicle 10 through a vent or a grill in the direction of thearrow 28 which is then directed toward the CRFM. The components of the CRFM can be in various locations relative to each other. For example, thecondenser 18 can be disposed upstream to theair cooler 22, theradiator 20 and thefan assembly 12 relative to the direction of the flow of the gaseous fluid. Furthermore, theair cooler 22 can be disposed between thecondenser 18 and theradiator 20. In addition, theradiator 20 can be disposed between theair cooler 22 and thefan assembly 12. As such, thefan assembly 12 can be disposed downstream to thecondenser 18, theair cooler 22 and theradiator 20 relative to the direction of thearrow 28. When thefan assembly 12 is operated, gaseous fluid is expelled either toward thefirst end 24 of thevehicle 10 or toward thepassenger compartment 26. - As best shown in
FIG. 3 , thefirst fan 14 includes a firstcentral portion 30 and a plurality offirst fan blades 32 supported by the firstcentral portion 30. In certain embodiments, the firstcentral portion 30 is disposed along afirst axis 34 and thefirst fan blades 32 are spaced radially away from thefirst axis 34. Thefirst fan blades 32 are selectively rotatable about thefirst axis 34. Thefirst fan blades 32 are spaced from each other to createspaces 35 between each of thefirst fan blades 32 to allow the flow of gaseous fluid therethrough. - As also best shown in
FIG. 3 , thesecond fan 16 includes a secondcentral portion 36 and a plurality ofsecond fan blades 38 supported by the secondcentral portion 36. In certain embodiments, the secondcentral portion 36 is disposed along asecond axis 40 and thesecond fan blades 38 are spaced radially away from thesecond axis 40. Thesecond fan blades 38 are selectively rotatable about thesecond axis 40. Thesecond fan blades 38 are spaced from each other to createspaces 41 between each of thesecond fan blades 38 to allow the flow of gaseous fluid therethrough. Generally, the first and 34, 40 are spaced from each other, and in certain embodiments, spaced substantially parallel to each other.second axes - Continuing with
FIG. 3 , thefan assembly 12 also includes a single drive unit 42 configured to selectively operate both of the first and 14, 16. Generally, the single drive unit 42 is spaced from at least one of the first andsecond fans 14, 16 to indirectly operate at least one of thesecond fans 14, 16. The phrase “at least one of” as used herein should be construed to include the non-exclusive logical “or”, i.e., A and/or B and so on depending on the number of components. For example, the single drive unit 42 can be spaced from both of the first andfans 14, 16 to indirectly operate both of the first andsecond fans 14, 16; or the single drive unit 42 can be spaced from thesecond fans first fan 14 to indirectly operate thefirst fan 14; or the single drive unit can be spaced from thesecond fan 16 to indirectly operate thesecond fan 16. - In certain embodiments, the single drive unit 42 is coupled to one of the first and second
30, 36 to directly operate the corresponding one of thecentral portions 14, 16, and the single drive unit 42 is spaced from the other one of the first andfans 14, 16 to indirectly operate the other one of thesecond fans 14, 16. Therefore, one drive unit 42, i.e., the single drive unit 42, can operate bothfans 14, 16 in a master/slave configuration, which eliminates the need for two separate drive units to operate each fan independently. As such, the number of components for thefans fan assembly 12 is reduced, which can reduce costs and can provide a space and weight savings. Regarding the master/slave configuration, for example, thefirst fan 14 can be operated as the master fan and thesecond fan 16 can be operated as the slave fan. Alternatively, for example, thefirst fan 14 can be operated as the slave fan and thesecond fan 16 can be operated as the master fan. - Referring to
