Rapid automatic magnetic flux detection equipment

By designing fast and automatic magnetic flux detection equipment, using material stripping mechanism, moving components and assembly mechanism to automatically process magnetic steel, the problem of low manual detection efficiency is solved and efficient magnetic steel detection and assembly is achieved.

CN222866853UActive Publication Date: 2025-05-13HANGZHOU MAGMAX TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421378524.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-17
Publication Date
2025-05-13
Estimated Expiration
2034-06-17

AI Technical Summary

Technical Problem

In the prior art, the magnetic steel in the product is manually peeled off and the detection efficiency is low, which affects the overall product detection efficiency.

Method used

A fast and automatic magnetic flux detection device is designed, using a material stripping mechanism to automatically separate the magnetic steel, and the moving components move the magnetic steel to the detector for detection, and the magnetic steel that is automatically stacked through the assembly mechanism.

Benefits of technology

Through automated separation, detection and assembly of magnets, the overall inspection efficiency of the product is significantly improved and the time and energy of manual operation are reduced.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222866853U_ABST
    Figure CN222866853U_ABST
Patent Text Reader

Abstract

The utility model discloses rapid automatic magnetic flux detection equipment, and relates to the technical field of magnetic flux detection equipment, the rapid automatic magnetic flux detection equipment comprises a detection table, and the detection table is connected with a stripping mechanism used for separating two adjacent magnetic steels, a detector, a vibration disc and two assembling mechanisms; the detection table is connected with a moving assembly used for moving the magnetic steel on the stripping mechanism to the detector and the assembling mechanism, and the detection table is connected with a feeding assembly used for moving the gasket on the vibration disc to the assembling mechanism. According to the invention, automatic magnetic steel separation, magnetic steel detection and magnetic steel assembly are adopted, and the overall detection efficiency of the product is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the technical field of magnetic flux detection equipment, and in particular to a fast automatic magnetic flux detection equipment. Background Art

[0002] The product is composed of several magnets and several gaskets. There is a gasket between two adjacent magnets. The function of the gasket is to facilitate the separation of two adjacent magnets. When there is a problem with the product, the magnetic flux needs to be tested, so the product needs to be peeled off and the magnets need to be tested one by one.

[0003] At present, the magnetic steel in the product is manually stripped out, and then each magnetic steel is tested by a detector. The intact magnetic steel is grouped together, and the damaged magnetic steel is grouped together. A gasket is also placed between each group of adjacent magnetic steels. The efficiency of manual material selection and collection is slow, which affects the overall inspection efficiency of the product and needs to be improved. Utility Model Content

[0004] The purpose of this application is to provide a fast automatic magnetic flux detection device in order to improve the overall detection efficiency of the product.

[0005] A fast automatic magnetic flux detection device provided in the present application adopts the following technical solution: it includes a detection table, the detection table is connected to a stripping mechanism for separating two adjacent magnetic steels, a detector, a vibration plate and two assembly mechanisms, the detection table is connected to a moving component for moving the magnetic steel on the stripping mechanism to the detector or the assembly mechanism, and the detection table is connected to a feeding component for moving the gasket on the vibration plate to the assembly mechanism.

[0006] By adopting the above technical solution, the stripping mechanism separates the magnetic steel in the product, and the moving component drives the magnetic steel separated from the stripping mechanism to move to the detector. The detector detects whether the magnetic steel is damaged. When the magnetic steel is intact, the moving component drives the intact magnetic steel to move to one of the assembly mechanisms; when the magnetic steel is damaged, the moving component drives the damaged magnetic steel to move to another assembly mechanism. When there is a magnetic steel on the assembly mechanism, the feeding component moves the gasket on the vibration plate to the top of the magnetic steel on the assembly mechanism, and the assembly mechanism places the magnetic steel that has been tested on the gasket, and stacks it in sequence, which is convenient for assembling intact and damaged magnetic steel. The use of automated separation of magnetic steel, detection of magnetic steel and assembly of magnetic steel improves the overall inspection efficiency of the product.

