An automobile magnetic pump assembly device

By designing an automatic assembly equipment for automotive magnetic pumps, the problems of low production efficiency and high cost caused by manual operation of external magnetic rotor assembly are solved, and automated assembly is achieved, improving efficiency and reducing damage risk.

CN119483148BActive Publication Date: 2025-06-24GUANGZHOU YUANXIN MACHINERY EQUIP
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Patent Information

Application Number
CN202411725869.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-28
Publication Date
2025-06-24
Estimated Expiration
2044-11-28

AI Technical Summary

Technical Problem

During the production process of automotive magnetic pumps, the assembly process of the external magnetic rotor relies on manual operation, resulting in low production efficiency, high cost, and affecting assembly efficiency.

Method used

Design an automobile magnetic pump assembly equipment, including base, rotor seat, magnetic tiles, mounting cylinders, arcuate guide rails, guide rectangular tubes, arcuate push plates, drive components and linkage components, and realize automatic assembly of the external magnetic rotor through an automated process.

Benefits of technology

The automatic assembly of the external magnetic rotor is realized, which improves production efficiency, reduces production costs, and reduces collision and damage of magnetic shingles.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of magnetic pumps, and specifically to an assembly device for an automotive magnetic pump, which includes a base, a rotor seat and a magnetic tile arranged on the base, and further includes: a mounting cylinder rotatably arranged on the base, with one end designed in a conical shape, the rotor seat is sleeved on the mounting cylinder, and a locking member is arranged on the mounting cylinder for limiting and fixing the rotor seat; a driving assembly is used to drive an arc-shaped push plate to push the magnetic tile into the rotor housing. At the same time, when the arc-shaped push plate is retracted, a linkage assembly is used to drive the mounting cylinder to rotate a specific angle to automatically switch the installation position of the magnetic tile, which is relatively convenient and intelligent, and the assembly efficiency is relatively high; at the same time, during the retraction process of the arc-shaped push plate, the arc-shaped support plate first rises by one unit to support the magnetic tile, and then drives the magnetic tile to slowly lower onto the arc-shaped guide rail, thereby reducing the collision of the magnetic tile and avoiding damage to the magnetic tile during installation.
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Description

Technical Field

[0001] The invention relates to the technical field of magnetic pumps, in particular to automobile magnetic pump assembly equipment. Background Art

[0002] The automotive magnetic pump has an exquisite structure, which is mainly composed of four core components: pump head, magnetic transmission assembly, drive motor and stable base. When the automotive magnetic pump is started, the drive motor drives the outer magnetic rotor to rotate slowly through a precise coupling device. At this time, the circularly distributed magnetic tiles carefully inlaid inside the outer magnetic rotor act like a messenger of magnetic force, releasing powerful magnetic field energy.

[0003] However, despite the excellent performance of the automotive magnetic pump, the assembly of the external magnetic rotor has become a bottleneck restricting production efficiency during its production process. At present, the assembly process of the external magnetic rotor still relies heavily on manual operation, which not only requires a large amount of labor input and increases production costs, but also the tedious and time-consuming manual assembly seriously affects the assembly efficiency of the automotive magnetic pump. Therefore, how to optimize the assembly process of the external magnetic rotor and improve production efficiency has become a key issue that needs to be urgently solved in the current automotive magnetic pump production field. To this end, we propose an automotive magnetic pump assembly equipment. Summary of the invention

[0004] A technical problem to be solved by the present application is: how to design an assembly machine for automatically assembling an external magnetic rotor.

[0005] In order to solve the above technical problems, the embodiment of the present application provides an automotive magnetic pump assembly device, including a base, a rotor seat and a magnetic tile arranged on the base, wherein the inner wall of the rotor seat is fixedly connected with a rectangular protrusion, the magnetic tile is provided with a rectangular groove, and the inner wall of one end of the rotor seat is fixedly connected with a positioning protrusion, and the rectangular protrusion cooperates with the rectangular groove to limit and fix the magnetic tile, and also includes:

[0006] The mounting cylinder is rotatably arranged on the base, and one end of the mounting cylinder is designed in a conical shape. The rotor seat is sleeved on the mounting cylinder, and a locking piece is arranged on the mounting cylinder to limit and fix the rotor seat;

[0007] The arc-shaped guide rail is arranged on the base, and one end of the arc-shaped guide rail is connected to the mounting cylinder to guide the movement of the limit magnetic shoe;

[0008] The material guiding rectangular tube is arranged above the arc guide rail and connected thereto, and is used for stacking and storing the magnetic tiles and guiding the magnetic tiles to fall onto the arc guide rail;

[0009] An arc-shaped push plate is slidably arranged on the arc-shaped guide rail;

[0010] A driving assembly is arranged on the base, and is used to drive the arc-shaped push plate to move and push the magnetic shoe into the rotor seat;

[0011] The linkage component is arranged on the base, and the arc-shaped push plate is connected to the mounting cylinder through the linkage component. When the arc-shaped guide rail is retracted, the linkage component is used to drive the mounting cylinder to deflect by a specific angle, so as to drive the rotor seat to rotate and switch.

[0012] In some embodiments, the driving component includes an electric push rod fixedly connected to the base, and the extending end of the electric push rod is fixedly connected to the arc-shaped push plate. Starting the electric push rod drives the arc-shaped push plate to move;

[0013] A rectangular guide groove is formed on the arc-shaped push plate, and an arc-shaped support plate is movably arranged on the arc-shaped guide rail. A guide rod is fixedly connected to the arc-shaped support plate, a hollow cylinder is fixedly connected to the arc-shaped guide rail, one end of the guide rod slides through the hollow cylinder to guide and limit the movement of the arc-shaped support plate, and a transmission component is arranged on the base. The arc-shaped support plate is connected to the electric push rod through the transmission component. During the process of retracting the arc-shaped push plate, the transmission component is used to first drive the arc-shaped support plate to rise to support the magnetic tile, and then lower the magnetic tile.

