An automatic magnetic flux detection device
Patent Information
- Application Number
- CN202521978359.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-15
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2035-09-15
AI Technical Summary
而现有的磁通检测装置通常经过人工手动上下料,导致工作效率低下,而且增加工作强度
[0014]通过将若干个首尾连接的磁铁置于下料件内,最底部的磁铁进入圆盘上与下料件相对应的通槽内,再通过第一气缸推动连接座向前移动,进而带动连接条以转动轴为轴转动,从而带动辅助推块推动传动盘转动90°,使得装有磁铁的通槽移动到监测探头的正下方,通过监测探头对其进行检测,并在检测结束后通过第二气缸推动监测探头和电磁块向下移动,经过电磁块对磁铁进行吸附,再经过电动滑轨调动滑动座等结构移动,并根据磁铁的合格情况将其放在下料板上的合格或者不良区域,再导入收集通道内进行收集,再通过第一气缸带动连接座收缩,使得辅助推块与下一个弧形槽相卡合,再重复上述操作,从而实现对磁铁的自动上料、检测以及下料等操作,进而提高工作效率。
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Figure CN224708205U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of magnetic flux detection, specifically an automatic magnetic flux full inspection device. Background Technology
[0002] Magnetic flux detection determines the magnitude of magnetic flux by measuring the number of magnetic flux lines passing through a coil in a magnetic field. In practical applications, magnetic flux sensors or magnetometers are typically used to measure magnetic flux. However, existing magnetic flux detection devices often rely on manual loading and unloading, resulting in low work efficiency and increased workload.
[0003] To address the aforementioned issues, an automated magnetic flux inspection device is proposed. Utility Model Content
[0004] The purpose of this invention is to provide an automatic magnetic flux full inspection device to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: an automatic magnetic flux inspection device, comprising a base, a rotating shaft rotatably disposed at the center of the top of the base, a disc fixedly disposed at the top of the rotating shaft, a transmission disc fixedly disposed at the top of the surface of the rotating shaft, four arc-shaped grooves formed on the surface of the transmission disc, a connecting strip rotatably disposed at the bottom of the surface of the rotating shaft, a first rotating rod fixedly disposed at the center of the top of the connecting strip, an auxiliary push block rotatably disposed on the surface of the first rotating rod, a first cylinder rotatably disposed on one side of the top of the base, a connecting seat fixedly connected to the movable end of the first cylinder, a second rotating rod fixedly disposed at the center of the connecting seat, the second rotating rod rotatably connected to the connecting strip, four through grooves formed on the outer side of the top of the disc, several pillars fixedly disposed on the outer side of the top of the base, an arc-shaped component fixedly disposed at the top between the several pillars, a fixed seat and a feeding component disposed on one side of the top of the arc-shaped component, and feeding holes formed at the connection between the arc-shaped component and the feeding component.
[0006] By placing several magnets connected end-to-end inside the unloading part, the bottom magnet enters the corresponding slot on the disc. Then, the first cylinder pushes the connecting seat forward, causing the connecting strip to rotate around the rotating shaft. This causes the auxiliary pusher to rotate the transmission disc 90°, moving the slot containing the magnet directly below the monitoring probe. The monitoring probe detects the magnet, and after detection, the second cylinder pushes the monitoring probe and electromagnetic block downward. The electromagnetic block attracts the magnet, and the electric slide rail moves the sliding seat and other structures to place it in the qualified or defective area on the unloading plate according to its condition. The magnet is then guided into the collection channel for collection. The first cylinder then retracts the connecting seat, causing the auxiliary pusher to engage with the next arc-shaped slot. This process is repeated to achieve automatic feeding, detection, and unloading of magnets, thereby improving work efficiency.
[0007] Preferably, a mounting base is fixedly provided on one side of the base, an electric slide rail is fixedly installed on the top of one side of the mounting base, a sliding seat is slidably provided on the surface of the electric slide rail, a second cylinder is fixedly installed on the outer side of the sliding seat, a monitoring probe is fixedly installed on the movable end of the second cylinder, and an electromagnetic block is fixedly installed on the bottom of the surface of the monitoring probe. The setting of the monitoring probe facilitates the inspection of the magnet.
[0008] Preferably, a feeding plate is fixedly provided on the bottom of one side of the mounting base, and two collection channels are fixedly provided on the side of the feeding plate away from the mounting base. The feeding plate facilitates the conduction of magnets.
[0009] Preferably, a control panel is fixedly installed on the side of the mounting base away from the electric slide rail, and the coordinated operation of each mechanism is controlled through the control panel.
[0010] Preferably, all four through slots are provided corresponding to the discharge holes, which facilitates the introduction of magnets into the through slots.
[0011] Preferably, all four arc-shaped grooves are correspondingly arranged with the auxiliary push block, and the arrangement of the four arc-shaped grooves facilitates the auxiliary push block to drive the transmission disk to rotate.