[0007] Optionally, the stripping mechanism includes a mounting column connected to the detection platform, the mounting column is provided with a mounting hole for the product to pass through, the detection platform is provided with a discharge hole corresponding to the mounting hole, the mounting column is provided with a connecting hole connected to the mounting hole, the detection platform is slidably connected with a push plate, a baffle plate and an abutment plate, the push plate is located between the baffle plate and the abutment plate, and the detection platform is connected with a first driving member for driving the push plate to slide in a direction close to or away from the connecting hole, a second driving member for driving the abutment plate to slide in a direction close to or away from the mounting column, and a third driving member for driving the baffle plate to slide in a direction close to or away from the mounting column.

[0008] By adopting the above technical solution, the product is placed in the mounting hole, and the baffle plays a supporting role for the product. The second driving member drives the abutment plate to slide in the direction close to the mounting column, and the gasket closest to the baffle is clamped by the abutment plate and the inner wall of the mounting hole. The first driving member drives the push plate to slide in the direction close to the connecting hole. The push plate abuts against the magnetic steel closest to the baffle and drives the magnetic steel to pass through the connecting hole, so that the two adjacent magnetic steels are separated, which is convenient for the assembly to drive the separated magnetic steel to move to the detector for detection. The first driving member drives the push plate to reset, and the second driving member drives the abutment plate to slide in the direction away from the mounting column, so that the abutment plate releases the gasket, so that the gasket and the several magnetic steels and several gaskets above it move in the direction close to the baffle under the influence of gravity, and the gasket closest to the baffle abuts against the baffle. The second driving member drives the abutment plate to slide in the direction close to the mounting column, so that the magnetic steel closest to the baffle is abutted by the abutment plate and the inner wall of the mounting hole. The third driving member drives the baffle plate to slide in the direction away from the mounting column, so that the baffle plate is separated from the mounting hole, and the gasket closest to the baffle plate is discharged from the discharge hole under the influence of gravity. The third driving member drives the baffle plate to reset, so that the baffle plate supports the magnetic steel again. The above method is adopted to facilitate the separation of two adjacent magnetic steels, thereby improving the efficiency of the separation of two adjacent magnetic steels.

[0009] Optionally, the detection platform is connected to a positioning plate for abutting against the magnetic steel, and the mounting column is located between the positioning plate and the first driving member.

[0010] By adopting the above technical solution, after the push plate drives the magnet to disengage from the connecting hole, the magnet abuts against the positioning plate, and the positioning plate positions the moving position of the magnet, making it easier for the moving component to drive the magnet to move.

[0011] Optionally, the detection platform is connected to two first limit plates, the push plate slides between the two first limit plates, and the two first limit plates are located between the positioning plate and the mounting column.

[0012] By adopting the above technical solution, the magnetic steel slides between the two first limiting plates, and the two first limiting plates play a guiding and limiting role in the sliding of the magnetic steel, thereby improving the sliding stability of the magnetic steel.

[0013] Optionally, the detection platform is connected to a second limit plate, the second limit plate is located between two first limit plates, the two first limit plates are located between the second limit plate and the detection platform, and the second limit plate is located between the positioning plate and the mounting column.

[0014] By adopting the above technical solution, the second limiting plate limits the sliding of the magnetic steel, thereby preventing the magnetic steel from falling out of between the two first limiting plates during the sliding process.

[0015] Optionally, the moving component includes a sliding plate slidably connected to the detection platform and a fourth driving member for driving the sliding plate to slide toward or away from the detection instrument, the fourth driving member is connected to the detection platform, the sliding plate is slidably connected to a connecting plate, the sliding plate is connected to a fifth driving member for driving the connecting plate to slide toward or away from the detection platform, and the connecting plate is connected to a suction rod.

[0016] By adopting the above technical solution, after the suction rod absorbs the magnetic steel, the fifth driving member drives the connecting plate to slide in the direction away from the detection platform, so that the magnetic steel is separated from the detection platform, the fourth driving member drives the sliding plate in the direction close to the detector, so that the sucked magnetic steel is located above the detector, and the fifth driving member drives the connecting plate to slide in the direction close to the detector, so that the magnetic steel is located in the detector, which is convenient for the detector to detect the magnetic steel. The detected magnetic steel is moved to the corresponding assembly mechanism through the fourth driving member and the fifth driving member, which is convenient for classifying intact and damaged magnetic steel.

