Welding device for capacitor processing

By designing a welding device for capacitor processing, utilizing a position adjustment mechanism, a rotary clamping mechanism, and a synchronous conveying component, the problem of low capacitor welding efficiency was solved, and efficient welding of capacitor accessories of different sizes was achieved.

CN120940938AActive Publication Date: 2025-11-14ZIBO HENGJIU ELECTRIC CO LTD

Patent Information

Application Number
CN202511483322.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-17
Publication Date
2025-11-14
Estimated Expiration
2045-10-17

AI Technical Summary

Technical Problem

The low efficiency of capacitor welding in existing technologies is mainly due to the inability to achieve synchronous transport of key components and capacitor accessories.

Method used

A welding device for capacitor processing was designed, including a position adjustment mechanism, a rotary clamping mechanism, and a synchronous conveying component. Through the coordinated work of these mechanisms, the position of the welding torch is adjusted, the workpiece is clamped and fixed, and the conveyor belt is moved, ensuring the synchronous welding of capacitor accessories and main components.

Benefits of technology

It improves the efficiency of capacitor welding, can adapt to capacitor accessories of different sizes, and achieves efficient positioning welding.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a welding device for capacitor processing, and relates to the technical field of capacitor processing welding, the welding device comprises a mounting base, a fixed middle frame is arranged on the mounting base, a position adjusting mechanism is arranged on the fixed middle frame, a welding gun adjusting mechanism is arranged on the position adjusting mechanism, and two symmetrically arranged rotary clamping mechanisms are arranged on the fixed middle frame; the fixed middle frame is provided with a synchronous conveying assembly, the synchronous conveying assembly comprises a fixed side plate, a conveying belt mechanism, a lifting adjusting mechanism, a position adjusting frame mechanism, a rotary plate shifting mechanism and a rotary driving mechanism, the fixed side plate is arranged on the mounting base, and the lifting adjusting mechanism and the conveying belt mechanism are arranged on the fixed side plate; the position adjusting frame mechanism is arranged on the lifting adjusting mechanism, the rotary shifting plate mechanism is arranged on the position adjusting frame mechanism, the rotary driving mechanism is arranged on the lifting adjusting mechanism, the transverse position of the welding gun adjusting mechanism can be adjusted by arranging the position adjusting mechanism, and the capacitor positioning and welding efficiency is improved.
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Description

Technical Field

[0001] This invention relates to the field of capacitor processing and welding technology, specifically a welding apparatus for capacitor processing. Background Technology

[0002] A capacitor is an electronic component consisting of two closely spaced conductor plates sandwiching an insulating dielectric layer. It is used to store electrical charge and energy, and its core function is to store energy through an electric field.

[0003] In the prior art, the angle of the turntable can be adjusted by the action of the worm gear, worm, and turntable, and the angle after the turntable is adjusted can also be limited, thereby ensuring the quality of subsequent welding of capacitor pins by the welding machine. However, the prior art is not convenient for the synchronous conveying and welding of the main components and capacitor accessories that need to be processed and welded, so the efficiency of capacitor welding is low. Therefore, there is a lot of room for improvement in the prior art. Summary of the Invention

[0004] The present invention provides a welding apparatus for capacitor processing, which solves the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A welding apparatus for capacitor processing includes a mounting base, a fixed central frame on the mounting base, a position adjustment mechanism on the fixed central frame, a welding torch adjustment mechanism on the position adjustment mechanism, two symmetrically arranged rotating clamping mechanisms on the fixed central frame, and a synchronous conveying assembly on the fixed central frame. The synchronous conveying assembly includes a fixed side plate, a conveyor belt mechanism, a lifting adjustment mechanism, a position adjustment frame mechanism, a rotating dial mechanism, and a rotating drive mechanism. The fixed side plate is mounted on the mounting base, the lifting adjustment mechanism is mounted on the fixed side plate, the position adjustment frame mechanism is mounted on the lifting adjustment mechanism, the rotating dial mechanism is mounted on the position adjustment frame mechanism, and the rotating drive mechanism is mounted on the lifting adjustment mechanism. The position adjustment mechanism is used to adjust the position of the welding torch adjustment mechanism, the conveyor belt mechanism is used to drive the components to move, the lifting adjustment mechanism is used to adjust the height of the position adjustment frame mechanism, and the rotating drive mechanism is used to drive the rotating dial mechanism, which in turn moves the mating components synchronously.