FIG. 3 , one of the first and 14, 16 can include a plurality ofsecond fans magnets 44. In certain embodiments, themagnets 44 are spaced from each other. Simply stated, themagnets 44 can be spaced such that themagnets 44 do not touch each other. It is to be appreciated that themagnets 44 can be any suitable location relative to each other, andFIG. 3 is one suitable example. The single drive unit 42 interacts with themagnets 44 in a spaced apart relationship when indirectly operating the respective one of the first and 14, 16, which causes one of the plurality of first andsecond fans 32, 38 to rotate about the first andsecond fan blades 34, 40 respectively. In certain embodiments, thesecond axes second fan 16 can include themagnets 44. In other embodiments, thefirst fan 14 can include themagnets 44. Furthermore, in yet other embodiments, both of the 14, 16 can include thefans magnets 44. - Furthermore, the single drive unit 42 can include an armature 46 (best shown in
FIG. 3 ) disposed proximal to, and spaced from, themagnets 44. Generally, thearmature 46 is disposed in a fixed position relative to themagnets 44. The single drive unit 42 is configured to electrify thearmature 46 when operating the respective one of the first and 14, 16 which in turn causes thesecond fans magnets 44 to interact with thearmature 46 and rotate one of the plurality of first and 32, 38. Therefore, the single drive unit 42 is configured to indirectly operate one of the first andsecond fan blades 14, 16 by electrifying thesecond fans armature 46, which in turn causes themagnets 44 to interact with thearmature 46 and rotate one of the plurality of first and 32, 38. More specifically, thesecond fan blades armature 46 creates a magnetic field when electrified, and the magnetic field causes themagnets 44 to move to rotate one of the first and 32, 38. Thesecond fan blades magnets 44 respond to electrification of thearmature 46 to selectively rotate one of the plurality of first and 32, 38 due to thesecond fan blades armature 46 acting as a stator that drives motion of one of the first and 32, 38 through thesecond fan blades magnets 44 as a rotor. As such, thearmature 46 acts as a stator that drives motion of one of the plurality of first and 32, 38 through thesecond fan blades magnets 44 as a rotor. - In certain embodiments, the single drive unit 42 is configured to indirectly operate the
second fan 16 by electrifying thearmature 46 which in turn causes themagnets 44 to interact with thearmature 46 and rotate thesecond fan blades 38. Hence, when thesecond fan 16 is operating as the slave fan, thesecond fan blades 38 can rotate relative to the fixedarmature 46. Therefore, there is no direct contact between the single drive unit 42 and thesecond fan blades 38 to cause thesecond fan blades 38 to rotate. - Continuing with
FIG. 3 , each of the first and 32, 38 can include asecond fan blades proximal end 48 and adistal end 50. Generally, theproximal end 48 of each of the first and 32, 38 are disposed closer to the respective first andsecond fan blades 34, 40 than the respectivesecond axes distal end 50 of the first and 32, 38. The first andsecond fan blades 32, 38 can be any configuration to move gaseous fluid through thesecond fan blades 14, 16.respective fans - In certain embodiments, the
magnets 44 are disposed closer to thedistal end 50 of one of the plurality of first and 32, 38 than thesecond fan blades proximal end 48 of the respective first and 32, 38. Furthermore, thesecond fan blades armature 46 can be disposed closer to thedistal end 50 of one of the plurality of first and 32, 38 than thesecond fan blades proximal end 48 of the respective first and 32, 38. In the embodiment with thesecond fan blades magnets 44 being part of thesecond fan 16, themagnets 44 and thearmature 46 are disposed closer to thedistal end 50 of thesecond fan blades 38 than theproximal end 48 of thesecond fan blades 38. - Continuing with