[0014] In some embodiments, the linkage component includes a hollow shaft one fixedly connected to the mounting cylinder. The hollow shaft one is rotatably connected to the base, and a limiting groove is formed at one end of the hollow shaft one. One end of the positioning convex is located in the limiting groove. Rotating the mounting cylinder drives the rotor seat to rotate synchronously;

[0015] One end of the hollow shaft one is fixedly connected to a shaft two. A shaft three is rotatably connected to the base. The shaft three is connected to the shaft two, and a worm gear is arranged on the shaft three. A ratchet and pawl assembly is arranged between the worm gear and the shaft three. A shaft four is rotatably connected to the base, and a worm fixedly engaged with the worm gear is fixedly connected to the shaft four. Rotating the shaft four drives the hollow shaft two to rotate;

[0016] One end of the shaft four is fixedly connected to a gear disk one. A rectangular plate is arranged on one side of the arc-shaped guide rail. A rack one engaged with the gear disk one is fixedly connected to the bottom end of the rectangular plate, and the rectangular plate is fixedly connected to the extending end of the electric push rod. Starting the electric push rod to retract the arc-shaped push plate, the rack one is used to drive the gear disk one to rotate, so as to rotate the shaft four.

[0017] In some embodiments, the locking member includes an L-shaped latch slidably arranged at one end of the hollow shaft one. A spring one is fixedly connected between the L-shaped latch and the inner wall of the hollow shaft one.

[0018] In some embodiments, the transmission assembly includes a plurality of hollow rectangular frames fixedly connected to the arc-shaped guide rail. A shaft four is slidably connected within one of the hollow rectangular frames, and the shaft four is connected to the arc-shaped support plate. A hollow shaft five is slidably connected within another hollow rectangular frame, and a shaft six is slidably connected within the hollow shaft five. One end of the hollow shaft five is also fixedly connected to the shaft four. One side of the arc-shaped guide rail is rotatably connected to a lever through a rotating shaft. Both ends of the lever are provided with chutes, and one end of each of the two shafts four is located within the chutes. Moving the hollow shaft five drives the arc-shaped support plate to move;

[0019] The rectangular plate is provided with a guide groove assembly. One end of the shaft six is located within the guide groove assembly. Moving the rectangular plate drives the shaft six to move by means of the guide groove assembly.

[0020] In some embodiments, the guide groove assembly includes a straight chute one opened on the rectangular plate. One end of the shaft six is located within the straight chute. An inclined chute one communicating with the straight chute one is opened on the rectangular plate. And the depth of a section of the chute body at the connection of the straight chute one and the inclined chute one is designed to be shallower than that of the inclined chute one. And a slope is provided within the straight chute one. One end of the shaft six located within the hollow shaft five is fixedly connected to a spring two. Pushing the magnetic tile to move, and at the same time moving the rectangular plate, drives the shaft six to slide along the straight chute one, and relatively moves the hollow shaft six by means of the slope, compressing the spring two until the shaft six uses the spring two to reset and insert into the inclined chute one;

[0021] A straight chute two communicating with the inclined chute one is opened on the rectangular plate. And an inclined chute two is opened at one end of the rectangular plate. Both ends of the inclined chute two communicate with the straight chute one and the straight chute two respectively. Pulling back the arc-shaped push plate drives the rectangular plate to move, drives the shaft six to move along the inclined chute one, drives the arc-shaped support plate to extend, and then moves along the inclined chute two, driving the arc-shaped support plate to retract.

[0022] In some embodiments, a plurality of arc-shaped plates are evenly arranged at equal intervals on one side of the mounting cylinder. The plurality of arc-shaped plates correspond one-to-one to the magnetic tile mounting positions within the rotor seat for supporting the magnetic tiles;

[0023] An installation plate is fixedly connected to the base. A through hole is opened on the installation plate. And a round rod is slidably connected to the hollow shaft one. The arc-shaped plate is movably connected to the hollow cylinder, and a spring three is connected between the arc-shaped plate and the hollow cylinder. And a synchronization assembly is provided between the arc-shaped plate and the round rod. When the round rod is located within the through hole, the hollow cylinder is locked, and at the same time the spring three is in the initial state. Insert the magnetic tile into the rotor seat and push the arc-shaped plate to move, driving the round rod to be pulled out of the through hole by means of the synchronization assembly;

[0024] One end of the shaft two is fixedly connected to a rubber hollow column. One end of the shaft three is fixedly connected to a friction column. One end of the friction column is located within the rubber hollow column and is in close contact with its inner wall. Rotating the shaft three drives the shaft two to rotate by means of friction.

[0025] In some embodiments, the synchronization component includes a U-shaped rod fixedly connected to the arc-shaped plate. The U-shaped rod is slidably connected to the hollow cylinder, and one end of the round rod is fixedly connected with a U-shaped frame. A connecting rod is arranged between the U-shaped frame and the U-shaped rod. Both ends of the connecting rod rotate relative to the U-shaped rod and the U-shaped frame respectively. Moving the arc-shaped plate drives the round rod to move.