[0007] As a preferred embodiment of the present invention, the position adjustment mechanism includes a first motor mounted on a fixed frame, the output shaft of the first motor being fixedly connected to a first threaded rod, the first threaded rod being rotatably connected to the fixed frame, the first threaded rod being threadedly connected to a position adjustment block, and the position adjustment block being slidably connected to the fixed frame.

[0008] As a preferred embodiment of the present invention, the welding torch adjustment mechanism includes a deflection seat fixed on a position adjustment block, a first linear motor rotatably connected to the deflection seat, a second motor provided on the deflection seat, the output shaft of the second motor being fixedly connected to the first linear motor, and the welding torch being fixedly connected to the end of the first linear motor.

[0009] As a preferred embodiment of the present invention, the rotary clamping mechanism includes a second linear motor fixed to a fixed central frame, a height adjustment block fixedly connected to the end of the second linear motor, the height adjustment block and the fixed central frame being slidably connected, a third linear motor fixedly connected to the height adjustment block, a feed plate fixedly connected to the end of the third linear motor, a third motor mounted on the feed plate, a deflection shaft fixedly connected to the output shaft of the third motor, the deflection shaft passing through the height adjustment block, the deflection shaft and the height adjustment block being slidably connected, a deflection plate fixedly connected to the deflection shaft, two clamping dial frames mounted on the deflection plate, a fourth motor mounted on the clamping dial frames, the output shaft of the fourth motor fixedly connected to a concave dial, the concave dial and the clamping dial frames being rotatably connected.

[0010] As a preferred embodiment of the present invention, the conveyor belt mechanism includes a plurality of conveyor belt pulleys disposed on a fixed side plate, the conveyor belt pulleys drive the conveyor belt, a fifth motor is disposed on the side of the fixed side plate, and the output shaft of the fifth motor is coaxially and fixedly connected to one of the conveyor belt pulleys.

[0011] As a preferred embodiment of the present invention, the lifting and adjusting mechanism includes a second threaded rod rotatably connected to the fixed side plate, the second threaded rod rotatably connected to the top frame, a first motor base on the top frame, a sixth motor on the first motor base, the sixth motor being a double-headed motor, the output shaft of the sixth motor being fixedly connected to two first drive shafts, the first drive shafts being fixedly connected to a first bevel gear, the first bevel gear meshing with a second bevel gear, the second bevel gear and the second threaded rod being coaxially fixedly connected, and the second threaded rod being threadedly connected to the lifting bar.

[0012] As a preferred embodiment of the present invention, the position adjustment frame mechanism includes a seventh motor mounted on the lifting plate, the output shaft of the seventh motor being fixedly connected to a second drive shaft, and the second drive shaft having two symmetrically arranged threaded grooves.

[0013] As a preferred embodiment of the present invention, the rotating paddle mechanism includes a threaded sleeve threadedly connected to a second drive shaft, a support frame fixedly connected to the threaded sleeve, a first paddle wheel rotatably connected to the outer side of the threaded sleeve, a paddle wheel drivingly connected to a paddle belt, a plurality of paddle plates provided on the paddle belt, a second paddle wheel drivingly connected to the paddle belt, a chuck sleeve fixedly connected to the second paddle wheel, and a chuck sleeve and a support frame rotatably connected.

