Automobile air conditioner blower motor mounting device

By employing a vertical plate and auxiliary devices in the installation equipment for automotive air conditioning blower motors, the uniformity and stability of the winding were achieved, solving the problems of insufficient winding tension and uniformity, and improving the operating efficiency and lifespan of the motor.

CN118367729BActive Publication Date: 2026-05-08浙江亿晟科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
浙江亿晟科技有限公司
Filing Date
2024-04-10
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Existing automotive air conditioning blower motor installation equipment has poor winding tension and uniformity during winding, which leads to increased winding resistance loss, reduced motor efficiency, unstable operation, and easy damage to the winding.

Method used

An installation device for an automotive air conditioning blower motor has been designed, comprising a vertical plate and a horizontal plate structure, an auxiliary device, and a wire placement device. By moving the vertical plate and positioning the auxiliary device, uniform winding of the winding block is achieved, reducing winding resistance loss and ensuring stable motor operation.

Benefits of technology

By improving winding tension and uniformity, winding resistance loss is reduced, thereby improving the motor's operational stability and service life.

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Abstract

The application relates to the technical field of automobile engineering, and provides a motor mounting device for an automobile air conditioner blower, which comprises a seat plate, an auxiliary device and a wire arranging device. The seat plate comprises a vertical plate and a horizontal plate. The vertical plate is arranged perpendicularly on the side wall of the horizontal plate along the width direction of the horizontal plate and is located above the horizontal plate. The auxiliary device is fixedly arranged on the horizontal plate and is located on one side of the vertical plate. The auxiliary device is used for assisting in positioning a winding block. The wire arranging device is movably arranged on the vertical plate along the height direction of the vertical plate and is located above the auxiliary device. The wire arranging device is used for uniformly winding the winding block fixed on the auxiliary device with a preset winding tension. The motor mounting device for the automobile air conditioner blower provided by the application reduces the loss of winding resistance, improves the accuracy of the winding tension, and enables the motor to maintain a stable operation state.
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Description

Technical Field

[0001] This application relates to the field of automotive engineering technology, and in particular to an installation device for an automotive air conditioning blower motor. Background Technology

[0002] Automotive air conditioning blower motor installation equipment refers to the equipment, tools, or auxiliary tools used for installing, repairing, or adjusting the blower motor in an automotive air conditioning system. This equipment ensures the correct installation of the blower or motor.

[0003] In automotive air conditioning blower motor installation equipment, when installing the stator winding, the winding block is first wound to form the stator winding, and then the stator winding is installed in the stator core with stator grooves. When winding the winding block, the poor tension and uniformity of the winding will increase the winding resistance and resistance loss, which will reduce the efficiency of the motor and make it difficult for the motor to maintain a stable operating state, resulting in damage to the motor winding. Summary of the Invention

[0004] This application provides an automotive air conditioning blower motor installation device, which can improve the technical problems existing in the related technology, such as increased resistance loss, reduced motor efficiency and unstable operation caused by poor winding tension and uniformity, which in turn leads to damage to the motor winding.

[0005] This application provides an automotive air conditioning blower motor installation device, including:

[0006] A seat plate includes a vertical plate and a horizontal plate; the vertical plate is perpendicularly disposed on the side wall of the horizontal plate along the width direction of the horizontal plate and is located above the horizontal plate;

[0007] An auxiliary device is fixedly mounted on the horizontal plate and located on one side of the vertical plate; the auxiliary device is used to assist in the positioning of the winding block; and

[0008] A wire placement device is movably disposed on the vertical plate along the height direction of the vertical plate and located above the auxiliary device; the wire placement device is used to uniformly wind the winding block fixed on the auxiliary device with a preset winding tension.

[0009] The technical solutions described in this application embodiment have at least the following technical effects:

[0010] The automotive air conditioning blower motor mounting equipment provided in this application embodiment features a vertical plate vertically mounted on the side wall of the horizontal plate along its width and positioned above it. This facilitates better assistance from the auxiliary device fixed on the horizontal plate, making the winding of the wire-laying device more convenient and faster. The winding block is placed on the auxiliary device, which assists in positioning it so that the wire-laying device can wind the wire according to a preset winding tension, thereby improving the accuracy of the winding tension and ensuring the motor maintains a stable operating state. After the winding block is assisted in positioning, the wire-laying device moves along the vertical plate to the position of the winding block. The wire-laying device then winds the wire evenly according to the preset winding tension. Because the wire-laying device can wind evenly, the winding resistance is reduced, and the resistance loss is decreased, ensuring the motor's operating power and thus enabling stable motor operation and increasing the motor's service life.

[0011] In some embodiments, the auxiliary device includes:

[0012] An auxiliary body is fixedly mounted on the horizontal plate and located on one side of the vertical plate; and

[0013] An auxiliary component is provided, with its bottom disposed on the top of the auxiliary body; the top of the auxiliary component faces the wire placement device; the auxiliary component has multiple auxiliary holes; the multiple auxiliary holes are evenly distributed along the circumference of the auxiliary component; the auxiliary holes are used for auxiliary positioning of the winding block.

[0014] In some embodiments, the vertical plate is provided with a movable part; the line placement device includes:

[0015] A movable mating part is movably disposed on the movable part;

[0016] Support rod, one end of which is connected to the movable mating part; and

[0017] A wire-holding component is disposed at the other end of the support rod; the wire-holding component is located above the auxiliary component; the wire-holding component is used to uniformly wind the winding block, which is auxiliaryly positioned on the auxiliary hole, with a preset winding tension.

[0018] In some embodiments, the wire placement device includes:

[0019] The wire-laying body is disposed at the other end of the support rod; the wire-laying body is located above the auxiliary component;

[0020] Multiple fasteners are uniformly fixedly disposed on the wire-laying body along the circumference of the wire-laying body; and

[0021] Multiple wire placement components are uniformly fixed on the wire placement body along the circumference of the wire placement body, and are respectively disposed on the periphery of each of the fasteners. The wire placement components are located above the auxiliary component.

[0022] The auxiliary hole has a detection element installed on its inner bottom wall. When the detection element detects that a winding block is placed in the auxiliary hole, the moving mating part drives each of the fasteners and the winding components of the winding component to move toward the auxiliary hole, so that each of the fasteners abuts against the winding block in the auxiliary hole, and the winding component assists in winding the winding block, which is positioned in the auxiliary hole, to wind it evenly with a preset winding tension.

[0023] In some embodiments, the wiring component includes:

[0024] A wire placement housing is disposed on the wire placement body; the wire placement housing is annular and is sleeved around the fastener; the fastener protrudes from the wire placement housing.

[0025] A rotating part is located inside the wire placement housing and is disposed on the wire placement body;

[0026] A telescopic section is located within the cable placement housing; the telescopic section is disposed at the power output end of the rotating section, and the rotating section is used to drive the telescopic section to rotate around the axis of the cable placement housing; and

[0027] The winding part has its tail end disposed on the telescopic part; the head end of the winding part extends outside the wire placement housing and faces the auxiliary member.

[0028] The auxiliary component is provided with multiple sets of tension auxiliary rods; each set of tension auxiliary rods includes two tension auxiliary rods; the position of each set of tension auxiliary rods corresponds to the position of each auxiliary hole, and the tension auxiliary rods are closer to the outside of the auxiliary component than the auxiliary holes; the winding part first winds the wire onto each set of tension auxiliary rods, and the tension auxiliary rods are used to determine whether the tension of the wire wound by the winding part is the same as the preset tension.