[0026] In some embodiments, a second gear disc is rotatably connected to the fourth shaft connected to the arc-shaped supporting plate. A second rack fixedly connected to one side of the arc-shaped pushing plate meshes with the second gear disc. A third rack meshes with one side of the second gear disc. One end of the third rack contacts and abuts against the arc-shaped supporting plate. A guide rod is also fixedly connected to the third rack. One end of the guide rod slidably passes through the hollow cylinder and is fixedly connected with an L-shaped perforated plate. A limiting rod is slidably connected to the mounting plate. One end of the limiting rod is located in the through hole. The round rod is inserted into the through hole, and the limiting rod is pushed to move and inserted into the hole of the L-shaped perforated plate to lock the third rack. Then, the fourth shaft is moved to drive the third gear disc to roll along the third rack, and at the same time, the second rack is driven to move, so that the arc-shaped supporting plate rises to push the magnetic tile.

[0027] A elastic band is fixedly connected to the limiting rod. One end of the elastic band is fixed to the mounting plate. Moving the limiting rod stretches the elastic band at the same time, providing a self-restoring ability for it.

[0028] In some embodiments, a magnetic contact is installed at one end of the third rack, and a magnetic contact is also installed on the arc-shaped supporting plate. The third rack is fixed to the arc-shaped supporting plate by the attraction of two magnetic contacts, and both magnetic contacts are electrically connected to an external alarm device.

[0029] The present invention has at least the following beneficial effects:

[0030] Workers only need to put the magnetic tile into the guiding rectangular tube, and then use the driving component to drive the arc-shaped pushing plate to push the magnetic tile into the rotor housing. At the same time, when the arc-shaped pushing plate is retracted, the linkage component is used to drive the mounting cylinder to rotate a specific angle to automatically switch the magnetic tile installation position, which is relatively convenient and intelligent, and the assembly efficiency is relatively high.

[0031] At the same time, during the retraction process of the arc-shaped pushing plate, the arc-shaped supporting plate first rises by one unit to hold the magnetic tile, and then drives the magnetic tile to slowly lower onto the arc-shaped guide rail, thereby reducing the collision of the magnetic tile and avoiding damage to the magnetic tile during installation.

[0032] At the same time, when the magnetic tile is installed in the rotor seat, the arc-shaped plate needs to be moved to cancel the locking of the mounting cylinder, thereby avoiding accidental situations and preventing the rotor seat from being missed in installation.

[0033] Meanwhile, when the arc-shaped push plate moves and fails to push the magnetic tile into the rotor seat, the arc-shaped push plate resets without driving the installation cylinder to rotate. At the same time, it will drive the arc-shaped support plate to rise by several units to insert into the material guiding rectangular pipe to dredge the material guiding rectangular pipe. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 It is a schematic diagram of the overall structure of Embodiment 1 of the present invention;

[0035] Figure 2 For the present invention Figure 1 It is a schematic diagram of the sectional structure;

[0036] Figure 3 For the present invention Figure 2 It is a schematic diagram of the sectional structure;

[0037] Figure 4 For the present invention Figure 3 It is a schematic diagram of the structure of Area A in the present invention;

[0038] Figure 5 For the present invention Figure 3 It is a schematic diagram of the structure of Area B in the present invention;

[0039] Figure 6 For the present invention Figure 3 It is a schematic diagram of the sectional structure;

[0040] Figure 7 For the present invention Figure 6 It is a schematic diagram of the structure of Area C in the present invention;

[0041] Figure 8 For the present invention Figure 6 It is a schematic diagram of the sectional structure;

[0042] Figure 9 For the present invention Figure 8 It is a schematic diagram of the sectional structure;

[0043] Figure 10 It is a schematic diagram of the structure at the rectangular plate of the present invention;

[0044] Figure 11 It is a schematic diagram of the rotor seat structure of the present invention;

[0045] Figure 12 It is a schematic diagram of the structure of Embodiment 2 of the present invention.

[0046] In the figure: 1 - base; 11 - rotor seat; 12 - magnetic tile; 13 - rectangular protrusion; 14 - rectangular groove; 15 - positioning protrusion; 2 - mounting cylinder; 3 - locking member; 4 - arc-shaped guide rail; 5 - rectangular material guiding pipe; 6 - arc-shaped pushing plate; 7 - driving assembly; 8 - linkage assembly; 21 - electric push rod; 22 - rectangular guide groove; 23 - arc-shaped supporting plate; 24 - guide rod; 25 - hollow cylinder; 26 - transmission assembly; 27 - hollow shaft one; 28 - limiting groove; 29 - shaft two; 31 - shaft three; 32 - worm gear; 33 - ratchet and pawl assembly; 34 - shaft four; 35 - worm; 36 - gear disk one; 37 - rectangular plate; 38 - rack one; 39 - L-shaped retaining pin; 41 - spring one; 42 - hollow rectangular frame; 44 - hollow shaft five; 45 - shaft six; 46 - lever; 47 - chute; 48 - guide groove assembly; 49 - straight chute one; 51 - inclined chute one; 52 - inclined plane; 53 - spring two; 54 - straight chute two; 55 - inclined chute two; 56 - arc-shaped plate; 57 - mounting plate; 58 - through hole; 59 - round rod; 61 - spring three; 62 - rubber hollow column; 63 - friction column; 64 - U-shaped rod; 65 - U-shaped frame; 66 - connecting rod; 67 - gear disk two; 68 - rack two; 69 - rack three; 71 - L-shaped perforated plate; 72 - limiting rod; 73 - elastic band; 74 - magnetic contact; 75 - synchronization assembly. Detailed implementation manner

[0047] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present invention.