FIG. 3 , one of the first and 14, 16 can include ansecond fans outer ring 52 spaced from the respective first and second 30, 36 such that the respective plurality of first andcentral portions 32, 38 are disposed between thesecond fan blades outer ring 52 and the respective central portion. Generally, themagnets 44 are supported by theouter ring 52 of one of the 14, 16, and thefans magnets 44 are spaced around theouter ring 52. In certain embodiments, themagnets 44 are fixed to theouter ring 52 of one of the 14, 16, and thus, thefans outer ring 52, the 32, 38 and thefan blades magnets 44 rotate about the respective axis simultaneously. Themagnets 44 can be spaced around theouter ring 52 in any suitable configuration, i.e., evenly spaced from each other, somemagnets 44 closer to each other thanother magnets 44, etc. Thearmature 46 can be disposed proximal to, and spaced from, theouter ring 52. In certain embodiments, thearmature 46 can be disposed proximal to, and spaced from theouter ring 52 of thesecond fan 16. It is to be appreciated that themagnets 44 can be secured or fixed to theouter ring 52 by any suitable way, such as adhesive and/or one or more of fasteners, snaps, tabs, clips, couplers, press fit, friction fit, interference fit, molding, welding, etc. - When the
second fan 16 is the slave fan, thesecond fan 16 can include theouter ring 52 and themagnets 44. Therefore, in this configuration, themagnets 44 are supported by theouter ring 52 of thesecond fan 16, and theouter ring 52 is spaced radially away from thesecond axis 40. In this configuration, thesecond fan blades 38 are disposed between theouter ring 52 and the secondcentral portion 36, and thearmature 46 is disposed proximal to theouter ring 52 of thesecond fan 16. The single drive unit 42 is configured to electrify thearmature 46 when operating thesecond fan 16 which in turn causes themagnets 44 to interact with thearmature 46 and rotate the plurality ofsecond fan blades 38. Hence, the single drive unit 42 indirectly operates thesecond fan 16 in this configuration. Said differently, the single drive unit 42 operates thesecond fan 16 as a slave. As such, thearmature 46 creates the magnetic field when electrified which causes themagnets 44 to move to rotate thesecond fan blades 38. - In certain embodiments, the first and
14, 16 each can include onesecond fans outer ring 52 spaced radially away from the first and second 30, 36 respectively. Generally, thecentral portions first fan blades 32 can be disposed between the firstcentral portion 30 and theouter ring 52 of thefirst fan 14, and, thesecond fan blades 38 can be disposed between the secondcentral portion 36 and theouter ring 52 of thesecond fan 16. Theouter ring 52 of thesecond fan 16 can surround thesecond fan blades 38 and theouter ring 52 of thefirst fan 14 can surround thefirst fan blades 32. However, only one of the outer rings 52 supports themagnets 44 due to only one of the 14, 16 being the slave fan. Therefore, for example, if thefans second fan 16 is the slave fan, themagnets 44 are supported by theouter ring 52 of thesecond fan 16. Alternatively, for example, if thefirst fan 14 is the slave fan, themagnets 44 are supported by theouter ring 52 of thefirst fan 14. - Continuing with
FIG. 3 , when thesecond fan 16 is operating as the slave fan, the secondcentral portion 36 can include a plurality of spokes 54 spaced from each other to createopenings 56 through the secondcentral portion 36. In this embodiment, theopenings 56 allow more gaseous fluid to flow through thesecond fan 16 than thefirst fan 14. Therefore, theopenings 56 allow the flow of gaseous fluid therethrough, which increases the amount of gaseous fluid that can be expelled by thesecond fan 16 than when the secondcentral portion 36 is blocked, and/or allow thefan 16 to be smaller while achieving the same airflow. Generally, the spokes 54 are spaced radially away from thesecond axis 40. When thefirst fan 14 is the slave fan, thefirst fan 14 can include the spokes 54 and theopenings 56 instead of thesecond fan 16, and accordingly, the spokes 54 are spaced radially away from thefirst axis 34 in this configuration. - The first and second
30, 36 can each include ancentral portions inner ring 58. Thefirst fan blades 32 are disposed between the respectiveouter ring 52 and the respectiveinner ring 58. Similarly, thesecond fan blades 38 are disposed between the respectiveouter ring 52 and the respectiveinner ring 58. Therefore, thefirst fan blades 32 are surrounded on opposing ends 48, 50 by the respectiveouter ring 52 and the respectiveinner ring 58. Furthermore, thesecond fan blades 38 are surrounded on opposing ends 48, 50 by the respectiveouter ring 52 and the respectiveinner ring 58. As such, the outer and 52, 58 of theinner rings second fan 16 can support thesecond fan blades 38, and the outer and 52, 58 of theinner rings first fan 14 can support thefirst fan blades 32. - When the