[0017] Optionally, the assembly mechanism includes a transfer plate slidably connected to the detection platform and a sixth driving member for driving the transfer plate to slide in a direction close to or away from the vibration disk, the sixth driving member is connected to the detection platform, the transfer plate is provided with a clearance hole for the magnetic steel to pass through, the transfer plate is slidably connected to a supporting plate for covering the clearance hole, the supporting plate is located between the transfer plate and the detection platform, the transfer plate is connected to a seventh driving member for driving the supporting plate to slide in a direction close to or away from the clearance hole; the detection platform is slidably connected to a lifting plate, and the detection platform is connected to an eighth driving member for driving the lifting plate to slide in a direction close to or away from the transfer plate.

[0018] By adopting the above technical solution, the detected magnetic steel is placed in the corresponding clearance hole, and the support plate supports the magnetic steel. The sixth driving member drives the transfer plate to slide in the direction close to the lifting plate, so that the lifting plate corresponds to the clearance hole. The seventh driving member drives the support plate to slide in the direction away from the clearance hole, so that the support plate is separated from the clearance hole, and the magnetic steel falls on the lifting plate under the influence of gravity. The eighth driving member drives the lifting plate to slide in the direction away from the transfer plate, so that the lifting plate descends, providing space for the feeding assembly to move the gasket to the top of the magnetic steel, thereby facilitating the stacking of the magnetic steel.

[0019] Optionally, the transfer plate is slidably connected to a cover plate for covering the clearance hole, and the transfer plate is connected to a ninth driving member for driving the cover plate to slide toward or away from the clearance hole, and the clearance hole is located between the cover plate and the supporting plate.

[0020] By adopting the above technical solution, when the magnet is inserted into the clearance hole, the cover plate covers the clearance hole to prevent the magnet in the clearance hole from escaping from the clearance hole during movement, thereby improving the sliding stability of the magnet.

[0021] Optionally, the lifting plate is connected to a magnetic plate for abutting against the magnetic steel.

[0022] By adopting the above technical solution, after the first magnet falls on the lifting plate, the magnet abuts against the magnetic plate, and the magnetic plate and the magnet are magnetically attracted to improve the stability of the lifting plate placed on the lifting plate.

[0023] Optionally, the feeding assembly includes a feeding plate slidably connected to the detection platform and a tenth driving member for driving the feeding plate to slide toward or away from the lifting plate, and the tenth driving member is connected to the detection platform.

[0024] By adopting the above technical solution, when the vibration plate moves the gasket between the lifting plate and the feeding plate, the tenth driving member drives the feeding plate to slide toward the lifting plate, the feeding plate abuts against the gasket and drives the gasket to fall above the magnet, so that the gasket separates the two magnets.

[0025] In summary, the present application includes at least one of the following beneficial technical effects:

[0026] 1. The use of automated separation, detection and assembly of magnetic steel improves the overall inspection efficiency of the product.

[0027] 2. The magnetic steel slides between the two first limit plates, and the two first limit plates guide and limit the sliding of the magnetic steel, thereby improving the sliding stability of the magnetic steel. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1It is one of the overall structural schematic diagrams of the embodiment of the present application, showing a detector.

[0029] Figure 2 It is a partial structural diagram of an embodiment of the present application.

[0030] Figure 3 yes Figure 2 One of the cross-sectional views shows the mounting holes.

[0031] Figure 4 yes Figure 3 A magnified image of area A.

[0032] Figure 5 yes Figure 2 A second cross-sectional view shows the abutment plate.

[0033] Figure 6 yes Figure 5 Magnified view of area B.

[0034] Figure 7 This is the second schematic diagram of the overall structure of the embodiment of the present application, showing the moving components.

[0035] Figure 8 yes Figure 7 Magnified view of region C.

[0036] Fig. 9 It is one of the overall structural sectional views of an embodiment of the present application, showing a feed plate.

[0037] Fig.10 yes Fig. 9 Magnified view of area D.

[0038] Fig.11 This is the second overall structural cross-sectional view of an embodiment of the present application, showing a lifting plate.

[0039] Fig.12 yes Fig.11 Magnified view of area E.

