Semiconductor equipment detection wire harness

By setting a slide plate and guide wheel in the detection wiring harness of the semiconductor equipment, combined with the spring and inverted tooth plate structure, the problem of damage to the wiring harness due to pulling force during the detection process is solved, and effective buffering and protection of the pulling force is achieved.

CN223117853UActive Publication Date: 2025-07-18JIXI ELECTRONIC(SHANGHAI) CO LTD
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Patent Information

Application Number
CN202422304826.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-21
Publication Date
2025-07-18
Estimated Expiration
2034-09-21

AI Technical Summary

Technical Problem

In the prior art, the wire harness is prone to damage the battery cell due to a large pulling force during the detection process, affecting subsequent use.

Method used

A semiconductor device detection wire harness is designed, and the wiring harness is protected by placing a slide plate and a guide wheel in the storage box, combining a spring and a reverse tooth plate structure, and cushioning force is used to protect the wire harness.

Benefits of technology

Effectively buffer the pulling force of the wire harness during the detection process, prevent the instantaneous reset of the slide board from causing impact, and protect the connection parts of the wire harness.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a semiconductor equipment detection wire harness, relates to the wire harness detection technical field, and comprises a storage box, the inner walls of the two sides of the storage box close to the rear side edge are rotatably connected with a rolling roller, the inner walls of the two sides of the storage box are provided with a plurality of chutes at equal intervals, the storage box is internally provided with a plurality of slide plates at equal intervals, and the slide plates are arranged in the storage box. A plurality of sliding plates are arranged between the inner walls of the two opposite sliding grooves, the two ends of each sliding plate are correspondingly connected to the interiors of the two opposite sliding grooves in a sliding mode, the sliding plates are alternately distributed on the upper portion and the lower portion of the interior of the containing box, and guide wheels are arranged in the middles of the sliding plates. The guide wheels are rotationally connected to the middle portions of the sliding plates, so that when the wire harness body is pulled outwards from the winding roller, the wire harness body can alternately penetrate through the guide wheels, the wire harness body is guided, and meanwhile the pulling force can be buffered under the condition that the wire harness body generates large pulling force.
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Description

Technical Field

[0001] The utility model relates to the technical field of wire harness detection, in particular to a wire harness for semiconductor equipment detection. Background Art

[0002] The wire harness is the blood vessel of the equipment and a signal transmission line, which is applicable to mobile communication equipment and network equipment, and is applicable to multiple occasions, especially in narrow space occasions. It has a quick plug / quick break coupling method, a relatively small volume, flexible wires, and good anti-EMI performance.

[0003] Currently, when detecting the wire harness, it is usually necessary to pull the wire harness wound inside the equipment to the outside to a wire detection device for detection. However, during the pulling process, when the pulling force is large, it is easy to damage the battery core inside the wire harness, affecting the subsequent use of the wire harness. Summary of the Utility Model

[0004] The utility model provides a wire harness for semiconductor equipment detection to solve the problems of the prior art. The basic idea of the technical solution adopted by the utility model to solve the above technical problems is:

[0005] A wire harness for semiconductor equipment detection includes a storage box. The inner walls of both sides of the storage box are rotatably connected with winding drums near the rear edge. A plurality of sliding grooves are equidistantly formed in the inner walls of both sides of the storage box. A plurality of sliding plates are equidistantly arranged inside the storage box. Both ends of the plurality of sliding plates are correspondingly slidably connected inside two opposite sliding grooves. The plurality of sliding plates are alternately distributed above and below the inside of the storage box. Guide wheels are arranged in the middle parts of the plurality of sliding plates. A bending plate is arranged on the top of the storage box.

[0006] Optionally, the wire harness body is wound around the outer surface of the winding drum, and one end of the wire harness body penetrates between the plurality of guide wheels.

[0007] Optionally, an outlet is formed in the middle of the front side of the storage box, and one end of the wire harness body penetrates through the outlet to the outside of the storage box.

[0008] Optionally, guide rods are fixed between the top surface and the bottom surface inside the plurality of sliding grooves. The sliding plates are slidably connected to the outer surfaces of the guide rods. Springs are fixed near the two ends of the bottom of each sliding plate, and one ends of the plurality of springs are correspondingly fixed on the inner walls of the sliding grooves.

[0009] Optionally, two adjustment grooves are formed in the front side of the storage box, and through holes are formed near the two side edges of the inner bottom surfaces of the two adjustment grooves.

[0010] Optionally, a plurality of guiding openings are formed in the inner wall at the rear side of the storage box, the plurality of guiding openings correspond to and face the plurality of through openings, pressing rods are arranged inside the plurality of guiding openings, and one ends of the plurality of pressing rods respectively extend into the guiding openings correspondingly.

[0011] Optionally, a dial plate is fixed between one ends of two pressing rods located inside the same adjusting groove, an arc-shaped spring piece is fixed at the rear side of the dial plate, a reverse tooth plate is fixed at the inner bottom surface of the adjusting groove, and one end of the arc-shaped spring piece extends to the tooth of the reverse tooth plate.

