Motor with multiple installation modes

By designing a motor with multiple installation modes, using support frames, adjustment units and mounting seats, flexible adjustment of the motor output direction is achieved, solving the problem of fixing existing motor installation methods, improving adaptability and reducing costs.

CN120127889AActive Publication Date: 2025-06-10SUZHOU VOCATIONAL INSTITUTE OF INDUSTRIAL TECHNOLOGY
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Patent Information

Application Number
CN202510398608.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-01
Publication Date
2025-06-10
Estimated Expiration
2045-04-01

AI Technical Summary

Technical Problem

Existing motors usually have a fixed installation method when installed, which cannot adapt to the diverse needs of different equipment and environments, resulting in the need to adjust the shape or connection parts of the motor, increasing production and maintenance costs.

Method used

A motor with multiple installation modes is designed. By setting up a support frame, adjustment unit and mounting seat, the motor output direction can be flexibly adjusted, adapting to a variety of installation methods such as horizontal, vertical, wall-mounted and suspended.

Benefits of technology

This design improves the flexibility and adaptability of the motor, reduces installation difficulty and cost, and meets the needs of different equipment and application scenarios.

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Abstract

The invention relates to the field of motors, in particular to a motor with multiple installation modes, which comprises a motor body, a support frame arranged on the motor body, a first adjusting unit arranged on the support frame, a second adjusting unit arranged on the support frame and an installation seat arranged on the support frame, the first adjusting unit comprises a first adjusting assembly arranged on the supporting frame, a locking assembly arranged on the supporting frame and a supporting wheel arranged on the supporting frame. The second adjusting unit comprises a clamping assembly arranged on the supporting frame, a fixed fluted disc arranged on the supporting frame and a movable assembly arranged on the clamping assembly. Through cooperative work of the first adjusting assembly and the movable assembly, the output direction of the motor can be flexibly adjusted; the motor can flexibly adapt to various installation modes such as a horizontal mode, a vertical mode, a wall-mounted mode and a suspension mode, the requirements of different devices and application scenes are met, and the flexibility of device design and installation is improved.
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Description

Technical Field

[0001] The present invention relates to the field of motors, and in particular to a motor with multiple installation modes. Background Art

[0002] When a motor is installed and used, it usually has a fixed installation method, such as horizontal or vertical installation. However, in actual applications, different devices and environments have diverse requirements for the installation method of the motor. This requires adjusting the shape or connection part of the motor and remolding it for production, which will greatly reduce the practicality and applicability and increase the equipment procurement and maintenance costs. Summary of the Invention

[0003] In view of the above problems or the problems in the prior art that different devices and environments have diverse requirements for the installation method of the motor, which requires adjusting the shape or connection part of the motor and remolding it for production, resulting in a significant reduction in practicality and applicability and an increase in equipment procurement and maintenance costs, the present invention is proposed.

[0004] Therefore, the object of the present invention is to provide a motor with multiple installation modes.

[0005] To solve the above technical problems, the present invention provides the following technical solutions:

[0006] As a preferred solution of the motor with multiple installation modes of the present invention, it includes: a motor body, a support frame provided on the motor body, a first adjustment unit provided on the support frame, a second adjustment unit provided on the support frame, and a mounting seat provided on the support frame; the first adjustment unit includes a first adjustment component provided on the support frame, a locking component provided on the support frame, and a support wheel provided on the support frame; the second adjustment unit includes a clamping component provided on the support frame, a fixed gear disk provided on the support frame, and a movable component provided on the clamping component.

[0007] As a preferred solution of the motor with multiple installation modes of the present invention, the first adjustment component includes a rotating gear rotatably provided on the support frame, a follower gear rotatably provided on the support frame and meshingly connected with the rotating gear, and a rotating shaft provided on the rotating gear; there are two groups of the follower gears provided on the support frame, and the other group of the follower gears is meshingly connected with the support wheel, and the follower gears are fixedly provided on the motor body.

[0008] As a preferred embodiment of the motor with multiple installation modes of the present invention, wherein: the locking assembly includes a lock block disposed on the support frame, a connecting shaft disposed on the lock block, a limiting block disposed on the connecting shaft, and a knob disposed on the connecting shaft; a connecting ball is disposed on the connecting shaft, and a spiral groove for cooperating with the connecting ball is disposed on the knob.