[0012] Preferably, the arc-shaped component is arranged correspondingly to the disc, and the arrangement of the arc-shaped component facilitates the installation of structures such as the blanking component.
[0013] Compared with the prior art, the beneficial effects of this utility model are:
[0014] By placing several magnets connected end-to-end inside the unloading part, the bottom magnet enters the corresponding slot on the disc. Then, the first cylinder pushes the connecting seat forward, causing the connecting strip to rotate around the rotating shaft. This causes the auxiliary pusher to rotate the transmission disc 90°, moving the slot containing the magnet directly below the monitoring probe. The monitoring probe detects the magnet, and after detection, the second cylinder pushes the monitoring probe and electromagnetic block downward. The electromagnetic block attracts the magnet, and the electric slide rail moves the sliding seat and other structures to place it in the qualified or defective area on the unloading plate according to its condition. The magnet is then guided into the collection channel for collection. The first cylinder then retracts the connecting seat, causing the auxiliary pusher to engage with the next arc-shaped slot. This process is repeated to achieve automatic feeding, detection, and unloading of magnets, thereby improving work efficiency. Attached Figure Description
[0015] Figure 1 This is a perspective view of the present utility model;
[0016] Figure 2 This is a partial front sectional view of the present invention;
[0017] Figure 3 This is a partial top view of the present invention;
[0018] Figure 4 This is a partial side sectional view of the present invention.
[0019] In the diagram: 1. Base; 2. Disc; 3. Through groove; 4. Support column; 5. Arc-shaped component; 6. Fixed seat; 7. Feeding component; 8. Feeding hole; 9. First cylinder; 10. Mounting seat; 11. Control panel; 12. Electric slide rail; 13. Sliding seat; 14. Rotating shaft; 15. Transmission disc; 16. Connecting bar; 17. Auxiliary push block; 18. Connecting seat; 19. Arc-shaped groove; 20. First rotating rod; 21. Second rotating rod; 22. Second cylinder; 23. Monitoring probe; 24. Electromagnetic block; 25. Feeding plate; 26. Collection channel. Detailed Implementation
[0020] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.
[0021] Please see Figure 1-4This utility model provides an automatic magnetic flux inspection device, including a base 1, a rotating shaft 14 rotatably mounted at the center of the top of the base 1, a disc 2 fixedly mounted at the top of the rotating shaft 14, a transmission disc 15 fixedly mounted on the top surface of the rotating shaft 14, four arc-shaped grooves 19 formed on the surface of the transmission disc 15, a connecting strip 16 rotatably mounted at the bottom surface of the rotating shaft 14, a first rotating rod 20 fixedly mounted at the center of the top of the connecting strip 16, and an auxiliary push block 17 rotatably mounted on the surface of the first rotating rod 20. A first cylinder 9 is rotatably mounted on one side. A connecting seat 18 is fixedly connected to the movable end of the first cylinder 9. A second rotating rod 21 is fixedly mounted in the middle of the connecting seat 18. The second rotating rod 21 is rotatably connected to the connecting strip 16. Four through slots 3 are opened on the outer side of the top of the disc 2. Several pillars 4 are fixedly mounted on the outer side of the top of the base 1. An arc-shaped component 5 is fixedly mounted on the top between the pillars 4. A fixed seat 6 and a feeding component 7 are provided on one side of the top of the arc-shaped component 5. Feeding holes 8 are opened at the connection between the arc-shaped component 5 and the feeding component 7. By placing several magnets connected end to end into the unloading part 7, the bottom magnet enters the through slot 3 on the disc 2 corresponding to the unloading part 7. Then, the first cylinder 9 pushes the connecting seat 18 forward, which in turn drives the connecting bar 16 to rotate around the rotating shaft 14. This drives the auxiliary push block 17 to push the transmission disc 15 to rotate 90°, so that the through slot 3 containing the magnet moves directly below the monitoring probe 23. The monitoring probe 23 detects the magnet. After the detection, the second cylinder 22 pushes the monitoring probe 23 and the electromagnetic block 24 downward. The electromagnetic block 24 attracts the magnet, and the electric slide rail 12 moves the sliding seat 13 and other structures. Based on the magnet's quality, it is placed in the qualified or defective area on the unloading plate 25 and then guided into the collection channel 26 for collection. The first cylinder 9 then drives the connecting seat 18 to retract, so that the auxiliary push block 17 engages with the next arc-shaped slot 19. The above operation is repeated to realize the automatic feeding, detection, and unloading of magnets, thereby improving work efficiency.
[0022] A mounting base 10 is fixedly installed on one side of the base 1. An electric slide rail 12 is fixedly installed on the top of one side of the mounting base 10. A sliding seat 13 is slidably installed on the surface of the electric slide rail 12. A second cylinder 22 is fixedly installed on the outside of the sliding seat 13. A monitoring probe 23 is fixedly installed on the movable end of the second cylinder 22. An electromagnetic block 24 is fixedly installed on the bottom of the surface of the monitoring probe 23. A feeding plate 25 is fixedly installed on the bottom of one side of the mounting base 10. Two collection channels 26 are fixedly installed on the side of the feeding plate 25 away from the mounting base 10. A control panel 11 is fixedly installed on the side of the mounting base 10 away from the electric slide rail 12.