[0014] As a preferred embodiment of the present invention, the rotary drive mechanism includes a second motor base fixed to the top frame, an eighth motor mounted on the second motor base, the eighth motor being a double-headed motor, the output shaft of the eighth motor being fixedly connected to two third drive shafts, the third drive shafts being fixedly connected to a third bevel gear, the third bevel gear meshing with a fourth bevel gear, the fourth bevel gear being coaxially fixedly connected to the fourth drive shaft, the fourth drive shaft having a first drive groove along its axial direction, the lifting bar being rotatably connected to a drive sleeve, the fourth drive shaft passing through the drive sleeve, the drive sleeve having a first retaining bar located within the first drive groove, the outer side of the drive sleeve being fixedly connected to a fifth bevel gear, the fifth bevel gear meshing with a sixth bevel gear, the sixth bevel gear being fixedly connected to the fifth drive shaft, the fifth drive shaft passing through a retaining wheel sleeve, the fifth drive shaft having a second drive groove along its axial direction, the retaining wheel sleeve having a second retaining bar located within the second drive groove, and the fifth drive shaft and the lifting bar being rotatably connected.

[0015] The present invention has the following advantages:

[0016] The lateral position of the welding torch adjustment mechanism can be adjusted by setting a position adjustment mechanism, which can be used to weld capacitors. The rotating clamping mechanism can clamp, fix and reposition workpieces of different sizes. The position adjustment frame mechanism can adjust the distance between the two rotating plate mechanisms. The height of the rotating plate mechanism can be adjusted by the lifting adjustment mechanism. The rotating drive mechanism can drive the rotating plate mechanism, thereby coordinating the transport of capacitor accessories of different sizes and increasing the efficiency of capacitor positioning welding. Attached Figure Description

[0017] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0018] Figure 1 This is a first-view structural schematic diagram of a welding device for capacitor processing.

[0019] Figure 2 This is a schematic diagram of a welding device for capacitor processing from a second perspective.

[0020] Figure 3 This is a schematic diagram of the rotating clamping mechanism in a welding device for capacitor processing.

[0021] Figure 4 This is a schematic diagram of the synchronous conveying component in a welding apparatus for capacitor processing.

[0022] Figure 5 This is a schematic diagram of the synchronous conveying component in a welding apparatus for capacitor processing.

[0023] In the diagram: 1. Mounting base; 2. Fixed frame; 3. Position adjustment mechanism; 301. First motor; 302. First threaded rod; 303. Position adjustment block; 4. Welding torch adjustment mechanism; 401. Deflection seat; 402. First linear motor; 403. Second motor; 404. Welding torch; 5. Rotary clamping mechanism; 501. Second linear motor; 502. Height adjustment block; 503. Third linear motor; 504. Feed plate; 505. Third motor; 506. Deflection shaft; 507. Deflection plate; 508. Clamping dial frame; 509. Fourth motor; 510. Concave dial; 6. Fixed side plate; 7. Conveyor belt mechanism; 701. Conveyor belt pulley; 702. Conveyor belt; 703. Fifth motor; 8. Lifting adjustment mechanism; 801. Second threaded rod; 802. Top frame; 803. First motor seat; 804. Sixth motor; 805. 806. First drive shaft; 807. First bevel gear; 808. Second bevel gear; 809. Lifting bar; 9000. Position adjustment frame mechanism; 901. Seventh motor; 902. Second drive shaft; 903. Threaded groove; 10. Rotating dial plate mechanism; 1001. Threaded sleeve; 1002. Support frame; 1003. First pulley; 1004. Pulling belt; 1005. Dial plate; 1006. Second pulley; 1007. Snap roller sleeve; 11. Rotary drive mechanism; 1101. Second motor base; 1102. Eighth motor; 1103. Third drive shaft; 1104. Third bevel gear; 1105. Fourth bevel gear; 1106. Fourth drive shaft; 1107. First drive groove; 1108. Drive sleeve; 1109. Fifth bevel gear; 1110. Sixth bevel gear; 1111. Fifth drive shaft; 1112. Second drive groove. Detailed Implementation

[0024] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.

[0025] It should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the present invention.