[0009] As a preferred embodiment of the motor with multiple installation modes of the present invention, wherein: the cross-sectional area of the follower gear gradually decreases towards the support frame, and the lock block fits and meshes with the tooth surface of the follower gear.

[0010] As a preferred embodiment of the motor with multiple installation modes of the present invention, wherein: telescopic grooves, limiting grooves, and rotating grooves for respectively cooperating with the lock block, the limiting block, and the knob are disposed on the motor body; the telescopic grooves, the limiting grooves, and the rotating grooves communicate with each other.

[0011] As a preferred embodiment of the motor with multiple installation modes of the present invention, wherein: the clamping assembly includes a first clamping block disposed on the support frame, a second clamping block disposed on the support frame, and a connecting rod disposed on the first clamping block and the second clamping block; the first clamping block and the second clamping block are disposed on the support frame.

[0012] As a preferred embodiment of the motor with multiple installation modes of the present invention, wherein: clamping grooves for clamping with the fixed tooth disk are disposed on both the first clamping block and the second clamping block; a first moving groove for cooperating with the moving assembly is disposed on the first clamping block; a second moving groove for cooperating with the rotating shaft is disposed on the second clamping block.

[0013] As a preferred embodiment of the motor with multiple installation modes of the present invention, wherein: the moving assembly includes a rotating pin disposed on the first clamping block, a pin shaft disposed on the rotating pin, and an adjusting gear disposed on the pin shaft, and the adjusting gear is rotatably disposed on the support frame; the outer shape of the pin shaft is polygonal, and the cross-sectional area of the end of the pin shaft gradually decreases; a jack for cooperating with the pin shaft is disposed on the adjusting gear.

[0014] As a preferred embodiment of the motor with multiple installation modes of the present invention, wherein: a tooth groove for cooperating with the adjusting gear is disposed on an inner wall of one side of the first moving groove.

[0015] As a preferred embodiment of the motor with multiple installation modes of the present invention, wherein: a locking groove and a release groove for cooperating with the pin shaft are disposed on the support frame; the locking groove penetrates through the outer wall of the support frame to the outside, and the minimum cross-section of the locking groove is larger than the maximum cross-section of the release groove.

[0016] Beneficial effects of the motor with multiple installation modes of the present invention: Through the cooperative work of the first adjustment component and the movable component, the output direction of the motor can be flexibly adjusted, enabling the motor to flexibly adapt to various installation methods such as horizontal, vertical, wall-mounted, and suspended, meeting the requirements of different devices and application scenarios, improving the flexibility of device design and installation, eliminating the need for precise positioning of the motor installation position, reducing the installation difficulty of the motor, having high versatility and adaptability, and reducing the equipment procurement and maintenance costs. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0018] Figure 1 It is a schematic diagram of the overall structure of the motor with multiple installation modes.

[0019] Figure 2 It is a schematic diagram of the structure of the motor body of the motor with multiple installation modes.

[0020] Figure 3 It is a schematic diagram of the overall structure of the support frame of the motor with multiple installation modes.

[0021] Figure 4 It is a schematic diagram of the cross-sectional structure of the locking groove of the motor with multiple installation modes.

[0022] Figure 5 It is a schematic diagram of the cross-sectional structure of the support frame of the motor with multiple installation modes.

[0023] Figure 6 For the motor with multiple installation modes Figure 4 Enlarged view of the structure at A in

[0024] Figure 7 It is a schematic diagram of the structure of the knob of the motor with multiple installation modes.

[0025] Figure 8 It is a schematic diagram of the cross-sectional structure of the knob of the motor with multiple installation modes.

[0026] Figure 9 It is a front view schematic diagram of the support frame of the motor with multiple installation modes.

[0027] Figure 10 It is a schematic diagram of the structure of the first clamping block of the motor with multiple installation modes.

[0028] Figure 11 Schematic cross-sectional structure diagram of the first clamping block of a motor with multiple installation modes.

[0029] Figure 12 Schematic structure diagram of the adjusting gear of a motor with multiple installation modes.