[0048] Embodiment 1

[0049] Please refer to Figures 1-11 , the present invention provides a technical solution: an assembly device for an automotive magnetic pump, including a base 1 and a rotor seat 11 and a magnetic tile 12 provided on the base 1. A rectangular protrusion 13 is fixedly connected to the inner wall of the rotor seat 11, a rectangular groove 14 is formed on the magnetic tile 12, and a positioning protrusion 15 is fixedly connected to the inner wall of one end of the rotor seat 11. The rectangular protrusion 13 and the rectangular groove 14 cooperate to limit and fix the magnetic tile 12. After multiple magnetic tiles 12 are installed, they are in contact with and against each other for fixation. It further includes:

[0050] A mounting cylinder 2, rotatably arranged on the base 1, and one end is designed in a conical shape. The rotor seat 11 is sleeved on the mounting cylinder 2, and a locking member 3 is arranged on the mounting cylinder 2 to limit and fix the rotor seat 11, so that the rotor seat 11 can be conveniently sleeved on the mounting cylinder 2 and locked by the locking member 3;

[0051] The arc-shaped guide rail 4 is fixedly connected to the base 1, and one end is docked with the mounting cylinder 2 to guide and limit the movement of the magnetic tile 12;

[0052] The material guiding rectangular pipe 5 is arranged above the arc-shaped guide rail 4 and fixedly connected thereto, for stacking and storing the magnetic tiles 12 and guiding the magnetic tiles 12 to fall onto the arc-shaped guide rail 4;

[0053] The arc-shaped push plate 6 is slidably arranged on the arc-shaped guide rail 4;

[0054] The driving assembly 7 is arranged on the base 1 to drive the arc-shaped push plate 6 to move and push the magnetic tile 12 into the rotor seat 11;

[0055] The linkage assembly 8 is arranged on the base 1, and the arc-shaped push plate 6 is connected to the mounting cylinder 2 through the linkage assembly 8. When the arc-shaped guide rail 4 is retracted, the mounting cylinder 2 is driven by the linkage assembly 8 to deflect a specific angle to drive the rotor seat 11 to rotate and switch;

[0056] During specific use, the staff only needs to put the magnetic tiles 12 into the material guiding rectangular pipe 5, and then use the driving assembly 7 to drive the arc-shaped push plate 6 to push the magnetic tiles 12 into the rotor shell. At the same time, when the arc-shaped push plate 6 is retracted, the mounting cylinder 2 is driven by the linkage assembly 8 to rotate a specific angle to automatically switch the installation position of the magnetic tiles 12, which is relatively convenient and intelligent, and the assembly efficiency is relatively high;

[0057] At the same time, during the retraction process of the arc-shaped push plate 6, the arc-shaped supporting plate 23 first rises by one unit to hold the magnetic tile 12, and then drives the magnetic tile 12 to slowly lower onto the arc-shaped guide rail 4, thereby reducing the collision of the magnetic tile 12 and avoiding damage to the magnetic tile 12 during installation;

[0058] At the same time, when the magnetic tile 12 is installed in the rotor seat 11 and the arc-shaped plate 56 is pushed to move, the locking of the mounting cylinder 2 can be cancelled, thereby avoiding accidental situations and causing the rotor seat 11 to be missed in installation;

[0059] At the same time, when the arc-shaped push plate 6 moves and does not push the magnetic tile 12 to be installed into the rotor seat 11, the arc-shaped push plate 6 cannot drive the mounting cylinder 2 to rotate during reset, and at the same time, it will drive the arc-shaped supporting plate 23 to rise by multiple units to insert into the material guiding rectangular pipe 5 to dredge the material guiding rectangular pipe 5.

[0060] The driving assembly 7 includes an electric push rod 21 fixedly connected to the base 1. The extending end of the electric push rod 21 is fixedly connected to the arc-shaped push plate 6. Starting the electric push rod 21 drives the arc-shaped push plate 6 to move along the arc-shaped guide rail 4;

[0061] A rectangular guide groove 22 is formed in the arc-shaped push plate 6, and an arc-shaped support plate 23 is slidably connected to the arc-shaped guide rail 4. A guide rod 24 is fixedly connected to the arc-shaped support plate 23. A hollow cylinder 25 is fixedly connected to the arc-shaped guide rail 4. One end of the guide rod 24 slidably passes through the hollow cylinder 25 to guide and limit the movement of the arc-shaped support plate 23. A transmission assembly 26 is arranged on the base 1. The arc-shaped support plate 23 is connected to the electric push rod 21 through the transmission assembly 26. During the process of retracting the arc-shaped push plate 6, the transmission assembly 26 is used to first drive the arc-shaped support plate 23 to rise to support the magnetic tile 12, and then lower the magnetic tile 12. Furthermore, during the retraction process of the arc-shaped push plate 6, the arc-shaped support plate 23 first rises by one unit to hold the magnetic tile 12, and then drives the magnetic tile 12 to slowly lower onto the arc-shaped guide rail 4, thereby reducing the collision of the magnetic tile 12 and avoiding damage to the magnetic tile 12 during installation. The distance represented by one unit here is exactly the thickness of one magnetic tile 12.

