WO2023208097A1 - Dispositif de commande de fluide et dispositif de pompe électrique - Google Patents

Dispositif de commande de fluide et dispositif de pompe électrique Download PDF

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Publication number
WO2023208097A1
WO2023208097A1 PCT/CN2023/091086 CN2023091086W WO2023208097A1 WO 2023208097 A1 WO2023208097 A1 WO 2023208097A1 CN 2023091086 W CN2023091086 W CN 2023091086W WO 2023208097 A1 WO2023208097 A1 WO 2023208097A1
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WO
WIPO (PCT)
Prior art keywords
assembly
pump
limiting
stator
bearing
Prior art date
Application number
PCT/CN2023/091086
Other languages
English (en)
Chinese (zh)
Inventor
张峻
鲍俊峰
胡骏迪
汪立新
Original Assignee
浙江三花汽车零部件有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 浙江三花汽车零部件有限公司 filed Critical 浙江三花汽车零部件有限公司
Publication of WO2023208097A1 publication Critical patent/WO2023208097A1/fr

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D13/00Pumping installations or systems
    • F04D13/02Units comprising pumps and their driving means
    • F04D13/06Units comprising pumps and their driving means the pump being electrically driven
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/60Mounting; Assembling; Disassembling
    • F04D29/62Mounting; Assembling; Disassembling of radial or helico-centrifugal pumps

Definitions

  • the present application relates to the field of fluid control, and specifically to a fluid control device and an electric pump device.
  • the thermal management system usually includes multiple fluid components, at least one of which includes a pump component. How to better axially limit the pump component is an issue that needs to be solved urgently.
  • the purpose of this application is to provide a fluid control device and an electric pump device to facilitate axial limitation of the pump assembly.
  • the fluid control device includes a driving assembly, at least two fluid sub-assemblies, a limiting assembly and a main housing. At least one fluid sub-assembly includes a pump assembly.
  • the driving assembly includes a stator assembly
  • the pump assembly includes a rotor assembly, a positioning shaft and an isolation sleeve
  • the rotor assembly is limited to the positioning shaft
  • the rotor assembly includes a magnetic assembly, at least part of the magnetic assembly is located on the Within the magnetic field range of the stator assembly in the working state, at least part of the isolation sleeve is located between the stator assembly and the rotor assembly, and at least part of the isolation sleeve is located between the stator assembly and the rotor assembly.
  • the main housing has a first chamber, and at least part of the pump assembly is located in the first chamber;
  • the positioning shaft is located inside the rotor assembly, and the axial direction of the positioning shaft is The first side is limited to the isolation sleeve, the limiting component is provided close to the second side in the axial direction of the positioning shaft, and the limiting component is limited to the positioning shaft.
  • inventions of the present application provide an electric pump device.
  • the electric pump device has a stator assembly, a pump assembly and a limiting assembly.
  • the pump assembly includes a rotor assembly, a positioning shaft and an isolation sleeve.
  • the rotor assembly is connected to the The positioning shaft limit setting, the rotor assembly includes a magnetic assembly, at least part of the magnetic assembly is located within the magnetic field range of the stator assembly in the working state, and at least part of the isolation sleeve is located between the stator assembly and the between rotor components;
  • the positioning shaft is located inside the rotor assembly, the first side of the positioning shaft in the axial direction is limited to the isolation sleeve, and the limiting component is close to the axial direction of the positioning shaft.
  • the second side is set, and the limiting component and the rotor component are set in limiting positions.
  • the fluid control device includes a pump assembly and a limiting assembly.
  • the first side of the positioning shaft of the pump assembly is connected to the isolation sleeve for limiting, and the other side is limited to the limiting assembly.
  • the position setting enables the limit assembly to axially limit the positioning shaft.
  • the rotor assembly and the positioning shaft are limit set to facilitate the axial limitation of the rotor assembly, thereby facilitating the axial limitation of the pump assembly through the limit assembly. Better axial limit.
  • the electric pump device includes a limiting component, it is convenient to axially limit the rotor assembly and the positioning shaft.
  • Figure 1 is an exploded structural schematic diagram of a fluid control device provided by the first embodiment of the present application
  • Figure 2 is a schematic three-dimensional structural diagram of the fluid control device shown in Figure 1;
  • Figure 3 is a schematic exploded structural diagram of a driving assembly provided by an embodiment of the present application.
  • Figure 4 is a schematic three-dimensional structural diagram of the driving assembly shown in Figure 3;
  • Figure 5 is a schematic cross-sectional structural view of a driving assembly shown in Figure 4.
  • Figure 6 is a partial cross-sectional structural schematic diagram of the combined structure of the first housing and the driving component provided by an embodiment of the present application;
  • Figure 7 is a schematic cross-sectional structural diagram of another driving assembly of the present application.
  • Figure 8 is a schematic cross-sectional structural diagram of yet another driving assembly of the present application.
  • Figure 9 is a schematic three-dimensional structural diagram of the stator assembly shown in Figure 4.
  • Figure 10 is a schematic exploded structural view of a fluid component provided by an embodiment of the present application.
  • Figure 11 is a schematic three-dimensional structural diagram of the fluid assembly shown in Figure 10;
  • Figure 12 is a schematic cross-sectional structural diagram of the first fluid component shown in Figure 11 at one of its positions;
  • Figure 13 is a partial cross-sectional structural schematic diagram of the fluid assembly provided by the second embodiment of the present application.
  • Figure 14 is a schematic three-dimensional structural diagram of the main housing provided by an embodiment of the present application.
  • Figure 15 is a schematic cross-sectional structural view of the main housing shown in Figure 14;
  • Figure 16 is a schematic cross-sectional structural view of a fluid component shown in Figure 13;
  • Figure 17 is a partial cross-sectional structural schematic diagram of the fluid control device provided by the first embodiment of the present application.
  • Figure 18 is an enlarged structural schematic diagram of Q1 in Figure 17;
  • Figure 19 is a partial cross-sectional structural schematic diagram of the first combined structure of a driving component and a fluid component of the present application
  • Figure 20 is an enlarged schematic diagram of a partial structure of the combined structure of the driving assembly and the fluid assembly shown in Figure 19;
  • Figure 21 is a partial cross-sectional structural schematic diagram of the combined structure of the second driving component and fluid component of the present application.
  • Figure 22 is a partial cross-sectional structural schematic diagram of the third combined structure of the driving component and the fluid component of the present application.
  • Figure 23 is a partial cross-sectional structural schematic diagram of the fourth combined structure of a driving component and a fluid component of the present application.
  • Figure 24 is a partial cross-sectional structural schematic diagram of the fifth combined structure of a driving component and a fluid component of the present application.
  • Figure 25 is a partial cross-sectional structural schematic diagram of the sixth combined structure of a driving component and a fluid component of the present application.
  • Figure 26 is a partial cross-sectional structural schematic diagram of the seventh combined structure of a driving component and a fluid component of the present application;
  • Figure 27 is a schematic exploded view of the fluid control device provided by the second embodiment of the present application.
  • Figure 28 is a schematic three-dimensional structural view of the fluid control device shown in Figure 27;
  • Figure 29 is an exploded structural diagram of a driving assembly shown in Figure 27;
  • Figure 30 is a schematic three-dimensional structural view of the driving assembly shown in Figure 29;
  • Figure 31 is a schematic cross-sectional structural view of a driving assembly shown in Figure 29;
  • Figure 32 is an exploded structural schematic view of the fluid assembly shown in Figure 27;
  • Figure 33 is a schematic three-dimensional structural diagram of the fluid assembly shown in Figure 32;
  • Figure 34 is a schematic front structural view of the fluid control device shown in Figure 27;
  • Figure 35 is a schematic cross-sectional structural diagram of the fluid control device shown in Figure 34 at A-A;
  • Figure 36 is a schematic cross-sectional structural diagram of the fluid control device shown in Figure 34 at B-B;
  • Figure 37 is a schematic cross-sectional structural diagram of the fluid assembly shown in Figure 33 at one of its positions;
  • Figure 38 is a schematic cross-sectional structural diagram of the fluid assembly shown in Figure 33 at another position;
  • Figure 39 is a partial structural schematic diagram of a fluid control device shown in Figure 27;
  • Figure 40 is a schematic cross-sectional structural view of the fluid control device shown in Figure 27 at yet another position;
  • Figure 41 is a schematic block diagram of the connection of the first valve assembly, the first pump assembly and the second pump assembly shown in Figure 27 in the first working mode;
  • Figure 42 is a schematic block diagram of the connection of the first valve assembly, the first pump assembly and the second pump assembly shown in Figure 27 in the second working mode;
  • Figure 43 is a schematic block diagram of the connection of the first valve assembly, the first pump assembly and the second pump assembly shown in Figure 27 in the third working mode;
  • Figure 44 is a schematic block diagram of the connection of the first valve assembly, the first pump assembly and the second pump assembly shown in Figure 27 in the fourth working mode;
  • Figure 45 is a schematic block diagram of a manufacturing method of a fluid control device provided by an embodiment of the present application.
  • the fluid control device provided in the embodiment of the present application can be applied to a thermal management system, for example, it can be used in a vehicle thermal management system.
  • the fluid is controlled by the fluid control device to facilitate the flow of fluid in the thermal management system.
  • the embodiment of the present application provides a fluid control device 1.
  • the fluid control device 1 includes a driving component 100 and a fluid component 200.
  • the driving component 100 and the fluid component 200 are sealingly connected.
  • the driving assembly 100 is integrally assembled with the fluid assembly 200, and a sealing member is provided between the driving assembly 100 and the fluid assembly 200 to achieve a sealed connection between the two.
  • the drive assembly 100 includes at least two drive components 13, which may include a stator assembly 130, a motor 132, or a combination of the motor 132 and a gear assembly 133.
  • the fluid assembly 200 includes at least two fluid subassemblies LK, and the fluid subassembly LK includes an action components, the fluid subassembly LK may include one or a combination of the valve assembly 30 and the pump assembly 20.
  • the actuating member in the valve assembly 30 includes a valve core, and the actuating member in the pump assembly 20 includes a rotor assembly. When power is supplied to the driving component 13, the driving component 13 can move the action parts in the fluid subassembly LK.
  • the stator assembly 130 when the stator assembly 130 is powered, the stator assembly generates a magnetic field, and the rotor assembly rotates under the action of the magnetic field; or when the motor 132 When powered, the output shaft of the motor 132 rotates, which can drive the valve core in the valve assembly 30 to rotate.
  • the number of driving components 13 can be the same as the number of fluid subassemblies LK and correspond one to one. After one driving component 13 is energized, it can make the action parts in a corresponding fluid subassembly LK move. Through the fluid subassembly 200, The action of the assembly LK enables fluid to flow within the fluid control device 1 .
  • the number of driving components 13 can also be different from the number of fluid subassemblies LK.
  • the number of driving components 13 can also be less than the number of fluid subassemblies LK, so that one driving component 13 can drive at least two fluids.
  • the sub-assembly LK can, for example, use a clutch mechanism to enable one driving component 13 to drive at least two fluid sub-assemblies LK.
  • the number of fluid subassemblies LK is five, correspondingly, the number of driving components 13 is five, and the five driving components correspond to the five fluid subassemblies LK one-to-one.
  • the number of fluid subassemblies LK and the number of driving components 13 can be set according to the user's needs, and can be two, three, four or six or more.
  • the embodiment of the present application also provides a driving assembly 100.
  • the driving assembly 100 further includes a first housing 11 and a second housing 12.
  • the driving assembly 100 has a first accommodation cavity 101.
  • the first housing 11 and the second housing 12 form at least part of the wall of the first accommodation cavity 101.
  • the second housing 11 includes a top cover, and the top cover and the bottom wall 111 are along the drive assembly.
  • 100 are arranged oppositely in the height direction, the first housing 11 and the second housing 12 are buckled together to form a first accommodation cavity 101, and at least part of the at least two driving components 13 are located in the first accommodation cavity 101, so that the at least two driving components 13 They are all integrated into one driving assembly 100.
  • all the driving components 13 may be connected with the first housing 11 in a limited position, or a part of the driving components 13 may be connected with the first housing 11 in a limited position, which is not limited in this application.
  • the first housing 11 includes a bottom wall 111 , a limiting part 112 and a peripheral side wall 113 .
  • the peripheral side wall 113 is connected to the bottom wall 111
  • the bottom wall 113 is connected to the bottom wall 111 .
  • 111 is connected to the limiting part 112.
  • the peripheral side wall 113, the bottom wall part 111 and the limiting part 112 can be fixed as an integrated structure by injection molding, or fixedly connected by welding, or limitedly connected by fasteners and the like. At least part of the limiting portion 112 protrudes from the bottom wall portion 111 along the height direction of the driving assembly 100 .
  • At least one driving component 13 includes a stator assembly 130 , the driving component including the stator assembly 130 is defined as a first driving component, and at least part of the first driving component is connected to the limiting portion 112 . As shown in FIGS. 3 to 8 , at least part of the stator assembly 130 included in the first driving component is located in the limiting part 112 , or the first driving component may also include a pump housing, and at least part of the stator assembly 130 is located in the pump housing. In the chamber, for example, the stator assembly 130 can be injection-molded and fixed to the pump shell as an insert or assembled into the cavity of the pump shell.
  • at least part of the stator assembly 130 is connected to the limiting part 112 to form an integral structure with the limiting part 112 through an injection molding process, so that at least part of the first driving part It is located in the limiting part 112 , or the first driving component is provided separately from the first housing 11 .