[0030] In the figure: 1, motor body; 11, housing; 2, support frame; 21, telescopic groove; 22, limiting groove; 23, rotating groove; 24, locking groove; 25, release groove; 3, first adjustment unit; 31, first adjustment component; 311, rotating gear; 312, follower gear; 313, rotating shaft; 32, locking component; 321, locking block; 322, connecting shaft; 323, limiting block; 3221, connecting ball; 324, knob; 3241, spiral groove; 33, support wheel; 4, second adjustment unit; 41, clamping component; 411, first clamping block; 412, second clamping block; 413, connecting rod; 42, fixed gear disk; 43, movable component; 431, rotating pin; 432, pin shaft; 433, adjusting gear; 4331, jack; 5, mounting seat; 6, clamping groove; 7, first movable groove; 71, tooth groove; 8, second movable groove. Specific embodiments

[0031] To make the above objects, features, and advantages of the present invention more obvious and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings of the specification.

[0032] Example 1, referring to Figures 1 - 2 , which is the first embodiment of the present invention. This embodiment provides a motor with multiple installation modes, which includes a motor body 1 for outputting power, a housing 11 provided on the motor body 1. The housing 11 is of a split design for easy disassembly and assembly to adjust the motor body 1, a support frame 2 provided on the motor body 1 for supporting the motor body 1, a first adjustment unit 3 provided on the support frame 2 for driving the motor body 1 to swing back and forth, a second adjustment unit 4 provided on the support frame 2 for driving the motor body 1 to rotate, cooperating with the first adjustment unit 3 to achieve flexible adjustment of the output direction of the motor body 1, and a mounting seat 5 provided on the support frame 2 for mounting the motor body 1, providing multiple installation modes for the installation of the motor body 1 through the cooperation of the first adjustment unit 3 and the second adjustment unit 4;

[0033] The first adjustment unit 3 includes a first adjustment component 31 provided on the support frame 2 for driving the motor body 1 to swing back and forth to adjust the inclination of the motor body 1, a locking component 32 provided on the support frame 2 for releasing and locking the adjustment of the first adjustment component 31 to fix the adjustment angle of the motor body 1, and a support wheel 33 provided on the support frame 2 for supporting.

[0034] The second adjustment unit 4 includes a clamping component 41 arranged on the support frame 2 and a fixed gear disk 42 arranged on the support frame 2. The fixed gear disk 42 is used to cooperate with the clamping component 41 to lock and release the position of the support frame 2, so as to realize the adjustment of the rotation of the motor body 1. The upper part of the fixed gear disk 42 is rotatably connected to the bottom of the support frame 2, the bottom of the fixed gear disk 42 is fixedly connected to the mounting seat 5, and a movable component 43 arranged on the clamping component 41 is used to control the up and down movement of the clamping component 41.

[0035] In summary, first, the motor body 1 is installed on the device through the mounting seat 5. At this time, the outer shell 11 is removed. Then, the locking component 32 is controlled to release the locking of the first adjustment component 31. At this time, the first adjustment component 31 is adjusted to control the motor body 1 to swing, and the motor body 1 is tilted to the required angle. Then, the locking component 32 is controlled to lock the current state of the first adjustment component 31. Then, the movable component 43 is adjusted to drive the clamping component 41 to move upward, so that the clamping component 41 is disengaged from the clamping with the fixed gear disk 42. At this time, the support frame 2 is rotated to drive the motor body 1 to rotate, and the motor body 1 is rotated to the target direction. Then, the movable component 43 is used to control the clamping component 41 to descend and re-engage with the fixed gear disk 42 to fix the position of the support frame 2 and realize the fixation of the position of the motor body 1. At this time, the outer shell 11 is installed.

[0036] Embodiment 2, refer to Figures 1 - 8 , which is the second embodiment of the present invention. Different from the previous embodiment: the motor body 1 is adjusted to swing back and forth. Further compared with Embodiment 1, the first adjustment component 31 includes a rotating gear 311 rotatably arranged on the support frame 2 for rotation, a follower gear 312 rotatably arranged on the support frame 2 and meshed with the rotating gear 311 for rotation, and a rotating shaft 313 arranged on the rotating gear 311 for controlling the rotation of the rotating gear 311;

[0037] There are two groups of follower gears 312 arranged on the support frame 2. The other group of follower gears 312 is meshed with the support wheel 33. In this way, while the support wheel 33 cooperates with the rotating gear 311 to support the follower gear 312, it does not affect the rotation adjustment of the rotating gear 311 to the follower gear 312. The follower gear 312 is fixedly arranged on the motor body 1. When the rotating gear 311 adjusts the rotation of the follower gear 312, it drives the motor body 1 to rotate, causing the motor body 1 to deflect and swing.