[0062] The linkage assembly 8 includes a hollow shaft one 27 fixedly connected to the mounting cylinder 2. The hollow shaft one 27 is rotatably connected to the base 1 through a bearing. One end of the hollow shaft one 27 is provided with a limiting groove 28. One end of the positioning convex 15 is located in the limiting groove 28. Rotating the mounting cylinder 2 drives the rotor seat 11 to rotate synchronously;

[0063] One end of the hollow shaft one 27 is fixedly connected with a shaft two 29. The shaft two 29 is rotatably connected to the base 1 through a bearing. A shaft three 31 is rotatably connected to the base 1 through a bearing. The shaft three 31 is connected to the shaft two 29. A worm gear 32 is installed on the shaft three 31. A ratchet and pawl assembly 33 is installed between the worm gear 32 and the shaft three 31. A shaft four 34 is rotatably connected to the base 1 through a bearing. A worm 35 meshing with the worm gear 32 is fixedly connected to the shaft four 34. Rotating the shaft four 34 drives the worm 35 to rotate, thereby driving the worm gear 32 to rotate. Furthermore, the ratchet and pawl assembly 33 is used to drive the shaft three 31 to rotate, thereby driving the hollow shaft two 29 to rotate;

[0064] One end of the shaft four 34 is fixedly connected with a gear disk one 36. A rectangular plate 37 is slidably connected to one side of the arc-shaped guide rail 4. A rack one 38 meshing with the gear disk one 36 is fixedly connected to the bottom end of the rectangular plate 37. The rectangular plate 37 is fixedly connected to the extending end of the electric push rod 21. Starting the electric push rod 21 to retract the arc-shaped push plate 6, the gear disk one 36 is driven to rotate by the rack one 38, so that the shaft four 34 rotates.

[0065] The locking member 3 includes an L-shaped pin 39 slidably connected to one end of the hollow shaft one 27. A spring one 41 is fixedly connected between the L-shaped pin 39 and the inner wall of the hollow shaft one 27. Pushing the L-shaped pin 39 and simultaneously compressing the spring one 41, the rotor seat 11 can be taken out at this time.

[0066] The transmission assembly 26 includes a plurality of hollow rectangular frames 42 fixedly connected to the arc-shaped guide rail 4. A fourth shaft 34 is slidably connected inside one hollow rectangular frame 42, and the fourth shaft 34 is connected to the arc-shaped support plate 23. A hollow fifth shaft 44 is slidably connected inside another hollow rectangular frame 42, and a sixth shaft 45 is slidably connected inside the hollow fifth shaft 44. One end of the hollow fifth shaft 44 is also fixedly connected to the fourth shaft 34. One side of the arc-shaped guide rail 4 is rotatably connected to a lever 46 through a rotating shaft. Both ends of the lever 46 are provided with chutes 47. One end of each of the two fourth shafts 34 is located inside the chutes 47. Moving the hollow fifth shaft 44 drives the lever 46 to deflect, thereby driving the fourth shaft 34 to move, and further driving the arc-shaped support plate 23 to move;

[0067] The rectangular plate 37 is provided with a guide groove assembly 48. One end of the sixth shaft 45 is located inside the guide groove assembly 48. Moving the rectangular plate 37 drives the sixth shaft 45 to move by using the guide groove assembly 48.

[0068] The guide groove assembly 48 includes a straight chute one 49 opened on the rectangular plate 37. One end of the sixth shaft 45 is located inside the straight chute 47 and is slidably connected to its inner wall. An inclined chute one 51 communicated with the straight chute one 49 is opened on the rectangular plate 37. The depth of a section of the chute body at the connection of the straight chute one 49 and the inclined chute one 51 is designed to be shallower than that of the inclined chute one 51. And a slope 52 is provided inside the straight chute one 49. One end of the sixth shaft 45 located inside the hollow fifth shaft 44 is fixedly connected to a second spring 53. One end of the second spring 53 is fixedly connected to the inner wall of the hollow fifth shaft 44. Moving the arc-shaped push plate 6 to push the magnetic tile 12 to move. At the same time, the rectangular plate 37 moves, driving the sixth shaft 45 to slide along the straight chute one 49 until the slope 52 is used to push the fifth shaft to move relative to the sixth shaft 45, and at the same time compressing the second spring 53 until the sixth shaft 45 uses the second spring 53 to reset and insert into the inclined chute one 51. At this time, the arc-shaped push plate 6 has installed the magnetic tile 12 in place;

[0069] A straight chute two 54 communicated with the inclined chute one 51 is opened on the rectangular plate 37. And an inclined chute two 55 is opened at one end of the rectangular plate 37. Both ends of the inclined chute two 55 are respectively communicated with the straight chute one 49 and the straight chute two 54. Retracting the arc-shaped push plate 6 drives the rectangular plate 37 to move, driving the sixth shaft 45 to move along the inclined chute one 51, thereby driving the arc-shaped support plate 23 to extend, and then transitioning to the inclined chute two 55 along the straight chute two 54 and moving along the inclined chute two 55, thereby driving the arc-shaped support plate 23 to retract.

[0070] A plurality of arc-shaped plates 56 are equidistantly and uniformly arranged on one side of the mounting cylinder 2. The plurality of arc-shaped plates 56 correspond one by one to the installation positions of the magnetic tiles 12 in the rotor seat 11 for supporting the magnetic tiles 12;

[0071] A mounting plate 57 is fixedly connected to the base 1. A through hole 58 is formed in the mounting plate 57. A round rod 59 is slidably connected to the hollow shaft one 27. The arc-shaped plate 56 is movably connected to the hollow cylinder 25. A third spring 61 is fixedly connected between the arc-shaped plate 56 and the hollow cylinder 25. A synchronization component 75 is arranged between the arc-shaped plate 56 and the round rod 59. When the round rod 59 is located in the through hole 58, the hollow cylinder 25 is locked. At the same time, the third spring 61 is in the initial state. At the same time, the rotor seat 11 is in the preparatory installation state. The magnetic tile 12 is inserted into the rotor seat 11 and the arc-shaped plate 56 is pushed to move. The synchronization component 75 is used to drive the round rod 59 to pull out of the through hole 58, thereby unlocking the rotating cylinder and avoiding missing the installation of the magnetic tile 12;

[0072] One end of the shaft two 29 is fixedly connected with a rubber hollow column 62. One end of the shaft three 31 is fixedly connected with a friction column 63. One end of the friction column 63 is located inside the rubber hollow column 62 and is in close contact with its inner wall. The shaft three 31 is rotated to drive the shaft two 29 to rotate by friction. The hollow cylinder 25 is rotated by friction. Therefore, when the hollow cylinder 25 is locked, the shaft three 31 can also rotate.