second fan 16 is operating as the slave fan, theinner ring 58 is disposed between thesecond fan blades 38 and the spokes 54. When thefirst fan 14 is operating as the slave fan, theinner ring 58 is disposed between thefirst fan blades 32 and the spokes 54. Therefore, generally, theinner ring 58 surrounds the spokes 54 of one of the first and 14, 16 in certain configurations.second fans - The first
central portion 30 and the secondcentral portion 36 can be configured different from each other such that one of the 30, 36 include the spokes 54 and the other one of thecentral portions 30, 36 does not include the spokes 54. As such, thecentral portions inner ring 58 of the firstcentral portion 30 and theinner ring 58 of the secondcentral portion 36 can be configured differently from each other. For example, if the secondcentral portion 36 includes the spokes 54, then theinner ring 58 of the firstcentral portion 30 can be elongated relative to thefirst axis 34 to present awall 60, and vice versa if the firstcentral portion 30 includes the spokes 54. - The first and
14, 16 can each include an axle 62 about which the first andsecond fans 32, 38 respectively rotate. In certain embodiments, the axle 62 of thesecond fan blades first fan 14 can align with thefirst axis 34 and the axle 62 of thesecond fan 16 can align with thesecond axis 40. Optionally, abearing 64 can be disposed between respective axles 62 and respective first and 14, 16 to minimize friction as the first andsecond fans 32, 38 rotate.second fan blades - When the single drive unit 42 indirectly operates the
second fan 16, then the single drive unit 42 directly operates thefirst fan 14. In this configuration, at least part of the single drive unit 42 overlaps the firstcentral portion 30 such that the firstcentral portion 30 is at least partially blocked by the at least part of the single drive unit 42 axially relative to thefirst axis 34. More specifically, as best shown inFIG. 3 , the single drive unit 42 can include asingle motor 66 coupled to thefirst fan 14 to directly operate thefirst fan 14 to rotate thefirst fan blades 32. Therefore, thesingle motor 66 can be defined as part of the single drive unit 42 that overlaps the firstcentral portion 30. As such, thesingle motor 66 overlaps the firstcentral portion 30 such that the firstcentral portion 30 is at least partially blocked by thesingle motor 66 axially relative to thefirst axis 34. Said differently, the firstcentral portion 30 is at least partially blocked by thesingle motor 66 axially relative to the firstcentral portion 30. Simply stated, thesingle motor 66 blocks part of thefirst fan 14. Hence, the flow of gaseous fluid through thefirst fan 14 is restricted in the location of thesingle motor 66. Therefore, the majority of the gaseous fluid passes through thefirst fan blades 32, instead of through the firstcentral portion 30 due to thesingle motor 66 blocking the firstcentral portion 30. When thesingle motor 66 directly operates thefirst fan 14, thesecond fan 16 is not blocked by thesingle motor 66 which allows more gaseous fluid to move through thesecond fan 16. Simply stated, when thesingle motor 66 directly operates thefirst fan 14 and is spaced from thesecond fan 16, more gaseous fluid flows through thesecond fan 16 than thefirst fan 14. - The