[0038] Among them, the locking component 32 includes a lock block 321 arranged on the support frame 2, which is used to engage with the teeth on the follower gear 312, so as to control the rotation of the follower gear 312, thereby realizing the fixation of the adjustment angle of the motor body 1; a connecting shaft 322 arranged on the lock block 321, which is used to connect the lock block 321; a limiting block 323 arranged on the connecting shaft 322, which is used to cooperate with the connecting shaft 322 to limit the movement of the lock block 321; and a knob 324 arranged on the connecting shaft 322, which is used to rotate to control the connecting shaft 322 to move back and forth through the limiting block 323, so as to realize the connection between the lock block 321 and the follower gear 312.

[0039] A connecting ball 3221 is arranged on the connecting shaft 322, and a spiral groove 3241 matching the connecting ball 3221 is arranged on the knob 324. When the knob 324 rotates, it squeezes the connecting ball 3221 through the spiral groove 3241, thereby generating a pushing and pulling force on the connecting shaft 322 in the front and back directions. With the limitation of the limiting block 323, the lock block 321 is driven to move back and forth, so as to realize the engagement between the lock block 321 and the follower gear 312.

[0040] Among them, the cross-sectional area of the follower gear 312 gradually decreases towards the support frame 2. The lock block 321 fits and meshes with the tooth surface of the follower gear 312. By doing so, the tooth surface of the follower gear 312 is inclined. Through the lock block 321 fitting with the tooth surface of the follower gear 312, while realizing full contact between the lock block 321 and the follower gear 312 and ensuring the clamping strength, the lock block 321 only needs to move a small distance to disengage from the engagement with the follower gear 312, reducing the moving stroke of the lock block 321, and making the locking and releasing of the follower gear 312 faster and more convenient.

[0041] Among them, the motor body 1 is provided with a telescopic groove 21, a limiting groove 22, and a rotating groove 23 that respectively cooperate with the lock block 321, the limiting block 323, and the knob 324. The telescopic groove 21 is used to accommodate the lock block 321, the limiting groove 22 is used to cooperate with the limiting block 323 to play a limiting role, and the rotating groove 23 is used to rotatably arrange the knob 324 on the support frame 2.

[0042] The telescopic groove 21, the limiting groove 22, and the rotating groove 23 communicate with each other.

[0043] The rest of the structure is the same as that of Embodiment 1.

[0044] In summary, after the motor is installed at the specified position through the mounting base 5, turn the knob 324 at this time. At this time, the knob 324 drives the spiral groove 3241 to rotate. The rotation of the spiral groove 3241 squeezes the connecting ball 3221. Under the limiting action of the limiting block 323 and the limiting groove 22, at this time, the connecting shaft 322 drives the locking block 321 to retract into the telescopic groove 21 through the connecting ball 3221. At this time, turn the rotating shaft 313 to drive the rotating gear 311 to rotate. The rotation of the rotating gear 311 drives the follower gear 312. At this time, the motor body 1 rotates along with the follower gear 312, and the output angle tilts until the motor body 1 is adjusted to an appropriate angle. At this time, turn the knob 324 to push the locking block 321 outwards to re-engage with the follower gear 312. At this time, the rotating gear 311 cannot be rotated. At this time, with the support of the rotating gear 311 and the support wheel 33, the locking block 321 locks the position of the follower gear 312.

[0045] Embodiment 3, refer to Figures 1 - 11 , which is the second embodiment of the present invention. Different from the previous embodiment: the motor body 1 is adjusted to rotate in the vertical direction. Compared with Embodiment 1, further, the clamping component 41 includes a first clamping block 411 arranged on the support frame 2, a second clamping block 412 arranged on the support frame 2, which is used to cooperate with the first clamping block 411 to clamp with the fixed tooth disc 42 to fix the position of the support frame 2, and a connecting rod 413 arranged on the first clamping block 411 and the second clamping block 412, which serves to connect the first clamping block 411 and the second clamping block 412;

[0046] The first clamping block 411 and the second clamping block 412 are arranged on the support frame 2.