[0026] Example 1, please refer to Figures 1-5A welding device for capacitor processing includes a mounting base 1, a fixed central frame 2 on the mounting base 1, a position adjustment mechanism 3 on the fixed central frame 2, a welding torch adjustment mechanism 4 on the position adjustment mechanism 3, two symmetrically arranged rotating clamping mechanisms 5 on the fixed central frame 2, and a synchronous conveying assembly on the fixed central frame 2. The synchronous conveying assembly includes a fixed side plate 6, a conveyor belt mechanism 7, a lifting adjustment mechanism 8, a position adjustment frame mechanism 9, a rotating dial mechanism 10, and a rotating drive mechanism 11. The fixed side plate 6 is mounted on the mounting base 1, the lifting adjustment mechanism 8 is mounted on the fixed side plate 6, the position adjustment frame mechanism 9 is mounted on the lifting adjustment mechanism 8, the rotating dial mechanism 10 is mounted on the position adjustment frame mechanism 9, and the rotating drive mechanism 11 is mounted on the lifting adjustment mechanism 8. The position adjustment mechanism 3 is used to adjust the position of the welding torch adjustment mechanism 4, the conveyor belt mechanism 7 is used to drive the component to move, the lifting adjustment mechanism 8 is used to adjust the height of the position adjustment frame mechanism 9, and the rotating drive mechanism 11 is used to drive the rotating dial mechanism 10, which in turn moves the mating component synchronously.

[0027] The welding torch adjustment mechanism 4 includes a deflection seat 401 fixed on the position adjustment block 303. The deflection seat 401 is rotatably connected to a first linear motor 402. A second motor 403 is provided on the deflection seat 401. The output shaft of the second motor 403 is fixedly connected to the first linear motor 402. The end of the first linear motor 402 is fixedly connected to the welding torch 404.

[0028] Specifically, turning on the second motor 403 can drive the first linear motor 402 to deflect, thereby driving the welding torch 404 to deflect. At this time, turning on the first linear motor 402 can drive the welding torch 404 to feed, and the welding of main components and capacitor accessories can be achieved through the welding torch 404.

[0029] The rotating clamping mechanism 5 includes a second linear motor 501 fixed on the fixed frame 2. The end of the second linear motor 501 is fixedly connected to a height adjustment block 502. The height adjustment block 502 and the fixed frame 2 are slidably connected. The height adjustment block 502 is fixedly connected to a third linear motor 503. The end of the third linear motor 503 is fixedly connected to a feed plate 504. The feed plate 504 is equipped with a third motor 505. The output shaft of the third motor 505 is fixedly connected to a deflection shaft 506. The deflection shaft 506 passes through the height adjustment block 502. The deflection shaft 506 and the height adjustment block 502 are slidably connected. The deflection shaft 506 is fixedly connected to a deflection plate 507. The deflection plate 507 is equipped with two clamping dial frames 508. The clamping dial frames 508 are equipped with a fourth motor 509. The output shaft of the fourth motor 509 is fixedly connected to a concave dial 510. The concave dial 510 and the clamping dial frames 508 are rotatably connected.

[0030] Specifically, activating the second linear motor 501 can drive the height adjustment block 502 to rise or fall. Activating the third linear motor 503 can drive the feed plate 504 to feed, which in turn drives the deflection shaft 506 to feed, which in turn drives the concave dial 510 to feed, so that the concave dial 510 abuts against the main component. At this time, activating the fourth motor 509 can drive the concave dial 510 to rotate, thereby causing the main component to rotate. Activating the third motor 505 can drive the deflection shaft 506 to rotate, which in turn drives the deflection plate 507 to deflect, which in turn drives the concave dial 510 to deflect, causing the component to deflect and change position. Activating the second linear motor 501 can drive the component to rise or fall.

[0031] The conveyor belt mechanism 7 includes a plurality of conveyor belt pulleys 701 mounted on a fixed side plate 6. The conveyor belt pulleys 701 drive the conveyor belt 702. A fifth motor 703 is mounted on the side of the fixed side plate 6. The output shaft of the fifth motor 703 is coaxially and fixedly connected to one of the conveyor belt pulleys 701.

[0032] Specifically, turning on the fifth motor 703 will drive the conveyor belt pulley 701 to rotate, which in turn drives the conveyor belt 702 to rotate, thereby moving the components on the conveyor belt 702.