  • the limiting part 112 has a cavity. At least part of the first driving component may also be located in the cavity formed by the limiting part 112 .
  • the number of driving components 13 included in the driving assembly 100 is five. Along the height direction of the driving assembly 100 , there is a gap between the orthographic projections of the five driving components 13 .
  • the three driving components 13 include stator assemblies 130, and each of the three stator assemblies 130 can be limitedly connected to the corresponding limiting portion 112 and located within the corresponding limiting portion 112.
  • one of the driving components 13 of the driving assembly 100 includes the stator assembly 130, and the other driving components may be driving components such as motors, thereby realizing the integration of different types of driving components 13.
  • At least part of the limiting part 112 extends from the bottom wall 111 in a direction away from the first accommodation cavity 101. At this time, at least part of the limiting part 112 extends from the bottom wall 111.
  • the portion 111 extends in a direction close to the fluid subassembly LK, and at least part of the limiting portion 112 protrudes from the bottom wall portion 111 in a direction away from the second housing 12 .
  • the stator assembly 130 and the limiting portion 112 can be injection-molded and fixed.
  • the injection-molded fixation means that the stator assembly 130 is an integral structure.
  • the stator assembly 130 can be used as an insert and integrally injection molded with the first housing 11, so that the stator assembly 130 and the limiting portion 112 are injection molded into an integrated structure.
  • the stator assembly 130 can lead out electrical connection wires during injection molding.
  • the electrical connecting wire may be electrically connected to the control part; or as shown in FIG. 7 , the limiting part 112 includes an installation cavity QS, at least part of the stator assembly 130 is located in the installation cavity QS, and the stator assembly 130 may be connected to the first housing 11 through a tight connection.
  • Firmware and other methods limit the connection. Through the above arrangement, it is convenient to limit the stator assembly 130 and the limiting part 112 .
  • stator assemblies 130 When at least two driving components 13 both include stator assemblies 130 , the entire number of stator assemblies 130 and the limiting portion 112 can be injection molded into an integral structure, or the entire number of stator assemblies 130 can be assembled into the installation cavity formed by the limiting portion 112 In the QS, either a part of the stator components 130 and the limiting part 112 are injection molded into an integrated structure, and the other part of the stator components 130 and the limiting part 112 are injection molded into an integrated structure.
  • the driving assembly in the embodiment of the present application also includes a control part 15.
  • the control part 15 can be a circuit board.
  • the driving part including the stator assembly 130 is defined as the first driving part. , in some other embodiments.
  • the first driving component also includes a pump housing 135, a transition terminal 134 connected to the pump housing 135, and a connecting plate 136.
  • the stator assembly 130 is separated from the first housing 11.
  • the stator assembly 130 can be injection molded into an integrated structure with the pump housing 135. ,or Or the stator assembly 130 is assembled into the cavity defined by the pump shell 135. At this time, the stator assembly 130 and the pump shell 135 are both assembled into the installation cavity QS formed by the limiting portion 112.
  • At least part of the stator assembly 130 and the connecting plate 136 are located in the pump.
  • the pump shell 135 is sealingly connected to the first shell 11.
  • the pump shell 135 can be sealingly connected to the first shell 11 through a sealing ring, or the pump shell 135 and the first shell
  • the limiting part 112 of 11 is injection molded into an integrated structure.
  • the stator assembly 130 includes a coil winding 1303.
  • the coil winding 1303 is electrically connected to the pins in the transition terminal 134 through the conductive parts in the connecting plate 136.
  • a portion of the transition terminal 134 passes through the bottom wall 111 and is located in the first accommodation cavity 101.
  • the transition terminal 134 is electrically connected to the control member 15 .
  • the driving component here includes the stator assembly 130 or the motor 132, and the driving component may also include a lead structure or a terminal structure that enables the control member 15 to be electrically connected to the stator assembly 130 or the motor 132.
  • a metal conductive structure can be provided in the first housing 11.
  • the metal conductive structure can be injection molded into an integral structure with the first housing 11, so that the metal conductive structure is pre-embedded in the first housing 11. inside the first housing 11.
  • the output terminal 1304 of the stator assembly 130 can use insulation displacement connectors (IDC), and at this time, it can be electrically connected to the control component 15 through the IDC pin.
  • IDC insulation displacement connectors
  • the driving assembly 100 of the embodiment of the present application includes three stator assemblies 130.
  • the stator assembly 130 includes an insulating frame 1301, a stator core 1302 and a coil winding 1303. Part of the stator core 1302 is embedded in the insulating frame 1301. Inside, the coil winding 1303 is wound around the insulating frame 1301. When the coil winding 1303 is energized, a magnetic field can be generated.
  • the rotor assembly 22 in the pump assembly 20 can be located within the magnetic field range of the corresponding stator assembly 130, so that the stator assembly 130 can drive the rotor assembly. 22 turns.
  • the stator assembly 130 can be integrated into the driving assembly 100 .
  • the fluid control device may further include an isolation sleeve 23 , a portion of which is located on the inner peripheral side of the stator assembly 130 .
  • the isolation sleeve 23 may be connected to the first housing 11 Injection molding is an integral structure.
  • the isolation sleeve 23 can be injection molded into an integral structure with the limiting portion 112.
  • the stator assembly 130 can be injection molded into an integral structure with the limiting portion 112, or the stator assembly 130 can be located in the installation cavity QS of the limiting portion 112. Inside.
  • the isolation sleeve 23 and the stator assembly 130 are injection molded into an integral structure or at least part of the stator assembly 130 are located in the cavity formed by the isolation sleeve 23 .
  • the isolation sleeve 23 and the stator assembly 130 are separated from the first housing 11 as a whole and are sealingly connected.
  • the overall structure formed by the isolation sleeve 23 and the stator assembly 130 is in contact with the first housing 11 A sealing ring is provided between them, and the sealing arrangement between the overall structure and the first housing 11 is achieved by clamping the sealing ring.
  • the isolation sleeve 23 can be injection molded into an integral structure with the first housing 11 , or the isolation sleeve 23 and the first housing 11 can be separated and sealed. connect.
  • the isolation sleeve 23 may be injection molded into an integral structure with the first housing 11 , or the isolation sleeve 23 may be separated from the first housing 11 and connected in a sealed manner, or the isolation sleeve 23 may be separated from the first housing 11 and sealed.
  • the sleeve 23 and the stator assembly 130 are injection molded into an integral structure, and the isolation sleeve 23 and the stator assembly 130 as a whole are separated from the first housing 11 and connected in a sealing manner.
  • the limiting connection methods between different stator assemblies 130 and the first housing 11 may be the same or different, and the isolation sleeves 23 corresponding to different stator assemblies 130 may be connected to the first housing 11 in the same manner.
  • the connection methods of 11 can be the same or different.
  • the fluid assembly 200 further includes a main housing 40.
  • the main housing 40 has a chamber, and at least part of the fluid subassembly LK is located in the corresponding chamber.
  • the fluid subassembly LK includes at least two pump assemblies 20.
  • the pump assembly 20 includes a rotor assembly 22. Parts of a rotor assembly 22 can be nested with a corresponding stator assembly 130, so that the stator assembly 130 can drive the rotor when energized. Assembly 22 rotates, or the stator assembly 130 and rotor assembly 22 may also be disk-shaped structures.
  • One of the pump components is defined as a first pump component 20a, and the other pump component is defined as a second pump component 20b.
  • the first pump component 20a includes a first rotor component 22a
  • the second pump component 20b includes a second rotor component 22b
  • the assembly 22a can be located within the magnetic field range of the first stator assembly 130a
  • the second rotor assembly 22b can be located within the magnetic field range of the second stator assembly 130b.
  • the number of pump components can be set according to the user's needs, for example, it can be two, three, four or more.
  • the number of the three fluid sub-assemblies LK includes Pump assembly 20, the three pump assemblies 20 are respectively the first pump assembly 20a, the second pump assembly 20b and the third pump assembly 20c, and there is a gap between the three pump assemblies.
  • At least one fluid subassembly LK includes a pump assembly 20, at least one fluid subassembly LK includes a valve assembly 30, and the valve assembly 30 includes a valve core 31 and
  • the valve core shaft 32 and the valve core 31 can be injection molded into an integral structure with the valve core shaft 32, or connected through an interference fit or a connecting key.
  • the valve core 31 is drivingly connected to the output shaft of the motor 132 through the valve core shaft 32.
  • the valve core 31 It can rotate or translate under the power of the motor 132.
  • the valve core 31 can be driven to rotate, thereby facilitating the realization of multiple working modes of the fluid control device 1 .
  • the transmission connection between two components means that the driving force can be transmitted between the two components.
  • the two components can be directly connected by transmission or indirectly connected by transmission.
  • the valve core shaft 32 of the valve assembly 30 may be directly connected to the motor 132 in transmission, or the driving assembly 100 may further include a gear assembly 133 , and the motor 132 may be in transmission connection to the valve core shaft 32 of the valve core 31 through the gear assembly 133 .
  • the number of valve assemblies 30 can be set according to the user's needs.
  • two of the fluid subassemblies LK in this embodiment include valve assemblies 30.
  • the driving assembly 100 includes The two motors 132 realize the action of the motor 132 driving the corresponding valve assembly 30 .
  • the pump assembly 20 includes a rotor assembly 22 , and the isolation sleeve 23 of the fluid control device is covered on the outer peripheral side of the rotor assembly 22 .
  • the isolation sleeve 23 By providing the isolation sleeve 23, the stator assembly 130 and the corresponding rotor assembly 22 can be isolated from each other to prevent the working fluid from entering the space where the stator assembly 130 is located.
  • the main housing 40 is located on a side of the first housing 11 away from the first accommodation chamber 101. As shown in FIG. 1, the main housing 40 At least part of the main housing 11 is located on the side of the first housing 11 away from the second housing 12.
  • the main housing 40 also includes a take-over 41.
  • the take-over 41 can be arranged along the circumference of the main housing 40, or the take-over 41 can also be integrated in at least on a mounting surface.
  • the main housing 40 has a first chamber 401, a first hole 404 and a second hole 405.
  • the first hole 404 and the second hole 405 are both In communication with the first chamber 401, at least part of a pump assembly 20 is located in a first chamber 401; wherein the rotation of the rotor assembly 22 can drive fluid to circulate in the first hole 404 and the second hole 405.
  • the rotor assembly 22 includes an impeller assembly 221 and a magnetic assembly 223.
  • the pump assembly 20 also includes a positioning shaft 222.
  • the impeller assembly 221 is sleeved on the outer peripheral side of the positioning shaft 222, and at least part of the impeller assembly 221 can be located in the first chamber.
  • a hole 404 is arranged along the height direction of the pump assembly 20 with the impeller assembly 221 , and a second hole 405 corresponds to the position of the impeller assembly 221 .
  • at least part of the wall of the first hole 404 can be aligned with the impeller assembly 221 .
  • the rotating shaft is coaxially arranged, and the mouth of the second hole channel 405 is located at the edge of the impeller assembly 221 in the circumferential direction.
  • the fluid can enter the impeller assembly 221 from the first hole channel 404. Under the action of the centrifugal force of the impeller assembly 221, the fluid flows from the second hole channel 405 is discharged.
  • the first hole 404 can be the inlet hole of the pump assembly 20, and the second hole 405 can be the outlet hole of the pump assembly 20.
  • the main housing 40 further includes a second chamber 402 spaced apart from the first chamber 401, and at least a portion of the seal of a pump assembly 20 is disposed on The first chamber 401, and at least part of a valve core 31 is located in a second chamber 402.
  • a seal may be provided between at least part of a pump assembly 20 and the main housing 40, or a seal may be provided between the pump assembly 20 and the main housing 40.
  • a part of the structure is welded to the main housing 40 to achieve sealing between the two.
  • seals can be provided between the valve core 31 and the main housing 40, or multiple separate parts of the main housing 40 can be provided.
  • the components are welded to seal the valve core 31 in the second chamber 402 .
  • at least one pump assembly 20 and at least one valve core 31 can be integrated into one main housing 40 , thereby reducing the space occupied by the fluid assembly 200 and further reducing the space occupied by the fluid control device 1 .
  • the main housing 40 also has a communication channel 407 and a plurality of flow channels 406 .
  • 40 has a flow channel plate 44 and a cavity shell 45.
  • the cavity shell 45 and the flow channel plate 44 are injection molded into an integrated structure.
  • the first chamber 401, the second chamber 402 and the flow channel 406 are located in the cavity shell 45, and the communication channel 407 is located in the flow channel.
  • Plate 44, at least part of the flow channel plate 44 is connected between the two fluid subassemblies LK.
  • the flow channel plate 44 can be connected between the pump assembly 20 and the valve assembly 30, or the flow channel plate 44 can also be connected between the two fluid subassemblies LK.
  • the flow channel plate 44 and the cavity shell 45 are integrated into one body, which facilitates the reduction of pipeline connections between the cavity shells 45 and improves the integration level of the fluid control device.
  • a plurality of flow channels 406 are distributed on the outer peripheral side of the second chamber 402. One flow channel 406 is connected to one of the first hole channel 404 and the second hole channel 405 through a communication channel 407.
  • the valve core 30 includes a conductive Cavity 31, the conductive cavity 311 can connect at least two flow channels 406, wherein the extension direction of the interconnected communication channel 407, the extension direction of the flow channel 406 and the third The extending directions of one channel 404 or the second channel 405 intersect.