[0023] In use, the setting of the monitoring probe 23 facilitates the inspection of the magnet, the setting of the feeding plate 25 facilitates the conduction of the magnet, and the control panel 11 controls the coordinated operation of each mechanism.
[0024] The four through slots 3 are all set to correspond to the material discharge holes 8, the four arc-shaped slots 19 are all set to correspond to the auxiliary push blocks 17, and the arc-shaped parts 5 are set to correspond to the discs 2.
[0025] In use, the setting of the feeding hole 8 makes it easy to guide the magnet into the through groove 3, the setting of the four arc grooves 19 makes it easy to assist the push block 17 to drive the transmission disk 15 to rotate, and the setting of the arc part 5 makes it easy to install the feeding part 7 and other structures.
[0026] In this embodiment, the following steps are taken: several magnets connected end-to-end are placed in the unloading component 7, with the bottom magnet entering the through slot 3 on the disc 2 corresponding to the unloading component 7. The first cylinder 9 pushes the connecting seat 18 forward, which in turn drives the connecting bar 16 to rotate around the rotating shaft 14. This drives the auxiliary pusher 17 to push the transmission disc 15 to rotate 90°, so that the through slot 3 containing the magnets moves directly below the monitoring probe 23. The monitoring probe 23 detects the magnets, and after detection, the second cylinder 22 pushes the monitoring probe 23 and the electromagnetic block 24 downward. The electromagnetic block 24 attracts the magnets, and the electric slide rail 12 moves the sliding seat 13 and other structures. Based on the magnets' quality, they are placed in the qualified or defective area on the unloading plate 25 and then collected in the collection channel 26. The first cylinder 9 then drives the connecting seat 18 to retract, causing the auxiliary pusher 17 to engage with the next arc-shaped slot 19. The above operation is repeated to achieve automatic feeding, detection, and unloading of magnets, thereby improving work efficiency.
[0027] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. An automatic magnetic flux detection device, comprising a base (1), characterized in that: A rotating shaft (14) is rotatably mounted at the center of the top of the base (1). A disc (2) is fixedly mounted at the top of the rotating shaft (14). A transmission disc (15) is fixedly mounted on the top surface of the rotating shaft (14). Four arc-shaped grooves (19) are opened on the surface of the transmission disc (15). A connecting strip (16) is rotatably mounted at the bottom of the surface of the rotating shaft (14). A first rotating rod (20) is fixedly mounted at the center of the top of the connecting strip (16). An auxiliary push block (17) is rotatably mounted on the surface of the first rotating rod (20). A first cylinder (9) is rotatably mounted on one side of the top of the base (1). The movable end of the first cylinder (9) is fixedly connected to a connecting seat (18). A second rotating rod (21) is fixedly installed in the middle of the connecting seat (18). The second rotating rod (21) is rotatably connected to the connecting strip (16). Four through slots (3) are opened on the outer side of the top of the disc (2). Several pillars (4) are fixedly installed on the outer side of the top of the base (1). An arc-shaped part (5) is fixedly installed on the top between the several pillars (4). A fixed seat (6) and a feeding part (7) are provided on one side of the top of the arc-shaped part (5). A feeding hole (8) is opened at the connection between the arc-shaped part (5) and the feeding part (7).
2. The automatic magnetic flux detection device according to claim 1, characterized in that: A mounting base (10) is fixedly provided on one side of the base (1). An electric slide rail (12) is fixedly installed on the top of one side of the mounting base (10). A sliding seat (13) is slidably provided on the surface of the electric slide rail (12). A second cylinder (22) is fixedly installed on the outside of the sliding seat (13). A monitoring probe (23) is fixedly installed on the movable end of the second cylinder (22). An electromagnetic block (24) is fixedly installed on the bottom of the surface of the monitoring probe (23).
3. The automatic magnetic flux detection device according to claim 2, characterized in that: A feeding plate (25) is fixedly provided on the bottom of one side of the mounting base (10), and two collection channels (26) are fixedly provided on the side of the feeding plate (25) away from the mounting base (10).
4. The automatic magnetic flux detection device according to claim 2, characterized in that: The control panel (11) is fixedly installed on the side of the mounting base (10) away from the electric slide rail (12).
5. The automatic magnetic flux detection device according to claim 1, characterized in that: All four through slots (3) are provided corresponding to the discharge holes (8).
6. The automatic magnetic flux detection device according to claim 1, characterized in that: The four arc-shaped grooves (19) are all set in correspondence with the auxiliary push block (17).
7. The automatic magnetic flux detection device according to claim 1, characterized in that: The arc-shaped component (5) is arranged correspondingly to the disc (2).