[0033] The lifting and adjusting mechanism 8 includes a second threaded rod 801 rotatably connected to the fixed side plate 6. The second threaded rod 801 is rotatably connected to the top frame 802. The top frame 802 is provided with a first motor base 803. The first motor base 803 is provided with a sixth motor 804. The sixth motor 804 is a double-headed motor. The output shaft of the sixth motor 804 is fixedly connected to two first drive shafts 805. The first drive shafts 805 are fixedly connected to a first bevel gear 806. The first bevel gear 806 meshes with a second bevel gear 807. The second bevel gear 807 and the second threaded rod 801 are coaxially fixedly connected. The second threaded rod 801 is threadedly connected to the lifting bar 808.

[0034] Specifically, turning on the sixth motor 804 can drive the first drive shaft 805 to rotate. The rotation of the first drive shaft 805 will drive the first bevel gear 806 to rotate, which in turn will drive the second bevel gear 807 to rotate. The rotation of the second bevel gear 807 will drive the second threaded rod 801 to rotate, which will cause the lifting bar 808 to rise and fall along the axis of the second threaded rod 801.

[0035] The position adjustment frame mechanism 9 includes a seventh motor 901 mounted on the lifting bar 808. The output shaft of the seventh motor 901 is fixedly connected to a second drive shaft 902. The second drive shaft 902 has two symmetrically arranged threaded grooves 903. The rotating dial mechanism 10 includes a threaded sleeve 1001 threadedly connected to the second drive shaft 902. The threaded sleeve 1001 is fixedly connected to a support frame 1002. The outer side of the threaded sleeve 1001 is rotatably connected to a first pulley 1003. The first pulley 1003 is driven by a pulley 1004. The pulley 1004 has several dials 1005. The pulley 1004 is driven by a second pulley 1006. The second pulley 1006 is fixedly connected to a retaining ring sleeve 1007. The retaining ring sleeve 1007 and the support frame 1002 are rotatably connected. The rotary drive mechanism 11 includes a second motor base 1101 fixed to the top frame 802, an eighth motor 1102 mounted on the second motor base 1101, the eighth motor 1102 being a double-headed motor, the output shaft of the eighth motor 1102 being fixedly connected to two third drive shafts 1103, the third drive shafts 1103 being fixedly connected to a third bevel gear 1104, the third bevel gear 1104 meshing with a fourth bevel gear 1105, the fourth bevel gear 1105 being coaxially fixedly connected to a fourth drive shaft 1106, the fourth drive shaft 1106 having a first drive groove 1107 along its axial direction, the lifting bar 808 being rotatably connected to a drive sleeve 1108, the fourth drive shaft 1 106 passes through the drive sleeve 1108. The drive sleeve 1108 is provided with a first retaining bar. The first retaining bar is located in the first drive groove 1107. The outer side of the drive sleeve 1108 is fixedly connected to the fifth bevel gear 1109. The fifth bevel gear 1109 meshes with the sixth bevel gear 1110. The sixth bevel gear 1110 is fixedly connected to the fifth drive shaft 1111. The fifth drive shaft 1111 passes through the chuck sleeve 1007. The axial direction of the fifth drive shaft 1111 is provided with a second drive groove 1112. The chuck sleeve 1007 is provided with a second retaining bar. The second retaining bar is located in the second drive groove 1112. The fifth drive shaft 1111 and the lifting bar 808 are rotatably connected.

[0036] Specifically, turning on the seventh motor 901 can drive the second drive shaft 902 to rotate, which in turn drives the threaded groove 903 to rotate, thereby adjusting the distance between the two threaded sleeves 1001, and thus adjusting the distance between the two support frames 1002, so as to accommodate the placement of capacitor accessories of different sizes.

[0037] Furthermore, activating the eighth motor 1102 drives the third drive shaft 1103 to rotate, which in turn drives the third bevel gear 1104 to rotate, which in turn drives the fourth bevel gear 1105 to rotate, thereby driving the fourth drive shaft 1106 to rotate, which in turn drives the first drive groove 1107 to rotate, which in turn drives the drive sleeve 1108 to rotate, which in turn drives the fifth bevel gear 1109 to rotate, which in turn drives the sixth bevel gear 1110 to rotate, which in turn drives the fifth drive shaft 1111 to rotate. This causes the second drive groove 1112 to rotate, which in turn drives the first locking bar to rotate, which in turn drives the locking wheel sleeve 1007 to rotate. The rotation of the locking wheel sleeve 1007 drives the second pulley 1006 to rotate, which in turn drives the pulley 1004 to rotate. The rotation of the pulley 1004 drives the lever 1005 to rotate, which is used to move the capacitor accessories on the support frame 1002.