  • the pump assembly 20 includes a first pump assembly 20a, a second pump assembly 20b, and a third pump assembly 20c
  • the valve assembly 30 includes a first valve assembly 30a and a second valve.
  • the first valve assembly 30a includes a first valve core 31a and a first sealing member (not shown in the figure)
  • the second valve assembly 30b includes a second valve core 31b and a second sealing member (not shown in the figure)
  • the first pump assembly 20a, the second pump assembly 20b, the third pump assembly 20c and the second valve assembly 30b are distributed on the outer peripheral side of the first valve assembly 30a, defining a flow channel 406 located on the outer peripheral side of the first valve assembly 30a It is the first flow channel 4061.
  • the first flow channel 4061 is located on the wall of the chamber where the first valve assembly 30a is located.
  • the number of the first flow channels 4061 can be at least eight, for example, it can be eight, and is defined to be located on the outer periphery of the second valve assembly 30b.
  • the flow channel on the first side is the second flow channel 4062, and the second flow channel 4062 is located on the wall of the chamber where the second valve assembly 30b is located.
  • the conduction cavity 31 of the first valve core 31a can conduct two first flow channels 4061, and the conduction cavity of the second valve core 31b can conduct two or three second flow channels 4062.
  • the communication channel 407 of the main housing 40 may include a first communication channel 407a, a second communication channel 407b, and a third communication channel 407c.
  • the first chamber 401 includes a first sub-cavity A1, a second sub-cavity A2, and a third communication channel 407c.
  • Three sub-cavities A3, the second chamber 402 includes a fourth sub-cavity A4 and a fifth sub-cavity A5, at least part of the first pump assembly 20a is located in the first sub-cavity A1, and at least part of the second pump assembly 20b is located in the second sub-cavity A3.
  • the first channel 404 includes a first sub-channel 404a, a second sub-channel 404b and a third sub-channel 404c.
  • the second channel 405 includes a fourth sub-channel 405a, a fifth sub-channel 405b and a sixth sub-channel 405c.
  • the first sub-channel 404a and the fourth sub-channel 405a are both connected to the first sub-cavity A1
  • the second sub-channel 404b and the fifth sub-channel 405b are both connected to the second sub-cavity A2
  • the third sub-channel 404c and the sixth sub-channel 405c All are connected with the third sub-cavity A3.
  • the first communication channel 407a connects the first sub-cavity A1 and the fourth sub-cavity A4.
  • the first communication channel 407a connects the first sub-channel 404a with a first flow channel 4061 located on the outer peripheral side of the first valve core 31a.
  • the fourth sub-channel 405a is connected with the inner cavity of the connecting tube 41.
  • the second communication channel 407b connects the second sub-cavity A2 and the fourth sub-cavity A4.
  • the second communication channel 407b connects the second sub-channel 404b with another first flow channel 4061 located on the outer peripheral side of the first valve core 31a.
  • the fifth sub-channel 405b is connected with the inner cavity of the nozzle 41 .
  • the third communication channel 407c connects the third sub-cavity A3 and the fourth sub-cavity A4.
  • the third communication channel 407c connects the sixth sub-channel 405c with another first flow channel 4061 located on the outer peripheral side of the first valve core 31a.
  • the third sub-channel 404c is connected with the inner cavity of the connecting tube 41.
  • the main housing 40 further includes a fourth communication channel 407d, which communicates the fifth sub-cavity A5 and the fourth sub-cavity A4.
  • the first communication channel 407a, the second communication channel 407b, the third communication channel 407c and the fourth communication channel 407d are respectively provided on the outer peripheral surface of the wall of the fourth sub-cavity A4.
  • at least part of the first communication channel 407a, at least part of the second communication channel 407b, at least part of the third communication channel 407c, and at least part of the fourth communication channel 407d are arranged along the fourth The walls of the sub-cavities A4 are spaced apart in the circumferential direction.
  • the above-mentioned communication channels can also be arranged in other forms, for example, at least part of the communication channels are arranged along the height direction of the fluid control device.
  • the pump assembly 20 and the valve assembly 30 can work together to realize multiple working modes of the fluid control device.
  • multiple working states of the thermal management system can be achieved. This facilitates the cooling and cooling functions of different heat sources.
  • At least two driving components 13 both include stator assemblies 130, and at least two fluid subassemblies LK include pump assemblies 20.
  • One of the pump assemblies is defined as the first The pump assembly 20a, the other pump assembly is the second pump assembly 20b, one of the stator components is the first stator assembly 130a, the other stator assembly is the second stator assembly 130b, the limiting part 112 includes a first limiting part 112a and The second limiting part 112b, at least part of the first stator assembly 130a is connected to the first limiting part 112a, at least part of the second stator assembly 130b is connected to the second limiting part 112b, the first The pump assembly 20a includes a first rotor assembly 22a, the second pump assembly 20b includes a second rotor assembly 22b, the first rotor assembly 22a can be located in the first The second rotor assembly 22b can be located within the magnetic field range of the stator assembly 130a.
  • a portion of the first rotor assembly 22a is located inside the first stator assembly 130a.
  • the second rotor assembly 22b can be located within the magnetic field range of the stator assembly 130a.
  • the portion is located inside the second stator assembly 130b.
  • the three driving components 13 each include a stator assembly 130, and the three stator assemblies 130 are respectively a first stator assembly 130a, a second stator assembly 130b and a third stator. assembly 130c.
  • the first housing 11 includes a first limiting part 112a, a second limiting part 112b and a third limiting part 112c.
  • the number of fluid subassemblies LK including the pump assembly 20 may also be two, Three, four or more.
  • the fluid subassembly LK in this embodiment includes three pump assemblies 20.
  • the three pump assemblies 20 are defined as a first pump assembly 20a, a second pump assembly 20b and a third pump assembly respectively.
  • the third rotor assembly 22c can be located within the magnetic field range of the third stator assembly 130c, optionally, the first stator assembly 130a can be connected with the first stator assembly 130c.
  • the limiting part 112a is injection molded into an integrated structure
  • the second stator component 130b can be injection molded into an integrated structure with the second limiting part 112b
  • the third stator component 130c and the third limiting part 112c are injection molded into an integrated structure
  • the limiting part 112 and the bottom part are injection molded into an integrated structure.
  • the wall portion 111 is injection molded into an integrated structure.
  • At least one fluid subassembly LK includes a pump assembly 20, at least one fluid subassembly LK includes a valve assembly 30, wherein at least one drive component 13 includes a stator assembly 130, and at least one further drive component 13 includes a motor 132,
  • the first housing 11 also includes a mounting part 114 (shown in FIG. 6 ).
  • the mounting part 114 is spaced apart from the limiting part 112 .
  • the motor 132 is limitedly connected to the mounting part 114 , and at least part of the motor 132 is located in the first accommodation cavity 101 .
  • the valve assembly 30 includes a valve core 31 and a valve core shaft 32.
  • the valve core 31 can be injection molded into an integral structure with the valve core shaft 32, or connected through an interference fit or a connection key.
  • the valve core 31 is connected to the motor 132 through the valve core shaft 32.
  • the output shaft is drivingly connected, and the valve core 31 can rotate or translate under the power of the motor 132.
  • the valve core 31 can be driven to rotate, thereby facilitating the realization of multiple working modes of the fluid control device 1.
  • valve core of the valve assembly 30 The shaft 32 may be directly connected to the motor 132 in transmission, or the driving assembly 100 may further include a gear assembly 133 , and the motor 132 may be in transmission connection with the valve core shaft 32 of the valve core 31 through the gear assembly 133 .
  • at least one stator assembly 130 and at least one motor 132 can be integrated into the same driving assembly 100, which facilitates reducing the space occupied by the driving assembly 100.
  • the number of valve assemblies 30 and the number of motors 132 can be set according to the user's needs.
  • two of the fluid subassemblies LK in this embodiment include valve assemblies 30.
  • the driving assembly 100 includes two motors 132, thereby realizing the action of the motors 132 driving the corresponding valve assembly 30.
  • the driving assembly 100 includes five driving components 13 , in which the three driving components 13 each include a stator assembly 130 .
  • the three stator assemblies 130 are respectively defined as a first stator assembly 130a,
  • the second stator assembly 130b and the third stator assembly 130c, and the other two driving components 13 each include a transmission assembly composed of a motor 132 and a gear assembly 133. It is defined that one set of transmission assembly includes a first motor 132a and a first gear assembly 133a.
  • another set of transmission components includes the second motor 132b and the second gear assembly 133b; correspondingly, the fluid assembly 200 includes five fluid subassemblies LK, in which three fluid subassemblies LK all include the pump assembly 20, and the other Both fluid sub-assemblies LK include valve assemblies 30.
  • the three pump assemblies 20 are defined as the first pump assembly 20a, the second pump assembly 20b and the third pump assembly 20c respectively.
  • One of the valve assemblies 30 includes the first valve core 31a, Another valve assembly 30 includes a second valve core 31b, wherein the first stator assembly 130a can drive the rotor assembly in the first pump assembly 20a to rotate, and the second stator assembly 130b can drive the rotor assembly in the second pump assembly 20b to rotate.
  • the third stator assembly 130c can drive the rotor assembly in the third pump assembly 20c to rotate
  • the first motor 132a and the first gear assembly 133a form a first transmission assembly that can drive the first valve core 31a to rotate
  • the second transmission assembly composed of the gear assembly 133b can drive the second valve core 31b to rotate.
  • the side of the first pump assembly 20a, the second pump assembly 20b and the third pump assembly 20c away from the main housing 40 is located at the same height, that is, the three pump assemblies are close to the driving
  • One end of the assembly 100 can be located at the same height to facilitate assembly with the three stator assemblies in the drive assembly 100.
  • the sides of the three stator assemblies corresponding to the three pump assemblies facing away from the main housing 40 can also be located at the same height.
  • the valve assembly 30 is located at the same height as the pump assembly 20, and through the above arrangement, it is easy to lower the fluid control device The height is such that the control parts of the valve assembly 30 and the pump assembly 20 are both integrated with the first housing and electrically connected to the same control part.
  • the working mode of the fluid control device shown in FIGS. 1 to 26 will be introduced below. Seven of the first flow channels 4061 are defined as the first sub-runner P1, the second sub-runner P2, the third sub-runner P3, the fourth sub-runner P4, the sixth sub-runner P6, and the seventh sub-runner P7 and the eighth sub-channel P8, the two second channels 4062 are defined as the fifth sub-channel P5 and the ninth sub-channel P9, and the conductive cavity of the first valve core 31a is defined as the first conductive cavity, The conductive cavity of the second valve core 31b is the second conductive cavity.
  • the fluid control device provided by the embodiment of the present application has at least one of the following working modes:
  • the first valve core 31a rotates to the first position, the first sub-flow channel P1 and the second sub-flow channel P2 are connected through one of the first conduction chambers, and the third sub-flow channel P3 and the fourth sub-flow channel P3 are connected to each other.
  • the flow channel P4 is connected through another first conductive cavity, the sixth sub-channel P6 and the seventh sub-channel P7 are connected through another first conductive cavity, the fifth sub-channel P5 and the ninth sub-channel At least one of P9 is connected to the eighth sub-flow channel P8 through yet another first conductive cavity, the fourth communication channel 407d and the second conductive cavity.
  • the first valve core 31a rotates to the second position
  • the third sub-channel P3 and the second sub-channel P2 are connected through one of the first conduction chambers
  • the fifth sub-channel P5 and the ninth sub-channel At least one of the flow passages P9 is connected to the fourth sub-flow passage P4 through another first conduction cavity, the fourth communication channel 407d and the second conduction cavity, and the seventh sub-flow passage P7 and the eighth sub-flow passage P8
  • the sixth sub-flow channel P6 and the first sub-flow channel P1 are connected through another first conduction cavity.
  • the first valve core 31a rotates to the third position, the first sub-flow channel P1 and the eighth sub-flow channel P8 are connected through one of the first conduction chambers, and the third sub-flow channel P3 and the fourth sub-flow channel P8 are connected through one of the first conduction chambers.
  • the flow channel P4 is connected through another first conduction cavity, and at least one of the fifth sub-flow channel P5 and the ninth sub-flow channel P9 is connected with the sixth sub-flow channel P6 through another first conduction cavity and the fourth sub-flow channel P4.
  • the channel 407d is connected to the second conductive cavity, and the second sub-flow channel P2 and the seventh sub-flow channel P7 are connected to each other through another first conductive cavity.
  • the first valve core 31a rotates to the fourth position, the first sub-channel P1 and the second sub-channel P2 are connected through one of the first conduction chambers, the fifth sub-channel P5 and the ninth sub-channel At least one of the flow channels P9 is connected to the fourth sub-flow channel P4 through another first conductive cavity, the fourth communication channel 407d and the second conductive cavity, the sixth sub-channel P6 and the seventh sub-channel P7 The third sub-flow channel P3 and the eighth sub-flow channel P8 are connected through another first conduction cavity.
  • the first valve core 31a rotates to the fifth position, and the third sub-flow channel P3 and the second The sub-flow channel P2 is connected through one of the first conduction chambers, the seventh sub-flow channel P7 and the eighth sub-flow channel P8 are conducted through the other first conduction cavity, and the fifth sub-flow channel P5 and the ninth sub-flow channel are connected through the other first conduction cavity.
  • At least one of the channels P9 is connected to the sixth sub-channel P6 through a first conductive cavity, a fourth communication channel 407d and a second conductive cavity, and the first sub-channel P1 and the fourth sub-channel P4 pass through Another first conduction cavity is conductive.
