Positioning structure for amorphous iron core detection

By designing the positioning structure of the support components and positioning components in the amorphous iron core detection equipment, the position offset problem during amorphous iron core detection is solved, and the stable positioning of amorphous iron cores of different shapes is achieved, which improves the adaptability and accuracy of the detection equipment.

CN223130456UActive Publication Date: 2025-07-22GAOTUNE TECH CO LTD
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Patent Information

Application Number
CN202421842712.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-01
Publication Date
2025-07-22
Estimated Expiration
2034-08-01

AI Technical Summary

Technical Problem

Common amorphous iron core detection equipment lacks a positioning adjustment mechanism, which causes the amorphous iron core to be easily displaced during detection and cannot be positioned according to amorphous iron core of different shapes, affecting positioning adaptability.

Method used

A positioning structure including a support assembly and a positioning assembly is designed. By setting up a positioning adjustment mechanism, the fixing and positioning adjustment of the amorphous iron core is achieved by using supporting rods, rotary grooves, limiting grooves, fixing blocks, grip grooves and limiting rods.

Benefits of technology

It effectively prevents the amorphous iron core from displaced during detection, and can be positioned according to different shapes of amorphous iron cores, improving positioning adaptability and ensuring detection accuracy and finished product quality.

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Abstract

The utility model relates to the technical field of amorphous iron core detection equipment, in particular to a positioning structure for amorphous iron core detection. The technical problem is that common amorphous iron core detection equipment only comprises a detection structure and can detect an amorphous iron core, but a positioning adjusting mechanism is lacked, so that the amorphous iron core is easy to shift during detection, and the positioning adaptability is influenced. According to the technical scheme, the positioning structure for amorphous iron core detection comprises a supporting assembly. According to the utility model, the positioning adjusting mechanism is arranged to ensure that the amorphous iron core does not displace during detection and can be positioned according to the amorphous iron cores with different shapes, so as to solve the problems that common amorphous iron core detection equipment only comprises a detection structure and can detect the amorphous iron core, but is lack of the positioning adjusting mechanism, so that the detection efficiency is low. And the problem that the amorphous iron core is easy to deviate during detection and the positioning adaptability is influenced is solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of amorphous iron core detection equipment, in particular to a positioning structure for amorphous iron core detection. Background Art

[0002] An amorphous iron core is a machine part made of iron-based amorphous ribbon, with a crystallization temperature of 550 degrees, and has a very wide range of application fields, such as aviation transformers, railway control system transformers, mechanical part quenching equipment transformers, laser power supply transformers, etc.

[0003] Common amorphous iron core detection equipment only includes a detection structure, which can detect amorphous iron cores, but lacks a positioning and adjusting mechanism, cannot ensure that the amorphous iron core will not displace during detection, and cannot ensure positioning according to amorphous iron cores of different shapes, easily resulting in position deviation of the amorphous iron core during detection and affecting the positioning adaptability.

[0004] Therefore, aiming at the problem that the above amorphous iron core detection equipment lacks a positioning and adjusting mechanism, cannot ensure that the amorphous iron core will not displace during detection, and cannot ensure positioning according to amorphous iron cores of different shapes, it is urgently needed to be solved to improve the usage scenario of the amorphous iron core detection equipment. Summary of the Utility Model

[0005] In order to overcome the problems of common amorphous iron core detection equipment, which lacks a positioning and adjusting mechanism, cannot ensure that the amorphous iron core will not displace during detection, and cannot ensure positioning according to amorphous iron cores of different shapes, easily resulting in position deviation of the amorphous iron core during detection and affecting the positioning adaptability.

[0006] The technical solution of the utility model is: a positioning structure for amorphous iron core detection, including a support assembly, the support assembly consists of a workbench plate, support rods, rotation slots, limit slots, fixing blocks, grip slots and limit rods. Support rods are welded in a rectangle at the four corners of the bottom of the workbench plate. A rotation slot is opened at the top of the workbench plate. Limit slots are opened at the positions corresponding to the rotation slots on the side of the workbench plate. A positioning assembly is arranged on the top of the workbench plate. The positioning assembly consists of a connecting shaft, a rotating shaft, a connecting frame, limit holes, a grip, a positioning frame, positioning blocks, fixing bolts, positioning slots and detection slots. The connecting shaft is arranged inside the rotation slot.