[0038] Example 2, see below. Figures 1-3 In this embodiment of the invention, the position adjustment mechanism 3 includes a first motor 301 mounted on a fixed frame 2. The output shaft of the first motor 301 is fixedly connected to a first threaded rod 302. The first threaded rod 302 is rotatably connected to the fixed frame 2. The first threaded rod 302 is threadedly connected to a position adjustment block 303. The position adjustment block 303 is slidably connected to the fixed frame 2.

[0039] In the implementation of this invention, the main components to be welded are first placed on the conveyor belt mechanism 7. At this time, the capacitor accessories to be welded are placed on the position adjustment frame mechanism 9. Specifically, when different sizes of capacitor accessories need to be installed, the position adjustment frame mechanism 9 is activated to adjust the distance between the two rotating dial mechanisms 10. Then, the lifting adjustment mechanism 8 is activated to adjust the height of the position adjustment frame mechanism 9, thereby adjusting the height of the capacitor accessories to achieve close installation between the capacitor accessories and the main components. At this time, activating the conveyor belt mechanism 7 can drive the main components to move, while activating the rotary drive mechanism 11 can drive the rotating dial mechanism 10, which can move the capacitor accessories. Activating the position adjustment mechanism 3 can drive the welding gun adjustment mechanism 4 to shift laterally, and activating the welding gun adjustment mechanism 4 can realize the welding processing of the main components and capacitor accessories.

[0040] This invention enables the lateral position adjustment of the welding torch adjustment mechanism 4 by setting a position adjustment mechanism 3, which, in conjunction with the welding torch adjustment mechanism 4, enables the welding of capacitors. The rotating clamping mechanism 5 enables the clamping, fixing, and repositioning of workpieces of different sizes. The position adjustment frame mechanism 9 enables the adjustment of the distance between the two rotating dial mechanisms 10. The lifting adjustment mechanism 8 enables the adjustment of the height of the rotating dial mechanism 10. The rotating drive mechanism 11 enables the driving of the rotating dial mechanism 10, thereby enabling the coordinated transport of capacitor accessories of different sizes and increasing the efficiency of capacitor positioning welding.

[0041] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. 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. A welding apparatus for capacitor processing, comprising a mounting base, characterized in that, The mounting base is equipped with a fixed central frame, which in turn is equipped with a position adjustment mechanism. The position adjustment mechanism is further equipped with a welding torch adjustment mechanism. The fixed central frame also features two symmetrically arranged rotating clamping mechanisms and a synchronous conveying assembly. This synchronous conveying assembly includes a fixed side plate, a conveyor belt mechanism, a lifting and adjusting mechanism, a position adjustment frame mechanism, a rotating dial mechanism, and a rotating drive mechanism. The fixed side plate is mounted on the mounting base, the lifting and adjusting mechanism is mounted on the fixed side plate, the position adjustment frame mechanism is mounted on the lifting and adjusting mechanism, the rotating dial mechanism is mounted on the position adjustment frame mechanism, and the rotating drive mechanism is mounted on the lifting and adjusting mechanism. The position adjustment mechanism adjusts the position of the welding torch adjustment mechanism, the conveyor belt mechanism drives the component to move, the lifting and adjusting mechanism adjusts the height of the position adjustment frame mechanism, and the rotating drive mechanism drives the rotating dial mechanism, which in turn moves the mating components synchronously.

2. The welding apparatus for capacitor processing according to claim 1, characterized in that, The position adjustment mechanism includes a first motor mounted on a fixed central frame, the output shaft of the first motor being fixedly connected to a first threaded rod, the first threaded rod being rotatably connected to the fixed central frame, the first threaded rod being threadedly connected to a position adjustment block, and the position adjustment block being slidably connected to the fixed central frame.