[0029] In some embodiments, the wiring component includes a downward movement controller, which is electrically connected to the telescopic part and the rotating part; the downward movement controller is used to control the downward movement distance of the telescopic part and to control the rotation of the rotating part after the telescopic part moves downward.

[0030] In some embodiments, the automotive air conditioning blower motor mounting equipment further includes:

[0031] A boss is provided on the horizontal plate and located on the side of the auxiliary member away from the vertical plate; the boss is used to place a stator core with stator grooves, and the stator core can be used to install the wound stator windings; and

[0032] An installation device is disposed on the transverse plate and located between the boss and the auxiliary component; the installation device is used to install the wound stator winding into the stator core.

[0033] In some embodiments, the mounting device includes:

[0034] A mounting base is provided on the horizontal plate;

[0035] A vertical rod, the bottom of which is fixed to the mounting base;

[0036] A rotating component is located at the top of the vertical rod;

[0037] A crossbar, one end of which is vertically connected to the power output end of the rotating component; and

[0038] The mounting component is fixedly disposed at the other end of the crossbar; the rotating component can drive the mounting component to move above the boss or the auxiliary component; the mounting component is used to install the wound stator winding into the stator core;

[0039] The mounting base, the vertical rod, the rotating component, and the horizontal rod are located between the boss and the auxiliary component.

[0040] The mounting component includes:

[0041] The mounting body is fixedly installed at the other end of the crossbar;

[0042] Multiple mounting components are fixedly mounted on the mounting body; the multiple mounting components are evenly arranged along the circumference of the mounting body; each mounting component is used to install the stator winding completed in each of the auxiliary holes into the stator core.

[0043] In some embodiments, the mounting component includes:

[0044] A telescopic component, one end of which is fixedly mounted on the mounting body;

[0045] An intermediate component, the intermediate component being connected to the other end of the telescopic component; and

[0046] A clamping component is disposed on the intermediate component; the clamping component is used to clamp the stator winding that has been wound.

[0047] The clamping component includes:

[0048] A first clamping plate is disposed on one side of the intermediate member along its length; and

[0049] The second clamping plate is disposed on the other side of the intermediate component along its length; the first clamping plate and the second clamping plate are disposed opposite to each other;

[0050] The first clamping plate is used in conjunction with the second clamping plate to clamp the stator winding that has been wound.

[0051] In some embodiments, the inner sidewall of the first clamping plate is provided with a first conductive contact; the inner sidewall of the second clamping plate is provided with a second conductive contact; the first conductive contact and the second conductive contact are disposed opposite to each other; the intermediate component includes:

[0052] A first measuring part is disposed on one side of the intermediate part along the length direction of the intermediate part; the first measuring part is located on the side of the first clamping plate away from the second clamping plate;

[0053] A second measuring part is disposed on the other side of the intermediate part along the length direction of the intermediate part; the second measuring part is located on the side of the second clamping plate away from the first clamping plate; and

[0054] The detection power supply, the first measuring unit, the first conductive contact, the detection power supply, the second conductive contact, and the second measuring unit are sequentially electrically connected to form a measuring circuit; the detection power supply is used to control the measuring circuit to disconnect when the first clamping plate and the second clamping plate are not clamping the completed stator winding, and to control the measuring circuit to connect when the first clamping plate and the second clamping plate clamp the completed stator winding into the stator core. Attached Figure Description

[0055] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0056] Figure 1 This is a schematic diagram of the structure of the automotive air conditioning blower motor mounting equipment provided in an embodiment of this application;

[0057] Figure 2 This is a schematic diagram of the auxiliary device provided in the embodiments of this application;

[0058] Figure 3 This is a schematic diagram of the wiring device provided in the embodiments of this application;

[0059] Figure 4A schematic diagram of the structure in which the boss and the mounting device cooperate, as provided in an embodiment of this application;

[0060] Figure 5 This is a schematic diagram of the structure of the mounting component provided in the embodiments of this application.

[0061] The following are the labeling elements in the figure:

[0062] 100. Installation equipment for automotive air conditioning blower motors;

[0063] 10. Seat plate; 11. Vertical plate; 111. Moving part; 12. Horizontal plate;

[0064] 20. Auxiliary device; 21. Auxiliary body; 22. Auxiliary component; 2201. Auxiliary hole; 221. Detection component; 222. Tension auxiliary rod;

[0065] 30. Cable placement device; 31. Moving mating part; 32. Support rod; 33. Cable placement component; 331. Cable placement body; 332. Fastener; 333. Cable placement part; 3331. Cable placement housing; 3332. Rotating part; 3333. Telescopic part; 3334. Winding part;

[0066] 40. Boss;

[0067] 50. Mounting device; 51. Mounting base; 52. Vertical rod; 53. Rotating component; 54. Horizontal rod; 55. Mounting component; 551. Mounting body; 552. Mounting part; 5521. Telescopic component; 5522. Intermediate component; 55221. First measuring part; 55222. Second measuring part; 5523. Clamping component; 55231. First clamping plate; 55232. Second clamping plate. Detailed Implementation

[0068] To make the technical problems, technical solutions, and beneficial effects to be solved by this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and are not intended to limit the scope of this application.

[0069] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs; the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the application. The terms “comprising” and “having”, and any variations thereof, in the specification, claims, and foregoing description of the drawings are intended to cover non-exclusive inclusion.

[0070] It should be noted that when a component is referred to as being "fixed to" or "set on" another component, it can be directly on or indirectly on that other component. When a component is referred to as being "connected to" another component, it can be directly connected to or indirectly connected to that other component.

[0071] It should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0072] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.

[0073] In this application, "and / or" is merely a way of describing the relationship between related objects, indicating that three relationships can exist; for example, A and / or B can represent three cases: A existing alone, A and B existing simultaneously, and B existing alone. Additionally, the character " / " in this document generally indicates that the preceding and following related objects have an "or" relationship.

[0074] It should be noted that in this application, the words "in some embodiments," "exemplarily," and "for example" are used to indicate examples, illustrations, or descriptions. Any embodiment or design described in this application as "in some embodiments," "exemplarily," or "for example" should not be construed as being more preferred or advantageous than other embodiments or design solutions. Specifically, the use of words such as "in some embodiments," "exemplarily," and "for example" is intended to present related concepts in a specific manner, meaning that a particular feature, structure, or characteristic described in connection with the embodiment may be included in at least one embodiment of this application. The appearance of the above words in various places in the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment that is mutually exclusive with other embodiments. Those skilled in the art will explicitly and implicitly understand that the embodiments described herein can be combined with other embodiments.

[0075] Automotive air conditioning blower motor installation equipment refers to the equipment, tools, or auxiliary tools used for installing, repairing, or adjusting the blower motor in an automotive air conditioning system. This equipment ensures the correct installation of the blower or motor.

[0076] In automotive air conditioning blower motor installation equipment, the stator winding is typically installed by first winding the coil to form the stator winding, and then installing the stator winding inside the stator core with stator grooves. During the winding process, poor winding tension and uniformity increase winding resistance and resistance loss, which reduces motor efficiency and makes it difficult for the motor to maintain stable operation, leading to damage to the motor windings.