[0073] The synchronization component 75 includes a U-shaped rod 64 fixedly connected to the arc-shaped plate 56. The U-shaped rod 64 is slidably connected to the hollow cylinder 25. One end of the round rod 59 is fixedly connected with a U-shaped frame 65. A connecting rod 66 is arranged between the U-shaped frame 65 and the U-shaped rod 64. The connecting rod 66 is rotatably connected to the U-shaped rod 64 through a bearing and is rotatably connected to the U-shaped frame 65 through a rotating shaft. The arc-shaped plate 56 is moved to drive the connecting rod 66 to move, thereby driving the round rod 59 to move.

[0074] A second gear disc 67 is rotatably connected to the shaft four 34 connected to the arc-shaped support plate 23 through a bearing. A second rack 68 meshing with the second gear disc 67 is fixedly connected to one side of the arc-shaped push plate 6. A third rack 69 is meshed with one side of the second gear disc 67. One end of the third rack 69 is in contact with and abuts against the arc-shaped support plate 23. A guide rod 24 is also fixedly connected to the third rack 69. One end of the guide rod 24 slidably passes through the hollow cylinder 25 and is fixedly connected with an L-shaped perforated plate 71. A limiting rod 72 is slidably connected to the mounting plate 57. One end of the limiting rod 72 is located in the through hole 58. The round rod 59 is inserted into the through hole 58 and pushes the limiting rod 72 to move and insert into the hole of the L-shaped perforated plate 71 to lock the third rack 69. Then the shaft four 34 is moved to drive the third gear disc to roll along the third rack 69, and at the same time drive the second rack 68 to move, so that the arc-shaped support plate 23 rises to push the magnetic tile 12;

[0075] Specifically, when the magnetic tile 12 is correctly installed in the rotor seat 11, the round rod 59 disengages from the through hole 58, and at the same time the limiting rod 72 also disengages from the L-shaped perforated plate 71. At this time, when the arc-shaped push plate 6 is retracted, it will drive the shaft four 34 to move, drive the second gear disc 67 to move upward, and then drive the second rack 68 and the third rack 69 to move upward, so that the arc-shaped support plate 23 contacts and lifts the magnetic tile 12;

[0076] When the magnetic tile 12 is not correctly installed into the rotor seat 11, the round rod 59 cannot disengage from the through hole 58, and at the same time, the limiting rod 72 cannot disengage from the L-shaped perforated plate 71, thus locking the rack three 69. At this time, when the arc-shaped push plate 6 is retracted, it will drive the shaft four 34 to move, drive the second gear disk 67 to move upward, and then drive the second gear disk 67 to move upward and roll along the rack three 69 at the same time, thereby driving the rack two 68 to move upward by multiple units to insert into the guiding rectangular pipe 5 to dredge the guiding rectangular pipe 5 to prevent installation failure caused by the magnetic tile 12 being stuck in the guiding rectangular pipe 5.

[0077] A elastic band 73 is fixedly connected to the limiting rod 72. One end of the elastic band 73 is fixed to the mounting plate 57. Moving the limiting rod 72 stretches the elastic band 73 at the same time, providing self-restoring ability for it.

[0078] Embodiment 2

[0079] Please refer to Figures 1-12 , the present invention provides a technical solution: an assembly device for an automotive magnetic pump. Embodiment 2 is optimized on the basis of Embodiment 1;

[0080] A magnetic adsorption type contact 74 is installed at one end of the rack three 69, and a magnetic adsorption type contact 74 is also installed on the arc-shaped support plate 23. The rack three 69 is fixed to the arc-shaped support plate 23 by the mutual attraction of the two magnetic adsorption type contacts 74, and both of the two magnetic adsorption type contacts 74 are electrically connected to an external alarm device. Specifically, when the magnetic tile 12 is correctly installed into the rotor seat 11, the round rod 59 disengages from the through hole 58, and at the same time, the limiting rod 72 also disengages from the L-shaped perforated plate 71. At this time, when the arc-shaped push plate 6 is retracted, it will drive the shaft four 34 to move, drive the second gear disk 67 to move upward, and then drive the rack two 68 and the rack three 69 to move upward so that the arc-shaped support plate 23 contacts and holds up the magnetic tile 12. At this time, the two magnetic adsorption type contacts 74 do not disconnect;

[0081] When the magnetic tile 12 is not correctly installed into the rotor seat 11, the round rod 59 cannot disengage from the through hole 58, and at the same time, the limiting rod 72 cannot disengage from the L-shaped perforated plate 71, thus locking the rack three 69. At this time, when the arc-shaped push plate 6 is retracted, it will drive the shaft four 34 to move, drive the second gear disk 67 to move upward, and then drive the second gear disk 67 to move upward and roll along the rack three 69 at the same time, thereby driving the rack two 68 to move upward by multiple units to insert into the guiding rectangular pipe 5 to dredge the guiding rectangular pipe 5 to prevent installation failure caused by the magnetic tile 12 being stuck in the guiding rectangular pipe 5. At this time, the two magnetic adsorption type contacts 74 disconnect, so that after dredging multiple times, the two magnetic adsorption type contacts 74 will still be in a disconnected state, and a signal will be transmitted to the external alarm device, and the alarm will be given while the staff come to check and handle.

