A fixing device for stainless steel mesh production

CN224765177UActive Publication Date: 2026-09-18SHENZHEN YIHONGSHENG TECH CO LTD
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Patent Information

Application Number
CN202521517953.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-21
Publication Date
2026-09-18
Estimated Expiration
2035-07-21

AI Technical Summary

Technical Problem

[0003]但是现有技术中,现有的固定器对于厚度变化较大的不锈钢网,由于固定器的调节范围有限且调节方式不够灵活,往往难以根据网体不同部位的厚度差异进行灵活适配,要么因夹持过松导致网体晃动,影响加工质量,要么因夹持过紧造成网体变形,甚至损坏网体结构,不仅降低了生产效率,还增加了产品的报废率

Benefits of technology

[0009] The above technical solution is adopted: by setting a rotating shaft, the rotating shaft slides on the outer wall of the processing chamber. When the electric telescopic rod drives the rotating shaft to move up and down, the lever will push the sliding block to the sides or pull it to the middle.

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Abstract

The utility model provides a kind of fixer for stainless steel net production, it is related to stainless steel net production technical field, including processing bin, further include: sliding clamping component, sliding clamping component includes the sliding frame of sliding connection in processing bin, sliding frame is fixedly connected with sliding shaft by first transmission frame, sliding shaft is slidably connected with triangular block, stainless steel net body is slidably connected on triangular block, transmission rod is fixedly connected on triangular block, transmission block is slidably connected on transmission rod, second transmission frame is fixedly connected on transmission block by spring, transmission assembly is connected on sliding clamping component, in the utility model, triangular block can slide on sliding shaft, and horizontal slot on inner frame provides orientation for triangular block, so that triangular block can flexibly adjust own position according to the thickness of different parts of stainless steel net body, ensure that suitable clamping force can be applied to different thickness area, avoid the situation that clamping is too loose or too tight due to thickness difference.
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Description

Technical Field

[0001] This utility model relates to the field of stainless steel mesh production technology, and in particular to a fixture for stainless steel mesh production. Background Technology

[0002] Stainless steel mesh production fixtures are devices used to fix stainless steel mesh during production processes such as stainless steel mesh cutting, surface treatment, and screen printing stencil making, in order to ensure the precise and smooth progress of each process.

[0003] However, in the existing technology, the existing clamps are often difficult to adapt to the thickness differences of different parts of the stainless steel mesh due to the limited adjustment range and inflexible adjustment method of the clamps. Either the mesh shakes due to loose clamping, affecting the processing quality, or the mesh is deformed or even damaged due to excessive clamping. This not only reduces production efficiency but also increases the scrap rate of products. Utility Model Content

[0004] The purpose of this invention is to overcome the shortcomings of the existing technology and provide a fixing device for stainless steel mesh production.

[0005] To achieve the above objectives, this utility model adopts the following technical solution: a fixing device for stainless steel mesh production, comprising:

[0006] Processing warehouse;

[0007] A sliding clamping assembly includes a sliding frame slidably connected to a processing chamber, a sliding shaft fixedly connected to the sliding frame via a first transmission frame, a triangular block slidably connected to the sliding shaft, a stainless steel mesh body slidably connected to the triangular block, a transmission rod fixedly connected to the triangular block, a transmission block slidably connected to the transmission rod, a second transmission frame fixedly connected to the transmission block via a spring, and a transmission assembly connected to the sliding clamping assembly.

[0008] In a preferred embodiment, the transmission assembly includes an electric telescopic rod fixedly connected to the processing chamber, a rotating shaft fixedly connected to the electric telescopic rod, a lever fixedly connected to the rotating shaft, and a sliding block connected to the lever.

[0009] The above technical solution is adopted: by setting a rotating shaft, the rotating shaft slides on the outer wall of the processing chamber. When the electric telescopic rod drives the rotating shaft to move up and down, the lever will push the sliding block to the sides or pull it to the middle.

[0010] In a preferred embodiment, a universal joint is fixedly connected to the lever, and the side of the universal joint away from the lever is fixedly connected to a sliding block. An opening is provided on the processing chamber, and the sliding block is slidably connected to the opening on the processing chamber.