  • the first valve core 31a rotates to the sixth position, the first sub-flow channel P1 and the eighth sub-flow channel P8 are connected through one of the first conduction chambers, and the third sub-flow channel P3 and the fourth sub-flow channel P3 are connected through one of the first conduction chambers.
  • the flow channel P4 is connected through another first conductive cavity, the sixth sub-channel P6 and the seventh sub-channel P7 are connected through another first conductive cavity, the fifth sub-channel P5 and the ninth sub-channel At least one of P9 is connected to the second sub-flow channel P2 through yet another first conductive cavity, the fourth communication channel 407d and the second conductive cavity.
  • the first valve core 31a rotates to the seventh position, the first sub-flow channel P1 and the second sub-flow channel P2 are connected through one of the first conduction chambers, and the seventh sub-flow channel P7 and the eighth sub-channel
  • the flow passage P8 is connected through another first conduction cavity, and at least one of the fifth sub-flow passage P5 and the ninth sub-flow passage P9 is connected with the fourth sub-flow passage P4 through another first conduction cavity and the fourth sub-flow passage P8.
  • the channel 407d is connected to the second conductive cavity, and the sixth sub-flow channel P6 and the third sub-flow channel P3 are connected to each other through another first conductive cavity.
  • the first valve core 31a rotates to the eighth position, the first sub-flow channel P1 and the eighth sub-flow channel P8 are connected through one of the first conduction chambers, and the second sub-flow channel P2 and the third sub-channel P8 are connected through one of the first conduction chambers.
  • the flow channel P3 is connected through another first conduction chamber, and at least one of the fifth sub-flow channel P5 and the ninth sub-flow channel P9 is connected with the sixth sub-flow channel P6 through another first conduction cavity and the fourth
  • the channel 407d is connected to the second conductive cavity, and the fourth sub-flow channel P4 and the seventh sub-channel P7 are connected to each other through another first conductive cavity.
  • the conduction mode between different flow channels or the proportional adjustment between channels corresponding to the second valve core 31b can also be achieved by rotating the second valve core 31b.
  • the fluid control device may also include three valve cores or more.
  • a valve core is not limited in this application.
  • Both the first chamber 401 and the second chamber 402 have openings located on the surface of the main housing 40.
  • the first installation port K1 of the first chamber 401 and the second chamber The second installation opening K2 of the chamber 402 is provided on different surfaces of the main housing 40.
  • the opening of the first chamber 401 and the opening of the second chamber 402 are provided oppositely in the height direction of the main housing 40.
  • the main housing 40 includes a cavity shell 45 and a bottom cover, and the bottom cover and the cavity shell 45
  • the sealed connection can be achieved through welding and other processes, including, for example, a first bottom cover 42 and a second bottom cover 43.
  • Each flow channel and chamber can be located in the cavity shell 45.
  • the first bottom cover 42 and the second bottom cover 43 are both connected to the cavity.
  • the shell 45 is sealed and connected, for example, by welding, bonding or sealing rings.
  • the cavity shell 45 includes a cavity shell side wall and a cavity shell top wall. Parts of the cavity shell side wall and the cavity shell top wall form at least part of the wall of the first chamber 401 .
  • the cavity shell side walls and the cavity shell The top wall is an integral structure, and the top wall of the cavity shell and the first installation port K1 are located on the same side of the main housing 40 .
  • the main housing 40 includes a first end S1 and a second end S2.
  • the first end S1 and the second end S2 are arranged oppositely along the height direction of the main housing 40.
  • the first chamber 401 The first installation port K1 is located at the first end S1, the second installation port K2 of the second chamber 402 is located at the second end S2, and the driving assembly 100 is located on a side of the first end S1 away from the second end S2.
  • the pump assembly 20 can be assembled with the main housing 40 from one side of the main housing 40
  • the valve assembly 30 can be assembled with the main housing 40 from the other side of the main housing 40 , thereby facilitating the realization of driving the pump assembly 20
  • the driving components and the driving components of the driving valve assembly 30 are disposed on the same side, which facilitates the integration of multiple driving components.
  • the number of valve assemblies 30 is at least two, all the valve assemblies 30 can be installed on the same side of the main housing 40 to facilitate unified assembly reference, and then all the pump assemblies 20 can be installed from the main housing 40 Installation on the other side facilitates reducing assembly errors and better achieving coaxiality between at least two valve assemblies 30 and corresponding driving components 13 .
  • first installation port K1 of the first chamber 401 and the second installation port K2 of the second chamber 402 can also be provided on the same side of the main housing 40 so that the pump assembly 20 and the valve assembly 30 are both The assembly is performed from the same side of the main housing 40, and this application does not limit this.
  • each pump assembly 20 further includes an isolation sleeve 23 , and the isolation sleeve 23 is sealingly connected to the first housing 11
  • the isolation sleeve 23 can be injection molded into an integrated structure with the main housing 40; or when the isolation sleeve 23 and the first shell 11 are injection molded into an integrated structure or separated from the first
  • the isolation sleeve 23 is separated from the main housing 40, and one side of the isolation sleeve 23 in the thickness direction is sealingly connected to the main housing 40 through a sealing ring.
  • the ring can be an O-type sealing ring or an X-type sealing ring.
  • the fluid control device 1 may optionally include a sealing ring.
  • a sealing ring When the isolation sleeve 23 is separated from the first housing 11 When setting, one of the sealing rings can be sandwiched between one side of the isolation sleeve 23 in the thickness direction and the first housing 11; when the isolation sleeve 23 and the main housing 40 are separately arranged, one of the sealing rings can be clamped.
  • the pump assembly 20 also includes a pump cover 24, which is sealingly connected to the isolation sleeve 23.
  • the pump cover 24 can be welded to the isolation sleeve 23, and the rotor assembly 22 Located in the space formed between the pump cover 24 and the isolation sleeve 23; the pump cover 24 has a first port 241 and a second port 242, and the rotor assembly 22 can drive fluid to circulate between the first port 241 and the second port 242.
  • the pump At least part of the cover 24 is located in the first chamber 401 and the pump cover 24 is sealingly connected to the main housing 40 .
  • the first port 241 is connected to the first hole 404
  • the second port 242 is connected to the second hole 405
  • the pump assembly 20 has a pump chamber 201, a first channel 202 and a second channel 203.
  • the pump cover 24 forms at least part of the wall of the pump chamber 201.
  • the first channel 202 and the second channel 203 can also be located on the pump cover. 24.
  • the first port 241 is located in the first channel
  • the second port 242 is located in the second channel
  • at least part of the first channel 202 is located in the first channel 404
  • at least part of the second channel 203 is located in the second channel 405.
  • injection molding is an integrated structure.
  • the two structural parts forming an integrated structure may be formed by an injection molding process or produced by other processes, which is not limited in this application.
  • the fluid control device 1 further includes a control member 15 and a connection terminal 16 .
  • the control member includes a number of electronic components. , electronic components may include resistors, capacitors, inductors or Integrated circuits, etc., the control member 15 is located in the first accommodation cavity 101 . At least part of the connection terminal 16 is located outside the first accommodation cavity 101. For example, as shown in FIGS.
  • connection terminal 16 is located on a side of the second housing 12 away from the first accommodation cavity 101, and the connection terminal 16 is connected to the second
  • the housing 12 is integrally injection molded, in which the connection terminal 16 is electrically connected to the control part 15 , and at least two driving components 13 are electrically connected to the control part 15 .
  • at least two driving components 13 can be controlled by using one control member 15, saving space and reducing the cost of the driving assembly 100, and can be connected to external electrical equipment by using one wiring terminal 16. It is convenient to simplify the operation of the fluid control device 1 .
  • At least part of the first stator assembly 130a, at least part of the second stator assembly 130b, at least part of the third stator assembly 130c, the first At least part of the motor 132a and at least part of the second motor 132b are located in the first containing cavity 101, and the first stator assembly 130a, the second stator assembly 130b, the third stator assembly 130c, the first motor 132a and the second motor 132b All are electrically connected to the control part 15 .
  • connection terminal 16 can be electrically connected to the external wiring harness structure, so that the control member 15 can control the rotation of the motor, thereby causing the valve core in the valve assembly to rotate; further, the control member 15 can also control the power supply of the stator assembly.
  • the control part 15 controls the stator assembly to be energized
  • the stator assembly generates a magnetic field, causing the rotor assembly to rotate under the action of the magnetic field, causing the fluid to flow in the first channel and the second channel under the action of the centrifugal force of the impeller assembly, thereby driving the fluid in the valve assembly
  • the valve assembly realizes fluid reversal and/or fluid flow regulation.
  • the driving component including the stator assembly 130 is defined as the first driving component.
  • the first driving component also includes a pump housing 135, a transition terminal 134 connected to the pump housing 135, and a connecting plate 136.
  • the stator assembly 130 is connected to the first driving component.
  • a housing 11 is disposed separately. At least part of the stator assembly 130 and the connecting plate are located in the chamber of the pump housing 135.
  • the pump housing 135 is sealingly connected to the first housing 11.
  • the pump housing 135 can be connected with the first housing 11.
  • the first housing 11 is sealingly connected through a sealing ring, or the pump housing 135 and the limiting portion 112 of the first housing 11 are injection molded into an integral structure.
  • the stator assembly 130 includes a coil winding 1303.
  • the coil winding 1303 is electrically connected to the pins in the transition terminal 134 through the conductive parts in the connecting plate 136. A portion of the transition terminal 134 passes through the bottom wall 111 and is located in the first accommodation cavity 101. The transition terminal 134 is electrically connected to the control member 15 .
  • the driving component here includes the stator assembly 130 or the motor 132 , and may also include a lead structure or a terminal structure that electrically connects the stator assembly 130 or the motor 132 to the control part 15 .
  • the fluid control device 1 further includes a limiting assembly 50 , which may be located at the fluid assembly 200 .
  • the pump assembly 20 includes a rotor assembly 22 , a positioning shaft 222 and an isolation unit.
  • the isolation sleeve 23 covers part of the outer peripheral side of the rotor assembly 22, and at least part of the isolation sleeve 23 is located between the stator assembly 130 and the rotor assembly 22, wherein , the positioning shaft 222 is sleeved on the inside of the rotor assembly 22, the first side of the positioning shaft 222 in the axial direction is limited to the isolation sleeve 23, and the limiting component 50 is provided close to the second side of the positioning shaft 222 in the axial direction, Moreover, the limiting component 50 and the rotor component 22 are configured to be positioned in a limiting manner, for example, the limiting component 50 is in contact with the rotor component 22 .
  • the axial direction of the positioning shaft 222 is parallel to or coincides with the height direction of the fluid control device.
  • the rotor assembly 22 includes a magnetic assembly 223 and an impeller assembly 221. At least part of the impeller assembly 221 is arranged with the magnetic assembly 223 along the axial direction of the rotor assembly 22. At least part of the magnetic assembly 223 is sleeved on the stator assembly. 130, so that at least part of the magnetic assembly 222 can be located within the magnetic field range of the stator assembly 130.
  • the isolation sleeve 23 includes an end wall portion 231, a connecting portion 232 and a peripheral wall portion 233. The extension direction of the end wall portion 231 is consistent with the rotor assembly.
  • the end wall portion 231 is disposed close to the first housing 11, the peripheral wall portion 233 protrudes from the end wall portion 231, and along the radial direction of the rotor assembly 22, at least part of the peripheral wall portion 233 is located between the rotor assembly 22 and the rotor assembly 22.
  • the connecting portion 232 protrudes from the end wall portion 231 toward the direction of the rotor assembly 22.
  • One side of the positioning shaft 222 is limited to the connecting portion 232, and the magnetic The component 223 is located between the connecting portion 232 and the limiting component 50 .
  • the pump assembly 20 further includes a pump cover 24, at least a portion of the pump cover 24 is located on the outer peripheral side of the impeller assembly 221, and at least a portion of the pump cover 24 is located in the first chamber 401, At least part of the limiting component 50 is located on the pump cover 24 .
  • the limiting component 50 has a groove 521 .
  • the end of the second side of the positioning shaft 222 is located in the groove 521 and abuts against the bottom wall of the groove 521 .
  • the pump cover 24 can be injection molded into an integral structure with the main housing 40; or the pump cover 24 can be separated from the main housing 40 and connected with a limited position. In this case, there is a gap between the pump cover 24 and the main housing 40. Seal ring to achieve sealing between the two.
  • the pump cover 24 and the main housing 40 are injection molded into an integrated structure, at least part of the impeller assembly 221 is located in the first chamber 401, and the main housing 40 includes a The first hole 404 and the second hole 405, the rotation of the impeller assembly 221 can drive the fluid to flow between the first hole 404 and the second hole 405.
  • the limiting component 50 includes a support portion 52 and at least two connecting ribs 51.
  • the connecting ribs 51 are connected to the peripheral wall of the first hole 404.
  • the connecting ribs 51 are distributed on the outer peripheral side of the supporting portion 52, and the supporting portion 52 is connected to the connecting ribs 51.
  • the groove 521 is located on the support part 52 , and one end of the positioning shaft 222 is embedded in the groove 521 .