[0077] Based on this, in order to improve the problems in related technologies where poor winding tension and uniformity lead to increased resistance loss, reduced motor efficiency, and unstable operation, resulting in damage to the motor windings, the embodiments of this application provide the following solutions.

[0078] Please see Figure 1 This application provides an automotive air conditioning blower motor mounting device 100, which includes a base plate 10, an auxiliary device 20, and a wiring device 30, wherein:

[0079] The seat plate 10 includes a vertical plate 11 and a horizontal plate 12. The vertical plate 11 is disposed perpendicularly to the side wall of the horizontal plate 12 along the width direction of the horizontal plate 12 and is located above the horizontal plate 12.

[0080] The auxiliary device 20 is fixedly mounted on the horizontal plate 12 and located on one side of the vertical plate 11. The auxiliary device 20 is used to assist in the positioning of the winding block.

[0081] The wire placement device 30 is movably mounted on the vertical plate 11 along its height direction and is located above the auxiliary device 20. The wire placement device 30 is used to uniformly wind the winding block fixed on the auxiliary device 20 with a preset winding tension.

[0082] It is understood that the vertical plate 11 and the horizontal plate 12 can be structures capable of supporting the auxiliary device 20 and the wire-laying device 30, such as plate-like structures, but are not limited to these. The auxiliary device 20 can be a component capable of assisting the winding member in winding the wire, such as an auxiliary disc or auxiliary ring structure, but is not limited to these. The wire-laying device 30 can be a component capable of uniformly winding the wire, such as a device with internal functions such as preset downward movement distance and a winding mechanism, but is not limited to these.

[0083] As can be seen from the above, the automotive air conditioning blower motor mounting equipment 100 provided in this application embodiment has a vertical plate 11 that is vertically arranged on the side wall of the horizontal plate 12 along the width direction of the horizontal plate 12 and located above the horizontal plate 12. This facilitates better assistance from the auxiliary device 20 fixed on the horizontal plate 12, making the winding of the wire placement device 30 more convenient and faster. The winding block is placed on the auxiliary device 20, which assists in positioning the winding block so that the wire placement device 30 can wind the wire according to the preset winding tension, thereby improving the accuracy of the winding tension and ensuring that the motor can maintain a stable operating state. After the winding block is assisted in positioning, the wire placement device 30 moves to the position of the winding block through the height direction of the vertical plate 11. The wire placement device 30 then winds the wire evenly according to the preset winding tension. Since the wire placement device 30 can wind the wire evenly, the winding resistance is reduced, the resistance loss is reduced, the operating power of the motor is guaranteed, and the motor operates stably, thereby increasing the service life of the motor.

[0084] In some embodiments, please refer to Figure 2 The auxiliary device 20 includes an auxiliary body 21 and an auxiliary component 22. The auxiliary body 21 is fixedly mounted on the horizontal plate 12 and located on one side of the vertical plate 11. The bottom of the auxiliary component 22 is located at the top of the auxiliary body 21. The top of the auxiliary component 22 faces the wire-positioning device 30. Multiple auxiliary holes 2201 are provided on the auxiliary component 22. The multiple auxiliary holes 2201 are evenly distributed along the circumference of the auxiliary component 22. The auxiliary holes 2201 are used for auxiliary positioning of the winding block.

[0085] It is understood that the auxiliary body 21 can be a component capable of supporting the auxiliary component 22, such as a ring-shaped support structure or a block-shaped support structure, but is not limited thereto. The auxiliary component 22 can be a component capable of assisting in fixing the winding block, such as a ring structure with fixing holes or grooves, but is not limited thereto.

[0086] With this configuration, multiple auxiliary holes 2201 are provided on the auxiliary component 22, evenly distributed around its circumference. Each winding block is placed in its respective auxiliary hole 2201, which assists in positioning the winding block. Since the top of the auxiliary component 22 faces the winding device 30, the winding device 30 moves downward to the position of the auxiliary hole 2201 via the vertical plate 11 and fixes the winding block placed in the auxiliary hole 2201. After fixing the winding block in the auxiliary hole 2201, the winding device 30 winds the winding evenly according to the preset winding tension. Because the winding device 30 can wind evenly, the auxiliary positioning of the auxiliary component 22 reduces the risk of poor fixing during winding, which could lead to increased or decreased winding tension or poor winding uniformity. This reduces winding resistance and losses, thereby stabilizing the motor's operating power.

[0087] Optionally, in some embodiments, please refer to Figure 1 and Figure 3 The vertical plate 11 is provided with a movable part 111. The wire placement device 30 includes a movable mating part 31, a support rod 32 and a wire placement component 33.

[0088] The movable mating part 31 is movably disposed on the movable part 111. One end of the support rod 32 is connected to the movable mating part 31. The wire placement member 33 is disposed at the other end of the support rod 32. The wire placement member 33 is located above the auxiliary member 22. The wire placement member 33 is used to uniformly wind the winding block, which is auxiliaryly positioned on the auxiliary hole 2201, with a preset winding tension.

[0089] It is understood that the moving part 111 can be a structure that enables the moving mating part 31 to move and supports the moving mating part 31, such as a slide rail, but is not limited to this. The moving mating part 31 can be a component that can drive the support rod 32 and the wire placing member 33 to move, such as an electrically controlled moving block, and can include a moving member and a drive motor for driving the moving member to move on the moving part 111. The drive motor can include an electric motor, a drive motor, etc., but is not limited to this. The support rod 32 is a structure that can stably support the moving mating part 31 and the wire placing member 33, such as a rod-shaped structure, but is not limited to this. The wire placing member 33 can be a component that can evenly wind the wire onto the winding block, such as a component with functions such as preset downward movement distance and a winding mechanism, but is not limited to this.

[0090] With this configuration, the auxiliary component 22 has multiple auxiliary holes 2201. Each winding block is placed in its respective auxiliary hole 2201, which assists in positioning the winding block. Since the top of the auxiliary component 22 faces the wire placement device 30, and the vertical plate 11 has a moving part 111, after the auxiliary holes 2201 assist in positioning the winding block, the moving engagement part 31, through its engagement with the moving part 111, drives the support rod 32 and the wire placement component 33 downward to the position of the auxiliary hole 2201. When the wire placement component 33 moves to the winding block and fixes it, the moving engagement part 31 stops. The winding block is moved, and then the winding member 33 winds the wire evenly according to the preset winding tension. With the cooperation of the moving engagement part 31 and the moving part 111, it can accurately move to the position of the auxiliary hole 2201. The fixing force on the winding block can be adjusted according to actual needs to reduce the position movement of the winding member 33 during winding due to insufficient fixing force on the winding block, which would cause uneven winding and excessive or insufficient tension. Due to the cooperation of the moving engagement part 31 and the moving part 111, the loss of winding resistance is reduced, the motor power remains stable, and the reliability and stability of the motor operation are improved.

[0091] Optionally, in some embodiments, please refer to Figure 3 The wire placement component 33 includes a wire placement body 331, multiple fasteners 332, and multiple wire placement parts 333, wherein:

[0092] The cable placement body 331 is located at the other end of the support rod 32. The cable placement body 331 is positioned above the auxiliary component 22.

[0093] Multiple fasteners 332 are uniformly fixed on the wire placement body 331 along the circumference of the wire placement body 331.