[0011] The above technical solution is adopted: when in use, a universal joint is fixedly connected to the lever, making the connection between the lever and the sliding block more flexible.

[0012] In a preferred embodiment, an inner frame is fixedly connected inside the processing chamber, and the stainless steel mesh body is slidably connected inside the inner frame.

[0013] The above technical solution is adopted: when in use, an inner frame is fixedly connected in the processing chamber, which makes it easy to place the stainless steel mesh body in the inner frame. In actual use, a damper can be fixed in the groove of the inner frame. When the stainless steel mesh body descends, the damper squeezes the stainless steel mesh body, making it tightly fixed.

[0014] In a preferred embodiment, the triangular block has an inclined groove, and the sliding shaft is slidably connected in the inclined groove on the triangular block.

[0015] The above technical solution is adopted: by opening an inclined groove on the triangular block, it is easy for the sliding shaft to slide in it. Since the sliding shaft is fixed to the first transmission frame, when the sliding shaft slides in it, the triangular block will be squeezed down and squeeze the stainless steel towards the body.

[0016] In a preferred embodiment, a horizontal groove is provided on the inner frame, and the triangular block is slidably connected in the horizontal groove.

[0017] The above technical solution is adopted: a horizontal groove is opened on the inner frame, in which the triangular block slides and plays a guiding role.

[0018] In a preferred embodiment, an opening is provided on the inner frame near the transmission block, and the transmission block is slidably connected to the opening on the inner frame.

[0019] The above technical solution is adopted: by opening a hole in the inner frame, the transmission block slides in the opening in the inner frame, which plays a guiding role for the transmission block.

[0020] Compared with the prior art, the advantages and positive effects of this utility model are as follows:

[0021] This invention uses an electric telescopic rod to drive a rotating shaft, a lever, and a sliding block in a coordinated manner. This causes the sliding frames on both sides to drive the first transmission frame and the sliding shaft to move inward and clamp the stainless steel mesh body. When the sliding shaft slides in the inclined groove of the triangular block, it squeezes the triangular block to move downward, thereby squeezing the stainless steel mesh body. Since the triangular block can slide on the sliding shaft, and the transverse groove on the inner frame provides guidance for the triangular block, the triangular block can flexibly adjust its position according to the thickness of different parts of the stainless steel mesh body. This ensures that appropriate clamping force can be applied to areas of different thicknesses, avoiding situations where the clamping is too loose or too tight due to thickness differences. Attached Figure Description

[0022] Figure 1 This utility model provides an overall structural diagram of a fixing device for stainless steel mesh production.

[0023] Figure 2 This utility model provides a schematic diagram showing the positional relationship between the rotating shaft and the electric telescopic rod of a fixing device for stainless steel mesh production.

[0024] Figure 3 A schematic diagram of the universal joint position of a fixing device for stainless steel mesh production provided by this utility model.

[0025] Figure 4 A schematic diagram showing the removal state of the stainless steel body of a stainless steel mesh production fixture provided by this utility model.

[0026] Figure 5 This utility model provides a schematic diagram of the sliding shaft position of a fixing device for stainless steel mesh production.

[0027] Legend:

[0028] 1. Processing warehouse;

[0029] 2. Sliding clamping assembly; 21. Sliding frame; 22. Triangular block; 23. Sliding shaft; 24. First transmission frame; 25. Transmission rod; 26. Transmission block; 27. Inner frame;

[0030] 3. Stainless steel mesh body;

[0031] 4. Spring; 41. Second transmission frame;

[0032] 5. Transmission assembly; 51. Rotating shaft; 52. Lever; 53. Sliding block; 54. Universal joint; 55. Electric telescopic rod;

[0033] 6. Horizontal groove;

[0034] 7. Inclined groove. Detailed Implementation

[0035] 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.

[0036] like Figure 1-5 As shown, this utility model provides a technical solution: a fixing device for stainless steel mesh production, comprising:

[0037] Processing Warehouse 1;

[0038] The sliding clamping assembly 2 includes a sliding frame 21 slidably connected to the processing chamber 1. A sliding shaft 23 is fixedly connected to the sliding frame 21 via a first transmission frame 24. A triangular block 22 is slidably connected to the sliding shaft 23. A stainless steel mesh body 3 is slidably connected to the triangular block 22. A transmission rod 25 is fixedly connected to the triangular block 22. A transmission block 26 is slidably connected to the transmission rod 25. A second transmission frame 41 is fixedly connected to the transmission block 26 via a spring 4. A transmission assembly 5 is connected to the sliding clamping assembly 2.

