A deformation detection device for gaskets

By designing an automated testing device with a support frame and testing components, and using a push plate and material input pipe, the problem of low gasket testing efficiency in the existing technology has been solved, realizing an automated testing process and improving processing efficiency.

CN224580924UActive Publication Date: 2026-07-31江苏常标汽车零部件有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
江苏常标汽车零部件有限公司
Filing Date
2025-09-02
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing gasket testing equipment is inefficient when testing large quantities of gaskets, as it cannot achieve automatic feeding and discharging, resulting in low testing efficiency.

Method used

A deformation detection device including a support frame and a detection component was designed. It adopts a first drive unit and a second drive component to achieve automatic material discharge by pushing the plate and continuous material feeding through the material input pipe. Combined with an adjustable detector and a guide rail sliding table, it realizes an automated detection process for gaskets.

Benefits of technology

It has achieved automated inspection of gaskets, improving inspection efficiency, and has greatly improved processing efficiency through automatic discharge and continuous feeding.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a deformation detection device for gaskets, relating to the field of gaskets. It includes a support frame and a detection platform. The detection platform has a fixed groove, and a placement table is mounted on the bottom surface of the fixed groove. An mounting plate is mounted on the right end face of the detection platform, and an adjustable detector is mounted on the upper end face of the mounting plate. A functional port is symmetrically provided on the upper end face of the detection platform. A first drive unit is mounted on the upper end face of the fixed groove, and a push plate is mounted on the upper end face of the first drive unit. The push plate is used to push the gaskets on the placement table to achieve automatic material discharge. A fixed plate is provided on the upper end face of the detection platform, and a material input pipe is provided on the upper end face of the fixed plate. The distance between the material input pipe and the placement table is the thickness of one gasket. This utility model achieves automatic material discharge by setting a second drive component to drive the push plate, which in turn pushes the gaskets, and achieves continuous feeding by setting the material input pipe, thereby further improving processing efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of gasket technology, specifically to a deformation detection device suitable for gaskets. Background Technology

[0002] A gasket is a mechanical seal between two objects, typically used to prevent leakage due to pressure, corrosion, and the natural thermal expansion and contraction of pipes. A dial indicator is a widely used indicating measuring tool in precision measurement. It is mainly used to check the shape and positional errors of workpieces. It is also frequently used for precision alignment of workpieces.

[0003] According to the published patent CN219915158U, a gasket testing device can automatically push the gasket out of the sliding groove after the gasket has been tested using a hydraulic cylinder and a telescopic rod, avoiding the need for workers to reach into the sliding groove to remove the gasket. However, the existing technology is not efficient enough when testing a large number of gaskets, and it cannot further improve the testing efficiency by combining automatic feeding with automatic discharging. Utility Model Content

[0004] This invention provides a deformation detection device for gaskets, which has the advantage of continuous feeding and continuous processing, thus solving the problem of low detection efficiency in existing technologies.

[0005] To achieve continuous feeding and continuous processing, this utility model provides the following technical solution: a deformation detection device suitable for gaskets, including a support frame and a detection component. The detection component includes a detection platform, which is installed on the upper end face of the support frame. The upper end face of the detection platform is provided with an inwardly recessed fixing groove. A placement platform is installed on the bottom surface of the fixing groove. An installation plate is installed on the right end face of the detection platform. An adjustable detector is provided on the upper end face of the installation plate. A functional port is symmetrically provided on the upper end face of the detection platform. The adjustable detector extends into the fixing groove through the functional port. A first driving unit is installed on the upper end face of the fixing groove. A push plate is installed on the upper end face of the first driving unit.

[0006] The push plate is used to push out the pads on the placement table to achieve automatic material discharge. The upper end of the detection platform is provided with a fixing plate, and the upper end of the fixing plate is provided with a material input pipe. The material input pipe passes through the fixing plate and extends into the fixing groove. The distance between the material input pipe and the placement table is the thickness of one pad.

[0007] Preferably, the fixing groove has symmetrical fixing holes at its left and right ends, and a sliding block is slidably connected in the fixing holes. The front end face of the sliding block has a mounting cavity, and a rolling roller is rotatably connected in the mounting cavity. The rolling roller extends into the upper end of the placement platform, and a drive motor is installed on the upper end face of the sliding block. The output end of the drive motor passes through the sliding block and is fixedly connected to the rolling roller.

[0008] Preferably, an elastic spring is provided inside the fixing hole, and the two ends of the elastic spring are fixedly connected to the fixing hole and the sliding block, respectively.