[0082] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or device.

[0083] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An automotive magnetic pump assembly device, comprising a base (1), a rotor base (11) and a magnetic tile (12) arranged on the base (1), wherein a rectangular protrusion (13) is fixedly connected to the inner wall of the rotor base (11), a rectangular groove (14) is provided on the magnetic tile (12), and a positioning protrusion (15) is fixedly connected to the inner wall of one end of the rotor base (11), and the rectangular protrusion (13) cooperates with the rectangular groove (14) to limit and fix the magnetic tile (12), characterized in that: Also included are: The mounting cylinder (2) is rotatably mounted on the base (1) and has one end with a conical design. The rotor seat (11) is sleeved on the mounting cylinder (2), and a locking piece (3) is provided on the mounting cylinder (2) for limiting and fixing the rotor seat (11); An arc-shaped guide rail (4) is arranged on the base (1), and one end of the arc-shaped guide rail is butted against the mounting cylinder (2) to guide the movement of the limiting magnetic tile (12); The material guiding rectangular tube (5) is arranged above the arc-shaped guide rail (4) and connected thereto, and is used for stacking and storing the magnetic tiles (12) and guiding the magnetic tiles (12) to fall onto the arc-shaped guide rail (4); An arc-shaped push plate (6) is slidably arranged on the arc-shaped guide rail (4); A driving assembly (7) is arranged on the base (1) and is used to drive the arc-shaped push plate (6) to move and push the magnetic tile (12) into the rotor seat (11); The linkage assembly (8) is arranged on the base (1), and the arc-shaped push plate (6) is connected to the mounting cylinder (2) through the linkage assembly (8). The arc-shaped guide rail (4) is retracted, and the linkage assembly (8) is used to drive the mounting cylinder (2) to deflect a specific angle, thereby driving the rotor seat (11) to rotate and switch.

2. The automotive magnetic pump assembly equipment according to claim 1, characterized in that: The driving assembly (7) comprises an electric push rod (21) fixedly connected to the base (1), the extended end of the electric push rod (21) being fixedly connected to the arc-shaped push plate (6), and the electric push rod (21) is started to drive the arc-shaped push plate (6) to move; The arc push plate (6) is provided with a rectangular guide groove (22), and the arc guide rail (4) is movably provided with an arc support plate (23), the arc support plate (23) is fixedly connected with a guide rod (24), the arc guide rail (4) is fixedly connected with a hollow cylinder (25), one end of the guide rod (24) slides through the hollow cylinder (25) to guide the movement of the limited arc support plate (23), the base (1) is provided with a transmission component (26), the arc support plate (23) is connected to the electric push rod (21) through the transmission component (26), and in the process of retracting the arc push plate (6), the transmission component (26) is used to first drive the arc support plate (23) to rise and support the magnetic tile (12), and then lower the magnetic tile (12).

3. The automotive magnetic pump assembly equipment according to claim 2, characterized in that: The linkage assembly (8) comprises a hollow shaft (27) fixedly connected to the mounting cylinder (2), the hollow shaft (27) being rotatably connected to the base (1), and a limiting groove (28) is provided at one end of the hollow shaft (27), one end of the positioning protrusion (15) is located in the limiting groove (28), and the mounting cylinder (2) is rotated to drive the rotor seat (11) to rotate synchronously; One end of the hollow shaft one (27) is fixedly connected to the shaft two (29); the base (1) is rotatably connected to the shaft three (31); the shaft three (31) is connected to the shaft two (29); a worm wheel (32) is provided on the shaft three (31); a ratchet and ratchet assembly (33) is provided between the worm wheel (32) and the shaft three (31); the base (1) is rotatably connected to the shaft four (34); the shaft four (34) is fixedly connected to the worm (35) meshing with the worm wheel (32); the rotation of the shaft four (34) drives the hollow shaft two (29) to rotate; One end of the shaft four (34) is fixedly connected to a toothed disc one (36), and one side of the arc-shaped guide rail (4) is provided with a rectangular plate (37). The bottom end of the rectangular plate (37) is fixedly connected to a rack one (38) meshing with the toothed disc one (36), and the rectangular plate (37) is fixedly connected to the protruding end of the electric push rod (21). When the electric push rod (21) is started to retract the arc-shaped push plate (6), the rack one (38) is used to drive the toothed disc one (36) to rotate, so that the shaft four (34) rotates.

4. The automotive magnetic pump assembly equipment according to claim 3, characterized in that: The locking member (3) comprises an L-shaped bayonet (39) slidably arranged at one end of the hollow shaft (27), and a spring (41) is fixedly connected between the L-shaped bayonet (39) and the inner wall of the hollow shaft (27).

5. The automotive magnetic pump assembly equipment according to claim 4, characterized in that: The transmission assembly (26) comprises a plurality of hollow rectangular frames (42) fixedly connected to the arc guide rail (4), a shaft four (34) is also slidably connected in one of the hollow rectangular frames (42), the shaft four (34) is connected to the arc support plate (23), a hollow shaft five (44) is slidably connected in another hollow rectangular frame (42), a shaft six (45) is slidably connected in the hollow shaft five (44), one end of the hollow shaft five (44) is also fixedly connected to the shaft four (34), one side of the arc guide rail (4) is rotatably connected to a lever (46) via a rotating shaft, both ends of the lever (46) are provided with slide grooves (47), one end of the two shaft fours (34) are both located in the slide grooves (47), and moving the hollow shaft five (44) drives the arc support plate (23) to move; The rectangular plate (37) is provided with a guide groove assembly (48), one end of the shaft six (45) is located in the guide groove assembly (48), and the rectangular plate (37) is moved to drive the shaft six (45) to move by utilizing the guide groove assembly (48).