[0039] The transmission assembly 5 includes an electric telescopic rod 55 fixedly connected to the processing chamber 1. A rotating shaft 51 is fixedly connected to the electric telescopic rod 55. A lever 52 is fixedly connected to the rotating shaft 51. A sliding block 53 is connected to the lever 52. With the rotating shaft 51 installed, the rotating shaft 51 slides on the outer wall of the processing chamber 1. When the electric telescopic rod 55 drives the rotating shaft 51 to move up and down, the lever 52 will push the sliding block 53 to the sides or pull it to the middle.

[0040] A universal joint 54 is fixedly connected to the lever 52. The side of the universal joint 54 away from the lever 52 is fixedly connected to the sliding block 53. An opening is provided on the processing chamber 1. The sliding block 53 is slidably connected in the opening on the processing chamber 1. In use, the connection between the lever 52 and the sliding block 53 is more flexible by fixing the universal joint 54 to the lever 52.

[0041] In use, first place the stainless steel mesh body 3 on the inner frame 27. After starting the electric telescopic rod 55, the electric telescopic rod 55 drives the rotating shaft 51 to slide down. The rotating shaft 51 drives the two levers 52 to move. The end of the lever 52 away from the electric telescopic rod 55 pulls the two sliding blocks 53 to slide inward. The sliding blocks 53 then drive the sliding frames 21 on both sides to slide inward. The sliding frames 21 drive the first transmission frame 24 to move inward to clamp, so that the sliding shaft 23 is driven to clamp inward and slide on the inclined groove 7. The triangular block 22 is squeezed and moved downward to squeeze the stainless steel mesh body 3, completing the initial fixation.

[0042] During this process, since the triangular block 22 can slide on the sliding shaft 23 and the transverse groove 6 on the inner frame 27 provides guidance for the triangular block 22, the triangular block 22 can flexibly adjust its position according to the thickness of different parts of the stainless steel mesh body 3, ensuring that appropriate clamping force can be applied to areas of different thicknesses, and avoiding the situation of clamping too loosely or too tightly due to thickness differences.

[0043] At the same time, the triangular block 22 slides down, causing the transmission rod 25 to slide down in the inclined groove of the transmission block 26, causing the transmission block 26 to slide inward and lock onto the stainless steel mesh body 3 for further fixation. When the two sliding frames 21 press inward, the sliding frame 21 closer to the spring 4 will drive the spring 4 to press the transmission block 26, so that the transmission block 26 is limited in the opening of the inner frame 27 to prevent it from falling off. This allows the triangular block 22 to flexibly adjust its position according to the thickness of different parts of the stainless steel mesh body 3, ensuring that appropriate clamping force can be applied to areas of different thicknesses, and avoiding situations where the clamping is too loose or too tight due to thickness differences.

[0044] Furthermore, such as Figures 1 to 5 As shown, an inner frame 27 is fixedly connected inside the processing chamber 1, and the stainless steel mesh body 3 is slidably connected inside the inner frame 27. In use, the stainless steel mesh body 3 is placed in the inner frame 27 by the inner frame 27 fixedly connected inside the processing chamber 1. In actual use, a damper can be fixed at the groove of the inner frame 27. When the stainless steel mesh body 3 descends, the damper squeezes the stainless steel mesh body 3, so that it is fixed tightly.

[0045] like Figure 4 As shown, a groove 7 is provided on the triangular block 22, and the sliding shaft 23 is slidably connected in the groove 7 on the triangular block 22. By providing a groove 7 on the triangular block 22, it is easy for the sliding shaft 23 to slide in it. Since the sliding shaft 23 is fixed to the first transmission frame 24, when the sliding shaft 23 slides in it, the triangular block 22 will be squeezed down, squeezing the stainless steel towards the body.