  • the pump assembly 20 has a pump chamber 201 , a first channel 202 and a second channel 203 , and the pump cover 24 forms at least part of the pump chamber 201
  • the wall portion, in which the first channel 202 and the second channel 203 are both connected to the pump chamber 201 when the limiting assembly 50 includes a support portion 52 and at least two connecting ribs 51, the connecting ribs 51 are connected to the first channel 202 of the pump cover 24
  • the connecting ribs 51 are distributed on the outer peripheral side of the supporting part 52, and the supporting part 52 is connected with the connecting ribs 51.
  • the groove 521 is located in the supporting part 52, and one end of the positioning shaft 222 is embedded in the groove 521.
  • the rotor assembly 22 further includes a first bearing 251 and a second bearing 252.
  • the first bearing 251 and the second bearing 252 are arranged along the axial direction of the rotor assembly 22; along the axial direction of the rotor assembly 22,
  • the first bearing 251 is located between the connecting portion 232 of the isolation sleeve 23 and the magnetic component 223
  • the second bearing 252 is located between the magnetic component 223 and the limiting component 50 .
  • the limiting assembly 50 includes a first gasket 53 and a pump cover 24 , and the first gasket 53 abuts between the second bearing 252 and the pump cover 24 .
  • the pump cover 24 includes a support portion 52 and at least two connecting ribs 51 , and the first gasket 53 is abutted between the second bearing 252 and the support portion 52 .
  • the positioning shaft 222 and the isolation sleeve 23 can be injection molded into an integrated structure, and/or the magnetic assembly 223, the impeller assembly 221, the first bearing 251 and the second bearing 252 can be injection molded into an integrated structure to realize the integration of the various structural components. stable connection between them, and is conducive to simplifying the assembly process of the fluid control device.
  • the limiting component 50 includes a first limiting member 541, The second gasket 542 and the third gasket 543.
  • the first limiting member 541 is tightly connected to the positioning shaft 222.
  • the second gasket 542 abuts against the first bearing 251 and the connecting part.
  • the first limiting member 541 includes a first flange portion 5411 and a columnar portion 5412.
  • the third gasket 543 is limited between the first flange portion 5411 and the second bearing 252 .
  • the impeller assembly 22 of the electric pump device 20 can be placed downward (up and down in the drawing). At this time, the impeller assembly 22 and other structures are limited.
  • the assembly 50 is limited to facilitate assembly of the electric pump device 20 and the main housing 40 .
  • the positioning shaft 222 and the isolation sleeve 23 can be injection molded into an integrated structure, and/or the magnetic assembly 223, the impeller assembly 221, the first bearing 251 and the second bearing 252 can be injection molded into an integrated structure to realize each structural component. Stable connection between them and conducive to simplifying the assembly process of the fluid control device.
  • the first limiting member 541 has a first threaded portion located at the cylindrical portion 5412, and the positioning shaft 222 has a first threaded portion. Two threaded parts, the first threaded part and the second threaded part are threadedly connected. Alternatively, the first limiting member 541 and the positioning shaft 222 may also be riveted.
  • the positioning assembly 50 is located between the magnetic assembly 223 and the impeller assembly 221; the positioning assembly 50 includes a second limiting member 551 and a fourth gasket 552.
  • the second limiting member 551 is positioned and sealed with the isolation sleeve 23, for example The second limiting member 551 is welded to the isolation sleeve 23 and is located on the side of the magnetic component 223 away from the connecting portion 232.
  • the second bearing 252 is sleeved on the outer peripheral side of the positioning shaft 222 and the second limiting member. Between the components 551 , along the axial direction of the rotor assembly 22 , the fourth gasket 552 abuts between the second bearing 252 and the magnetic assembly 223 .
  • the second limiting member 551 includes a second flange portion 5511 and a second cylindrical portion 5512. Along the axial direction of the second limiting member 551, at least part of the orthographic projection of the second cylindrical portion 5512 is located on the second protrusion. Inside the orthographic projection of the edge portion 5511 , the second flange portion 5511 is sealingly connected to the isolation sleeve 23 .
  • the positioning shaft 222 and the magnetic component 223 can be injection molded into an integrated structure, the isolation sleeve 23 and the first bearing 251 can be injection molded into an integrated structure, and the impeller assembly 221 and the positioning shaft 222 are assembled and connected. pass
  • the above arrangement can achieve axial limitation of the rotor assembly 22 .
  • a fluid control device 1 provided by another embodiment of the present application.
  • the structure of the fluid control device 1 is similar to that of the fluid control device shown in Figures 1 to 26.
  • the first housing 11 , the stator assembly 130 , the rotor assembly 22 , the isolation sleeve 23 , the positioning shaft 222 and the main housing 40 are arranged in the same or similar manner as shown in FIGS. 1 to 26 .
  • the at least difference between the fluid control devices provided by the two embodiments is that the driving assembly 100 includes four driving components 13 , two of which include stator assemblies, and the other two driving components include motors.
  • the number of fluid sub-assemblies LK provided is four, of which two fluid sub-assemblies LK include the pump assembly 20 and the other two fluid sub-assemblies LK include the valve assembly 30 .
  • the driving assembly 100 further includes a first housing 11 and a second housing 12, and the driving assembly 100 has a first receiving cavity. 101.
  • the first housing 11 and the second housing 12 form at least part of the wall of the first accommodation cavity 101.
  • the second housing 11 includes a top cover, and the top cover and the bottom wall 111 are driven along The height direction of the assembly 100 is arranged oppositely.
  • the first housing 11 and the second housing 12 are buckled together to form a first accommodation cavity 101.
  • At least part of the at least two driving components 13 are located in the first accommodation cavity 101, so that at least two driving components 13 are located in the first accommodation cavity 101. 13 are integrated into one driving component 100.
  • all the driving components 13 may be connected with the first housing 11 in a limited position, or a part of the driving components 13 may be connected with the first housing 11 in a limited position, which is not limited in this application.
  • the first housing 11 includes a bottom wall part 111, a limiting part 112 and a peripheral side wall 113.
  • the peripheral side wall 113, the bottom wall part 111 and the limiting part 112 are connected, for example, the peripheral side wall 113, the bottom wall 113 and the limiting part 112 are connected.
  • the wall portion 111 and the limiting portion 112 can be injection molded and fixed as an integrated structure, or fixedly connected by welding, or connected through limiting connections such as fasteners, etc. At least part of the limiting portion 112 protrudes from the bottom wall portion 111 along the height direction of the driving assembly 100.
  • the bottom wall portion 111 and the peripheral side wall 113 form part of the wall portion of the first accommodation cavity 101.
  • At least one driving component 13 includes a stator assembly. 130, define the driving component including the stator assembly 130 as the first driving component, and at least part of the first driving component is connected to the limiting portion 112. At least part of the stator assembly 130 included in the first drive component is located in the limiting position part 112, or the first driving component may also include a pump housing, and at least part of the stator assembly 130 is located in the cavity of the pump housing.
  • the stator assembly 130 may be injection molded and fixed with the pump housing as an insert or assembled into the cavity of the pump housing, At this time, at least part of the pump housing or the entire pump housing and stator assembly 130 is located within the limiting portion 112 .
  • the embodiment of the present application facilitates reducing the space occupied by the driving assembly 100 and improving the integration of the driving assembly 100 .
  • the number of driving parts 13 included in the driving assembly 100 is four.
  • the two driving parts 13 include Stator assembly 130
  • the two stator assemblies 130 can both be limitedly connected to the corresponding limiting portion 112 and located within the corresponding limiting portion 112.
  • one of the driving components 13 of the driving assembly 100 includes the stator assembly 130, and the other driving components may be driving components such as motors, thereby realizing the integration of different types of driving components 13.
  • At least part of the limiting part 112 extends from the bottom wall 111 in a direction away from the first accommodation cavity 101. At this time, at least part of the limiting part 112 extends from the bottom wall 111. The portion 111 extends in a direction close to the fluid component, and at least part of the limiting portion 112 protrudes from the bottom wall portion 111 in a direction away from the second housing 12 .
  • the stator assembly 130 can be injection-molded and fixed with the limiting portion 112 .
  • the injection-molded fixation means that the stator assembly 130 is an integral structure.
  • the stator assembly 130 can be used as an insert and integrally injection-molded with the first housing 11 , so that the stator The component 130 and the limiting part 112 are injection molded into an integrated structure.
  • the stator component 130 can lead out electrical connecting wires during injection molding, and can be electrically connected to the control part through the electrical connecting wires; or the limiting part 112 includes an installation cavity QS, and the stator component 130 At least part of the stator assembly 130 is located in the installation cavity QS, and the stator assembly 130 and the first housing 11 are limitedly connected through fasteners or other means.
  • stator assemblies 130 When at least two driving components 13 both include stator assemblies 130 , the entire number of stator assemblies 130 and the limiting portion 112 can be injection molded into an integral structure, or the entire number of stator assemblies 130 can be assembled into the installation cavity formed by the limiting portion 112 In the QS, either a part of the stator components 130 and the limiting part 112 are injection molded into an integrated structure, and the other part of the stator components 130 and the limiting part 112 are injection molded into an integrated structure.
  • the driving component of the embodiment of the present application It also includes a control part 15, which may be a circuit board.
  • the driving part including the stator assembly 130 is defined as the first driving part.
  • the first driving part also includes a pump housing 135, a transition terminal 134 connected to the pump housing 135, and a connection Plate 136, the stator assembly 130 and the first housing 11 are arranged separately.
  • the stator assembly 130 is assembled into the installation cavity QS formed by the limiting portion 112. At least part of the stator assembly 130 and the connecting plate 136 are located on the pump housing 135.
  • the pump housing 135 is sealingly connected to the first housing 11.
  • the pump housing 135 can be sealingly connected to the first housing 11 through a sealing ring, or the pump housing 135 and the limiting portion 112 of the first housing 11 can be injection molded to One-piece structure.
  • the stator assembly 130 includes a coil winding 1303.
  • the coil winding 1303 is electrically connected to the pins in the transition terminal 134 through the conductive parts in the connecting plate 136.
  • a portion of the transition terminal 134 passes through the bottom wall 111 and is located in the first accommodation cavity 101.
  • the transition terminal 134 is electrically connected to the control member 15 .
  • the driving component here includes the stator assembly 130 or the motor 132, and the driving component may also include a lead structure or a terminal structure that enables the control member 15 to be electrically connected to the stator assembly 130 or the motor 132.
  • a metal conductive structure can be provided in the first housing 11.
  • the metal conductive structure can be injection molded into an integral structure with the first housing 11, so that the metal conductive structure is pre-embedded in the first housing 11. inside the first housing 11.
  • the output terminal 1304 of the stator assembly 130 can use insulation displacement connectors (IDC), and at this time, it can be electrically connected to the control component 15 through the IDC pin.
  • IDC insulation displacement connectors
  • the fluid control device may further include an isolation sleeve 23 , a portion of which is located on the inner peripheral side of the stator assembly 130 .
  • the isolation sleeve 23 may be connected to the first housing 11 Injection molding is an integral structure.
  • the stator assembly 130 can be injection molded into an integral structure with the limiting portion 112 or the stator assembly 130 can be located in the installation cavity QS of the limiting portion 112 .
  • the isolation sleeve 23 and the stator assembly 130 are injection molded into an integral structure or at least part of the stator assembly 130 is located in the cavity formed by the isolation sleeve 23 .
  • the isolation sleeve 23 and the stator assembly 130 are integrated with the stator assembly 130 as a whole.
  • the first housing 11 is separated and sealed.
  • a sealing ring is provided between the overall structure formed by the isolation sleeve 23 and the stator assembly 130 and the first housing 11.
  • the sealing ring is clamped to achieve the integration between the overall structure and the first housing 11.
  • a seal is provided between the first housings 11 .
  • the spacer The isolation sleeve 23 can be injection molded into an integral structure with the first housing 11 , or the isolation sleeve 23 can be separated from the first housing 11 and sealedly connected; when the stator assembly 130 is assembled into the installation cavity QS of the limiting portion 112 , the isolation sleeve 23 can be injection molded into an integrated structure with the first shell 11, or the isolation sleeve 23 and the first shell 11 are separately arranged and sealedly connected, or the isolation sleeve 23 and the stator assembly 130 can be injection molded into an integrated structure, and the isolation sleeve 23 and the stator assembly 130 as a whole is provided separately from the first housing 11 and is sealedly connected.
  • the limiting connection methods between different stator assemblies 130 and the first housing 11 may be the same or different, and the isolation sleeves 23 corresponding to different stator assemblies 130 may be connected to the first housing 11 in the same manner.
  • the connection methods of 11 can be the same or different.
  • the driving component including the stator assembly 130 is defined as the first driving component.
  • the first driving component also includes a pump housing 135, a transition terminal 134 connected to the pump housing 135, and a connecting plate 136.
  • the stator assembly 130 is connected to the first driving component.
  • a housing 11 is provided separately, and at least part of the stator assembly 130 and the connecting plate are located in the chamber of the pump housing 135.
  • the pump housing 135 is sealingly connected to the first housing 11.
  • the pump housing 135 can be connected with the first housing 11.
  • the first housing 11 is sealingly connected through a sealing ring, or as shown in FIG. 14 , the pump housing 135 and the limiting portion 112 of the first housing 11 can be injection molded into an integral structure.
  • the stator assembly 130 includes a coil winding 1303.
  • the coil winding 1303 is electrically connected to the pins in the transition terminal 134 through the conductive parts in the connecting plate 136.
  • a portion of the transition terminal 134 passes through the bottom wall 111 and is located in the first accommodation cavity 101.
  • the transition terminal 134 is electrically connected to the control member 15 .