single motor 66 can be any suitable type of motor that can operate to selectively rotate the first and 32, 38 as described herein. Non-limiting examples of thesecond fan blades single motor 66 can include an electric motor, a permanent magnet motor, a brushless motor, a brush motor, etc. If utilizing a brushless motor, the voltage of the motor is regulated and an rpm feedback signal loop is utilized to control the speed that the 32, 38 rotate. If utilizing a brush motor, afan blades feedback sensor 68 is in communication with the motor and the armature 46 (which is schematically identified by phantom lines) to monitor the position of the 32, 38 of thefan blades 14, 16 that is indirectly operated and can utilize the rpm feedback signal loop to control the speed that thefan 32, 38 rotate. Hence, thefan blades feedback sensor 68 is not utilized with a brushless motor. Therefore, thefeedback sensor 68 is optional depending on the type of motor being utilized. - Alternatively, when the single drive unit 42 indirectly operates the
first fan 14, then the single drive unit 42 directly operates thesecond fan 16. In this configuration, thesingle motor 66 is coupled to the second fan 16 (instead of the first fan 14) to directly operate thesecond fan 16 to rotate thesecond fan blades 38. Thesingle motor 66 overlaps the secondcentral portion 36 such that the secondcentral portion 36 is at least partially blocked by thesingle motor 66 axially relative to thesecond axis 40. Simply stated, thesingle motor 66 blocks part of thesecond fan 16. Hence, the flow of gaseous fluid through thesecond fan 16 is restricted in the location of thesingle motor 66. Therefore, the majority of the gaseous fluid passes through thesecond fan blades 38, instead of through the secondcentral portion 36 due to thesingle motor 66 blocking the secondcentral portion 36. - The
single motor 66 is coupled to one of the first and 14, 16 by any suitable components to allow the respective first andsecond fans 32, 38 to rotate when desired. Hence, the manner in which thesecond fan blades single motor 66 is coupled to one of the first and 14, 16 does not restrict the operation of the respective first andsecond fans 32, 38.second fan blades - Turning back to the
armature 46, as discussed above, thearmature 46 and themagnets 44 cooperate to selective rotate one of the plurality of first and 32, 38. Thesecond fan blades armature 46 is selectively electrified through thesingle motor 66. Therefore, onemotor 66, i.e., thesingle motor 66, can be utilized to directly operate one of the 14, 16 and indirectly operate the other one of thefans 14, 16 through thefans armature 46. Referring toFIG. 3 , thearmature 46 can include amain body 70 and at least onefinger 72 extending outwardly away from themain body 70. Thefinger 72 faces themagnets 44, and themain body 70 and thefinger 72 are spaced from themagnets 44. The single drive unit 42 is configured to electrify themain body 70 and thefinger 72 when operating thesecond fan 16. Anysuitable number fingers 72 can be utilized, i.e., one ormore fingers 72 can be utilized, and the finger(s) 72 are optional. Furthermore, the finger(s) 72 can be any suitable configuration. - The
armature 46 is attached to thesingle motor 66 by anelectrical wire 74 such that thesingle motor 66 can indirectly operate thearmature 46. Hence, electricity is delivered or directed to thearmature 46 through thesingle motor 66 by theelectrical wire 74. Thesingle motor 66 can receive electricity through apower source 76. Therefore, anotherelectrical wire 74 can be attached to thesingle motor 66 and to thepower source 76 to deliver or direct electricity to thesingle motor 66 and then to thearmature 46. It is to be appreciated that any suitable number ofelectrical wires 74 can be attached to thesingle motor 66 and thearmature 46. - Continuing with
FIG. 3 , the single drive unit 42 can include acontroller 78 configured to control thesingle motor 66 and thearmature 46. Therefore, thecontroller 78 is in communication with thesingle motor 66 to selectively operate the first and 14, 16, i.e., operate one of thesecond fans 14, 16 directly by thefans single motor 66 and operate another one of the 14, 16 indirectly through thefans armature 46. Simply stated, onecontroller 78 is utilized to control both of the first and 14, 16. Thesecond fans controller 78 can be in communication with thepower source 76 and thesingle motor 66 to control thesingle motor 66 and thearmature 46. Therefore, thecontroller 78 communicates with the single drive unit 42 to directly and indirectly operate the respective first and 14, 16 when desired. Furthermore, thesecond fans controller 78 communicates with thepower source 76 to deliver or direct electricity to thesingle motor 66 and/or thearmature 46 through thesingle motor 66. - The