[0040] Description of the accompanying drawings: 1. Testing platform; 11. Discharging hole; 12. Positioning plate; 13. First limiting plate; 14. Second limiting plate; 2. Stripping mechanism; 21. Mounting column; 211. Mounting hole; 212. Connecting hole; 22. Push plate; 23. First driving member; 24. Abutting plate; 25. Baffle; 26. Second driving member; 27. Third driving member; 3. Detector; 4. Vibrating plate; 5. Assembly mechanism; 51. Transfer plate; 511, clearance hole; 52, sixth driving member; 53, supporting plate; 54, seventh driving member; 55, cover plate; 56, ninth driving member; 57, lifting plate; 571, magnetic plate; 58, eighth driving member; 6, moving assembly; 61, sliding plate; 62, fourth driving member; 63, connecting plate; 64, fifth driving member; 65, suction rod; 7, feeding assembly; 71, feeding plate; 72, tenth driving member. DETAILED DESCRIPTION

[0041] The following is combined with Figure 1 -Attached Fig.12 This application is described in further detail.

[0042] The embodiment of the present application discloses a fast automatic magnetic flux detection device.

[0043] like Figure 1 As shown, the test platform 1 includes a stripping mechanism 2 for separating two magnetic steels, a detector 3, two vibration plates 4 and two assembly mechanisms 5, one vibration plate 4 corresponds to one assembly mechanism 5, the detector 3 is located between the stripping mechanism 2 and the two assembly mechanisms 5, and one assembly mechanism 5 is located between the detector 3 and the other assembly mechanism 5. The test platform 1 is connected with a moving component 6 for moving the magnetic steel on the stripping mechanism 2 to the detector 3 or the two assembly mechanisms 5, and the test platform 1 is connected with a feeding component 7 for moving the gasket on the corresponding vibration plate 4 to the assembly mechanism 5.

[0044] Combination Figure 1 , Figure 2 , Figure 3 and Figure 4As shown, the stripping mechanism 2 includes a mounting column 21 fixedly connected to the detection platform 1. The mounting column 21 is provided with a mounting hole 211 for the product to pass through along the length direction, and the detection platform 1 is provided with a discharge hole 11 corresponding to the mounting hole 211. A connecting hole 212 connected to the mounting hole 211 is provided on the side of the mounting column 21 close to the detector 3. The detection platform 1 is slidably connected with a push plate 22. When the push plate 22 is in the initial position, the mounting column 21 is located between the push plate 22 and the detector 3. The detection platform 1 is fixedly connected with a first driving member 23 for driving the push plate 22 to slide in a direction close to or away from the connecting hole 212. The first driving member 23 is a cylinder. The first driving member 23 is externally connected to a controller (not shown in the figure). The signal output end of the controller is connected to the signal input end of the first driving member 23. The side of the push plate 22 close to the first driving member 23 is fixedly connected to the output end of the first driving member 23.

[0045] Combination Figure 4 , Figure 5 , Figure 6 and Figure 7 As shown, the detection platform 1 is relatively slidably connected with an abutment plate 24 and a baffle plate 25. When the abutment plate 24 and the baffle plate 25 are in the initial position, the mounting column 21 is located between the abutment plate 24 and the baffle plate 25. The detection platform 1 is fixedly connected with a second driving member 26 for driving the abutment plate 24 to slide in a direction close to or away from the mounting column 21. The second driving member 26 is a cylinder. The signal output end of the controller is connected to the signal input end of the second driving member 26. The side of the abutment plate 24 close to the second driving member 26 is fixedly connected to the output end of the second driving member 26. The detection platform 1 is fixedly connected with a third driving member 27 for driving the baffle plate 25 to slide in a direction close to or away from the mounting column 21. The third driving member 27 is a cylinder. The signal output end of the controller is connected to the signal input end of the third driving member 27. The side of the baffle plate 25 close to the third driving member 27 is fixedly connected to the output end of the third driving member 27. The push plate 22 is located between the baffle plate 25 and the abutment plate 24, and the baffle plate 25 is located between the push plate 22 and the detection platform 1.

[0046] Combination Figure 4 , Figure 5 , Figure 6 and Figure 7 As shown, a positioning plate 12 for contacting with a magnetic steel is fixedly connected to the upper surface of the detection platform 1, and the positioning plate 12 is located between the mounting column 21 and the detector 3. Two first limit plates 13 are relatively fixedly connected to the upper surface of the detection platform 1, and the two first limit plates 13 are located between the positioning plate 12 and the mounting column 21, and the push plate 22 is located between the two first limit plates 13. A second limit plate 14 is fixedly connected to the upper surface of the detection platform 1, and the second limit plate 14 is located between the two first limit plates 13, the second limit plate 14 is located between the mounting column 21 and the positioning plate 12, and the two first limit plates 13 are located between the second limit plate 14 and the detection platform 1.