  • the driving component here includes the stator assembly 130 or the motor 132 , and may also include a lead structure or a terminal structure that electrically connects the stator assembly 130 or the motor 132 to the control part 15 .
  • the fluid assembly 200 includes a main housing 40.
  • the main housing 40 includes a cavity shell 45 and a flow channel plate 44.
  • the flow channel plate 44 can be connected between the two cavity shells 45.
  • the main shell 40 has The first chamber 401, the second chamber 402, the first hole 404, the second hole 405, a plurality of flow channels 406 and the communication channel 407.
  • the first hole 404 and the second hole 405 are both connected to the first chamber 401, At least part of the pump assembly 20 is located in the first chamber 401, at least part of the valve assembly 30 is located in the second chamber 402, the first hole 404 corresponding to one pump assembly 20 and one of the flow channels located on the outer peripheral side of one valve assembly 30 406 connected.
  • At least part of the main housing 40 is located on a side of the first housing 11 away from the first accommodation chamber 101. As shown in Figure 27, the main housing 40 At least part of the main housing is located on the side of the first housing 11 away from the second housing 12. 40 also includes a nozzle 41, which can be arranged along the circumference of the main housing 40, or the nozzle 41 can also be integrated on at least one mounting surface.
  • the pump assembly 20 includes a rotor assembly 22, and the isolation sleeve 23 of the fluid control device is covered on the outer peripheral side of the rotor assembly 22.
  • the rotor assembly 22 includes an impeller assembly 221 and a magnetic assembly 223.
  • the pump assembly 20 also includes a positioning shaft 222.
  • the impeller assembly 221 is sleeved on the outer peripheral side of the positioning shaft 222, and at least part of the impeller assembly 221 can be located in the first chamber 401.
  • At least part of a hole 404 is arranged along the height direction of the pump assembly 20 with the impeller assembly, and a second hole 405 corresponds to the position of the impeller assembly 221.
  • at least part of the wall of the first hole 404 can be aligned with the position of the impeller assembly 221.
  • the rotating shaft is coaxially arranged, and the mouth of the second hole channel 405 is located at the edge of the impeller assembly 221 in the circumferential direction. The fluid can enter the impeller assembly 221 from the first hole channel 404.
  • the fluid flows from the second hole channel 405 Discharge, at this time, the first hole 404 can be the inlet hole of the pump assembly 20, and the second hole 405 can be the outlet hole of the pump assembly 20.
  • the main housing 40 has a flow channel plate 44 and a cavity shell 45.
  • the cavity shell 45 and the flow channel plate 44 are injection molded into an integral structure.
  • the first chamber 401, the second chamber 402 and the flow channel 406 are located in the cavity.
  • the shell 45 and the communication channel 407 are located in the flow channel plate 44.
  • At least part of the flow channel plate 44 is connected between the two fluid sub-assemblies LK.
  • the flow channel plate 44 can be connected between the pump assembly 20 and the valve assembly 30, or the flow channel plate 44 can be connected between the pump assembly 20 and the valve assembly 30, or the flow channel plate 44 can be connected to the flow channel plate 44.
  • the channel plate 44 can also be connected between the two valve assemblies 30.
  • the channel plate 44 and the cavity shell 45 are integrated into one body, which facilitates the reduction of pipeline connections between the cavity shells 45 and improves fluid control.
  • the degree of integration of the device a plurality of flow channels 406 are distributed on the outer peripheral side of the second chamber 402.
  • One flow channel 406 is connected to one of the first hole channel 404 and the second hole channel 405 through a communication channel 407.
  • the valve core 30 includes a conductive
  • the cavity 31 and the conductive cavity 311 can connect at least two flow channels 406, wherein the extension direction of the interconnected communication channel 407, the extension direction of the flow channel 406, and the extension direction of the first hole channel 404 or the second hole channel 405 intersect.
  • the pump assembly 20 may also include a pump cover 24, which is sealingly connected to the isolation sleeve 23.
  • the pump cover 24 may be welded to the isolation sleeve 23, and the rotor assembly 22 is located between the pump cover 24 and the isolation sleeve 23. in the space formed between them; the pump cover 24 has a first port 241 and a second port 242, and the rotor assembly 22 can drive fluid to circulate between the first port 241 and the second port 242.
  • the pump cover 24 At least part of the pump cover 24 is located in the first chamber 401 and the pump cover 24 is sealed with the main housing 40 .
  • the first port 241 is connected to the first hole 404
  • the second port 242 is connected to the second hole 405 .
  • the pump assembly 20 has a pump chamber 201, a first channel 202 and a second channel 203.
  • the pump cover 24 forms at least part of the wall of the pump chamber 201.
  • the first channel 202 and the second channel 203 can also be located on the pump cover. 24.
  • the first port 241 is located in the first channel
  • the second port 242 is located in the second channel
  • at least part of the first channel 202 is located in the first channel 404
  • at least part of the second channel 203 is located in the second channel 405.
  • injection molding is an integrated structure.
  • the two structural parts forming an integrated structure may be formed by an injection molding process or produced by other processes, which is not limited in this application.
  • the first chamber 401 includes a first sub-chamber A1 and a second sub-chamber A2, and the second chamber 402 includes a third sub-chamber A3 and a fourth sub-chamber A3.
  • Cavity A4 defines two pump components as a first pump component 20d and a second pump component 20e, defines two valve components as a first valve component 30c and a second valve component 30e, and at least part of the first pump component 20d is located on the first Sub-chamber A1, at least part of the second pump assembly 20e is located in the second sub-chamber A2, at least part of the first valve assembly 30c is located in the third sub-chamber A3, and at least part of the second valve assembly 30d is located in the fourth sub-chamber A4; wherein , the first sub-cavity A1 and the second sub-cavity A3 are both connected to the third sub-cavity A3.
  • Both the first chamber 401 and the second chamber 402 have openings located on the surface of the main housing 40.
  • the first installation port of the first chamber 401 and the second chamber are The second installation openings of 402 are respectively provided on different surfaces of the main housing 40.
  • the opening of the first chamber 401 and the opening of the second chamber 402 are respectively provided on two opposite sides of the main housing 40 in the height direction.
  • the main housing 40 includes a cavity shell 45 and a bottom cover. The bottom cover and the cavity shell 45 can be sealed and connected through welding and other processes.
  • the cavity shell 45 includes a cavity shell side wall and a cavity shell top wall. Parts of the cavity shell side wall and the cavity shell top wall form at least part of the wall of the first chamber 401 .
  • the cavity shell side walls and the cavity shell The top wall is an integral structure, and the top wall of the cavity shell and the first installation port are located on the same side of the main housing 40 .
  • the main housing 40 includes a first end S1 and a second end S2.
  • the first end S1 and the second end S2 are arranged oppositely along the height direction of the main housing 40.
  • the first chamber 401 The first installation port is located at the first end S1, the second installation port of the second chamber 402 is located at the second end S2, and the driving assembly 100 is located on a side of the first end S1 away from the second end S2.
  • the pump assembly 20 can be assembled with the main housing 40 from one side of the main housing 40
  • the valve assembly 30 can be assembled with the main housing 40 from the other side of the main housing 40 , thereby facilitating the realization of driving the pump assembly 20
  • the driving components and the driving components of the driving valve assembly 30 are disposed on the same side, which facilitates the integration of multiple driving components.
  • the number of valve assemblies 30 is at least two, all the valve assemblies 30 can be installed on the same side of the main housing 40 to facilitate unified assembly reference, and then all the pump assemblies 20 can be installed from the main housing 40 Installation on the other side facilitates reducing assembly errors and better achieving coaxiality between at least two valve assemblies 30 and corresponding driving components 13 .
  • first installation port of the first chamber 401 and the second installation port of the second chamber 402 can also be provided on the same side of the main housing 40, so that both the pump assembly 20 and the valve assembly 30 are connected from the main housing 40.
  • the assembly is performed on the same side of the casing, which is not limited in this application.
  • valve core structures in the two valve assemblies 30 provided by the embodiment of the present application are similar, including a first valve assembly 30c and a second valve assembly 30d.
  • One of the valve cores is defined as the first valve core 31c, and the other valve core is defined as the second valve core 31c.
  • the number of flow passages 406 located on the outer peripheral side of the first valve core 31c may be at least five, and the number of flow passages 406 located on the outer peripheral side of the second valve core 31d may be at least five.
  • one of the pump components 20 is defined as a first pump component 20d, and the other is a second pump component 20e, wherein the first hole 404d corresponding to the first pump component 20d and the first hole 404e corresponding to the second pump component 20e are They are all connected to the third sub-cavity A3 through the communication channel 407.
  • the flow channel 406 located on the outer peripheral side of the first valve core 31c is defined as the first flow channel 4061.
  • the first flow channel 4061 is located at the side wall of the third sub-cavity A3.
  • the flow channel 406 located on the outer peripheral side of the second valve core 31d is the second flow channel 4062.
  • the second flow channel 4062 is located on the side wall of the fourth sub-cavity A4.
  • the number of the first flow channels 4061 is five.
  • the number of the second flow channels 4062 is five.
  • the number of the first flow channels 4061 and the second flow channels 4062 can also be set according to the user's needs, for example, it can be 3, 4, 6, 7 or more, the number of the first flow channel 4061 and the second flow channel 4062 may be the same or different.
  • the sides of the first pump assembly 20d and the second pump assembly 20e away from the main housing 40 are located on the same side along the height direction of the fluid control device. height to facilitate assembly and installation with respective corresponding stator assemblies. Parts of the valve assembly 30 and parts of the pump assembly 20 are located at the same height, so as to reduce the axial height of the fluid control device. Specifically, the portions of the first valve assembly 30c, the portions of the first pump assembly 20d, and the second pump assembly 20e can be located at the same height.
  • the main housing 40 further includes a first communication channel 407d and a second communication channel 407e.
  • the first communication channel 407d connects the first sub-cavity A1 and the third sub-cavity A3, and the second communication channel 407d connects the first sub-cavity A1 and the third sub-cavity A3.
  • 407e communicates the second sub-cavity A2 and the third sub-cavity A3; at least part of the first communication channel 407d and at least part of the second communication channel 407e are spaced apart along the circumferential direction of the wall of the third sub-cavity A3.
  • the main housing 40 includes a first hole 404 and a second hole 405.
  • the first hole 404 can be a pump assembly. 20
  • the second hole 405 can be the outlet channel of the pump assembly 20 .
  • the first channel 404 includes a first sub-channel 404d and a second sub-channel 404e
  • the second channel 405 includes a third sub-channel 405d and a fourth sub-channel 405e
  • the first sub-channel 404d and the third sub-channel 405d are both connected to the first sub-cavity A1
  • the second sub-channel 404e and the fourth sub-channel 405e are both connected to the second sub-cavity A2
  • the first pump assembly 20d includes a first impeller assembly 221d
  • the second pump assembly 20e includes a second Impeller assembly 221e
  • at least part of the wall of the first sub-channel 404d is coaxially arranged with the rotation axis of the first impeller assembly 221d
  • at least part of the mouth of the third sub-channel 405d is located at the edge of the first impeller assembly 221d in the circumferential direction
  • the second At least part of the wall of the sub-channel 404e is coaxially arranged with the rotation
  • the first valve core 31c includes at least three conduction chambers.
  • the conductive cavity of the core 31c can conduct at least two first flow channels 4061 and isolate at least one first flow channel 4061;
  • the conductive cavity of the second valve core 31d can conduct at least two second flow channels 4062, And isolate at least one second flow channel 4062.
  • the working mode of the first valve assembly 30c is introduced below.
  • the first flow channels corresponding to the first valve assembly 30c are defined as the first sub-flow channel P1, the second sub-flow channel P2, the third sub-flow channel P3, the fourth sub-flow channel P4 and the fifth sub-flow channel P5.
  • the second The sub-flow channel P2 is connected to the corresponding hole of the first pump assembly 20d
  • the fourth sub-flow channel P4 is connected to the corresponding hole of the second pump assembly 20e.
  • the first valve core 31c In the first working mode, as shown in Figure 41, the first valve core 31c is in the first position, and one of the conduction chambers of the first valve core 31c connects the first sub-flow channel P1 and the fourth sub-flow channel P4, and the other conduction cavity One conduction cavity connects the second sub-flow channel P2 and the third sub-flow channel P3, and another conduction cavity isolates the fifth sub-flow channel P5.
  • the first valve core 31c In the second working mode, as shown in Figure 42, the first valve core 31c is in the second position, and one of the conduction chambers of the first valve core 31c connects the fifth sub-flow channel P5 and the fourth sub-flow channel P4, and the other conduction cavity connects the fifth sub-flow channel P5 and the fourth sub-flow channel P4.
  • One conduction cavity connects the second sub-flow channel P2 and the third sub-flow channel P3, and another conduction cavity isolates the first sub-flow channel P1.
  • the first valve core 31c is located in the third position.
  • One of the conduction chambers of the first valve core 31c connects the third sub-flow channel P3 and the fourth sub-flow channel P4.
  • One conduction cavity connects the second sub-flow channel P2 and the first sub-flow channel P1, and another conduction cavity isolates the fifth sub-flow channel P5.
  • the first valve core 31c is located in the fourth position, and one of the conduction chambers of the first valve core 31c connects the third sub-flow channel P3 and the fourth sub-flow channel P4, and the other conduction cavity connects the third sub-flow channel P3 and the fourth sub-flow channel P4.
  • One conduction cavity connects the second sub-flow channel P2 and the fifth sub-flow channel P5, and another conduction cavity isolates the first sub-flow channel P1.