[0012] After adopting the above technical solution, the present utility model has the following beneficial effects compared with the prior art. Of course, any product implementing the present utility model does not necessarily need to achieve all the advantages described below simultaneously:

[0013] 1. In the present utility model, a sliding plate is arranged between the inner walls of two opposite sliding grooves, and a guiding wheel is rotatably connected to the middle part of the sliding plate, so that when the wire harness body is pulled from the winding drum to the outside, the wire harness body can be alternately penetrated between the guiding wheels, guiding the wire harness body and buffering the pulling force when a large pulling force is generated on the wire harness body.

[0014] 2. In the present utility model, when a large pulling force is generated during the process of pulling the wire harness body to the outside, it will drive a plurality of sliding plates to slide towards the middle part of the storage box, and at the same time compress the spring. During the sliding process, the arc-shaped spring piece slides on the outer surface of the reverse tooth plate, and the tooth of the reverse tooth plate is engaged with one end of the arc-shaped spring piece, so that the pressing rod can be limited, preventing the plurality of sliding plates inside the storage box from instantly resetting and generating a large impact to damage the docking part when the external pulling force disappears. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] The following drawings in the description are only some embodiments. For those of ordinary skill in the art, other drawings can be obtained according to these drawings without creative efforts. In the drawings:

[0016] Figure 1 is a side perspective structural schematic diagram of a wire harness for semiconductor device detection proposed by the present utility model;

[0017] Figure 2 is a side sectional perspective structural schematic diagram of a wire harness for semiconductor device detection proposed by the present utility model;

[0018] Figure 3 is a side sectional perspective structural schematic diagram of the other side of a wire harness for semiconductor device detection proposed by the present utility model;

[0019] Figure 4 For the present utility model Figure 3The enlarged view at position A in the figure.

[0020] In the attached drawings, the list of components represented by each reference numeral is as follows:

[0021] 1. Storage box; 2. Bending plate; 3. Wire outlet; 4. Adjustment slot; 5. Pushing plate; 6. Reverse tooth plate; 7. Wire harness body; 8. Winding drum; 9. Guide port; 10. Pressing rod; 11. Slide groove; 12. Slide plate; 13. Guide wheel; 14. Through port; 15. Spring; 16. Guide rod; 17. Arc spring piece.

[0022] It should be noted that these attached drawings and text descriptions are not intended to limit the scope of the concept of the present utility model in any way, but to illustrate the concept of the present utility model to those skilled in the art by referring to specific embodiments. Detailed implementation mode

[0023] Now, the present utility model will be further described in detail with reference to the attached drawings.

[0024] Embodiment 1, as Figures 1-4 shown, the present utility model provides a technical solution for detecting a wire harness of a semiconductor device: including a storage box 1, a winding drum 8 is rotatably connected to the inner walls of both sides of the storage box 1 near the rear edge, a plurality of slide grooves 11 are equidistantly opened on the inner walls of both sides of the storage box 1, a plurality of slide plates 12 are equidistantly arranged inside the storage box 1, both ends of the plurality of slide plates 12 are correspondingly slidably connected inside the two opposite slide grooves 11, the plurality of slide plates 12 are alternately distributed above and below the inside of the storage box 1, guide wheels 13 are arranged in the middle parts of the plurality of slide plates 12, a bending plate 2 is arranged on the top of the storage box 1, a wire harness body 7 is wound on the outer surface of the winding drum 8, and one end of the wire harness body 7 penetrates between the plurality of guide wheels 13.

[0025] The effect achieved by the entire Embodiment 1 is that a slide plate 12 is arranged between the inner walls of the two opposite slide grooves 11, and then a guide wheel 13 is rotatably connected to the middle part of the slide plate 12, so that when the wire harness body 7 is pulled from the winding drum 8 to the outside, the wire harness body 7 can be alternately penetrated between the guide wheels 13, guiding the wire harness body 7 while buffering the pulling force when a relatively large pulling force is generated on the wire harness body 7.

[0026] Embodiment 2, as Figures 1-4As shown in the figure, a wire outlet 3 is provided in the middle of the front side of the storage box 1. One end of the wire harness body 7 passes through the wire outlet 3 to the outside of the storage box 1. Guide rods 16 are fixed between the inner top surface and the bottom surface of each of the multiple chutes 11. The slide plate 12 is slidably connected to the outer surface of the guide rod 16. Springs 15 are fixed near the edges at both ends of the bottom of the slide plate 12. One end of each of the multiple springs 15 is correspondingly fixed to the inner wall of the chute 11. Two adjustment slots 4 are provided on the front side of the storage box 1. Through holes 14 are provided near the edges on both sides of the inner bottom surface of the two adjustment slots 4. A plurality of guide openings 9 are provided on the rear inner wall of the storage box 1. The plurality of guide openings 9 are correspondingly opposite to the plurality of through holes 14. Pressure rods 10 are provided inside each of the plurality of guide openings 9. One end of each of the plurality of pressure rods 10 correspondingly extends into the guide opening 9. A dial plate 5 is fixed between one ends of the two pressure rods 10 located inside the same adjustment slot 4. An arc-shaped spring piece 17 is fixed to the rear side of the dial plate 5. The inner bottom surface of the adjustment slot 4 is fixed with a reverse tooth plate 6. One end of the arc-shaped spring piece 17 extends to the teeth of the reverse tooth plate 6.