[0047] like Figure 7 As shown, the moving assembly 6 includes a plurality of sliding plates 61 slidably connected to the detection platform 1 and a fourth driving member 62 for driving the sliding plate 61 to slide in a direction close to or away from the detection instrument 3. Taking this embodiment as an example, the number of the sliding plate 61 is one. The fourth driving member 62 is fixedly connected to the detection platform 1. The fourth driving member 62 is a rodless cylinder. The signal output end of the controller is connected to the signal input end of the fourth driving member 62. The sliding plate 61 is fixedly connected to the slider on the fourth driving member 62. During the normal operation of the fourth driving member 62, the slider of the fourth driving member 62 slides back and forth. The sliding plate 61 is slidably connected to the connecting plate 63. The sliding plate 61 is fixedly connected to the fifth driving member 64 for driving the connecting plate 63 to slide in a direction close to or away from the detection platform 1. The fifth driving member 64 is a cylinder. The signal output end of the controller is connected to the signal input end of the fifth driving member 64. The side of the connecting plate 63 close to the fifth driving member 64 is fixedly connected to the output end of the fifth driving member 64. The connecting plate 63 is fixedly connected to the suction rod 65.

[0048] Combination Figure 8 , Fig. 9 and Fig.10As shown, the structures of the two assembly mechanisms 5 are the same, one assembly mechanism 5 is used to stack intact magnetic steel, and the other assembly mechanism 5 is used to stack damaged magnetic steel. Now, one of the assembly mechanisms 5 is taken as an example for explanation, the assembly mechanism 5 includes a transfer plate 51 slidably connected to the detection table 1 and a sixth driving member 52 for driving the transfer plate 51 to slide in a direction close to or away from the vibration plate 4, the sixth driving member 52 is fixedly connected to the detection table 1, the sixth driving member 52 is a rodless cylinder, the signal output end of the controller is connected to the signal input end of the sixth driving member 52, the transfer plate 51 is fixedly connected to the slider on the sixth driving member 52, and during the normal operation of the sixth driving member 52, the slider of the sixth driving member 52 slides back and forth. The transfer plate 51 is provided with a clearance hole 511 for the magnetic steel to pass through. The side of the transfer plate 51 close to the detection platform 1 is slidably connected to a supporting plate 53 for covering the clearance hole 511. The transfer plate 51 is fixedly connected to a seventh driving member 54 for driving the supporting plate 53 to slide in a direction close to or away from the clearance hole 511. The seventh driving member 54 is a cylinder. The signal output end of the controller is connected to the signal input end of the seventh driving member 54. The side of the supporting plate 53 close to the seventh driving member 54 is fixedly connected to the output end of the seventh driving member 54. The side of the transfer plate 51 away from the supporting plate 53 is slidably connected to a cover plate 55 for covering the clearance hole 511. The transfer plate 51 is fixedly connected to a ninth driving member 56 for driving the cover plate 55 to slide in a direction close to or away from the clearance hole 511. The ninth driving member 56 is a cylinder. The signal output end of the controller is connected to the signal input end of the ninth driving member 56. The side of the cover plate 55 close to the ninth driving member 56 is fixedly connected to the output end of the ninth driving member 56. The feeding assembly 7 includes a feeding plate 71 slidably connected to the detection platform 1 and a tenth driving member 72 for driving the feeding plate 71 to slide toward or away from the transfer plate 51. The tenth driving member 72 is fixedly connected to the detection platform 1. The tenth driving member 72 is a cylinder. The signal output end of the controller is connected to the signal input end of the tenth driving member 72. The side of the feeding plate 71 close to the tenth driving member 72 is fixedly connected to the output end of the tenth driving member 72. When the feeding plate 71 is located at the initial position, the feeding end of the vibration plate 4 is located between the feeding plate 71 and the transfer plate 51, and the vibration plate 4 can move the gasket to between the feeding plate 71 and the transfer plate 51.