  • the second valve assembly 30d provided by the embodiment of the present application corresponds to the working mode of conducting the second flow channel.
  • the working mode can be the same as that of the first valve assembly 30c and will not be described again.
  • the corresponding flow channels of the two valve assemblies may be connected through external pipes, or the flow channels may be provided on the main housing 40 , which will not be described in detail in this application.
  • the driving assembly 100 of the fluid control device 1 includes the first housing 11, the first stator assembly 130d, the second stator assembly 130e, the first motor 132c and the second motor 132d, and the first pump assembly 20d includes the first rotor.
  • the driving assembly 100 has a first accommodation cavity 101
  • the first housing 11 forms at least part of the wall of the first accommodation cavity 101
  • at least part of the first stator assembly 130d at least part of the second stator assembly 130e
  • the first stator assembly 130e At least part of the motor 132c and at least part of the second motor 132d are located in the first accommodation cavity 101 .
  • the driving assembly 100 may also include a control member 15 located in the first accommodation cavity 101.
  • the first stator assembly 130d, the second stator assembly 130e, the first motor 132c and the second motor 132d are all connected with the control member 15. Electrical connection.
  • the first pump assembly 20d, the first valve assembly 30c, the second pump assembly 20e and the second valve assembly 30d are arranged at intervals along the peripheral direction of the fluid control device;
  • the driving assembly 100 also includes a first gear assembly 133c and a second gear assembly 133d.
  • the first motor 132c is drivingly connected to the first valve core 31c through the first gear assembly 133c
  • the second motor 132d is connected to the second valve through the second gear assembly 133d.
  • the core 31d is drivingly connected
  • the first motor 132c and the second motor 132d are arranged along the first direction X
  • the first stator assembly 130d and the second stator assembly 130e are arranged along the second direction Y, the first direction X and the second direction Y intersects; wherein, the part of the first gear assembly 133c and the part of the second gear assembly 133d are located between the first motor 132c and the second motor 132d, which facilitates the centralized arrangement of the control parts of the first motor 132c and the second motor 133d
  • the output terminals of the first stator assembly 130d and the second stator assembly 130e are close to each other and located in the middle of the driving assembly 100.
  • the control part of the pump assembly 20 and the control part of the valve assembly 30 can be arranged relatively centrally to
  • the fluid control device 1 further includes a limiter
  • the positioning assembly 50 can be located in the fluid assembly 200.
  • the pump assembly 20 includes a rotor assembly 22, a positioning shaft 222 and an isolation sleeve 23. At least part of the rotor assembly 22 is nested with the stator assembly 130.
  • the isolation sleeve 23 covers on part of the outer peripheral side of the rotor assembly 22, and at least part of the isolation sleeve 23 is located between the stator assembly 130 and the rotor assembly 22, wherein the positioning shaft 222 is sleeved on the inside of the rotor assembly 22, and the positioning shaft 222 has a third position in the axial direction.
  • the limiting component 50 is provided close to the second side in the axial direction of the positioning shaft 222 , and the limiting component 50 is limited to the rotor assembly 22 , for example, the limiting component 50 is positioned to the rotor assembly 22 Abut.
  • the axial direction of the positioning shaft 222 is parallel to or coincides with the height direction of the fluid control device.
  • the pump assembly 20 further includes a pump cover 24 , at least a portion of the pump cover 24 is located on the outer peripheral side of the impeller assembly 221 , and at least a portion of the pump cover 24 is located in the first chamber 401 , and at least a portion of the limiting assembly 50 Located on the pump cover 24 , the limiting component 50 has a groove 521 , and the end of the second side of the positioning shaft 222 is located in the groove 521 and abuts against the bottom wall of the groove 521 .
  • the pump cover 24 can be injection molded into an integral structure with the main housing 40; or the pump cover 24 can be separated from the main housing 40 and connected with a limited position. In this case, there is a gap between the pump cover 24 and the main housing 40. Seal ring to achieve sealing between the two.
  • the rotor assembly 22 further includes a first bearing 251 and a second bearing 252.
  • the first bearing 251 and the second bearing 252 are arranged along the axial direction of the rotor assembly 22; along the axial direction of the rotor assembly 22,
  • the first bearing 251 is located between the connecting portion 232 of the isolation sleeve 23 and the magnetic component 223
  • the second bearing 252 is located between the magnetic component 223 and the limiting component 50 .
  • the limiting assembly 50 includes a first gasket 53 and a pump cover 24 , and the first gasket 53 abuts between the second bearing 252 and the pump cover 24 .
  • the pump cover 24 includes a support portion 52 and at least two connecting ribs 51 , and the first gasket 53 is abutted between the second bearing 252 and the support portion 52 .
  • the positioning shaft 222 and the isolation sleeve 23 can be injection molded into an integral structure, and/or the magnetic assembly 223, the impeller assembly 221, the first bearing 251 and the second bearing 252 can be injection molded. It is an integrated structure, achieving stable connection between various structural parts, and is conducive to simplifying the assembly process of the fluid control device.
  • the limiting component 50 includes a first limiting member 541 , a second gasket 542 and a third gasket 543 .
  • the first limiting member 541 is tightly connected to the positioning shaft 222 , along the axial direction of the rotor assembly 22, the second gasket 542 abuts between the first bearing 251 and the connecting portion 232, the first limiting member 541 includes a first flange portion 5411 and a columnar portion 5412, along the first In the axial direction of the limiting member 541, at least part of the orthographic projection of the columnar portion 5412 is located inside the orthographic projection of the first flange portion 5411, and the third gasket 543 is limited between the first flange portion 5411 and the second bearing 252.
  • the impeller assembly 22 of the electric pump device 20 can be placed downward (up and down in the drawing). At this time, the impeller assembly 22 and other structures are limited.
  • the assembly 50 is limited to facilitate assembly of the electric pump device 20 and the main housing 40 .
  • the positioning shaft 222 and the isolation sleeve 23 can be injection molded into an integrated structure, and/or the magnetic assembly 223, the impeller assembly 221, the first bearing 251 and the second bearing 252 can be injection molded into an integrated structure to realize each structural component. Stable connection between them and conducive to simplifying the assembly process of the fluid control device.
  • the first limiting member 541 has a first threaded portion located at the cylindrical portion 5412, and the positioning shaft 222 has a first threaded portion. Two threaded parts, the first threaded part and the second threaded part are threadedly connected. Alternatively, the first limiting member 541 and the positioning shaft 222 may also be riveted.
  • the positioning assembly 50 is located between the magnetic assembly 223 and the impeller assembly 221; the positioning assembly 50 includes a second limiting member 551 and a fourth gasket 552.
  • the second limiting member 551 is positioned and sealed with the isolation sleeve 23, for example The second limiting member 551 is welded to the isolation sleeve 23 and is located on the side of the magnetic component 223 away from the connecting portion 232.
  • the second bearing 252 is sleeved on the outer peripheral side of the positioning shaft 222 and the second limiting member. Between the components 551 , along the axial direction of the rotor assembly 22 , the fourth gasket 552 abuts between the second bearing 252 and the magnetic assembly 223 .
  • the second limiting member 551 includes a second flange portion 5511 and a second cylindrical portion 5512. Along the axial direction of the second limiting member 551, at least part of the orthographic projection of the second cylindrical portion 5512 is located on the second protrusion. The interior of the orthographic projection of edge 5511 part, the second flange part 5511 is sealingly connected with the isolation sleeve 23 .
  • the positioning shaft 222 and the magnetic component 223 can be injection molded into an integrated structure, the isolation sleeve 23 and the first bearing 251 can be injection molded into an integrated structure, and the impeller assembly 221 and the positioning shaft 222 are assembled and connected.
  • the axial limitation of the rotor assembly 22 can be achieved.
  • the fluid control device 1 includes a driving assembly 100 and at least two fluid subassemblies LK.
  • the driving assembly 100 includes at least two driving components 13 , wherein at least one driving component 13 It includes a stator assembly 130. At least part of the stator assembly 130 is connected to the limiting portion 112 of the first housing 11.
  • At least one fluid subassembly LK includes a pump assembly 20.
  • the pump assembly 20 includes a rotor assembly 22.
  • the driving assembly 100 includes a driving component 13 that drives at least two fluid subassemblies LK.
  • the fluid control device 1 provided by the embodiment of the present application can reduce the space occupied by the driving assembly 100 and improve the integration level of the driving assembly 100 .
  • at least two fluid sub-assemblies LK can also be integrated into one main housing 40 to improve the integration level of the fluid control device 1 and reduce the space occupied by the fluid control device 1 .
  • the positioning shaft 222 can be axially limited, thereby having a better axial limiting effect on the rotor assembly 22 and other structures.
  • the embodiment of the present application also provides an electric pump device.
  • the electric pump device has a stator assembly 130, a pump assembly 20 and a limiting assembly 50.
  • the pump assembly 20 includes a rotor assembly 22, a positioning shaft 222, an isolation sleeve 23 and a pump cover. 24. At least part of the rotor assembly 22 and the stator assembly 130 are nested with each other. Optionally, at least part of the rotor assembly 22 is located inside the stator assembly 130.
  • the isolation sleeve 23 covers part of the outer circumference of the rotor assembly 22, and the isolation sleeve At least part of 23 is located between the stator assembly 130 and the rotor assembly 22; wherein, the positioning shaft 222 is sleeved on the inside of the rotor assembly 22, and the first side of the positioning shaft 222 in the axial direction is limited to the isolation sleeve 23.
  • the component 50 is disposed close to the second side of the positioning shaft 222 in the axial direction, and the limiting component 50 is in contact with the rotor component 22 .
  • the stator assembly 130, the pump assembly 20 and the limiting assembly 50 have the same or similar structures as the stator assembly 130, the pump assembly 20 and the limiting assembly 50 provided in any embodiment of FIGS. 1 to 27. Repeat.
  • the rotor assembly 22 includes a magnetic assembly 223 and an impeller assembly 221. At least part of the impeller assembly 221 is arranged with the magnetic assembly 223 along the axial direction of the rotor assembly 22. At least part of the magnetic assembly 223 is sleeved on the stator assembly. 130, the isolation sleeve 23 includes an end wall portion 231 and a connecting portion 232. The extension direction of the end wall portion 231 intersects with the axial direction of the rotor assembly 22; the rotor assembly 22 includes a first bearing 251 and a second bearing 252, The first bearing 251 and the second bearing 252 are arranged along the axial direction of the rotor assembly 22.
  • the first bearing 251 is located between the connecting part 232 and the magnetic assembly 223, and the second bearing 252 is located between the magnetic assembly 223 and the limiting assembly 50. .
  • the limiting component 50 includes a first limiting member 541, a second gasket 542 and a third gasket 543.
  • the first limiting member 541 is tightly connected to the positioning shaft 222, Along the axial direction of the rotor assembly 22, the second gasket 542 abuts between the first bearing 251 and the connecting portion 232.
  • the first limiting member 541 includes a first flange portion 5411 and a columnar portion 5412. In the axial direction of the position member 541 , at least part of the orthographic projection of the columnar portion 5412 is located inside the orthographic projection of the first flange portion 5411 , and the third gasket 543 is limited between the first flange portion 5411 and the second bearing 252 .
  • the limiting assembly 50 is located between the magnetic assembly 223 and the impeller assembly 221; the limiting assembly 50 includes a second limiting member 551 and a fourth gasket 552.
  • the member 551 is limited and sealedly connected to the isolation sleeve 23, and the second limiting member 551 is located on the side of the magnetic component 223 away from the connecting portion 232.
  • the second bearing 252 is sleeved to the outer peripheral side of the positioning shaft 222 and the second limiting member. Between the components 551 , along the axial direction of the rotor assembly 22 , the fourth gasket 552 abuts between the second bearing 252 and the magnetic assembly 223 .
  • the electric pump device may include a pump casing.
  • the pump casing is covered outside the stator assembly, and at least part of the cover is located on a side of the stator assembly away from the rotor assembly.
  • the positioning method of the pump casing and the stator assembly is the same as above.
  • the first housing 11 and the stator assembly 130 mentioned in any embodiment are limited in a similar manner.
  • the stator assembly 130 can be integrally injection molded with the pump housing or the stator assembly 130 can be integrated with the cavity of the pump housing.
  • the isolation sleeve 23 can be injection molded into an integral structure with the pump shell, or the isolation sleeve 23 and the pump shell are separately arranged and sealedly connected; when the stator assembly 130 is assembled to When the installation cavity of the pump casing is QS, the isolation sleeve 23 can be injection molded into an integral structure with the pump shell, or the isolation sleeve 23 and the pump shell are separately arranged and sealedly connected, or the isolation sleeve 23 and the stator assembly 130 can be injection molded into an integral structure, and the isolation sleeve 23 and the stator assembly 130 are integrated with the pump shell as a whole. Separately configured and sealed connections.
  • the limiting connection methods between different stator assemblies 130 and the first housing 11 may be the same or different, and the isolation sleeves 23 corresponding to different stator assemblies 130 may be connected to the first housing 11 in the same manner.
  • the connection methods of 11 can be the same or different.
  • an embodiment of the present application also provides a manufacturing method 1000 of a fluid control device.
  • the manufacturing method 1000 of a fluid control device includes:
  • Step S110 forming the driving assembly 100.
  • step S100, forming the driving assembly 100 includes: providing a first housing 11 and at least two driving components 13.