controller 78 can include aprocessor 80 and amemory 82 on which is recorded instructions for communicating with thepower source 76 and thesingle motor 66. Thecontroller 78 is configured to execute the instructions from thememory 82, via theprocessor 80. Thememory 82 can include, tangible, non-transitory computer-readable memory, such as read-only memory (ROM) or flash memory, etc. Thecontroller 78 can also have random access memory (RAM), electrically erasable programmable read only memory (EEPROM), a high-speed clock, analog-to-digital (A/D) and/or digital-to-analog (D/A) circuitry, and any required input/output circuitry and associated devices, as well as any required signal conditioning and/or signal buffering circuitry. Therefore, thecontroller 78 can include all software, hardware,memory 82, algorithms, connections, sensors, etc., necessary to communication with thepower source 76 and thesingle motor 66. It is to be appreciated that thecontroller 78 can be in communication with any other components, modules, vehicle systems, other controllers, etc. - Referring to
FIGS. 2 and 3 , thefan assembly 12 can also include ashroud 84. Generally, theshroud 84 can support the first and 14, 16. Furthermore, as best shown insecond fans FIG. 3 , theshroud 84 can define afirst aperture 86 disposed along thefirst axis 34 and asecond aperture 88 disposed along thesecond axis 40. As discussed above, the first and 14, 16 can be spaced from each other. Therefore, the first andsecond fans 86, 88 can be spaced from each other. Thesecond apertures first fan 14 can be disposed in thefirst aperture 86 and thesecond fan 16 can be disposed in thesecond aperture 88. - Generally, the
armature 46 can be secured to theshroud 84 adjacent to one of the first and 14, 16. More specifically, thesecond fans armature 46 is fixed to theshroud 84. Thearmature 46 can be disposed outside of the first and 14, 16. Specifically, thesecond fans armature 46 can be disposed outside of theouter ring 52. Therefore, thearmature 46 remains stationary relative to movement of the first and 32, 38. For example, when thesecond fan blades second fan 16 is indirectly operated by the single drive unit 42, thearmature 46 can be secured or fixed to theshroud 84 proximal to themagnets 44 and theouter ring 52 of thesecond fan 16. It is to be appreciated that more than onearmature 46 can be secured to theshroud 84 around the 14, 16 that is to be operated indirectly.fan - Continuing with
FIG. 3 , theshroud 84 can include a first wall 90 defining a periphery of thefirst aperture 86. Generally, the first wall 90 faces thefirst axis 34 and theouter ring 52 of thefirst fan 14 faces the first wall 90. Furthermore, theshroud 84 can include asecond wall 92 defining a periphery of thesecond aperture 88. Generally, thesecond wall 92 faces thesecond axis 40 and theouter ring 52 of thesecond fan 16 faces thesecond wall 92. Themagnets 44 can face theshroud 84, and more specifically, themagnets 44 can face one of the first andsecond walls 90, 92. Therefore, depending on which of the 14, 16 is to be indirectly operated, thefans magnets 44 either face the first wall 90 or thesecond wall 92. For example, when thesecond fan 16 is indirectly operated by the single drive unit 42, thearmature 46 can be secured or fixed to theshroud 84 adjacent to thesecond wall 92 such that thearmature 46 can interact with themagnets 44 of thesecond fan 16. - The
shroud 84 can include afirst bracket 94 that indirectly supports thefirst fan 14 and asecond bracket 96 that indirectly supports thesecond fan 16. Therefore, the first and 94, 96 are stationary, and the first andsecond brackets 32, 38 can be rotatable relative to thesecond fan blades shroud 84 and the first and 94, 96. When thesecond brackets first fan 14 is directly operated by the single drive unit 42, thesingle motor 66 is supported by thefirst bracket 94 and the axle 62 of thesecond fan 16 is supported by thesecond bracket 96. When thesecond fan 16 is directly operated by the single drive unit 42, thesingle motor 66 is supported by thesecond bracket 96 and the axle 62 of thefirst fan 14 is supported by thefirst bracket 94. - When the single drive unit 42 indirectly operates both of the