6. The automotive magnetic pump assembly equipment according to claim 5, characterized in that: The guide groove assembly (48) comprises a straight slide groove (49) provided on a rectangular plate (37), one end of the shaft (45) being located in the straight slide groove (47), an inclined slide groove (51) being provided on the rectangular plate (37) and communicating with the straight slide groove (49), and a groove body of a section where the straight slide groove (49) and the inclined slide groove (51) are connected is shallower than the inclined slide groove (51), and a groove body of the straight slide groove (49) is provided in the straight slide groove (49). A slope (52) is arranged, and the shaft six (45) is located in the hollow shaft five (44) and one end is fixedly connected with a spring two (53), which pushes the magnetic tile (12) to move, and at the same time the rectangular plate (37) moves, driving the shaft six (45) to slide along the straight slide groove one (49), and using the slope (52) to move relative to the hollow shaft six (45), compressing the spring two (53), until the shaft six (45) is reset by using the spring two (53) and inserted into the inclined slide groove one (51); The rectangular plate (37) is provided with a second straight slide groove (54) which is in communication with the first inclined slide groove (51), and one end of the rectangular plate (37) is provided with a second inclined slide groove (55), and the two ends of the second inclined slide groove (55) are respectively in communication with the first straight slide groove (49) and the second straight slide groove (54), so as to pull back the arc-shaped push plate (6), drive the rectangular plate (37) to move, drive the sixth shaft (45) to move along the first inclined slide groove (51), drive the arc-shaped support plate (23) to extend, and then move along the second inclined slide groove (55), drive the arc-shaped support plate (23) to be retracted.

7. The automotive magnetic pump assembly equipment according to claim 6, characterized in that: A plurality of arc-shaped plates (56) are evenly and equidistantly arranged on one side of the installation cylinder (2), and the plurality of arc-shaped plates (56) correspond one to one with the installation positions of the magnetic tiles (12) in the rotor seat (11) to support the magnetic tiles (12); The base (1) is fixedly connected with a mounting plate (57), a through hole (58) is provided on the mounting plate (57), and a round rod (59) is slidably connected with the hollow shaft (27), the arc plate (56) and the hollow cylinder (25) are movably connected, and a spring (61) is connected between the arc plate (56) and the hollow cylinder (25), and a synchronization component (75) is provided between the arc plate (56) and the round rod (59), when the round rod (59) is located in the through hole (58), the hollow cylinder (25) is locked, and the spring (61) is in the initial state, the magnetic tile (12) is inserted into the rotor seat (11), and the arc plate (56) is pushed to move, and the synchronization component (75) is used to drive the round rod (59) to be pulled out of the through hole (58); One end of the second shaft (29) is fixedly connected to a rubber hollow column (62), and one end of the third shaft (31) is fixedly connected to a friction column (63). One end of the friction column (63) is located inside the rubber hollow column (62) and is in close contact with the inner wall thereof. The rotation of the third shaft (31) drives the second shaft (29) to rotate by utilizing friction force.

8. The automotive magnetic pump assembly equipment according to claim 7, characterized in that: The synchronization component (75) comprises a U-shaped rod (64) fixedly connected to the arc plate (56), the U-shaped rod (64) being slidably connected to the hollow cylinder (25), and one end of the round rod (59) being fixedly connected to the U-shaped frame (65), a connecting rod (66) being arranged between the U-shaped frame (65) and the U-shaped rod (64), and two ends of the connecting rod (66) respectively rotating relative to the U-shaped rod (64) and the U-shaped frame (65), so that the arc plate (56) moves to drive the round rod (59) to move.

9. The automotive magnetic pump assembly equipment according to claim 8, characterized in that: A gear disc 2 (67) is rotatably connected to a shaft 4 (34) connected to the arc-shaped support plate (23); a rack 2 (68) meshing with the gear disc 2 (67) is fixedly connected to one side of the arc-shaped push plate (6); a rack 3 (69) is meshed with one side of the gear disc 2 (67); one end of the rack 3 (69) contacts and abuts against the arc-shaped support plate (23); a guide rod (24) is also fixedly connected to the rack 3 (69); one end of the guide rod (24) slides through the hollow cylinder (25) and is fixedly connected to an L-shaped The perforated plate (71) is slidably connected to a limiting rod (72) on the mounting plate (57), one end of the limiting rod (72) is located in the through hole (58), and the round rod (59) is inserted into the through hole (58), pushing the limiting rod (72) to move and insert into the hole of the L-shaped perforated plate (71), so that the rack three (69) is locked, and then the shaft four (34) is moved to drive the gear plate three to roll along the rack three (69), and at the same time drive the rack two (68) to move, so that the arc-shaped support plate (23) rises to push the magnetic tile (12); An elastic band (73) is fixedly connected to the limiting rod (72), one end of the elastic band (73) is fixed to the mounting plate (57), and moving the limiting rod (72) stretches the elastic band (73) at the same time, thereby providing it with self-restoring ability.

10. The automotive magnetic pump assembly equipment according to claim 9, characterized in that: A magnetic contact (74) is installed at one end of the rack three (69), and a magnetic contact (74) is also installed on the arc-shaped support plate (23). The rack three (69) is fixed to the arc-shaped support plate (23) through the attraction of the two magnetic contacts (74), and the two magnetic contacts (74) are electrically connected to the external alarm device.

Citation Information

Patent Citations

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    CN109861468A

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