Motor with wire fixing structure

By designing structures such as wire clamps, sliding grooves, and adjusting blocks on the motor, flexible adjustment of the wire clamps is achieved, solving the problem of the single method of fixing motor wires, improving the versatility of the motor and the orderly distribution of wires, and reducing the risk of failure and maintenance difficulty.

CN223540374UActive Publication Date: 2025-11-11NIDEC SERVO (CHANGZHOU) CORPORATION
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Patent Information

Application Number
CN202423101908.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-16
Publication Date
2025-11-11
Estimated Expiration
2034-12-16

AI Technical Summary

Technical Problem

Traditional motor wiring methods are limited and cannot adapt to the wiring needs of different equipment or complex environments, resulting in messy wiring, increasing the risk of line failure and maintenance difficulty.

Method used

A motor with a wire-fixing structure was designed, including a wire-fixing ring, a sliding groove, an adjusting block, and a wire-fixing clamp. The combination of the sliding groove and the adjusting block enables flexible adjustment of the wire-fixing clamp to adapt to different wiring requirements. The hexagonal positioning groove and the limiting protrusion provide stable support to ensure the stability and reliability of the wire.

Benefits of technology

It improves the versatility and adaptability of the motor, the wiring is distributed in an orderly manner, which facilitates inspection and maintenance, reduces the occurrence of electrical faults, and enhances the safety and stability of motor operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a motor with a wire fixing structure, which relates to the technical field of wire fixing motors and comprises a motor, a wire fixing ring is arranged on the outer side of the motor, a sliding groove is formed in the wire fixing ring, a plurality of positioning grooves are formed in the sliding groove, an adjusting block is arranged in the sliding groove in a sliding manner, and the positioning grooves are arranged in the adjusting block. A wire fixing clamp is arranged on the adjusting block, an adjusting cavity is formed in the adjusting block, a positioning hole is formed in the adjusting cavity, and a positioning block is inserted into the positioning hole; according to the utility model, through the design of arranging the sliding groove, installing the adjusting block and the like, the wire fixing clamp can be conveniently moved to a proper position when the motor is installed in different equipment or environments and the wire leading-out direction and position are changed, so that the universality and adaptability of the motor are improved, and the constraint of wiring limitation on the use scene of the motor is reduced; and the electric wires are distributed in order, so that later overhaul and maintenance work is facilitated.
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Description

Technical Field

[0001] This utility model relates to the field of fixed-wire motor technology, specifically a motor with a fixed-wire structure. Background Technology

[0002] DC motors generate vibrations during operation. The internal rotation of a rotor in a DC motor, such as in a brushed DC motor, causes vibration due to factors like friction between the brushes and commutator, and changes in current in the rotor windings. If this vibration is transmitted to the electrical wires without proper securing, the wires will sway accordingly.

[0003] Traditional motor wiring methods are often limited and lack flexibility. When motors are used in different equipment or complex environments, fixed wiring outlets are difficult to meet diverse wiring needs, which can easily lead to messy wiring, increasing the risk of line failure and maintenance difficulty.

[0004] In view of the above, this application is hereby submitted. Utility Model Content

[0005] The purpose of this invention is to provide a motor with a fixed wire structure to solve the problems mentioned in the background art.

[0006] To solve the above-mentioned technical problems, this utility model provides a motor with a fixed wire structure, including a motor, a fixed wire ring on the outside of the motor, a sliding groove in the fixed wire ring, a plurality of positioning grooves in the sliding groove, an adjusting block slidably mounted in the sliding groove, a fixed wire clamp mounted on the adjusting block, an adjusting cavity in the adjusting block, a positioning hole in the adjusting cavity, a positioning block inserted into the positioning hole, one end of the positioning block protruding from the positioning hole, and a limit protrusion fixedly connected to the other end.

[0007] Furthermore, the positioning groove, positioning block, and limiting protrusion are all hexagonal in shape and their sizes are matched.

[0008] Furthermore, the positioning groove is formed on both sides of the sliding groove, and positioning holes are formed at both ends of the positioning block.

[0009] Furthermore, the side wall of the adjustment cavity is provided with a toggle groove, and a toggle block is slidably disposed in the toggle groove. The toggle block is fixedly connected to the limiting protrusion.

[0010] Furthermore, the wire clamp is C-shaped, with its opening facing away from the adjusting block, and the wire clamp is made of elastic material.

[0011] Furthermore, a spring is provided in the adjustment cavity, and the two ends of the spring are respectively fixedly connected to two limiting protrusions.

[0012] Furthermore, the fixing ring is annular and is fitted onto the surface of the motor.

[0013] Furthermore, the bottom surface of the motor is provided with a mounting pad, and threaded openings are provided on both sides of the mounting pad. The mounting pad has four spaced-apart distributions at the four corners of the bottom surface of the motor.