[0009] Preferably, the adjustable detector includes a detector body, a second guide rail, a second sliding stage, a second helical rod, and a second power unit. The second guide rail is mounted on the upper end face of the fixed groove, the second sliding stage is slidably connected to the upper end face of the second guide rail, the detector body is mounted on the upper end face of the second sliding stage, the second power unit is mounted on the upper end face of the fixed groove, the second helical rod is mounted on the output end of the second power unit and extends into the second guide rail, and the front end face of the second sliding stage is provided with a threaded through hole penetrating the second sliding stage, the second helical rod passes through the threaded through hole and is threadedly connected to the threaded through hole.

[0010] Preferably, the first driving unit includes a first guide rail, a first sliding table, a first helical rod, and a first power unit. The first guide rail is mounted on the upper end face of the fixed groove, the first sliding table is slidably connected to the upper end face of the first guide rail, the first power unit is mounted on the upper end face of the fixed groove, the first helical rod is mounted on the output end of the first power unit and extends into the first guide rail, the front end face of the first sliding table is provided with a threaded through hole penetrating the first sliding table, and the first helical rod passes through the threaded through hole and is threadedly connected to the threaded through hole.

[0011] Preferably, the front end face of the push plate is provided with an arc-shaped recessed groove.

[0012] Compared with the prior art, this utility model provides a deformation detection device suitable for gaskets, which has the following beneficial effects:

[0013] 1. This gasket deformation detection device, by setting a second drive component to drive the push plate, pushes the gasket by the push plate, and can realize the function of automatic material discharge, thereby improving processing efficiency. Furthermore, by setting a material input pipe to realize continuous feeding, the processing efficiency is further improved.

[0014] 2. By setting a first guide rail, a first sliding table, a threaded through hole, a first helical rod, and a first power machine, the first sliding table can be driven to slide on the first guide rail, thereby driving the upper end of the push plate installed on the first sliding table to move, so that the push plate can automatically push away the gasket. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0016] Figure 2 This is a cross-sectional view of the detection component of this utility model;

[0017] Figure 3 This is a cross-sectional view of the sliding block of this utility model;

[0018] Figure 4 This is a schematic diagram of the adjustable detector structure of this utility model;

[0019] Figure 5 This is a schematic diagram of the first drive unit structure of this utility model;

[0020] Figure 6 This is a schematic diagram of the structure of the fixing plate and the material input pipe of this utility model.

[0021] In the diagram: 1. Support frame; 2. Detection component; 20. Detection platform; 21. Fixing groove; 22. Placement table; 23. Mounting plate; 24. Functional port; 25. Fixing hole; 26. Sliding block; 260. Mounting cavity; 261. Rolling roller; 262. Drive motor; 27. Elastic spring; 3. Adjustable detector; 30. Detector body; 31. Second guide rail; 32. Second sliding table; 320. Threaded through hole; 33. Second screw rod; 34. Second power unit; 4. First drive unit; 40. First guide rail; 41. First sliding table; 410. Threaded through hole; 42. First screw rod; 43. First power unit; 5. Push plate; 50. Arc-shaped recessed groove; 6. Fixing plate; 60. Material input pipe. Detailed Implementation

[0022] 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. Example 1

[0023] Please see Figures 1-2This utility model discloses a deformation detection device suitable for gaskets, including a support frame 1 and a detection platform 20. The detection platform 20 is installed on the upper end face of the support frame 1. The upper end face of the detection platform 20 is provided with an inwardly recessed fixing groove 21. A placement platform 22 is installed on the bottom surface of the fixing groove 21. A mounting plate 23 is installed on the right end face of the detection platform 20. An adjustable detector 3 is provided on the upper end face of the mounting plate 23. A functional port 24 is symmetrically provided on the upper end face of the detection platform 20. The adjustable detector 3 passes through the functional port. 24 extends into the fixing groove 21. The upper end face of the fixing groove 21 is equipped with a first driving unit 4. The upper end face of the first driving unit 4 is equipped with a push plate 5. The push plate 5 is used to push out the pad on the placement table 22 to realize automatic material discharge. The upper end face of the detection platform 20 is provided with a fixing plate 6. The upper end face of the fixing plate 6 is provided with a material input pipe 60. The material input pipe 60 passes through the fixing plate 6 and extends into the fixing groove 21. The distance between the material input pipe 60 and the placement table 22 is the thickness of one pad.