3. The welding apparatus for capacitor processing according to claim 2, characterized in that, The welding torch adjustment mechanism includes a deflection seat fixed on a position adjustment block, a first linear motor rotatably connected to the deflection seat, a second motor mounted on the deflection seat, the output shaft of the second motor being fixedly connected to the first linear motor, and the welding torch being fixedly connected to the end of the first linear motor.

4. The welding apparatus for capacitor processing according to claim 1, characterized in that, The rotary clamping mechanism includes a second linear motor fixed to a fixed central frame. The end of the second linear motor is fixedly connected to a height adjustment block, which is slidably connected to the fixed central frame. The height adjustment block is fixedly connected to a third linear motor, and the end of the third linear motor is fixedly connected to a feed plate. The feed plate is equipped with a third motor, and the output shaft of the third motor is fixedly connected to a deflection shaft. The deflection shaft passes through the height adjustment block and is slidably connected to the height adjustment block. The deflection shaft is fixedly connected to a deflection plate, which is equipped with two clamping dial frames. A fourth motor is mounted on the clamping dial frames, and the output shaft of the fourth motor is fixedly connected to a concave dial. The concave dial and the clamping dial frames are rotatably connected.

5. The welding apparatus for capacitor processing according to claim 1, characterized in that, The conveyor belt mechanism includes several conveyor belt pulleys mounted on a fixed side plate. The conveyor belt pulleys drive the conveyor belt. A fifth motor is provided on the side of the fixed side plate. The output shaft of the fifth motor is coaxially and fixedly connected to one of the conveyor belt pulleys.

6. The welding apparatus for capacitor processing according to claim 5, characterized in that, The lifting and adjusting mechanism includes a second threaded rod rotatably connected to the fixed side plate, the second threaded rod rotatably connected to the top frame, a first motor base on the top frame, a sixth motor on the first motor base, the sixth motor being a double-headed motor, the output shaft of the sixth motor being fixedly connected to two first drive shafts, the first drive shafts being fixedly connected to a first bevel gear, the first bevel gear meshing with a second bevel gear, the second bevel gear and the second threaded rod being coaxially fixedly connected, and the second threaded rod being threadedly connected to the lifting bar.

7. The welding apparatus for capacitor processing according to claim 6, characterized in that, The position adjustment frame mechanism includes a seventh motor mounted on the lifting plate. The output shaft of the seventh motor is fixedly connected to a second drive shaft, and the second drive shaft has two symmetrically arranged threaded grooves.

8. The welding apparatus for capacitor processing according to claim 7, characterized in that, The rotating paddle mechanism includes a threaded sleeve threadedly connected to a second drive shaft, a support frame fixedly connected to the threaded sleeve, a first paddle wheel rotatably connected to the outer side of the threaded sleeve, a paddle wheel drivingly connected to a paddle belt, a plurality of paddles on the paddle belt, a second paddle wheel drivingly connected to the paddle belt, a chuck sleeve fixedly connected to the second paddle wheel, and a chuck sleeve rotatably connected to the support frame.

9. The welding apparatus for capacitor processing according to claim 8, characterized in that, The rotary drive mechanism includes a second motor base fixed to the top frame, an eighth motor mounted on the second motor base, the eighth motor being a double-headed motor, the output shaft of the eighth motor being fixedly connected to two third drive shafts, the third drive shafts being fixedly connected to a third bevel gear, the third bevel gear meshing with a fourth bevel gear, the fourth bevel gear being coaxially fixedly connected to the fourth drive shaft, the fourth drive shaft having a first drive groove along its axial direction, the lifting bar being rotatably connected to a drive sleeve, the fourth drive shaft passing through the drive sleeve, the drive sleeve having a first retaining bar located within the first drive groove, the outer side of the drive sleeve being fixedly connected to a fifth bevel gear, the fifth bevel gear meshing with a sixth bevel gear, the sixth bevel gear being fixedly connected to the fifth drive shaft, the fifth drive shaft passing through a retaining wheel sleeve, the fifth drive shaft having a second drive groove along its axial direction, the retaining wheel sleeve having a second retaining bar located within the second drive groove, the fifth drive shaft and the lifting bar being rotatably connected.

Citation Information

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