[0007] Preferably, by setting up a positioning and adjusting mechanism, it is ensured that the amorphous iron core will not be displaced during detection, and it is possible to ensure positioning according to amorphous iron cores of different shapes, so as to solve the problem of common amorphous iron core detection equipment that only includes a detection structure and can detect the amorphous iron core, but lacks a positioning and adjusting mechanism, cannot ensure that the amorphous iron core will not be displaced during detection, and cannot ensure that it can be positioned according to amorphous iron cores of different shapes, and it is easy to have the problem that the position of the amorphous iron core is offset during detection, affecting the positioning adaptability.

[0008] Preferably, both ends of the connecting shaft are welded to the inner walls on both sides of the rotating slot. A rotating shaft is sleeved on the connecting shaft, and the rotating shaft rotates around the connecting shaft.

[0009] Preferably, a number of connecting frames are welded at equal intervals around the rotating shaft. A handle is welded to the side of the positioning frame, and a positioning frame is welded to the top of the connecting frame. When the position of the positioning block needs to be adjusted according to amorphous iron cores of different shapes, the operator pushes the connecting frame through the handle, thereby driving the rotating shaft to rotate.

[0010] Preferably, a positioning block is arranged on the top of the positioning frame. The positioning block is fixed to the positioning frame by fixing bolts. When installing the positioning block, place the positioning block on the top of the positioning frame and fix it with fixing bolts, which is convenient for replacing the positioning block. The positioning block is displaced when the rotating shaft rotates.

[0011] Preferably, a positioning groove is opened on the top of the positioning block, and a detection groove corresponding to the position of the positioning frame is opened inside the positioning groove. Place the amorphous iron core inside the positioning groove, and limit the position of the amorphous iron core through the positioning groove. The position of the amorphous iron core is fixed when the detection equipment performs detection, realizing the positioning function and preventing the problem that the position of the amorphous iron core is offset during detection, affecting the quality of the finished product.

[0012] Preferably, a fixing block is placed inside the limiting groove. A holding groove is opened on the side of the fixing block, and limiting rods are symmetrically welded on the other side of the fixing block. Before adjusting the position of the positioning block, pull out the fixing block and the limiting rods from the limiting holes and the limiting groove through the holding groove.

[0013] Preferably, a limiting hole is opened on the side of the connecting frame corresponding to the position of the limiting rod. One end of the limiting rod penetrates through the limiting groove and the limiting hole. After the position adjustment of the positioning block is completed, penetrate one end of the limiting rod through the limiting groove and the limiting hole to fix the position of the connecting frame, preventing the rotating shaft from rotating during detection, realizing the adjustment function, and preventing the problem that the amorphous iron core of different shapes cannot be positioned, affecting the positioning adaptability.

[0014] The beneficial effects of the present utility model:

[0015] By setting up a positioning and adjusting mechanism, it is ensured that the amorphous iron core will not be displaced during detection, and it is possible to ensure positioning according to amorphous iron cores of different shapes, so as to solve the problem of common amorphous iron core detection equipment that only includes a detection structure and can detect amorphous iron cores, but lacks a positioning and adjusting mechanism, cannot ensure that the amorphous iron core will not be displaced during detection, and cannot ensure that it can be positioned according to amorphous iron cores of different shapes, easily resulting in position deviation of the amorphous iron core during detection and affecting the positioning adaptability;

[0016] Place the amorphous iron core inside the positioning groove, and limit the position of the amorphous iron core through the positioning groove. When the detection equipment conducts detection, the position of the amorphous iron core is fixed, realizing the positioning function;

[0017] Before the position of the positioning block needs to be adjusted, the fixing block and the limiting rod are pulled out from the inside of the limiting hole and the limiting groove through the holding groove. The operator pushes the connecting frame through the handle, thereby driving the rotating shaft to rotate. The rotating shaft rotates around the connecting shaft. During the rotation of the rotating shaft, the positioning block is driven to displace. After the position adjustment of the positioning block is completed, one end of the limiting rod penetrates through the limiting groove and the limiting hole to fix the position of the connecting frame and prevent the rotating shaft from rotating during detection, realizing the adjustment function. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 Shown is a three-dimensional structural schematic diagram of a positioning structure for detecting an amorphous iron core of the present utility model;

[0019] Figure 2 Shown is a three-dimensional structural schematic diagram of a support assembly of a positioning structure for detecting an amorphous iron core of the present utility model;

[0020] Figure 3 Shown is a three-dimensional structural schematic diagram of a limiting rod of a positioning structure for detecting an amorphous iron core of the present utility model;

[0021] Figure 4 Shown is a three-dimensional structural schematic diagram of a positioning assembly of a positioning structure for detecting an amorphous iron core of the present utility model.