[0014] Compared with the prior art, the beneficial effects of this utility model are:

[0015] In this invention, by designing a sliding groove and installing an adjusting block, the wire clamp can be easily moved to a suitable position when the motor is installed in different equipment or environments and the direction and position of the wire lead-out change. This improves the versatility and adaptability of the motor, reduces the constraints on the motor's usage scenarios due to wiring limitations, and makes the wire distribution orderly, which is convenient for later inspection and maintenance. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of a motor with a fixed wire structure.

[0017] Figure 2 This is a schematic diagram of the wire-fixing structure of a motor with a wire-fixing structure;

[0018] Figure 3 This is a schematic diagram of the wire clamping structure of a motor with a wire-fixed structure;

[0019] Figure 4 This is a schematic cross-sectional view of a motor with a fixed wire structure.

[0020] In the diagram: 1. Motor; 101. Mounting pad; 2. Wire clamp; 201. Sliding groove; 202. Positioning groove; 3. Adjusting block; 301. Adjusting cavity; 302. Positioning hole; 303. Positioning block; 304. Limiting protrusion; 305. Actuating groove; 306. Actuating block; 307. Spring; 4. Wire clamp. Detailed Implementation

[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0022] Please see Figure 1-4 This utility model provides a technical solution:

[0023] A motor with a fixed wire structure includes a motor 1, a fixed wire ring 2 on the outer side of the motor 1, the fixed wire ring 2 being annular and fitting around the surface of the motor 1, a sliding groove 201 in the fixed wire ring 2, a plurality of positioning grooves 202 in the sliding groove 201, an adjusting block 3 slidably mounted on the sliding groove 201, a fixed wire clamp 4 mounted on the adjusting block 3, an adjusting cavity 301 inside the adjusting block 3, a positioning hole 302 in the adjusting cavity 301, a positioning block 303 inserted into the positioning hole 302, one end of the positioning block 303 passing through the positioning hole 302, and the other end being fixedly connected to a limiting protrusion 304.

[0024] The wire ring 2 is fitted onto the surface of the motor 1, and its sliding groove 201 provides a moving track for the adjusting block 3.

[0025] The positioning block 303 inside the adjusting block 3 interacts with the positioning grooves 202 on both sides of the sliding groove 201 to achieve the positioning of the adjusting block 3.

[0026] When it is necessary to adjust the position of the wire clamp 4, operate the toggle block 306 to make it slide in the toggle groove 305.

[0027] Since the actuating block 306 is fixedly connected to the limiting protrusion 304, the limiting protrusion 304 then drives the positioning block 303 to move in the positioning hole 302, compressing the spring 307, causing the positioning block 303 to disengage from the positioning groove 202. At this time, the adjusting block 3 can slide freely in the sliding groove 201.

[0028] Once the desired position is reached, release the toggle block 306, the spring 307 rebounds, pushing the limit protrusion 304 and the positioning block 303, causing the positioning block 303 to re-insert into the positioning groove 202, completing the positioning of the adjusting block 3, thereby fixing the position of the wire clamp 4.

[0029] This design allows the position of the cable clamp 4 to be flexibly adjusted to adapt to different wiring needs.

[0030] For example, when the motor is installed in different equipment or environments and the direction and position of the wire lead-out change, the wire clamp 4 can be easily moved to a suitable position, improving the versatility and adaptability of the motor and reducing the constraints on the motor's usage scenarios due to wiring limitations.

[0031] The positioning groove 202, the positioning block 303 and the limiting protrusion 304 are all hexagonal and their sizes are matched. The positioning groove 202 is opened on both sides of the sliding groove 201, and the positioning block 303 has positioning holes 302 at both ends.

[0032] The positioning groove 202, positioning block 303, and limiting protrusion 304 are all hexagonal and of compatible size. The positioning groove 202 is formed on both sides of the sliding groove 201, and the positioning holes 302 at both ends of the positioning block 303 ensure its stable installation in the adjusting block 3.

[0033] When the positioning block 303 is inserted into the positioning slot 202, the hexagonal shape provides multi-directional limiting and stable support, effectively preventing the adjusting block 3 from rotating or shifting, and ensuring the accuracy and stability of the position of the wire clamp 4.

[0034] The hexagonal design enhances positioning reliability and, compared to other shapes, can better withstand forces from different directions, such as vibrations from motor operation and forces generated by pulling wires.

[0035] This helps maintain the stability of the wire clamp 4 in fixing the wire, reduces the occurrence of electrical faults such as loose wires and poor contact caused by changes in the position of the wire clamp 4, and improves the safety and stability of motor operation.

[0036] The side wall of the adjustment cavity 301 is provided with a toggle groove 305, and a toggle block 306 is slidably provided in the toggle groove 305. The toggle block 306 is fixedly connected to the limiting protrusion 304.

[0037] The actuating groove 305 provides sliding space for the actuating block 306, and the actuating block 306 is fixedly connected to the limiting protrusion 304 to form an operating linkage mechanism.

[0038] By applying external force to the actuating block 306, the user can make it slide within the actuating groove 305, thereby indirectly controlling the disengagement and engagement of the positioning block 303 with the positioning groove 202, thus achieving convenient movement and positioning of the adjusting block 3.

