Rapid segment difference detection platform for complete machine performance of NB line body equipment
By automating the design of the adjustment and fixing mechanisms, the problems of traditional NB line inspection platforms being unable to be adjusted and requiring manual intervention are solved, achieving efficient and accurate inspection results.
Patent Information
- Application Number
- CN202520550256.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-03-27
AI Technical Summary
Traditional notebook computer (NB) line equipment's rapid step difference detection platform cannot adjust its height and position, requiring manual lighting and fixation, which affects detection efficiency and quality.
The system employs an adjustment and fixing mechanism, and achieves automatic adjustment of height and position through an electric slide and drive component. Combined with automatic lighting and automatic fixing, it improves detection accuracy and efficiency.
It achieves automated adjustment and fixation of NB line detection, improving detection accuracy and quality, and reducing the defects caused by manual intervention.
Smart Images

Figure CN223896803U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of NB cable production lines, and in particular to a rapid step difference detection platform for the overall performance of NB cable production lines. Background Technology
[0002] NB wires typically refer to wire or strip conductors made of niobium-based superconducting materials, used in applications such as superconducting magnets. After the NB wires are manufactured, they need to be fully tested, thus requiring a rapid step difference testing platform for the overall performance of NB wire equipment.
[0003] The current NB line equipment's overall performance rapid step difference testing platform has the following problems when used:
[0004] 1. Traditional NB line equipment performance rapid step difference detection platform cannot adjust the height of the detection device or adjust it left and right. It requires manual lighting at night to complete the NB line detection.
[0005] 2. Most NB cable equipment rapid step difference testing platforms require manual fixing of the NB cable by the operator, which affects testing efficiency. In addition, the operator's hand may shake during the placement of the NB cable, which inevitably leads to defects during testing. Utility Model Content
[0006] This utility model aims to at least partially solve one of the technical problems in the above-mentioned technologies.
[0007] Therefore, one objective of this utility model is to propose a rapid step difference detection platform for the overall performance of NB cable equipment. The platform can quickly detect NB cables by adjusting the mechanism according to different positions of the NB cable. It also provides lighting at night to improve the detection quality. In addition, the fixing mechanism automatically fixes the NB cable for easy detection.
[0008] To achieve the above objectives, this utility model provides the following technical solution: a rapid step difference detection platform for the overall performance of NB line equipment, including a detection platform shell, an adjustment mechanism provided on the upper surface of the detection platform shell, and a fixing mechanism provided inside the detection platform shell;
[0009] The adjustment mechanism includes a fixed plate, a lighting lamp, a first slide groove, a first electric slide table, a connecting plate, a second slide groove, a second electric slide table, a power source, and a detection head. The fixed plate is fixed to the upper surface of the outer shell of the detection platform. The lighting lamp is installed on the outer wall of the fixed plate. The first slide groove is formed on the outer wall of the fixed plate. The first electric slide table is installed inside the first slide groove. The connecting plate is fixed to the outer wall of the first electric slide table. The second slide groove is formed on the bottom wall of the connecting plate. The second electric slide table is installed inside the second slide groove. The power source is fixed to the bottom wall of the second electric slide table. The detection head is installed at the output end of the power source.
[0010] Preferably, the lighting lamps are symmetrically arranged along the central axis of the long side of the upper surface of the fixed plate, and the first slide groove and the first electric slide form a sliding structure.
[0011] Preferably, the second slide groove and the second electric slide form a sliding structure, and the second electric slide is distributed at equal intervals inside the second slide groove.
[0012] Preferably, the fixing mechanism includes a groove, a driving component, a threaded rod, a clamping plate, a cover plate, a fixing block, and a limiting rod. The upper surface of the detection platform shell has a groove, the driving component is installed inside the groove, the rotating shaft of the driving component is fixed with a threaded rod, the outer wall of the threaded rod is fixed with a clamping plate, the upper surface of the detection platform shell is installed with a cover plate, the inside of the groove is fixed with a fixing block, and the inside of the groove is installed with a limiting rod.
[0013] Preferably, the driving components are evenly distributed inside the groove, and the threaded rods are evenly distributed along the rotation axis of the driving components.