[0047] Among them, both the first clamping block 411 and the second clamping block 412 are provided with clamping grooves 6 that are clamped with the fixed tooth disc 42. When the clamping grooves 6 are engaged with the fixed tooth disc 42, the positions of the support frame 2 can be fixed by cooperating with the first clamping block 411 and the second clamping block 412;

[0048] The first clamping block 411 is provided with a first moving groove 7 that cooperates with the moving component 43, which is used to ensure that the up and down movement of the first clamping block 411 does not affect the movement of the rotating pin 431;

[0049] The second clamping block 412 is provided with a second moving groove 8 that cooperates with the rotating shaft 313, which is used to ensure that the up and down movement of the second clamping block 412 does not affect the movement of the moving component 43.

[0050] Among them, the movable component 43 includes a rotating pin 431 disposed on the first clamping block 411, a pin shaft 432 disposed on the rotating pin 431, and an adjusting gear 433 disposed on the pin shaft 432. The adjusting gear 433 is rotatably disposed on the support frame 2. The rotating pin 431 is used to drive the pin shaft 432 to rotate, and the pin shaft 432 drives the adjusting gear 433 to rotate;

[0051] The outer shape of the pin shaft 432 is polygonal, and the cross-sectional area of the end of the pin shaft 432 gradually decreases, which facilitates insertion and extraction;

[0052] The adjusting gear 433 is provided with a jack 4331 that cooperates with the pin shaft 432, which facilitates the pin shaft 432 to drive the adjusting gear 433 to rotate.

[0053] Among them, a tooth groove 71 that cooperates with the adjusting gear 433 is provided on one inner wall of the first movable groove 7. When the adjusting gear 433 rotates, under the action of the tooth groove 71, the first clamping block 411 moves up and down at this time. At this time, the second clamping block 412 moves up and down synchronously through the connection of the connecting rod 413 to control the engagement with the fixed tooth disc 42.

[0054] Among them, a locking groove 24 and a release groove 25 that cooperate with the pin shaft 432 are provided on the support frame 2. When the pin shaft 432 engages with the release groove 25, the pin shaft 432 cannot rotate at this time, so the adjusting gear 433 cannot rotate at this time, and the position of the entire clamping component 41 is locked. When the pin shaft 432 leaves the release groove 25 and moves in the direction of the locking groove 24, the pin shaft 432 is disengaged from the release groove 25 at this time. At this time, the rotating pin 431 can be rotated to drive the pin shaft 432 to rotate, thereby driving the adjusting gear 433 to rotate, thereby controlling the overall up and down movement of the clamping component 41;

[0055] The locking groove 24 penetrates through the outer wall of the support frame 2 to the outside, and the minimum cross-section of the locking groove 24 is larger than the maximum cross-section of the release groove 25.

[0056] All other structures are the same as those in Embodiment 2.

[0057] In summary, when the first adjustment component 31 adjusts the angle of the motor body 1, at this time, pull the rotating pin 431 outwards to drive the pin shaft 432 away from the release groove 25. Then rotate the rotating pin 431 to drive the pin shaft 432 to rotate. The rotation of the pin shaft 432 drives the adjustment gear 433 to rotate. At this time, the clamping component 41 drives the whole clamping component 41 to move upwards through the rotation of 433, driving the tooth groove 71 away from the fixed tooth disc 42. At this time, the motor body 1 can rotate on the fixed tooth disc 42 through the support frame 2. After the orientation of the motor body 1 is rotated and adjusted to the target position, at this time, drive the rotating pin 431, and drive the whole clamping component 41 to move downwards through the action of the adjustment gear 433 and the tooth groove 71, so that the tooth groove 71 is re-engaged with the fixed tooth disc 42. At this time, the support frame 2 cannot rotate. Then insert the pin shaft 432 back into the release groove 25. When the end of the pin shaft 432 is re-engaged with the release groove 25, the rotating pin 431 cannot be rotated at this time. At this time, the position of the adjustment gear 433 is fixed, and the position of the whole clamping component 41 is locked through the adjustment gear 433. At this time, the installation adjustment of the motor is completed.