[0094] Multiple wire placement components 333 are uniformly fixed on the wire placement body 331 along the circumference of the wire placement body 331, and are respectively disposed on the periphery of each fastener 332. The wire placement components 333 are located above the auxiliary component 22.

[0095] The inner bottom wall of the auxiliary hole 2201 is equipped with a detection element 221. When the detection element 221 detects that a winding block is placed in the auxiliary hole 2201, the moving mating part 31 drives each fastener 332 and each winding component 333 of the winding component 33 to move toward the auxiliary hole 2201, so that each fastener 332 abuts against the winding block in the auxiliary hole 2201, and the winding component 333 winds the winding block, which is assisted in positioning in the auxiliary hole 2201, evenly with a preset winding tension.

[0096] It is understood that the wire-laying body 331 can be a structure capable of mounting and supporting multiple fasteners 332 and multiple wire-laying components 333, such as a ring-shaped or disc-shaped structure, but not limited to this. The fasteners 332 can be components capable of abutting against the winding block, such as a block-shaped or columnar structure, but not limited to this. The wire-laying components 333 can be components with internal functions such as preset downward movement distance and winding mechanism, but not limited to this. The detection element 221 can be a component capable of detecting whether force is applied, such as a pressure sensor, contact sensor, etc., but not limited to this. For example, when the winding block is placed in the auxiliary hole, the detector provided in the auxiliary hole 2201 detects and provides feedback information, but not limited to this.

[0097] With this configuration, when the winding block is placed inside the auxiliary hole 2201, the detection element 221 located on the bottom wall of the auxiliary hole 2201 detects that a winding block is placed inside the auxiliary hole 2201. The moving engagement part 31, through its engagement with the moving part 111, drives the support rod 32, the wire placement body 331, multiple fasteners 332, and multiple wire placement components 333 to move downwards to the position of the auxiliary hole 2201. Since the wire placement body 331 is located above the auxiliary element 22, and the multiple wire placement components 333 are evenly fixedly arranged on the wire placement body 331 along the circumference of the wire placement body 331 and are correspondingly arranged on the periphery of each fastener 332, the moving engagement part 31 drives each fastener 332 and each wire placement component 333 of the wire placement component 33 to move toward the auxiliary hole 2201, and causes each fastener 332 to abut against the winding block inside the auxiliary hole 2201 to fix the winding block. After the winding block is fixed, the moving mating part 31 stops moving, and the wire placement part 333 winds the wire evenly according to the preset winding tension. Under the action of the fastener 332, the fixing force of the winding block is adjusted according to actual needs to reduce uneven winding and excessive or insufficient tension caused by insufficient or excessive fixing force of the winding block. This reduces the loss of winding resistance and keeps the motor power stable.

[0098] Optionally, in some embodiments, please refer to Figure 3 The wire placement component 333 includes a wire placement housing 3331, a rotating part 3332, a telescopic part 3333, and a winding part 3334, wherein:

[0099] The wire placement housing 3331 is disposed on the wire placement body 331. The wire placement housing 3331 is annular and is sleeved around the fastener 332. The fastener 332 protrudes from the wire placement housing 3331.

[0100] The rotating part 3332 is located inside the wire housing 3331 and is disposed on the wire body 331.

[0101] The telescopic part 3333 is located inside the wire placement housing 3331. The telescopic part 3333 is disposed at the power output end of the rotating part 3332, and the rotating part 3332 is used to drive the telescopic part 3333 to rotate around the axis of the wire placement housing 3331.

[0102] The tail of the winding part 3334 is provided on the telescopic part 3333; the head of the winding part 3334 extends to the outside of the wire housing 3331 and faces the auxiliary member 22.

[0103] The auxiliary component 22 is provided with multiple sets of tension auxiliary rods 222; each set of tension auxiliary rods 222 includes two tension auxiliary rods 222; the position of each set of tension auxiliary rods 222 corresponds to the position of each auxiliary hole 2201, and the tension auxiliary rods 222 are closer to the outside of the auxiliary component 22 than the auxiliary holes 2201; the winding part 3334 first winds the wire onto each set of tension auxiliary rods 222, and the tension auxiliary rods 222 are used to determine whether the tension of the wire wound by the winding part 3334 is the same as the preset tension.

[0104] It is understood that the wire-holding housing 3331 can be a structure capable of accommodating and protecting the rotating part 3332, the telescopic part 3333, and the winding part 3334; the rotating part 3332 can be a component capable of driving the telescopic part 3333 to rotate around the axis of the wire-holding housing 3331, such as a rotary motor, but not limited thereto. The telescopic part 3333 can be a component capable of driving the winding part 3334 to move according to a preset distance, such as a telescopic motor, but not limited thereto. The winding part 3334 can be a component capable of uniformly winding wire on the winding block, but not limited thereto. The tension auxiliary rod 222 can be a component capable of detecting the magnitude of tension, for example, a tension sensor can be provided between each set of tension auxiliary rods 222, and the tension sensor can be preset with the tension required for winding. Two tension auxiliary rods 222 (which can be rod-shaped structures, etc.) are connected to the two ends of the tension sensor. When the tension auxiliary rod 222 is subjected to force, it will drive the tension sensor to detect the magnitude of the force and compare it with the preset force. For example, the telescopic part 3333 is disposed at the power output end of the rotating part 3332. The rotating part 3332 drives the telescopic part 3333 to rotate around the axis of the wire placement housing 3331. The wire placement housing 3331 may be provided with a first guide rail (for the largest winding diameter of the winding part 3334) and a second guide rail (for the smallest winding diameter of the winding part 3334). The first guide rail and the second guide rail are connected by an intermediate rail. For example, the wire placement component 333 includes a translation part (which may include an electric moving block and a drive motor that drives the electric moving block; the drive motor may be a motor, etc.). The rotating part 3332 is provided with... The translation part is movably mounted on the intermediate track, the first guide track, and the second guide track. The translation part moves from the intermediate track to the first guide track, driving the winding part 3334 to the tension assist rod 222. The winding part winds the wire onto the tension assist rod 222 to check if the tension is appropriate. When the winding part 3334 winds the wire to the appropriate tension, it moves from the first guide track through the intermediate track to the second guide track (or any position on the intermediate track) under the action of the telescopic part 3333. The winding part 3334 then begins winding the wire onto the winding block. If the winding part 3334 winds the wire to the appropriate tension, the tension is adjusted until it meets the requirements. Then, under the action of the telescopic part 3333, the winding part 3334 moves from the first guide track through the intermediate track to the second guide track (or any position on the intermediate track). The winding part 3334 then begins winding the wire onto the winding block, etc., but not limited to these steps.

[0105] With this configuration, when the winding block is placed inside the auxiliary hole 2201, the detection element 221 located on the bottom wall of the auxiliary hole 2201 detects that a winding block is placed inside the auxiliary hole 2201. The moving mating part 31 drives each fastener 332 of the wire placement component 333 and each wire placement component 333 to move toward the auxiliary hole 2201. At the same time, the wire placement housing 3331, rotating part 3332, telescopic part 3333 and winding part 3334 of the wire placement component 333 are also located on the auxiliary hole 2201. When each fastener 332 abuts against the winding block inside the auxiliary hole 2201, it proves that the winding block is fixed. After the winding block is fixed, the moving mating part 31 stops moving. Then, the telescopic part 3333 on the rotating part 3332 drives the winding part 3334 to extend downward, extending the winding part 3334 to the tension auxiliary rod 222 for winding. After the wire is wound on the tension auxiliary rod 222, the tension of the wire is detected by the tension auxiliary rod 222. When the tension auxiliary rod 222 detects that the winding force of the winding part 3334 is the same as the preset force, it proves that the tension is satisfied. When the tension auxiliary rod 222 detects that the winding force of the winding part 3334 is too large or too small, it proves that the tension does not meet the required winding tension. At this time, the tension auxiliary rod 222 provides feedback information to adjust the tension of the winding part 3334. After adjusting the winding part 3334, the winding block is wound again.