[0014] Preferably, the clamping plates are evenly distributed inside the groove, and the cover plates are evenly distributed on the upper surface of the detection platform housing.
[0015] Preferably, the fixing block and the limiting rod are installed inside the groove, and the limiting rod is evenly distributed inside the groove.
[0016] Compared with the prior art, the beneficial effects of this utility model are as follows: This NB cable equipment's rapid step difference detection platform, when adjusting the detection head, uses a first electric slide table to adjust up and down within a first groove on the outer wall of the fixed plate, driving the connecting plate to the optimal position. A light illuminates the clamped NB cable. Then, a second electric slide table adjusts back and forth within a second groove on the bottom wall of the connecting plate. The second electric slide table moves the power source above the NB cable, and simultaneously, the detection head aligns with the NB cable for detection. At this time, the power source drives the detection... The head retracts and extends, allowing the detection head to accurately inspect the details of the NB cable, thereby adjusting the detection head. In this embodiment, the power source is a cylinder. When it is necessary to fix the NB cable, the NB cable is placed above the fixing block, and the drive unit is activated. The drive unit in the groove drives the threaded rod to rotate. During the rotation of the threaded rod, the clamping plate is pressed inward. Then, the cover plate protects the drive unit and the threaded rod in the groove, while the limiting rod limits the clamping plate to prevent the clamping plate from shifting, thereby fixing the NB cable. In this embodiment, the drive unit is a motor. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall appearance and structure of the present utility model;
[0018] Figure 2 This is a schematic diagram of the structure of the lighting lamp and power source used in conjunction with this utility model;
[0019] Figure 3 This is a schematic diagram of the structure of the first electric slide table and the connecting plate of this utility model.
[0020] Figure 4 This is a schematic diagram of the structure of the drive component and the threaded rod used in conjunction with this utility model;
[0021] Figure 5 This is a schematic diagram of the structure of the fixing block and the limiting rod used in conjunction with this utility model.
[0022] In the diagram: 1. Detection platform shell; 2. Adjustment mechanism; 201. Fixing plate; 202. Lighting lamp; 203. First slide rail; 204. First electric slide table; 205. Connecting plate; 206. Second slide rail; 207. Second electric slide table; 208. Power source; 209. Detection head; 3. Fixing mechanism; 301. Groove; 302. Driving component; 303. Threaded rod; 304. Clamping plate; 305. Cover plate; 306. Fixing block; 307. Limiting rod. Detailed Implementation
[0023] 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.
[0024] Please see Figure 1-5 This utility model provides a technical solution: a rapid step difference detection platform for the overall performance of NB line equipment, including a detection platform shell 1, an adjustment mechanism 2 provided on the upper surface of the detection platform shell 1, and a fixing mechanism 3 provided inside the detection platform shell 1;
[0025] The adjustment mechanism 2 includes a fixed plate 201, a lighting lamp 202, a first slide 203, a first electric slide 204, a connecting plate 205, a second slide 206, a second electric slide 207, a power source 208, and a detection head 209. The fixed plate 201 is fixed to the upper surface of the outer shell 1 of the detection platform. The lighting lamp 202 is installed on the outer wall of the fixed plate 201. The first slide 203 is formed on the outer wall of the fixed plate 201. The first electric slide 204 is installed inside the first slide 203. The connecting plate 205 is fixed to the outer wall of the first electric slide 204. The second slide 206 is formed on the bottom wall of the connecting plate 205. The second electric slide 207 is installed inside the second slide 206. The power source 208 is fixed to the bottom wall of the second electric slide 207. The detection head 209 is installed at the output end of the power source 208. The detection head 209 is connected to the fixed plate 201, the lighting lamp 202, the first slide 203, the first electric slide 204, the connecting plate 205, the second slide 206, the second electric slide 207, the power source 208, and the detection head 209. The arrangement of the platform 204, connecting plate 205, second slide groove 206, second electric slide 207, power source 208, and detection head 209 allows for the following adjustments during use: First, the first electric slide 204 moves up and down within the first slide groove 203 on the outer wall of the fixed plate 201, adjusting the connecting plate 205 to its optimal position. The lighting lamp 202 illuminates the clamped NB cable. Then, the second electric slide 207 moves back and forth within the second slide groove 206 on the bottom wall of the connecting plate 205. The second electric slide 207 moves the power source 208 above the NB cable, simultaneously aligning the detection head 209 with the NB cable for detection. At this time, the power source 208 extends and retracts the detection head 209, enabling precise detection of the details of the NB cable, thus allowing for adjustment of the detection head 209. In this embodiment, the power source 208 is a cylinder.