[0058] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered within the scope of the claims of the present invention.

Claims

1. A motor with multiple installation modes, characterized in that: The motor comprises a motor body (1), a support frame (2) arranged on the motor body (1), a first adjustment unit (3) arranged on the support frame (2), a second adjustment unit (4) arranged on the support frame (2), and a mounting seat (5) arranged on the support frame (2); The first adjustment unit (3) comprises a first adjustment component (31) arranged on the support frame (2), a locking component (32) arranged on the support frame (2), and a support wheel (33) arranged on the support frame (2); The second adjustment unit (4) comprises a clamping assembly (41) arranged on the support frame (2), a fixed toothed disc (42) arranged on the support frame (2), and a movable assembly (43) arranged on the clamping assembly (41).

2. The motor with multiple installation modes according to claim 1, characterized in that: The first adjustment component (31) comprises a rotating gear (311) rotatably arranged on the support frame (2), a follower gear (312) rotatably arranged on the support frame (2) and meshingly connected with the rotating gear (311), and a rotating shaft (313) arranged on the rotating gear (311); Two groups of follower gears (312) are arranged on the support frame (2); another group of follower gears (312) is meshedly connected with the support wheel (33); and the follower gears (312) are fixedly arranged on the motor body (1).

3. The motor with multiple installation modes as claimed in claim 2, characterized in that: The locking assembly (32) comprises a locking block (321) arranged on the support frame (2), a connecting shaft (322) arranged on the locking block (321), a limiting block (323) arranged on the connecting shaft (322), and a knob (324) arranged on the connecting shaft (322); The connecting shaft (322) is provided with a connecting ball (3221), and the knob (324) is provided with a spiral groove (3241) matching the connecting ball (3221).

4. The motor with multiple installation modes as claimed in claim 3, characterized in that: The cross-sectional area of ​​the follower gear (312) gradually decreases toward the support frame (2), and the locking block (321) fits the tooth surface of the follower gear (312) and meshes with it.

5. The motor with multiple installation modes as claimed in claim 4, characterized in that: The motor body (1) is provided with a telescopic slot (21), a limiting slot (22), and a rotating slot (23) which respectively cooperate with the locking block (321), the limiting block (323), and the knob (324); The telescopic groove (21), the limiting groove (22), and the rotating groove (23) are interconnected.

6. The motor with multiple installation modes as claimed in claim 5, characterized in that: The clamping assembly (41) comprises a first clamping block (411) arranged on the support frame (2), a second clamping block (412) arranged on the support frame (2), and a connecting rod (413) arranged on the first clamping block (411) and the second clamping block (412); The first clamping block (411) and the second clamping block (412) are arranged on the support frame (2).

7. The motor with multiple installation modes according to claim 6, characterized in that: The first clamping block (411) and the second clamping block (412) are both provided with a clamping groove (6) for clamping with the fixed toothed disc (42); The first clamping block (411) is provided with a first movable groove (7) for matching with the movable component (43); The second clamping block (412) is provided with a second movable groove (8) that matches the rotating shaft (313).

8. The motor with multiple installation modes according to claim 7, characterized in that: The movable component (43) comprises a rotating pin (431) arranged on the first clamping block (411), a pin shaft (432) arranged on the rotating pin (431), and an adjusting gear (433) arranged on the pin shaft (432), wherein the adjusting gear (433) is rotatably arranged on the support frame (2); The pin shaft (432) has a polygonal shape, and the cross-sectional area of ​​the end of the pin shaft (432) gradually decreases; The adjusting gear (433) is provided with a socket (4331) that matches the pin shaft (432).

9. The motor with multiple installation modes according to claim 8, characterized in that: A tooth groove (71) matching the adjusting gear (433) is provided on one inner wall of the first movable groove (7).

10. The motor with multiple installation modes according to claim 9, characterized in that: The support frame (2) is provided with a locking groove (24) and a release groove (25) for matching with the pin shaft (432); The locking groove (24) penetrates the outer wall of the support frame (2) to the outside, and the minimum cross-section of the locking groove (24) is larger than the maximum cross-section of the release groove (25).

Citation Information

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