[0106] When the preset tension is the same as the tension of the winding part 3334, the winding part 3334 starts to wind the wire. The distance from the winding part 3334 to the auxiliary hole 2201 is greater than the distance from the tension auxiliary rod 222 to the auxiliary hole 2201. The telescopic part 3333 drives the winding part 3334 to move downward according to the preset distance. After the winding part 3334 moves, the rotating part 3332 drives the telescopic part 3333 to rotate around the axis of the wire housing 3331. The rotating part 3332 drives the winding part 3334 to wind the wire once, so that the wire is wound on the winding block to form a winding. This action is repeated to complete the winding work on the winding block. With the assistance of the tension assist rod 222, the accuracy of the tension during winding is improved, reducing the instability of the motor operation caused by excessive or insufficient tension, and even leading to winding damage. The preset distance control of the telescopic part 3333 can improve the winding part 3334 so that the winding can be wound more evenly, reducing the loss of winding resistance, improving the service life of the winding, and maintaining the reliability and stability of the motor power.

[0107] Alternatively, in other embodiments, the wire guide 33 includes an adjustment body, a plurality of clamping members, and a plurality of winding members.

[0108] The adjustment body is located at the other end of the support rod 32. The wiring body 331 is located above the auxiliary component 22.

[0109] Multiple clamping components are evenly arranged on the adjusting body along the circumference of the adjusting body.

[0110] Multiple winding elements are movably disposed on the adjusting body, located above the auxiliary element 22. The winding elements are evenly disposed on the adjusting body along the circumference of the adjusting body, and are disposed one-to-one with each clamping element around its periphery.

[0111] It is understood that the adjusting body can be a structure capable of mounting and supporting multiple clamping members and multiple winding members, such as a ring-shaped or disc-shaped structure, but not limited to these. The clamping member can be a component capable of abutting against the winding block, such as a block-shaped or columnar structure, but not limited to these. The winding member can be a component with a preset downward movement distance and a winding mechanism, but not limited to these. Exemplarily, the winding member 33 includes an adjusting member. The adjusting body can be provided with multiple moving tracks (which can be linear tracks), the adjusting member is movably mounted on the moving tracks, the winding member is mounted on the adjusting member, and the adjusting member drives the winding member to move on the moving tracks. The adjusting member will drive the winding member to the position of the tension assist rod 222 via the moving tracks. The winding component then winds the wire onto the tension assist rod 222 to check if the tension is appropriate. When the wire wound by the winding part 3334 meets the tension requirements, the adjusting component moves the winding component away from the tension assist rod and closer to the center of the adjusting body via the moving track. This causes the winding radius of the winding component to move towards the center, reducing its radius and ensuring accurate winding of the wire onto the winding block. When the wire wound by the winding part 3334 does not meet the tension requirements, the wire placement component 333 remains stationary until the tension is adjusted and meets the requirements, at which point the above process is repeated.

[0112] With this configuration, when the winding block is placed inside the auxiliary hole 2201, the detection element 221, located on the bottom wall of the auxiliary hole 2201, detects the presence of the winding block. The moving engagement part 31, in conjunction with the moving part 111, moves the support rod 32, the adjusting body, multiple clamping elements, and multiple winding elements downwards to the position of the auxiliary hole 2201, causing each fastener 332 to abut against the winding block inside the auxiliary hole 2201, thus securing the winding block. After securing the winding block, the moving engagement part 31 stops moving, and the winding elements then evenly wind the wire according to a preset winding tension. After the winding component winds the wire onto the tension assist rod 222 and the tension meets the requirements, the wire needs to be wound onto the winding block. Since the radius of the winding component when it winds the wire onto the tension assist rod 222 is larger than the radius of the winding component when it winds the wire onto the winding block, the radius of the winding needs to be reduced. By making the winding component wind the wire only onto the winding block, the ease of winding is improved. The radius can be increased or decreased according to actual requirements through the adjustment component, so that the winding can be conveniently and quickly wound even when the position of the winding block changes, maintaining working stability, improving operability, further enhancing the reliability of the winding component, and making the motor run stably.

[0113] Optionally, in some embodiments, please refer to Figure 3 The wiring component 333 includes a downward movement controller, which is electrically connected to the telescopic part 3333 and the rotating part 3332. The downward movement controller is used to control the downward movement distance of the telescopic part 3333 and to control the rotation of the rotating part 3332 after the telescopic part 3333 has moved downward.

[0114] It is understood that the downward controller can be a component that can control the downward movement distance of the telescopic part 3333, such as a microcontroller or a single-chip microcomputer, but is not limited to this.

[0115] With this configuration, the downward controller is electrically connected to the telescopic part 3333 and the rotating part 3332. When the preset tension is the same as the tension wound by the winding part 3334, the winding part 3334 begins to wind. The distance from the winding part 3334 to the auxiliary hole 2201 is greater than the distance from the tension auxiliary rod 222 to the auxiliary hole 2201. The downward controller controls the telescopic part 3333 to move downward by the preset distance. The winding part 3334 moves under the drive of the telescopic part 3333. After the winding part 3334 has moved, the downward controller controls and drives the rotation. The rotating part 3332 rotates around the axis of the housing 3331. At the same time, the rotating part 3332 also drives the winding part 3334 to wind one revolution and wind the wire onto the winding block to form one revolution of winding. This action is repeated to complete the winding work on the winding block. Under the control of the downward controller, it can first move by a preset downward distance before rotating and winding, which can meet the winding uniformity of different windings, improve the utilization of the equipment, and enhance resource utilization. Furthermore, the winding uniformity is improved, the operating state of the motor is enhanced, and the stability of the motor during operation is maintained.

[0116] Optionally, in some embodiments, please refer to Figure 1 and Figure 4 The automotive air conditioning blower motor mounting equipment 100 also includes a boss 40 and a mounting device 50, wherein:

[0117] The boss 40 is disposed on the horizontal plate 12 and located on the side of the auxiliary member 22 away from the vertical plate 11. The boss 40 is used to place the stator core with stator grooves, and the stator core can be used to install the wound stator winding.

[0118] The mounting device 50 is disposed on the transverse plate 12 and located between the boss 40 and the auxiliary component 22; the mounting device 50 is used to install the wound stator winding into the stator core.

[0119] It is understood that the boss 40 can be a structure for placing the stator core, but is not limited to this. The mounting device 50 can be a component that can install the wound stator winding into the stator core, such as a structure with an internal clamping function, but is not limited to this.