[0049] Combination Fig.10 , Fig.11 and Fig.12As shown, the assembly mechanism 5 also includes a lifting plate 57 slidably connected to the detection platform 1, and the lifting plate 57 is located between the feeding plate 71 and the transfer plate 51. The detection platform 1 is fixedly connected with an eighth driving member 58 for driving the lifting plate 57 to slide toward or away from the transfer plate 51. The eighth driving member 58 is a cylinder, and the signal output end of the controller is connected to the signal input end of the eighth driving member 58. The side of the lifting plate 57 close to the eighth driving member 58 is fixedly connected to the output end of the eighth driving member 58. One end of the lifting plate 57 close to the transfer plate 51 is fixedly connected with a magnetic plate 571 for abutting against the magnetic steel.

[0050] The implementation principle of a fast automatic magnetic flux detection device in the embodiment of the present application is:

[0051] The product is placed in the mounting hole 211, and the baffle 25 supports the product. The controller controls the second driving member 26 to drive the abutting plate 24 to slide in the direction close to the mounting column 21, and the gasket closest to the baffle 25 is clamped by the abutting plate 24 and the inner wall of the mounting hole 211. The first driving member 23 drives the push plate 22 to slide in the direction close to the connecting hole 212. The push plate 22 abuts against the magnetic steel closest to the baffle 25 and drives the magnetic steel to pass through the connecting hole 212 until the magnetic steel abuts against the positioning plate 12, and the first driving member 23 drives the push plate 22 to reset. The second driving member 26 drives the abutting plate 24 to slide in the direction away from the mounting column 21, so that the abutting plate 24 releases the gasket, so that the gasket and the magnetic steel and gaskets above it move in the direction close to the baffle 25 under the influence of gravity, and the gasket closest to the baffle 25 abuts against the baffle 25. The second driving member 26 drives the abutment plate 24 to slide in the direction close to the mounting column 21, so that the magnetic steel closest to the baffle plate 25 is abutted by the abutment plate 24 and the inner wall of the mounting hole 211. The third driving member 27 drives the baffle plate 25 to slide in the direction away from the mounting column 21, so that the baffle plate 25 is separated from the mounting hole 211, and the gasket closest to the baffle plate 25 is discharged from the discharge hole 11 under the influence of gravity. The third driving member 27 drives the baffle plate 25 to reset, so that the baffle plate 25 supports the magnetic steel again.

[0052] After the suction rod 65 sucks the magnet that is in contact with the positioning plate 12, the fifth driving member 64 drives the connecting plate 63 to slide in the direction away from the detection platform 1, so that the magnet is separated from the detection platform 1, and the fourth driving member 62 drives the sliding plate 61 in the direction close to the detector 3, so that the sucked magnet is located above the detector 3, and the fifth driving member 64 drives the connecting plate 63 to slide in the direction close to the detector 3, so that the magnet is located inside the detector 3, which is convenient for the detector 3 to detect the magnet.

[0053] The detected magnetic steel is moved to the corresponding clearance hole 511 through the fourth driving member 62 and the fifth driving member 64, and the supporting plate 53 supports the magnetic steel. The sixth driving member 52 drives the transfer plate 51 to slide in the direction close to the lifting plate 57, so that the lifting plate 57 corresponds to the clearance hole 511. The seventh driving member 54 drives the supporting plate 53 to slide in the direction away from the clearance hole 511, so that the supporting plate 53 is separated from the clearance hole 511, and the magnetic steel falls on the lifting plate 57 under the influence of gravity. The eighth driving member 58 drives the lifting plate 57 to slide in the direction away from the transfer plate 51, so that the lifting plate 57 descends. The tenth driving member 72 drives the feeding plate 71 to slide in the direction close to the lifting plate 57. The feeding plate 71 abuts against the gasket and drives the gasket to fall on the top of the magnetic steel, so that the gasket separates the two magnetic steels.

[0054] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. A fast automatic magnetic flux detection device, characterized in that: The invention comprises a testing platform (1), wherein the testing platform (1) is connected to a stripping mechanism (2) for separating two adjacent magnetic steels, a detector (3), a vibration plate (4) and two assembly mechanisms (5); the testing platform (1) is connected to a moving component (6) for moving the magnetic steel on the stripping mechanism (2) to the detector (3) or the assembly mechanism (5); and the testing platform (1) is connected to a feeding component (7) for moving a gasket on the vibration plate (4) to the assembly mechanism (5).