[0026] Furthermore, the fixing mechanism 3 includes a groove 301, a driving component 302, a threaded rod 303, a clamping plate 304, a cover plate 305, a fixing block 306, and a limiting rod 307. A groove 301 is formed on the upper surface of the detection platform housing 1. The driving component 302 is installed inside the groove 301. The rotating shaft of the driving component 302 is fixed to the threaded rod 303. The clamping plate 304 is fixed to the outer wall of the threaded rod 303. The cover plate 305 is installed on the upper surface of the detection platform housing 1. The fixing block 306 is fixed inside the groove 301. The limiting rod 307 is installed inside the groove 301. Through the groove 301, the driving component 302, the threaded rod 303, and the limiting rod 307, the mechanism achieves its function. The clamping plate 304, cover plate 305, fixing block 306, and limiting rod 307 are configured so that, when it is necessary to fix the NB cable, the NB cable is placed above the fixing block 306, and the driving component 302 is activated. The driving component 302 in the groove 301 drives the threaded rod 303 to rotate. During the rotation, the threaded rod 303 drives the clamping plate 304 to press inward. Then, the cover plate 305 protects the driving component 302 and the threaded rod 303 in the groove 301, while the limiting rod 307 limits the clamping plate 304 to prevent it from shifting, thereby fixing the NB cable. In this embodiment of the utility model, the driving component 302 is a motor.
[0027] Furthermore, the lighting lamp 202 is symmetrically arranged with respect to the central axis of the long side of the upper surface of the fixing plate 201. The first slide groove 203 and the first electric slide table 204 form a sliding structure. Through the arrangement of the first electric slide table 204, the first electric slide table 204 can be adjusted up and down in the first slide groove 203 on the outer wall of the fixing plate 201, thereby driving the connecting plate 205 to be adjusted to the optimal position, and the lighting lamp 202 illuminates the NB cable being clamped.
[0028] Furthermore, the second slide groove 206 and the second electric slide table 207 form a sliding structure. The second electric slide table 207 is evenly distributed inside the second slide groove 206. Through the setting of the second electric slide table 207, the second electric slide table 207 can be adjusted back and forth in the second slide groove 206 opened on the bottom wall of the connecting plate 205. The second electric slide table 207 drives the power source 208 to move above the NB line. The detection head 209 is aligned with the NB line for detection. The power source 208 drives the detection head 209 to extend and retract, so that the detection head 209 can accurately detect the details of the NB line.
[0029] Furthermore, the drive members 302 are evenly distributed inside the groove 301, and the threaded rods 303 are evenly distributed on the rotation axis of the drive members 302. Through the arrangement of the drive members 302, the drive members 302 in the groove 301 drive the threaded rods 303 to rotate.
[0030] Furthermore, the clamping plates 304 are evenly distributed inside the groove 301, and the cover plates 305 are evenly distributed on the upper surface of the detection platform housing 1. Through the setting of the clamping plates 304, the threaded rod 303 drives the clamping plates 304 to press inward during rotation, and the cover plates 305 protect the driving component 302 and the threaded rod 303 inside the groove 301.
[0031] Furthermore, the fixing block 306 and the limiting rod 307 are installed inside the groove 301. The limiting rod 307 is evenly distributed inside the groove 301. Through the setting of the limiting rod 307, the limiting rod 307 limits the clamping plate 304 to prevent the clamping plate 304 from shifting.