[0120] With this configuration, after the winding parts 3334 of the winding device 30 have finished winding, the moving mating part 31 will move in conjunction with the moving part 111, and move upward and away from the auxiliary hole 2201. At this time, the fasteners 332 will move away from the winding blocks of the auxiliary holes 2201, and the winding blocks will be loosened. At this time, the stator core with the stator groove is placed on the boss 40, and then the stator winding wound on the winding block is clamped and installed in the stator groove of the stator core by the mounting device 50 set on the transverse plate 12, while maintaining a suitable installation gap. Through the action of the mounting device 50 and the boss 40, the winding after winding can be directly installed in the stator groove of the stator core, reducing the excessive force on the winding before installation (when taking it out and transferring it), which makes the winding not conform to the tension. Moreover, the mounting device 50 makes it more convenient and efficient to install the winding, thereby improving the reliability of the winding installation.

[0121] Optionally, in some embodiments, please refer to Figure 4 and Figure 5 The mounting device 50 includes a mounting base 51, a vertical rod 52, a rotating component 53, a horizontal rod 54, and a mounting component 55. The mounting base 51 is mounted on the horizontal plate 12. The bottom of the vertical rod 52 is fixed to the mounting base 51. The rotating component 53 is mounted on the top of the vertical rod 52. One end of the horizontal rod 54 is vertically connected to the power output end of the rotating component 53. The mounting component 55 is fixedly mounted on the other end of the horizontal rod 54; the rotating component 53 can drive the mounting component 55 to move above the boss 40 or the auxiliary component 22. The mounting component 55 is used to install the wound stator winding into the stator core. The mounting base 51, vertical rod 52, rotating component 53, and horizontal rod 54 are located between the boss 40 and the auxiliary component 22.

[0122] It is understood that the vertical rod 52 and the horizontal rod 54 can be structures capable of supporting the rotating component 53 and the mounting component 55, such as rod-shaped structures, but are not limited to these. The mounting component 55 can be a component capable of installing the wound stator winding into the stator core, such as a structure with a clamping function, but is not limited to these. The rotating component 53 can be a component capable of driving the horizontal rod 54 to rotate, such as a rotary motor, but is not limited to these.

[0123] With this configuration, after the winding parts 3334 of the winding device 30 have finished winding, the moving mating part 31 will move in conjunction with the moving part 111, moving upward and away from the auxiliary hole 2201. At this time, each fastener 332 will move away from each winding block of each auxiliary hole 2201, and the winding block will be loosened. The stator core with stator grooves is placed on the boss 40. After the mounting part 55 clamps the winding, since the mounting base 51 is set on the horizontal plate 12, the bottom of the vertical rod 52 is fixed on the mounting base 51, and the rotating part 53 is set on the top of the vertical rod 52, one end of the horizontal rod 54 is vertically connected to the power output end of the rotating part 53, and the mounting part 55 is fixedly set on the other end of the horizontal rod 54, the rotating part 53... The crossbar 54 is rotated, and the mounting part 55 on the crossbar 54 is also rotated. The rotating mounting part 55 is moved to the top of the boss 40, and the winding is installed in the stator core while maintaining a suitable installation gap. Through the action of the mounting device 50 and the boss 40, the wound winding can be directly installed in the stator groove of the stator core by the mounting part 55. The clamping force of the mounting part 55 is clamped according to the constant tension of the winding, so that the tension of the winding during winding and the tension during installation are kept as consistent as possible. This reduces the risk of the winding being subjected to excessive force before installation, which would cause the winding to not meet the tension requirements, thus wasting time and resources, thereby improving work efficiency and the reliability of the winding during installation.

[0124] Optionally, in some embodiments, please refer to Figure 4 and Figure 5 The mounting component 55 includes a mounting body 551 and multiple mounting parts 552. The mounting body 551 is fixedly mounted on the other end of the crossbar 54. The multiple mounting parts 552 are fixedly mounted on the mounting body 551. The multiple mounting parts 552 are evenly arranged along the circumference of the mounting body 551. Each mounting part 552 is used to install the stator windings completed in each auxiliary hole 2201 into the stator core.

[0125] It is understood that the mounting body 551 can be a component capable of supporting the mounting component 552, such as a ring structure, but is not limited to this. The mounting component 552 can be a component capable of installing the wound stator winding into the stator core, such as a structure with a clamping function, but is not limited to this.

[0126] With this configuration, the stator core with stator grooves is placed on the boss 40. The mounting component 552 on the mounting body 551 clamps the winding. After the mounting component 552 clamps the winding, the rotating component 53 drives the crossbar 54 to rotate. The mounting body 551 and multiple mounting components 552 on the crossbar 54 are driven to rotate. The mounting body 551 and multiple mounting components 552 are rotated and driven to the top of the boss 40. The mounting component 552 installs the winding inside the stator core while maintaining a suitable installation gap. According to the function of the mounting component 552, the wound winding can be directly installed in the stator groove of the stator core by the mounting component 55. The clamping force of the mounting component 55 is clamped while the tension of the winding remains unchanged, so that the tension during winding and the tension during installation are kept as consistent as possible. The clamping force of the mounting component 552 can be changed according to actual needs to further improve the working efficiency and installation reliability of the mounting component 552.

[0127] Optionally, in some embodiments, please refer to Figure 5 The mounting component 552 includes a telescopic member 5521, an intermediate member 5522, and a clamping member 5523. One end of the telescopic member 5521 is fixedly mounted on the mounting body 551. The intermediate member 5522 is connected to the other end of the telescopic member 5521. The clamping member 5523 is mounted on the intermediate member 5522. The clamping member 5523 is used to clamp the completed stator winding.

[0128] It is understood that the telescopic component 5521 can be a component capable of driving the intermediate component 5522 and the clamping component 5523 to extend or retract, such as a telescopic motor, but is not limited to this. The intermediate component 5522 can be a component capable of stably connecting the clamping component 5523, such as a block structure, but is not limited to this; the clamping component 5523 can be a component capable of clamping the wound stator winding, such as an electric clamp or an automatic clamping plate, and can include a clamping actuator and a clamping drive for driving the clamping actuator to clamp or release the aluminum frame. For example, the clamping actuator can include two clamping parts (which can be plate-shaped structures, claw-shaped structures, etc.) that are arranged opposite to each other and can open and close relative to each other. The clamping drive drives the two clamping parts to move closer together to clamp the stator winding or to open relative to each other to release the stator winding. The clamping drive can include a cylinder, a motor, etc., but is not limited to this.

[0129] With this configuration, the stator core with stator grooves is placed on the boss 40. The telescopic member 5521 drives the clamping member 5523 and the intermediate member 5522 to move downwards. When they move to the auxiliary hole 2201 of the auxiliary member 22, the clamping member 5523 clamps the winding. After the clamping member 5523 clamps the winding, the telescopic part 3333 drives the intermediate member 5522 and the clamping member 5523 to move upwards. After the intermediate member 5522 and the clamping member 5523 move upwards, the rotating member 53 drives the crossbar 54 to rotate. The mounting body 551 and multiple mounting components 552 on the crossbar 54 are driven to rotate. At this time, the mounting components 552... The telescopic component 5521, intermediate component 5522, and clamping component 5523 are also rotated to the top of the boss 40. The telescopic component 5521 drives the intermediate component 5522 and clamping component 5523 to move downwards. When the telescopic component 5521 drives the intermediate component 5522 and clamping component 5523 to the stator groove of the stator core, the clamping component 5523 is released, and the winding is placed in the stator groove of the stator core to complete the installation. This improves the stability during installation, keeps the tension and uniformity of the winding unchanged, increases the utilization rate of resources, reduces the risk of winding damage, and further improves the working efficiency of the winding.