14, 16, the single drive unit 42 can include a plurality offans armatures 46, and each of the 14, 16 can includefans magnets 44 that interact withrespective armatures 46. Therefore, the general configuration of thesecond fan 16, with the correspondingarmature 46,magnets 44, spokes 54,second bracket 96, as shown inFIG. 3 can be duplicated for thefirst fan 14 such that thefirst fan 14 has those same features. In this embodiment, thesingle motor 66 is remote to the first and 14, 16. As such, thesecond fans single motor 66 does not block either of the 14, 16, and can therefore be supported by thefans shroud 84 spaced from the 14, 16 as shown by phantom lines labeled withfans reference number 66 inFIG. 3 . Therefore, referring toFIG. 3 , thesingle motor 66 shown in solid lines would be removed from the center of thefirst fan 14, and thesingle motor 66 would be moved to a location spaced from both of the 14, 16 such as the illustration of the phantomfans single motor 66. It is to be appreciated that the phantom lines for thesingle motor 66 inFIG. 3 is for illustrative purposes only and can be any suitable location spaced from the first and 14, 16.second fans - Continuing with the single drive unit 42 indirectly operating both of the
14, 16, each of thefans armatures 46 are attached to thesingle motor 66 by respectiveelectrical wires 74 such that thesingle motor 66 can indirectly operate thearmatures 46. Hence, electricity is delivered or directed to thearmatures 46 through thesingle motor 66 by theelectrical wires 74. Thesingle motor 66 can receive electricity through thepower source 76 as discussed above. - As indicated above, the location of the first and
14, 16 can be switched. For example, the location of thesecond fans 14, 16 can be switched to move thefans single motor 66 away from a high heat area and/or to eliminate the need for one or more heat shields. Also, thesingle motor 66 can be moved to any suitable location away from the first and 14, 16 to indirectly operate both of thesecond fans 14, 16 which allows thefan single motor 66 to be moved away from a high heat area, and/or to eliminate the need for one or more heat shields, and/or to move thesingle motor 66 away from a tight packaging area. Furthermore, thefan assembly 12 described herein only utilizes onemotor 66 and onecontroller 78 to selectively operate the first and 14, 16, which reduces the number of components required and thus reduces the mass of thesecond fans assembly 12. Additionally, the 14, 16 that is indirectly operated, i.e., thefan 14, 16 with the spokes 54, can have a reduced mass (due to the design not requiring two separate motors and/or due to the spokes 54/fan openings 56 area), which allows for less power to be utilized to rotate the 32, 38 and/or reduce noise, vibration, harshness (NVH). In addition, thefan blades 14, 16 that is indirectly operated can be reduced in size (due to the design moving the single drive unit 42 away from thefan fan 14, 16). - While the best modes and other embodiments for carrying out the disclosure have been described in detail, those familiar with the art to which this disclosure relates will recognize various alternative designs and embodiments for practicing the disclosure within the scope of the appended claims. Furthermore, the embodiments shown in the drawings or the characteristics of various embodiments mentioned in the present description are not necessarily to be understood as embodiments independent of each other. Rather, it is possible that each of the characteristics described in one of the examples of an embodiment can be combined with one or a plurality of other desired characteristics from other embodiments, resulting in other embodiments not described in words or by reference to the drawings. Accordingly, such other embodiments fall within the framework of the scope of the appended claims.