[0024] The above design achieves automatic material discharge by setting a second driving component to drive the push plate 5, which in turn pushes the gasket, thereby improving processing efficiency. Furthermore, continuous feeding is achieved by setting a material input pipe 60, which further enhances processing efficiency.

[0025] Please see Figure 5 The first driving unit 4 includes a first guide rail 40, a first sliding table 41, a first spiral rod 42, and a first power unit 43. The first guide rail 40 is installed on the upper end face of the fixed groove 21. The first sliding table 41 is slidably connected to the upper end face of the first guide rail 40. The first power unit 43 is installed on the upper end face of the fixed groove 21. The first spiral rod 42 is installed at the output end of the first power unit 43 and extends into the first guide rail 40. The front end face of the first sliding table 41 is provided with a threaded through hole 410 that penetrates the first sliding table 41. The first spiral rod 42 passes through the threaded through hole 410 and is threadedly connected to the threaded through hole 410. By setting the first guide rail 40, the first sliding table 41, the threaded through hole 410, the first spiral rod 42, and the first power unit 43, the first sliding table 41 can be driven to slide on the first guide rail 40, thereby driving the upper end of the first sliding table 41 to move the push plate 5, so that the push plate 5 can automatically push away the gasket.

[0026] Please see Figure 4The adjustable detector 3 includes a detector body 30, a second guide rail 31, a second sliding stage 32, a second screw rod 33, and a second power unit 34. The second guide rail 31 is mounted on the upper end face of the fixed groove 21. The second sliding stage 32 is slidably connected to the upper end face of the second guide rail 31. The detector body 30 is mounted on the upper end face of the second sliding stage 32. The second power unit 34 is mounted on the upper end face of the fixed groove 21. The second screw rod 33 is mounted on the output end of the second power unit 34 and extends into the second guide rail 31. The front end face of the second sliding stage 32 has a threaded through hole 320 penetrating the second sliding stage 32. The second screw rod 33 passes through the threaded through hole 320 and is threadedly connected to it. By configuring the detector body 30, the second guide rail 31, the second sliding stage 32, the second screw rod 33, and the second power unit 34, the detector body 30 can be moved back and forth for adjustment, thus facilitating the detection of gaskets.

[0027] Please see Figure 5 The front end face of the push plate 5 is provided with an arc-shaped recessed groove 50. By providing the arc-shaped recessed groove 50, it is convenient to fit the outer wall of the pad, thereby making it convenient for the push plate 5 to push the pad. Example 2

[0028] Based on the above embodiment one, please refer to Figure 3-6 The fixing groove 21 has symmetrical fixing holes 25 at its left and right ends. A sliding block 26 is slidably connected in the fixing hole 25. The front end face of the sliding block 26 has a mounting cavity 260. A rolling roller 261 is rotatably connected in the mounting cavity 260. The rolling roller 261 extends into the upper end of the placement platform 22. A drive motor 262 is mounted on the upper end face of the sliding block 26. The output end of the drive motor 262 passes through the sliding block 26 and is fixedly connected to the rolling roller 261. By setting the sliding block 26 and the rolling roller 261, the sliding block 26 can be used to achieve the desired effect. The rotating roller 261 and the drive motor 262 can drive the rotating roller 261 to rotate, thereby driving the gasket to rotate so that the detector can detect the outer wall of the gasket. The fixed hole 25 is provided with an elastic spring 27. The two ends of the elastic spring 27 are fixedly connected to the fixed hole 25 and the sliding block 26, respectively. By setting the elastic spring 27, it can contact and push the rotating roller 261 when the push plate 5 pushes the gasket to discharge, so that the rotating roller 261 pushes the sliding block 26 into the fixed hole 25, and then automatically resets the sliding block 26.