[0130] Optionally, in some embodiments, please refer to Figure 5 The clamping member 5523 includes a first clamping plate 55231 and a second clamping plate 55232. The first clamping plate 55231 is disposed on one side of the intermediate member 5522 along its length. The second clamping plate 55232 is disposed on the other side of the intermediate member 5522 along its length. The first clamping plate 55231 and the second clamping plate 55232 are disposed opposite to each other. The first clamping plate 55231 is used to cooperate with the second clamping plate 55232 to clamp the stator winding that has been wound.

[0131] It is understood that the first clamping plate 55231 and the second clamping plate 55232 are components that work together to clamp or release the wound stator winding. For example, they can be plate-shaped or claw-shaped structures, but are not limited to these. For example, the first clamping plate 55231 and the second clamping plate 55232 contain wires inside.

[0132] With this configuration, the stator core with stator grooves is placed on the boss 40. The first clamping plate 55231 and the second clamping plate 55232 are positioned opposite each other. The telescopic member 5521 drives the clamping member 5523 and the intermediate member 5522 to move downwards. When they move to the auxiliary hole 2201 of the auxiliary member 22, the first clamping plate 55231 and the second clamping plate 55232 cooperate with each other and move closer to each other to clamp the winding. After the first clamping plate 55231 and the second clamping plate 55232 clamp the winding, the telescopic part 3333 drives the intermediate member 5522 and the clamping member 5523 to move upwards. After the intermediate member 5522 and the clamping member 5523 move upwards, the rotating member 53 drives the crossbar 54 to rotate. The mounting body 551 and multiple mounting components 552 on the crossbar 54 are driven to rotate. The first clamping member 5523... The clamping plates 55231 and 55232 are rotated by the rotating part 3332 to the top of the boss 40. The telescopic member 5521 drives the intermediate member 5522, the first clamping plate 55231 and the second clamping plate 55232 to move downward. When the telescopic member 5521 drives the intermediate member 5522, the first clamping plate 55231 and the second clamping plate 55232 to the stator groove of the stator core, the first clamping plate 55231 and the second clamping plate 55232 move away from each other to loosen the winding and place the winding in the stator groove of the stator core to complete the installation. Through the mutual cooperation of the first clamping plate 55231 and the second clamping plate 55232, the tension of the winding is not changed when it is clamped during installation, which improves the stability of the winding during operation, further improves the stability of the motor during operation, and ensures that the power meets the actual needs, thereby improving the working efficiency.

[0133] Optionally, in some embodiments, please refer to Figure 5 The inner wall of the first clamping plate 55231 is provided with a first conductive contact; the inner wall of the second clamping plate 55232 is provided with a second conductive contact; the first conductive contact and the second conductive contact are arranged opposite to each other; the intermediate component 5522 includes a first measuring part 55221, a second measuring part 55222, and a detection power supply, wherein:

[0134] The first measuring part 55221 is disposed on one side of the intermediate part 5522 along the length direction of the intermediate part 5522; the first measuring part 55221 is located on the side of the first clamping plate 55231 away from the second clamping plate 55232.

[0135] The second measuring part 55222 is disposed on the other side of the intermediate part 5522 along the length direction of the intermediate part 5522; the second measuring part 55222 is located on the side of the second clamping plate 55232 away from the first clamping plate 55231.

[0136] The first measuring unit 55221, the first conductive contact, the detection power supply, the second conductive contact, and the second measuring unit 55222 are sequentially electrically connected to form a measuring circuit. The detection power supply is used to control the measuring circuit to disconnect when the first clamping plate 55231 and the second clamping plate 55232 are not clamping the completed stator winding, and to control the measuring circuit to connect when the first clamping plate 55231 and the second clamping plate 55232 clamp the completed stator winding into the stator core.

[0137] It is understood that the first and second conductive contacts can be structures capable of carrying current, such as metal points, but are not limited thereto. The materials of the first and second conductive contacts can be highly conductive materials, such as aluminum or copper, but are not limited thereto. For example, the first measuring unit 55221 may include a first connecting rod and a first telescopic structure; one end of the first connecting rod is disposed on one side of the intermediate member 5522 along its length. The first telescopic structure is connected to the other end of the first connecting rod. Both the first connecting rod and the first telescopic structure are located on the side of the first clamping plate 55231 away from the second clamping plate 55232. The second measuring unit 55222 may include a second connecting rod and a second telescopic structure. One end of the second connecting rod is disposed on the other side of the intermediate member 5522 along its length. The second telescopic structure is connected to the other end of the second connecting rod. Both the second connecting rod and the second telescopic structure are located on the side of the second clamping plate 55232 away from the first clamping plate 55231. The first connecting rod can be used to connect and support the first telescopic structure, such as a rod-shaped structure, but is not limited thereto. The second connecting rod can be used to connect and support the second telescopic structure, such as a rod-shaped structure, but is not limited to this. The first and second telescopic structures are components that can extend and retract freely, such as an electric telescopic rod (which may include a telescopic rod and a driver that drives the telescopic rod to extend and retract, the driver may be a motor, etc.), but is not limited to this. The detection power supply is a component that can control the current flow when clamping the stator winding that has been wound, but is not limited to this.

[0138] With this configuration, when the intermediate component 5522 and the clamping component 5523 move upward, the rotating component 53 drives the crossbar 54 to rotate. The first clamping plate 55231 and the second clamping plate 55232 of the intermediate component 5522 and the clamping component 5523 on the crossbar 54 are rotated by the rotating part 3332 to the top of the boss 40. The telescopic component 5521 drives the intermediate component 5522, the first clamping plate 55231 and the second clamping plate 55232 to move downward. When the telescopic component 5521 drives the intermediate component 5522, the first clamping plate 55231 and the second clamping plate 55232 to move into the stator groove of the stator core, the detection power supply is energized by the first conductive contact of the first clamping plate 55231 and the second conductive contact of the second clamping plate 55232 to form a circuit and detect the insulation of the winding.

[0139] When the insulation is good, current flows through the first conductive contact, the first clamping plate, the intermediate component 5522, the first measuring part 55221, the second measuring part 55222, the second clamping plate, and the second conductive contact to form a current loop. This energizes the first measuring part 55221 and the second measuring part 55222, which then begin operation. The first measuring part 55221 and the second measuring part 55222 extend into the groove to check if the gap is the same as the preset gap. If they are the same, the gap meets the requirements; if they are not the same (too large or too small), the gap is considered unsuitable. If the gap does not meet the requirements, the position of the stator winding is adjusted left and right by the clamping part 5523 to make the gap meet the requirements; the first measuring part 55221 and the second measuring part 55222 are retracted, the detection power supply is cut off, the first clamping plate 55231 and the second clamping plate 55232 move away from each other to release the winding, so that the winding is correctly installed into the electronic groove of the stator core. The telescopic part 5521 drives the intermediate part 5522, the first clamping plate 55231 and the second clamping plate 55232 to retract and restore the original state.