[0039] This design makes adjusting the position of the adjustment block 3 simple and intuitive, requiring no complicated tools or professional skills.

[0040] During motor installation, maintenance, or wiring layout adjustment, operators can quickly and easily change the position of the wire clamp 4, saving time and labor costs and improving work efficiency. This advantage is especially evident in scenarios involving large-scale production or frequent adjustments to motor wiring.

[0041] A spring 307 is provided in the adjustment cavity 301, and the two ends of the spring 307 are fixedly connected to two limiting protrusions 304 respectively.

[0042] Spring 307 is located in adjustment cavity 301, and its two ends are fixedly connected to two limiting protrusions 304 respectively. When the actuating block 306 drives the limiting protrusions 304 to move and the positioning block 303 is disengaged from the positioning groove 202, spring 307 is compressed and stores elastic potential energy.

[0043] When the toggle block 306 is released, the spring 307 releases its elastic potential energy, pushing the limit protrusion 304 to move in the opposite direction, causing the positioning block 303 to re-insert into the positioning groove 202, thereby realizing the automatic reset and positioning of the adjusting block 3.

[0044] The presence of spring 307 simplifies the positioning operation of adjusting block 3. There is no need to manually and precisely align the positioning groove 202. Positioning can be completed by relying on the automatic reset function of spring 307.

[0045] This not only improves the ease of operation, but also ensures the accuracy and stability of positioning, reduces the situation of inaccurate positioning due to human error, and further improves the reliability and practicality of the motor's fixed-wire structure.

[0046] The wire clamp 4 is C-shaped, with its opening facing away from the adjusting block 3. The wire clamp 4 is made of elastic material.

[0047] When the motor wires need to be secured, slowly bring the wires close to the wire clamp 4. Because the wire clamp 4 is C-shaped and made of elastic material (such as a thin plastic or metal sheet with a certain degree of elasticity), when the wires come into contact with the opening of the wire clamp 4, they will exert outward pressure on both sides of the wire clamp 4, causing the opening of the wire clamp 4 to gradually open.

[0048] As the wire continues to penetrate deeper, the elastic deformation of the clamp 4 gradually increases. When the wire reaches the appropriate position, the clamp 4 will tightly clamp the wire due to its own elastic restoring force.

[0049] This elastic clamping force can adapt to wires of different diameters and maintains a stable clamping force on the wires during motor operation, preventing the wires from loosening or falling off due to motor vibration or external forces.

[0050] The bottom surface of the motor 1 is provided with a mounting pad 101. The mounting pad 101 has threaded openings on both sides. The mounting pad 101 has four spaced distributions at the four corners of the bottom surface of the motor 1.

[0051] Since the mounting pads 101 are spaced apart at the four corners of the bottom surface of the motor 1, they can form a stable support structure to prevent the motor 1 from tilting or shaking during installation.

Claims

1. A motor with a fixed-wire structure, comprising an electric motor (1), characterized in that: A wire-fixing ring (2) is provided on the outside of the motor (1). A sliding groove (201) is provided in the wire-fixing ring (2). A plurality of positioning grooves (202) are provided in the sliding groove (201). An adjusting block (3) is slidably provided in the sliding groove (201). A wire-fixing clamp (4) is provided on the adjusting block (3). An adjusting cavity (301) is provided inside the adjusting block (3). A positioning hole (302) is provided in the adjusting cavity (301). A positioning block (303) is inserted into the positioning hole (302). One end of the positioning block (303) passes through the positioning hole (302), and the other end is fixedly connected to a limiting protrusion (304).

2. The motor with a fixed-wire structure as described in claim 1, characterized in that: The positioning groove (202), positioning block (303) and limiting protrusion (304) are all hexagonal and their sizes are matched.

3. A motor with a fixed-wire structure as described in claim 2, characterized in that: The positioning groove (202) is provided on both sides of the sliding groove (201), and the positioning block (303) has positioning holes (302) at both ends.

4. A motor with a fixed-wire structure as described in claim 3, characterized in that: The side wall of the adjustment cavity (301) is provided with a toggle groove (305), and a toggle block (306) is slidably provided in the toggle groove (305). The toggle block (306) is fixedly connected to the limiting protrusion (304).

5. A motor with a fixed-wire structure as described in claim 4, characterized in that: The wire clamp (4) is C-shaped, with its opening facing away from the adjusting block (3), and the wire clamp (4) is made of elastic material.

6. A motor with a fixed-wire structure as described in claim 5, characterized in that: A spring (307) is provided in the adjustment cavity (301), and the two ends of the spring (307) are fixedly connected to two limiting protrusions (304) respectively.

7. A motor with a fixed-wire structure as described in claim 6, characterized in that: The wire ring (2) is annular and is fitted onto the surface of the motor (1).

8. A motor with a fixed-wire structure as described in claim 7, characterized in that: The bottom surface of the motor (1) is provided with a mounting pad (101), and threaded openings are provided on both sides of the mounting pad (101). The mounting pad (101) has four spaced distributions at the four corners of the bottom surface of the motor (1).