2. The rapid automatic magnetic flux detection device according to claim 1, characterized in that: The stripping mechanism (2) comprises a mounting column (21) connected to the detection platform (1), the mounting column (21) being provided with a mounting hole (211) for the product to pass through, the detection platform (1) being provided with a discharge hole (11) corresponding to the mounting hole (211), the mounting column (21) being provided with a connection hole (212) connected to the mounting hole (211), the detection platform (1) being slidably connected with a push plate (22), a baffle plate (25) and an abutment plate (24), the push plate (22) and the baffle plate (25) being provided with a contact plate (24) The plate (22) is located between the baffle plate (25) and the abutment plate (24), and the detection platform (1) is connected to a first driving member (23) for driving the push plate (22) to slide in a direction close to or away from the connection hole (212), a second driving member (26) for driving the abutment plate (24) to slide in a direction close to or away from the mounting column (21), and a third driving member (27) for driving the baffle plate (25) to slide in a direction close to or away from the mounting column (21).

3. The rapid automatic magnetic flux detection device according to claim 2, characterized in that: The detection platform (1) is connected to a positioning plate (12) for abutting against a magnetic steel, and the mounting column (21) is located between the positioning plate (12) and the first driving member (23).

4. The rapid automatic magnetic flux detection device according to claim 3 is characterized in that: The detection platform (1) is connected to two first limit plates (13), the push plate (22) slides between the two first limit plates (13), and the two first limit plates (13) are located between the positioning plate (12) and the mounting column (21).

5. The rapid automatic magnetic flux detection device according to claim 4, characterized in that: The detection platform (1) is connected to a second limit plate (14), the second limit plate (14) is located between two first limit plates (13), the two first limit plates (13) are located between the second limit plate (14) and the detection platform (1), and the second limit plate (14) is located between the positioning plate (12) and the mounting column (21).

6. The rapid automatic magnetic flux detection device according to claim 1, characterized in that: The moving assembly (6) comprises a sliding plate (61) slidably connected to the detection platform (1) and a fourth driving member (62) for driving the sliding plate (61) to slide in a direction close to or away from the detection instrument (3); the fourth driving member (62) is connected to the detection platform (1); the sliding plate (61) is slidably connected to a connecting plate (63); the sliding plate (61) is connected to a fifth driving member (64) for driving the connecting plate (63) to slide in a direction close to or away from the detection platform (1); and the connecting plate (63) is connected to a suction rod (65).

7. The rapid automatic magnetic flux detection device according to claim 1, characterized in that: The assembly mechanism (5) comprises a transfer plate (51) slidably connected to the detection platform (1) and a sixth driving member (52) for driving the transfer plate (51) to slide in a direction close to or away from the vibration plate (4); the sixth driving member (52) is connected to the detection platform (1); the transfer plate (51) is provided with a clearance hole (511) for the magnetic steel to pass through; the transfer plate (51) is slidably connected to a supporting plate (53) for covering the clearance hole (511); the supporting plate (53) is located between the transfer plate (51) and the detection platform (1); the transfer plate (51) is connected to a seventh driving member (54) for driving the supporting plate (53) to slide in a direction close to or away from the clearance hole (511); the detection platform (1) is slidably connected to a lifting plate (57); the detection platform (1) is connected to an eighth driving member (58) for driving the lifting plate (57) to slide in a direction close to or away from the transfer plate (51).

8. The rapid automatic magnetic flux detection device according to claim 7, characterized in that: The transfer plate (51) is slidably connected to a cover plate (55) for covering the clearance hole (511); the transfer plate (51) is connected to a ninth driving member (56) for driving the cover plate (55) to slide in a direction approaching or away from the clearance hole (511); the clearance hole (511) is located between the cover plate (55) and the supporting plate (53).

9. The rapid automatic magnetic flux detection device according to claim 7, characterized in that: The lifting plate (57) is connected to a magnetic plate (571) for contacting with magnetic steel.

10. The rapid automatic magnetic flux detection device according to claim 7, characterized in that: The feeding assembly (7) comprises a feeding plate (71) slidably connected to the detection platform (1) and a tenth driving member (72) for driving the feeding plate (71) to slide in a direction approaching or away from the lifting plate (57), and the tenth driving member (72) is connected to the detection platform (1).