[0029] The working principle and usage process of this utility model are as follows: In use, the gaskets are placed one by one into the material input pipe 60. Then, the drive motor 262 is started, which drives the rolling roller 261 to rotate and move the gaskets. Since the distance between the material input pipe 60 and the placement platform 22 is just enough to accommodate one gasket, when the rolling roller 261 rotates, it only contacts one gasket. When the gasket rotates, the upper gasket also rotates. Simultaneously, the second power motor 34 is started. After the second power motor 34 starts, it adjusts the position of the detector, causing it to move towards the gasket. When the detector contacts the gasket, it begins detection and the second power motor 34 is turned off. After detection, the second power motor 34 is started again and reversed to reset the detector. Then, the second power motor 34 is turned off. Simultaneously, the first power machine 43 is started, and the first power machine 43 drives the push plate 5 to push the tested pad forward, causing the tested pad to slide out of the placement table 22. At the same time, as the pad moves forward, it pushes the rolling roller 261, which pushes the sliding block 26 into the fixed hole 25 and compresses the elastic spring 27. Then the pad slides out of the testing platform 20 through the inclined surface at the front end of the slide groove. When the pad is removed from the placement table 22, the elastic spring 27 loses its restraint, thereby pushing the sliding block 26 to reset. When the pad is pushed, the push plate 5 can block the material feed. When the push plate 5 resets, the material input pipe 60 is not blocked, and the pad falls down onto the placement table 22 for the next test, thus facilitating continuous testing and improving testing efficiency.

Claims

1. A deformation detection device suitable for gaskets, comprising a support frame (1) and a detection assembly (2), characterized in that: The detection component (2) includes a detection platform (20), which is installed on the upper surface of the support frame (1). The upper surface of the detection platform (20) is provided with an inwardly recessed fixing groove (21). A placement platform (22) is installed on the bottom surface of the fixing groove (21). An installation plate (23) is installed on the right end surface of the detection platform (20). An adjustable detector (3) is provided on the upper end surface of the installation plate (23). A functional port (24) is symmetrically provided on the upper end surface of the detection platform (20). The adjustable detector (3) extends into the fixing groove (21) through the functional port (24). A first drive unit (4) is installed on the upper end surface of the fixing groove (21). A push plate (5) is installed on the upper end surface of the first drive unit (4). The push plate (5) is used to push out the pad on the placement table (22) to achieve automatic material discharge. The upper end of the detection platform (20) is provided with a fixing plate (6). The upper end of the fixing plate (6) is provided with a material input pipe (60). The material input pipe (60) passes through the fixing plate (6) and extends into the fixing groove (21). The distance between the material input pipe (60) and the placement table (22) is the thickness of one pad.

2. The deformation detection device for gaskets according to claim 1, characterized in that: The fixing groove (21) is provided with fixing holes (25) symmetrically at its left and right ends. A sliding block (26) is slidably connected in the fixing hole (25). The front end face of the sliding block (26) is provided with a mounting cavity (260). A rolling roller (261) is rotatably connected in the mounting cavity (260). The rolling roller (261) extends into the upper end of the placement platform (22). A drive motor (262) is installed on the upper end face of the sliding block (26). The output end of the drive motor (262) passes through the sliding block (26) and is fixedly connected to the rolling roller (261).

3. A deformation detection device for gaskets according to claim 2, characterized in that: The fixing hole (25) is provided with an elastic spring (27), and the two ends of the elastic spring (27) are fixedly connected to the fixing hole (25) and the sliding block (26) respectively.

4. The deformation detection device for gaskets according to claim 1, wherein: The adjustable detector (3) includes a detector body (30), a second guide rail (31), a second sliding table (32), a second spiral rod (33), and a second power unit (34). The second guide rail (31) is installed on the upper end face of the fixed groove (21). The second sliding table (32) is slidably connected to the upper end face of the second guide rail (31). The detector body (30) is installed on the upper end face of the second sliding table (32). The second power unit (34) is installed on the upper end face of the fixed groove (21). The second spiral rod (33) is installed at the output end of the second power unit (34) and extends into the second guide rail (31). The front end face of the second sliding table (32) is provided with a threaded through hole (320) that penetrates the second sliding table (32). The second spiral rod (33) passes through the threaded through hole (320) and is threadedly connected to the threaded through hole (320).

5. The deformation detection device for gaskets according to claim 1, wherein: The first drive unit (4) includes a first guide rail (40), a first sliding table (41), a first screw rod (42), and a first power unit (43). The first guide rail (40) is installed on the upper end face of the fixed groove (21). The first sliding table (41) is slidably connected to the upper end face of the first guide rail (40). The first power unit (43) is installed on the upper end face of the fixed groove (21). The first screw rod (42) is installed at the output end of the first power unit (43) and extends into the first guide rail (40). The front end face of the first sliding table (41) is provided with a threaded through hole (410) that penetrates the first sliding table (41). The first screw rod (42) passes through the threaded through hole (410) and is threadedly connected to the threaded through hole (410).

6. The deformation detection device for gaskets according to claim 1, wherein: The front end face of the push plate (5) is provided with an arc-shaped recessed groove (50).