  • the first housing 11 has a first accommodation cavity 101, and the first housing 11 includes a bottom wall. 111 and the limiting portion 112, the bottom wall portion 111 forms part of the wall of the first accommodation cavity 101, at least part of the limiting portion 112 protrudes from the bottom wall portion 111, at least one driving component 13 includes a stator assembly 130; and the stator assembly 130; At least part of the limiting portion of the component 130 is connected to the limiting portion 112 .
  • the limiting portion 112 protrudes from the bottom wall portion 112 along the height direction of the driving assembly 100 , and the limiting portion 112 can extend in a direction away from the first accommodation cavity 101 .
  • limiting at least part of the stator assembly 130 to the limiting part 112 includes: using the stator assembly 130 as an injection molding insert, and injection molding at least part of the stator assembly 130 with the limiting part 112 through an injection molding process. It is an integrated structure; or the limiting part 112 includes an installation cavity QS, and at least part of the stator assembly 130 is installed in the installation cavity QS and is limitedly matched with the limiting part 112 of the first housing 11. At this time, the stator assembly 130 At least part of the output terminal 1304 is located in the first receiving cavity 101, so that the output terminal 1304 is electrically connected to the control component 15 in the driving assembly 100 or an external control component.
  • the fluid control device may also include an isolation sleeve 23.
  • the isolation sleeve 23 may also be connected to the first housing. 11 is injection molded into an integrated structure, so that part of the isolation sleeve 23 is located inside the stator assembly 130. At this time, the isolation sleeve 23 is sealingly connected to the first housing 11, which facilitates isolation of the stator assembly 130 from the outside world and prevents external water vapor from affecting the stator. Component 130.
  • Step S120 forming at least part of the fluid component 200.
  • forming the fluid assembly 200 in step S300 includes providing at least two fluid sub-assemblies LK and providing the main housing 40 .
  • At least one fluid subassembly LK includes a pump assembly 20.
  • the number of fluid subassemblies LK in this embodiment of the present application is five, of which three fluid assemblies include pump assemblies. 20.
  • the other two fluid components include the valve component 30.
  • the number of fluid subassemblies LK may be two, and both fluid subassemblies LK may include the pump assembly 20 , or one of the fluid subassemblies LK may include the pump assembly 20 , and the other fluid subassembly LK may include the pump assembly 20 .
  • Valve assembly 30 is included.
  • the number of the fluid subassembly LK can be set according to the user's needs, and the number of the included pump components 20 and valve components 30 can also be set according to the user's needs.
  • the main housing 40 has a first chamber 401, a first hole 404 and a second hole 405 arranged at intervals.
  • the first hole 404 and the second hole 405 are both connected to the first chamber 401; at this time, in step S120, a fluid is formed.
  • At least part of the assembly 200 may also include: assembling the pump assembly 20 with the main housing 40 so that at least part of the pump assembly 20 is located in the first chamber 401 so that the rotation of the rotor assembly 22 can drive the fluid in the first hole 404 and the second chamber 401 .
  • Two holes 405 circulation Through the above arrangement, the pump assembly 20 can be disposed in the first chamber 401 .
  • a plurality of pump assemblies 20 may be assembled with the main housing to form at least part of the fluid assembly 200.
  • the pump assembly 20 may include an isolation sleeve 23 and a rotor assembly 22.
  • the step of assembling the pump assembly 20 with the main housing 40 may include a step of forming the pump assembly 20.
  • the rotor assembly 22 may first be sleeved to Inside the isolation sleeve 23 , the isolation sleeve 23 and the rotor assembly 22 are assembled into an integral structure to form the pump assembly 20 , and then the integral structure is assembled with the main housing 40 .
  • the isolation sleeve 23, the rotor assembly 22 and the pump cover 24 can also be assembled into an integral structure first.
  • the step of assembling the pump assembly 20 with the main housing 40 may also include assembling the isolation sleeve 23 and the rotor assembly 22 to the main housing 40 respectively, and then sealingly connecting the isolation sleeve 23 with the main housing 40 .
  • the pump assembly 20 also includes a limiting component 50
  • the limiting component 50 and the positioning shaft 222 can be limitedly matched to form an integral structure, and then the integral structure is assembled with the main housing 40; or, when the limiting component 50 is located in the main housing 40, the pump assembly 20 can be assembled with the main housing 40 to achieve axial alignment of the positioning shaft 222, the rotor assembly 22 and other structures. Limit, this application does not limit this.
  • step S120 forming at least part of the fluid assembly 200 includes:
  • a main housing 40 will be provided.
  • the main housing 40 has a first chamber 401, a second chamber 402, a first hole 404, a second hole 405 and a plurality of flow channels 406.
  • the first chamber 401 and the The two chambers 402 are spaced apart, and the first hole 404 and the second hole 405 are both connected to the first chamber 401;
  • Step 2 Assemble the pump assembly 20 with the main housing 40 so that at least part of the pump assembly 20 is located in a first chamber 401, so that the rotation of the rotor assembly 22 can drive fluid in the first hole 404 and the second hole 405. Circulation facilitates the realization of the driving function of the pump assembly 20 on the fluid;
  • Step 3 Assemble at least part of the valve assembly 30 into the corresponding chamber of the main housing 40, that is, assemble at least part of a valve assembly 30 into a second chamber 402 of the main housing 40, and make the valve assembly 30 and
  • the main housing 40 is limitedly connected so that the conductive cavity 31 of the valve core 31 can conduct at least two flow channels 406 .
  • valve core 31 and the valve core shaft 32 can be assembled to the second chamber 402, and at least part of the valve core shaft 32 passes through the second chamber 402 and is drivingly connected to the output shaft of the motor 132, or when the drive assembly 100
  • gear assembly 133 is drivingly connected to the driving assembly 100
  • at least part of the valve core shaft 32 passes through the second chamber 402 and is drivingly connected to the gear assembly 133 .
  • Step 4 Sealingly connect the bottom cover to the main housing 40 .
  • the bottom cover and the main housing can be sealed through a welding process, thereby achieving a limited connection between the valve assembly 30 and the main housing 40 .
  • the valve assembly 30 may include a first valve assembly 30a and a second valve assembly 30b.
  • the main housing 40 includes a cavity shell 45, a first bottom cover 42 and a second bottom cover 43.
  • the first bottom cover 42 may be understood as What is more, step 2 and step 3 can be performed at the same time or one of step 2 and step 3 can be performed first and then the other.
  • Step S130 sealingly connect the driving assembly 100 and the fluid assembly 200.
  • the driving assembly 100 can be matched with the pump assembly 20, for example, so that at least part of the rotor assembly 22 of the pump assembly 20 is located inside the corresponding stator assembly 130, and part of the isolation sleeve 23 is located between the stator assembly 130 and the corresponding stator assembly 130. between the rotor assemblies 22, the rotor assemblies 22 It can be located within the magnetic field range of the corresponding stator assembly 130. When the coil windings in the stator assembly 130 are energized, a magnetic field can be generated, thereby facilitating the stator assembly 130 to drive the rotor assembly 22 to rotate.
  • a sealing ring can be provided between the driving assembly 100 and the fluid assembly 200, and the driving assembly 100 and the fluid assembly 200 are connected through fasteners such as screws, and the sealing The rings are compressed to realize the driving assembly 100 and the fluid assembly 200 .
  • the first chamber 401 has a first installation port K1
  • the second chamber 402 has a second installation port.
  • Port K2 where the first installation port K1 is located on the first side of the cavity shell 45
  • the second installation port K2 is located on the second side of the cavity shell 45
  • the first and second side parts are located in the height direction of the cavity shell.
  • a plurality of flow channels 406 are distributed on the outer peripheral side of the second chamber 402.
  • the first installation port K1 of the first chamber 401 and the second installation port K2 of the second chamber 402 are respectively provided on the main housing 40.
  • the first installation port K1 of the first chamber 401 and the second installation port K2 of the second chamber 402 are respectively arranged oppositely along the height direction of the main housing 40 . both sides.
  • step S120 forming at least part of the fluid assembly 200 includes: assembling the pump assembly 20 with the main housing 40 from one side of the main housing 40.
  • the pump assembly 20 passes through the first installation port K1, so that At least part of a pump assembly 20 is located in a first chamber 401; at least part of a valve assembly 30 is assembled into a second chamber 402 of the main housing 40 from the other side of the main housing 40, when the valve At least part of the assembly 30 passes through the second installation port K2, so that at least part of the valve assembly 30 is located in the second chamber 402.
  • valve assembly 30 when the valve assembly 30 includes the valve core 31 and the valve core shaft 32, the valve core shaft 31 and the valve core 32 can be passed through the second installation port K2, so that the valve core 31 is located in the second chamber 402, At least part of the valve core shaft 32 is located outside the main housing 40 to facilitate the transmission connection between the valve core shaft 32 and the motor 132 and other transmission components.
  • all the pump assemblies 20 can be passed through the first installation port K1 and the main body from one side of the main housing 40
  • the casing 40 is assembled, and all the valve assemblies 30 are assembled with the main casing 40 from the other side of the main casing 40 through the second installation port K2, and then the bottom cover can be sealed with the cavity shell 45 of the main casing 40 connect.
  • step S130 after sealing the driving assembly 100 with the fluid assembly 200, may also include: connecting at least part of the valve assembly 30 It is assembled into the corresponding second chamber 402 of the main housing 40 and makes the valve assembly 30 and the main housing 40 limitedly connected.
  • the main housing 40 further includes a bottom cover.
  • the bottom cover can be sealingly connected to the cavity shell of the main housing 40, for example
  • the bottom cover and the main housing are sealed through a welding process, thereby achieving a limited connection between the valve assembly 30 and the main housing 40, and sealing the second installation port K2.
  • the manufacturing method of the fluid control device provided by the embodiment of the present application, it is convenient to integrate at least two driving components 13 into one driving assembly.
  • the fluid control device 1 provided by the embodiment of the present application can reduce the space occupied by the driving assembly 100 and improve the integration level of the driving assembly 100 .
  • at least two fluid sub-assemblies LK can also be integrated into one main housing 40 to improve the integration level of the fluid control device 1 and reduce the space occupied by the fluid control device 1 .
  • the positioning shaft 222 can be axially limited, thereby having a better axial limiting effect on the rotor assembly 22 and other structures.
  • the structure of the fluid control device manufactured by the above-mentioned manufacturing method of the fluid control device is shown in FIGS. 1 to 44 and will not be described again.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Details And Applications Of Rotary Liquid Pumps (AREA)

Abstract

La présente invention concerne un dispositif de commande de fluide (1) et un dispositif de pompe électrique. Le dispositif de commande de fluide (1) comprend un ensemble d'entraînement (100), un ensemble pompe (20), un ensemble de limitation (50) et un logement principal (40). L'ensemble d'entraînement (100) comprend un ensemble stator (130). L'ensemble pompe (20) comprend un ensemble rotor (22), un arbre de positionnement (222) et un manchon d'isolation (23), au moins une partie de l'ensemble rotor (22) et l'ensemble stator (130) étant agencée de manière emmanchée, et au moins une partie du manchon d'isolation (23) étant située entre l'ensemble stator (130) et l'ensemble rotor (22). Le logement principal (40) comporte une première chambre (401), au moins une partie de l'ensemble pompe (20) étant située dans la première chambre (401). L'arbre de positionnement (222) est situé dans l'ensemble rotor (22) ; un premier côté de l'arbre de positionnement (222) dans la direction axiale et le manchon d'isolation (23) sont conçus pour atteindre une limitation ; l'ensemble de limitation (50) est disposé à proximité d'un second côté de l'arbre de positionnement (222) dans la direction axiale, et l'ensemble de limitation (50) et l'arbre de positionnement (222) sont conçus pour atteindre une limitation ; par conséquent, la limitation axiale de l'arbre de positionnement (222) et de l'ensemble rotor (22) est facilitée.
PCT/CN2023/091086 2022-04-29 2023-04-27 Dispositif de commande de fluide et dispositif de pompe électrique WO2023208097A1 (fr)

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
CN202210472384.1 2022-04-29
CN202210472211 2022-04-29
CN202210472384 2022-04-29
CN202210472211.X 2022-04-29

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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5949171A (en) * 1998-06-19 1999-09-07 Siemens Canada Limited Divisible lamination brushless pump-motor having fluid cooling system
US5997261A (en) * 1997-10-31 1999-12-07 Siemens Canada Limited Pump motor having fluid cooling system
CN105782063A (zh) * 2014-12-22 2016-07-20 杭州三花研究院有限公司 电驱动泵
CN106640674A (zh) * 2015-10-30 2017-05-10 浙江三花汽车零部件有限公司 电驱动泵的制造方法
CN109510369A (zh) * 2017-09-14 2019-03-22 雷勃美国公司 具有轴向磁通电动机的离心泵组件及其组装方法

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5997261A (en) * 1997-10-31 1999-12-07 Siemens Canada Limited Pump motor having fluid cooling system
US5949171A (en) * 1998-06-19 1999-09-07 Siemens Canada Limited Divisible lamination brushless pump-motor having fluid cooling system
CN105782063A (zh) * 2014-12-22 2016-07-20 杭州三花研究院有限公司 电驱动泵
CN106640674A (zh) * 2015-10-30 2017-05-10 浙江三花汽车零部件有限公司 电驱动泵的制造方法
CN109510369A (zh) * 2017-09-14 2019-03-22 雷勃美国公司 具有轴向磁通电动机的离心泵组件及其组装方法

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