[0022] In the figure: 1, support assembly; 11, workbench board; 12, support rod; 13, rotating slot; 14, limiting slot; 15, fixing block; 16, holding groove; 17, limiting rod; 2, positioning assembly; 21, connecting shaft; 22, rotating shaft; 23, connecting frame; 231, limiting hole; 24, handle; 25, positioning frame; 26, positioning block; 27, fixing bolt; 28, positioning groove; 29, detection groove. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0023] The present utility model will be further described below with reference to the accompanying drawings and embodiments.

[0024] Please refer to Figures 1-4 , the present utility model provides an embodiment: a positioning structure for amorphous core detection, which includes a support assembly 1. The support assembly 1 is composed of a workbench plate 11, support rods 12, a rotation slot 13, a limit slot 14, a fixed block 15, a grip groove 16 and a limit rod 17. Support rods 12 are welded at the four corners of the bottom of the workbench plate 11 in a rectangular shape. A rotation slot 13 is opened at the top of the workbench plate 11. A limit slot 14 is opened at the side of the workbench plate 11 corresponding to the position of the rotation slot 13. A positioning assembly 2 is arranged at the top of the workbench plate 11. The positioning assembly 2 is composed of a connecting shaft 21, a rotating shaft 22, a connecting frame 23, a limit hole 231, a grip 24, a positioning frame 25, a positioning block 26, a fixing bolt 27, a positioning slot 28 and a detection slot 29. The connecting shaft 21 is arranged inside the rotation slot 13.

[0025] Please refer to Figures 1-4 , in this embodiment, both ends of the connecting shaft 21 are welded to the inner walls on both sides of the rotation slot 13. A rotating shaft 22 is sleeved on the connecting shaft 21. Before adjusting the position of the positioning block 26, the fixed block 15 and the limit rod 17 are pulled out from the inside of the limit hole 231 and the limit slot 14 through the grip groove 16. The operator pushes the connecting frame 23 through the grip 24, thereby driving the rotating shaft 22 to rotate. The rotating shaft 22 rotates around the connecting shaft 21. During the rotation of the rotating shaft 22, the positioning block 26 is driven to displace. After the position adjustment of the positioning block 26 is completed, one end of the limit rod 17 penetrates through the limit slot 14 and the limit hole 231 to fix the position of the connecting frame 23. Then the operator places the amorphous core inside the positioning slot 28, and the position of the amorphous core is limited through the positioning slot 28. The position of the amorphous core is fixed when the detection equipment conducts detection, and the positioning adjustment work is completed.

[0026] Please refer to Figures 1-4, in this embodiment, both ends of the connecting shaft 21 are welded to the inner walls on both sides of the rotating slot 13. A rotating shaft 22 is sleeved on the connecting shaft 21. A number of connecting frames 23 are welded at equal intervals around the rotating shaft 22. A handle 24 is welded to the side of the positioning frame 25. The top of the connecting frame 23 is welded with a positioning frame 25. A positioning block 26 is arranged at the top of the positioning frame 25. The positioning block 26 is fixed to the positioning frame 25 by a fixing bolt 27. A positioning slot 28 is opened at the top of the positioning block 26. A detection slot 29 is opened at the position corresponding to the positioning frame 25 inside the positioning slot 28. A fixing block 15 is placed inside the limiting slot 14. A holding groove 16 is opened on the side of the fixing block 15. Limiting rods 17 are symmetrically welded to the other side of the fixing block 15. Limiting holes 231 are opened at the positions corresponding to the limiting rods 17 on the side of the connecting frame 23. One end of the limiting rod 17 penetrates through the limiting slot 14 and the limiting hole 231. The amorphous iron core is placed inside the positioning slot 28. The position of the amorphous iron core is limited by the positioning slot 28. When the detection device performs detection, the position of the amorphous iron core is fixed, realizing the positioning function and preventing the problem that the position of the amorphous iron core shifts during detection, affecting the quality of the finished product. Before the position of the positioning block 26 needs to be adjusted, the fixing block 15 and the limiting rod 17 are pulled out from the inside of the limiting hole 231 and the limiting slot 14 through the holding groove 16. The operator pushes the connecting frame 23 through the handle 24, thereby driving the rotating shaft 22 to rotate. The rotating shaft 22 rotates around the connecting shaft 21. During the rotation of the rotating shaft 22, the positioning block 26 is driven to displace. After the position adjustment of the positioning block 26 is completed, one end of the limiting rod 17 penetrates through the limiting slot 14 and the limiting hole 231 to fix the position of the connecting frame 23, preventing the rotating shaft 22 from rotating during detection, realizing the adjustment function, and preventing the problem that the amorphous iron core of different shapes cannot be positioned, affecting the positioning adaptability.