[0046] A horizontal groove 6 is provided on the inner frame 27, and the triangular block 22 is slidably connected in the horizontal groove 6. By providing a horizontal groove 6 on the inner frame 27, the triangular block 22 slides in it, which serves as a guide for the triangular block 22.

[0047] like Figure 4 As shown, an opening is provided on the inner frame 27 near the transmission block 26. The transmission block 26 is slidably connected in the opening on the inner frame 27. By providing an opening on the inner frame 27, the transmission block 26 slides in the opening on the inner frame 27, which serves as a guide for the transmission block 26.

[0048] Working principle:

[0049] like Figure 1-5As shown, in use, the stainless steel mesh body 3 is first placed on the inner frame 27. At this time, the electric telescopic rod 55 is activated, which causes the electric telescopic rod 55 to drive the rotating shaft 51 to slide down. This causes the rotating shaft 51 to drive the two levers 52 to move. The ends of the two levers 52 away from the electric telescopic rod 55 pull the two sliding blocks 53 to slide inward. This causes the two sliding blocks 53 to drive the sliding frames 21 on both sides to slide inward. This causes the two sliding frames 21 to drive the first transmission frame 24 to clamp inward. This causes the sliding shaft 23 to be driven by the first transmission frame 24 to clamp inward and slide on 7. At this time, 7 is squeezed downward by the sliding shaft 23, squeezing the stainless steel mesh body 3 and completing the fixation of the stainless steel mesh body 3.

[0050] During this process, the downward movement of the triangular block 22 will cause the transmission rod 25 to slide down in the inclined groove on the transmission block 26, so that the transmission block 26 is driven to slide inward and get stuck on the stainless steel mesh body 3, thus completing the further fixation of the stainless steel mesh body 3.

[0051] At the same time, when the two sliding frames 21 are pressed inward, the sliding frame 21 closer to the spring 4 will drive the spring 4 to press the transmission block 26, so that the transmission block 26 is limited to the opening on the inner frame 27, preventing the transmission block 26 from falling off.

[0052] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present utility model without departing from the technical solution of the present utility model shall still fall within the protection scope of the technical solution of the present utility model.

Claims

1. A fixing device for stainless steel mesh production, characterized in that, include: Processing warehouse (1); The sliding clamping assembly (2) includes a sliding frame (21) slidably connected to the processing chamber (1). A sliding shaft (23) is fixedly connected to the sliding frame (21) via a first transmission frame (24). A triangular block (22) is slidably connected to the sliding shaft (23). A stainless steel mesh body (3) is slidably connected to the triangular block (22). A transmission rod (25) is fixedly connected to the triangular block (22). A transmission block (26) is slidably connected to the transmission rod (25). A second transmission frame (41) is fixedly connected to the transmission block (26) via a spring (4). A transmission assembly (5) is connected to the sliding clamping assembly (2).

2. The stainless steel mesh production fixture according to claim 1, characterized in that: The transmission assembly (5) includes an electric telescopic rod (55) fixedly connected to the processing chamber (1), a rotating shaft (51) fixedly connected to the electric telescopic rod (55), a lever (52) fixedly connected to the rotating shaft (51), and a sliding block (53) connected to the lever (52).

3. The fixing device for stainless steel mesh production according to claim 2, characterized in that: A universal joint (54) is fixedly connected to the lever (52). The side of the universal joint (54) away from the lever (52) is fixedly connected to the sliding block (53). An opening is provided on the processing chamber (1). The sliding block (53) is slidably connected to the opening on the processing chamber (1).

4. The fixing device for stainless steel mesh production according to claim 1, characterized in that: The processing chamber (1) is fixedly connected to an inner frame (27), and the stainless steel mesh body (3) is slidably connected to the inner frame (27).

5. The device as claimed in claim 1, wherein: The triangular block (22) has a groove (7) and the sliding shaft (23) is slidably connected in the groove (7) on the triangular block (22).

6. The device as claimed in claim 4, wherein: A horizontal groove (6) is provided on the inner frame (27), and the triangular block (22) is slidably connected in the horizontal groove (6).

7. The device as claimed in claim 4, wherein: An opening is provided on the side of the inner frame (27) near the transmission block (26), and the transmission block (26) is slidably connected to the opening on the inner frame (27).