[0027] The overall effect achieved by the entire Embodiment 2 is that during the process of pulling the wire harness body 7 outwards, when a relatively large pulling force is generated, it will drive a plurality of slide plates 12 to slide towards the middle part of the storage box 1, and at the same time compress the springs 15. During the sliding process, the arc-shaped spring piece 17 slides on the outer surface of the reverse tooth plate 6. By engaging one end of the arc-shaped spring piece 17 with the teeth of the reverse tooth plate 6, the pressure rod 10 can be limited, preventing the plurality of slide plates 12 inside the storage box 1 from instantly resetting and generating a large impact when the external pulling force disappears, which may damage the docking part.

[0028] Working principle: A slide plate 12 is arranged between the inner walls of two opposite chutes 11, and a guide wheel 13 is rotatably connected to the middle part of the slide plate 12, so that when the wire harness body 7 is pulled from the winding drum 8 to the outside, the wire harness body 7 can be alternately passed through between the guide wheels 13. While guiding the wire harness body 7, it can also buffer the pulling force when a relatively large pulling force is generated on the wire harness body 7. During the process of pulling the wire harness body 7 outwards, when a relatively large pulling force is generated, it will drive a plurality of slide plates 12 to slide towards the middle part of the storage box 1, and at the same time compress the springs 15. During the sliding process, the arc-shaped spring piece 17 slides on the outer surface of the reverse tooth plate 6. By engaging one end of the arc-shaped spring piece 17 with the teeth of the reverse tooth plate 6, the pressure rod 10 can be limited, preventing the plurality of slide plates 12 inside the storage box 1 from instantly resetting and generating a large impact when the external pulling force disappears, which may damage the docking part.

[0029] The present utility model is not limited to the above embodiments. Any person should be aware that structural changes made under the inspiration of the present utility model, as long as they have the same or similar technical solutions as the present utility model, shall fall within the protection scope of the present utility model. The technologies, shapes, and structures not described in detail in the present utility model are all well-known technologies.

Claims

1. A semiconductor device detection wire harness, comprising a storage box (1), characterized in that: On the inner walls of both sides of the storage box (1) near the rear edge, there are winding drums (8) rotatably connected. On the inner walls of both sides of the storage box (1), a plurality of sliding grooves (11) are equidistantly arranged. Inside the storage box (1), a plurality of sliding plates (12) are equidistantly arranged. At both ends of each of the plurality of sliding plates (12), they are correspondingly slidably connected inside two opposite sliding grooves (11). The plurality of sliding plates (12) are alternately distributed above and below the inside of the storage box (1). At the middle part of each of the plurality of sliding plates (12), a guide wheel (13) is arranged. On the top of the storage box (1), there is a bending plate (2).

2. The semiconductor device detection wire harness according to claim 1, wherein: On the outer surface of the winding drum (8), a wire harness body (7) is wound. One end of the wire harness body (7) penetrates between a plurality of guide wheels (13).

3. A semiconductor device detection wire harness according to claim 2, characterized in that: At the middle of the front side of the storage box (1), there is an outlet (3). One end of the wire harness body (7) penetrates through the outlet (3) to the outside of the storage box (1).

4. A semiconductor device detection wire harness according to claim 3, characterized in that: Between the top surface and the bottom surface inside each of the plurality of sliding grooves (11), a guide rod (16) is fixed. The sliding plate (12) is slidably connected to the outer surface of the guide rod (16). At the edges near both ends of the bottom of the sliding plate (12), springs (15) are fixed. One end of each of the plurality of springs (15) is correspondingly fixed to the inner wall of the sliding groove (11).

5. A semiconductor device detection wire harness according to claim 4, wherein: On the front side of the storage box (1), two adjustment slots (4) are provided. At the inner bottom surface of each of the two adjustment slots (4) near the edges on both sides, through holes (14) are provided.

6. A semiconductor device detection wire harness according to claim 5, characterized in that: On the inner wall of the rear side of the storage box (1), a plurality of guide openings (9) are provided. The plurality of guide openings (9) are correspondingly opposite to the plurality of through holes (14). Inside each of the plurality of guide openings (9), a pressing rod (10) is arranged. One end of each of the plurality of pressing rods (10) correspondingly extends into the guide opening (9).

7. A semiconductor device detection wire harness according to claim 6, characterized in that: Between one ends of two pressing rods (10) located inside the same adjustment slot (4), a dial plate (5) is fixed. At the rear side of the dial plate (5), an arc-shaped spring piece (17) is fixed. At the inner bottom surface of the adjustment slot (4), a reverse tooth plate (6) is fixed. One end of the arc-shaped spring piece (17) extends to the teeth of the reverse tooth plate (6).