[0027] When working, the operator pulls out the fixing block 15 and the limiting rod 17 from the inside of the limiting hole 231 and the limiting slot 14 through the holding groove 16, and then pushes the connecting frame 23 through the handle 24, thereby driving the rotating shaft 22 to rotate. The rotating shaft 22 rotates around the connecting shaft 21. During the rotation of the rotating shaft 22, the positioning block 26 is driven to displace until the positioning block 26 adapted to the shape of the amorphous iron core reaches the highest point and then stops rotating. After the position adjustment of the positioning block 26 is completed, one end of the limiting rod 17 penetrates through the limiting slot 14 and the limiting hole 231 to fix the position of the connecting frame 23, preventing the rotating shaft 22 from rotating during detection. The amorphous iron core is placed inside the positioning slot 28. The position of the amorphous iron core is limited by the positioning slot 28. When the detection device performs detection, the position of the amorphous iron core is fixed, realizing the positioning and adjustment function, and preventing the problem that the position of the amorphous iron core shifts during detection and the amorphous iron core of different shapes cannot be positioned, affecting the positioning adaptability.

[0028] Through the above steps, by setting the positioning and adjusting mechanism, it is ensured that the amorphous iron core will not be displaced during detection, and it is possible to ensure positioning according to amorphous iron cores of different shapes, so as to solve the problem of common amorphous iron core detection equipment, which only includes a detection structure and can detect the amorphous iron core, but lacks a positioning and adjusting mechanism, cannot ensure that the amorphous iron core will not be displaced during detection, and cannot ensure positioning according to amorphous iron cores of different shapes, easily resulting in position deviation of the amorphous iron core during detection and affecting the positioning adaptability.

[0029] The above has described in detail the embodiments of the present invention in conjunction with the accompanying drawings. However, the present invention is not limited to the above embodiments, and various changes can be made without departing from the gist of the present invention within the scope of knowledge possessed by those skilled in the art.

Claims

1. A positioning structure for amorphous iron core detection, comprising a support assembly (1), characterized in that: The support component (1) is composed of a workbench plate (11), support rods (12), a rotating slot (13), a limiting slot (14), a fixing block (15), a grip groove (16), and a limiting rod (17). Support rods (12) are welded in a rectangular shape at the four corners of the bottom of the workbench plate (11). A rotating slot (13) is opened at the top of the workbench plate (11). A limiting slot (14) is opened at the side of the workbench plate (11) corresponding to the position of the rotating slot (13). A positioning component (2) is arranged on the top of the workbench plate (11). The positioning component (2) is composed of a connecting shaft (21), a rotating shaft (22), a connecting frame (23), a limiting hole (231), a grip (24), a positioning frame (25), a positioning block (26), a fixing bolt (27), a positioning groove (28), and a detection groove (29). The connecting shaft (21) is arranged inside the rotating slot (13).

2. The positioning structure for amorphous iron core detection according to claim 1, wherein: Both ends of the connecting shaft (21) are welded to the inner walls on both sides of the rotating slot (13). A rotating shaft (22) is sleeved on the connecting shaft (21).

3. The positioning structure for amorphous iron core detection according to claim 1, characterized in that: A number of connecting frames (23) are welded at equal intervals around the rotating shaft (22). A grip (24) is welded to the side of the positioning frame (25). The positioning frame (25) is welded to the top of the connecting frame (23).

4. A positioning structure for amorphous iron core detection according to claim 3, characterized in that: A positioning block (26) is arranged on the top of the positioning frame (25). The positioning block (26) is fixed to the positioning frame (25) by a fixing bolt (27).

5. The positioning structure for amorphous iron core detection according to claim 4, characterized in that: A positioning groove (28) is opened at the top of the positioning block (26). A detection groove (29) is opened inside the positioning groove (28) corresponding to the position of the positioning frame (25).

6. The positioning structure for amorphous iron core detection according to claim 1, characterized in that: A fixing block (15) is placed inside the limiting slot (14). A grip groove (16) is opened on the side of the fixing block (15). Limiting rods (17) are symmetrically welded to the other side of the fixing block (15).

7. A positioning structure for amorphous iron core detection according to claim 5 or 6, characterized in that: A limiting hole (231) is opened at the side of the connecting frame (23) corresponding to the position of the limiting rod (17). One end of the limiting rod (17) penetrates through the limiting slot (14) and the limiting hole (231).