[0140] When the insulation is poor, the current flows through the first conductive contact, the completed stator winding, and the second conductive contact to form a current loop. The first measuring unit 55221 and the second measuring unit 55222 are short-circuited and do not operate. If the first measuring unit 55221 and the second measuring unit 55222 do not operate after the first clamping plate 55231 and the second clamping plate 55232 move the winding into the stator groove of the stator core, it proves that the insulation of the winding is poor, and the winding needs to be re-insulated until it meets the insulation requirements. Insulation is detected by turning the first measuring unit 55221 and the second measuring unit 55222 on or off using different currents. The operation method is simple and simplifies the steps. By measuring the gap using the first measuring unit 55221 and the second measuring unit 55222, the accuracy of the gap is improved, thereby enhancing the stability of the winding and further improving the stability of the motor during operation, thus increasing work efficiency.

[0141] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. An installation device for an automotive air conditioning blower motor, characterized in that, include: A seat plate includes a vertical plate and a horizontal plate; the vertical plate is perpendicularly disposed on the side wall of the horizontal plate along the width direction of the horizontal plate and is located above the horizontal plate; An auxiliary device is fixedly mounted on the horizontal plate and located on one side of the vertical plate; the auxiliary device is used to assist in the positioning of the winding block. as well as A wire placement device is movably disposed on the vertical plate along the height direction of the vertical plate and located above the auxiliary device; the wire placement device is used to uniformly wind the winding block fixed on the auxiliary device with a preset winding tension. The auxiliary device includes: An auxiliary body is fixedly mounted on the horizontal plate and located on one side of the vertical plate; and An auxiliary component is provided, the bottom of which is located at the top of the auxiliary body; the top of which faces the wire placement device; the auxiliary component has multiple auxiliary holes; the multiple auxiliary holes are evenly distributed along the circumference of the auxiliary component; the auxiliary holes are used for auxiliary positioning of the winding block; The vertical plate is provided with a movable part; the wire placement device includes: A movable mating part is movably disposed on the movable part; Support rod, one end of which is connected to the movable mating part; and A wire-holding component is disposed at the other end of the support rod; the wire-holding component is located above the auxiliary component; the wire-holding component is used to uniformly wind the winding block, which is auxiliaryly positioned on the auxiliary hole, with a preset winding tension. The wire placement component includes: The wire-laying body is disposed at the other end of the support rod; the wire-laying body is located above the auxiliary component; Multiple fasteners are uniformly fixedly disposed on the wire-laying body along the circumference of the wire-laying body; and Multiple wire placement components are uniformly fixed on the wire placement body along the circumference of the wire placement body, and are respectively disposed on the periphery of each of the fasteners. The wire placement components are located above the auxiliary component. The inner bottom wall of the auxiliary hole is equipped with a detection element; when the detection element detects that a winding block is placed in the auxiliary hole, the moving mating part drives each of the fasteners and each of the winding components of the winding component to move toward the auxiliary hole, so that each of the fasteners abuts against the winding block in the auxiliary hole, and the winding component winds the winding block, which is assisted in positioning it in the auxiliary hole, with a preset winding tension. The wiring component includes: A wire placement housing is disposed on the wire placement body; the wire placement housing is annular and is sleeved around the fastener; the fastener protrudes from the wire placement housing. A rotating part is located inside the wire placement housing and is disposed on the wire placement body; A telescopic section is located within the cable placement housing; the telescopic section is disposed at the power output end of the rotating section, and the rotating section is used to drive the telescopic section to rotate around the axis of the cable placement housing; and The winding part has its tail end disposed on the telescopic part; the head end of the winding part extends outside the wire placement housing and faces the auxiliary member. The auxiliary component is provided with multiple sets of tension auxiliary rods; each set of tension auxiliary rods includes two tension auxiliary rods; the position of each set of tension auxiliary rods corresponds to the position of each auxiliary hole, and the tension auxiliary rods are closer to the outside of the auxiliary component than the auxiliary holes; the winding part first winds the wire onto each set of tension auxiliary rods, and the tension auxiliary rods are used to determine whether the tension of the wire wound by the winding part is the same as the preset tension.

2. The automotive air conditioning blower motor installation equipment as described in claim 1, characterized in that: The wiring component includes a downward movement controller, which is electrically connected to the telescopic part and the rotating part; the downward movement controller is used to control the downward movement distance of the telescopic part, and to control the rotation of the rotating part after the telescopic part moves downward.

3. The automotive air conditioning blower motor installation equipment as described in claim 1, characterized in that, The automotive air conditioning blower motor installation equipment also includes: A boss is provided on the horizontal plate and located on the side of the auxiliary member away from the vertical plate; the boss is used to place a stator core with stator grooves, and the stator core can be used to install the wound stator windings; and An installation device is disposed on the transverse plate and located between the boss and the auxiliary component; the installation device is used to install the wound stator winding into the stator core.

4. The automotive air conditioning blower motor installation equipment as described in claim 3, characterized in that, The installation device includes: A mounting base is provided on the horizontal plate; A vertical rod, the bottom of which is fixed to the mounting base; A rotating component is located at the top of the vertical rod; A crossbar, one end of which is vertically connected to the power output end of the rotating component; and The mounting component is fixedly disposed at the other end of the crossbar; the rotating component can drive the mounting component to move above the boss or the auxiliary component; the mounting component is used to install the wound stator winding into the stator core; The mounting base, the vertical rod, the rotating component, and the horizontal rod are located between the boss and the auxiliary component. The mounting component includes: The mounting body is fixedly installed at the other end of the crossbar; Multiple mounting components are fixedly mounted on the mounting body; the multiple mounting components are evenly arranged along the circumference of the mounting body; each mounting component is used to install the stator winding completed in each of the auxiliary holes into the stator core.

5. The automotive air conditioning blower motor installation equipment as described in claim 4, characterized in that, The mounting components include: A telescopic component, one end of which is fixedly mounted on the mounting body; An intermediate component, the intermediate component being connected to the other end of the telescopic component; and A clamping component is disposed on the intermediate component; the clamping component is used to clamp the stator winding that has been wound. The clamping component includes: A first clamping plate is disposed on one side of the intermediate member along its length; and The second clamping plate is disposed on the other side of the intermediate component along its length; the first clamping plate and the second clamping plate are disposed opposite to each other; The first clamping plate is used in conjunction with the second clamping plate to clamp the stator winding that has been wound.

6. The automotive air conditioning blower motor installation equipment as described in claim 5, characterized in that: The inner wall of the first clamping plate is provided with a first conductive contact; the inner wall of the second clamping plate is provided with a second conductive contact; the first conductive contact and the second conductive contact are arranged opposite to each other; the intermediate component includes: A first measuring part is disposed on one side of the intermediate part along the length direction of the intermediate part; the first measuring part is located on the side of the first clamping plate away from the second clamping plate; A second measuring part is disposed on the other side of the intermediate part along the length direction of the intermediate part; the second measuring part is located on the side of the second clamping plate away from the first clamping plate; and The detection power supply, the first measuring unit, the first conductive contact, the detection power supply, the second conductive contact, and the second measuring unit are electrically connected to form a measuring circuit; the detection power supply is used to control the measuring circuit to disconnect when the first clamping plate and the second clamping plate are not clamping the completed stator winding, and to control the measuring circuit to connect when the first clamping plate and the second clamping plate clamp the completed stator winding into the stator core.

Citation Information

Patent Citations

  • Motor winding equipment

    CN213637424U

  • Magnetic suspension motor stator winding machine

    CN218733766U