[0032] Working principle: Firstly, during use, when adjusting the detection head 209, the first electric slide 204 moves up and down within the first groove 203 on the outer wall of the fixed plate 201, driving the connecting plate 205 to the optimal position. The illumination lamp 202 illuminates the clamped NB cable. Then, the second electric slide 207 moves back and forth within the second groove 206 on the bottom wall of the connecting plate 205. The second electric slide 207 drives the power source 208 to move above the NB cable, simultaneously aligning the detection head 209 with the NB cable for detection. At this time, the power source 208 causes the detection head 209 to extend and retract, allowing the detection head 209 to examine the details of the NB cable. Precise detection is performed to adjust the detection head 209. In this embodiment, the power source 208 is a cylinder. When it is necessary to fix the NB cable, the NB cable is placed above the fixing block 306, and the driving component 302 is activated. The driving component 302 in the groove 301 drives the threaded rod 303 to rotate. During the rotation, the threaded rod 303 drives the clamping plate 304 to press inward. Then, the cover plate 305 protects the driving component 302 and the threaded rod 303 in the groove 301, while the limiting rod 307 limits the clamping plate 304 to prevent it from shifting, thereby fixing the NB cable. In this embodiment, the driving component 302 is a motor.
[0033] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A rapid step difference detection platform for the overall performance of NB production line equipment, comprising a detection platform shell (1), characterized in that: An adjustment mechanism (2) is provided on the upper surface of the outer shell (1) of the detection platform, and a fixing mechanism (3) is provided inside the outer shell (1) of the detection platform. The adjustment mechanism (2) includes a fixed plate (201), a lighting lamp (202), a first slide rail (203), a first electric slide table (204), a connecting plate (205), a second slide rail (206), a second electric slide table (207), a power source (208), and a detection head (209). The fixed plate (201) is fixed on the upper surface of the outer shell (1) of the detection platform. The lighting lamp (202) is installed on the outer wall of the fixed plate (201). The first slide rail is provided on the outer wall of the fixed plate (201). The groove (203) has a first electric slide (204) installed inside it. A connecting plate (205) is fixed to the outer wall of the first electric slide (204). A second slide (206) is opened on the bottom wall of the connecting plate (205). A second electric slide (207) is installed inside the second slide (206). A power source (208) is fixed to the bottom wall of the second electric slide (207). A detection head (209) is installed at the output end of the power source (208).
2. The rapid step difference detection platform for the overall performance of NB production line equipment according to claim 1, characterized in that: The lighting lamp (202) is symmetrically arranged with respect to the central axis of the long side of the upper surface of the fixed plate (201), and the first slide groove (203) and the first electric slide (204) form a sliding structure.
3. The rapid step difference detection platform for the overall performance of NB production line equipment according to claim 1, characterized in that: The second slide groove (206) and the second electric slide table (207) form a sliding structure, and the second electric slide table (207) is distributed at equal intervals inside the second slide groove (206).
4. The rapid step difference detection platform for the overall performance of NB production line equipment according to claim 1, characterized in that: The fixing mechanism (3) includes a groove (301), a driving component (302), a threaded rod (303), a clamping plate (304), a cover plate (305), a fixing block (306), and a limiting rod (307). The upper surface of the detection platform shell (1) is provided with a groove (301). The driving component (302) is installed inside the groove (301). The rotating shaft of the driving component (302) is fixed with a threaded rod (303). The outer wall of the threaded rod (303) is fixed with a clamping plate (304). The upper surface of the detection platform shell (1) is provided with a cover plate (305). The inside of the groove (301) is fixed with a fixing block (306). The inside of the groove (301) is provided with a limiting rod (307).
5. The rapid step difference detection platform for the overall performance of NB production line equipment according to claim 4, characterized in that: The driving components (302) are evenly distributed inside the groove (301), and the threaded rods (303) are evenly distributed along the rotation axis of the driving components (302).
6. The rapid step difference detection platform for the overall performance of NB production line equipment according to claim 4, characterized in that: The clamping plates (304) are evenly distributed inside the groove (301), and the cover plates (305) are evenly distributed on the upper surface of the outer shell (1) of the detection platform.
7. The rapid step difference detection platform for the overall performance of NB production line equipment according to claim 4, characterized in that: The fixing block (306) and the limiting rod (307) are installed inside the groove (301), and the limiting rod (307) is evenly distributed inside the groove (301).