Claims (20)
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US15/210,173 US20180017063A1 (en) | 2016-07-14 | 2016-07-14 | Fan assembly |
| CN201710475787.0A CN107620726A (en) | 2016-07-14 | 2017-06-21 | Fan component |
| DE102017114564.8A DE102017114564A1 (en) | 2016-07-14 | 2017-06-29 | FAN ASSEMBLY |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US15/210,173 US20180017063A1 (en) | 2016-07-14 | 2016-07-14 | Fan assembly |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| US20180017063A1 true US20180017063A1 (en) | 2018-01-18 |
Family
ID=60783052
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US15/210,173 Abandoned US20180017063A1 (en) | 2016-07-14 | 2016-07-14 | Fan assembly |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US20180017063A1 (en) |
| CN (1) | CN107620726A (en) |
| DE (1) | DE102017114564A1 (en) |
Cited By (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN110821636A (en) * | 2018-08-13 | 2020-02-21 | 卡特彼勒路面机械公司 | Cooling package for machine |
| KR20200089440A (en) * | 2019-01-17 | 2020-07-27 | 한온시스템 주식회사 | Asymmetric dual fan shroud |
| US10744855B2 (en) * | 2018-02-19 | 2020-08-18 | Toyota Jidosha Kabushiki Kaisha | Cooling device for vehicle |
| US20220260083A1 (en) * | 2020-10-02 | 2022-08-18 | Therma-Stor LLC | Portable blower fan assembly |
| US20240183571A1 (en) * | 2020-05-08 | 2024-06-06 | Tyco Fire & Security Gmbh | Condenser fan rotation restriction system |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20040066156A1 (en) * | 2002-10-03 | 2004-04-08 | John Makaran | Dual motor configuration with primary brushless motor and secondary integrated speed control motor |
| US20090027853A1 (en) * | 2007-07-24 | 2009-01-29 | Brose Fahrzeugteile Gmbh & Co. | Tangential drive module assembly and method of assembly for airflow induction |
| US20170254335A1 (en) * | 2016-03-03 | 2017-09-07 | Hamilton Sundstrand Corporation | Bearing free axial fan |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE10321732B4 (en) * | 2003-05-14 | 2013-08-01 | Robert Bosch Gmbh | Cooling of the control of cooling fans for motor vehicle engines |
| CN203717399U (en) * | 2014-03-24 | 2014-07-16 | 瑞安市日正汽车部件有限公司 | Double-impeller vehicle radiator fan |
-
2016
- 2016-07-14 US US15/210,173 patent/US20180017063A1/en not_active Abandoned
-
2017
- 2017-06-21 CN CN201710475787.0A patent/CN107620726A/en active Pending
- 2017-06-29 DE DE102017114564.8A patent/DE102017114564A1/en not_active Withdrawn
Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20040066156A1 (en) * | 2002-10-03 | 2004-04-08 | John Makaran | Dual motor configuration with primary brushless motor and secondary integrated speed control motor |
| US20090027853A1 (en) * | 2007-07-24 | 2009-01-29 | Brose Fahrzeugteile Gmbh & Co. | Tangential drive module assembly and method of assembly for airflow induction |
| US20170254335A1 (en) * | 2016-03-03 | 2017-09-07 | Hamilton Sundstrand Corporation | Bearing free axial fan |
Cited By (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10744855B2 (en) * | 2018-02-19 | 2020-08-18 | Toyota Jidosha Kabushiki Kaisha | Cooling device for vehicle |
| CN110821636A (en) * | 2018-08-13 | 2020-02-21 | 卡特彼勒路面机械公司 | Cooling package for machine |
| KR20200089440A (en) * | 2019-01-17 | 2020-07-27 | 한온시스템 주식회사 | Asymmetric dual fan shroud |
| KR102559335B1 (en) | 2019-01-17 | 2023-07-26 | 한온시스템 주식회사 | Asymmetric dual fan shroud |
| US20240183571A1 (en) * | 2020-05-08 | 2024-06-06 | Tyco Fire & Security Gmbh | Condenser fan rotation restriction system |
| US12359842B2 (en) * | 2020-05-08 | 2025-07-15 | Johnson Controls Light Commercial Ip Gmbh | Condenser fan rotation restriction system |
| US20220260083A1 (en) * | 2020-10-02 | 2022-08-18 | Therma-Stor LLC | Portable blower fan assembly |
| US12168982B2 (en) * | 2020-10-02 | 2024-12-17 | Therma-Stor LLC | Portable blower fan assembly |
| US20250052249A1 (en) * | 2020-10-02 | 2025-02-13 | Therma-Stor LLC | Portable blower fan assembly |
Also Published As
| Publication number | Publication date |
|---|---|
| DE102017114564A1 (en) | 2018-01-18 |
| CN107620726A (en) | 2018-01-23 |
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