High-precision welding equipment for adaptive adjustment of inductance processing

CN121104424BActive Publication Date: 2026-08-14SHENZHEN MINGYUAN AUTOMATION EQUIP CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202511473346.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-10-15
Publication Date
2026-08-14
Estimated Expiration
2045-10-15

AI Technical Summary

Technical Problem

[0005]本发明的目的在于提供自适应调整的电感加工用高精度焊接设备,去解决人工将扭曲形态的线圈与电子元件对接,降低了对接精度和产品的焊接质量,以及不利于工作效率提高的技术问题

Benefits of technology

(1)本发明中,气缸连接的支撑板可以对线圈的环形骨架起到限位连接的作用,然后导线的两个端部可以放置在第一导向槽中,气缸的活动,可以让导线分布在第一导向槽中而且通过来回的移动,可以便于后序的压合以及清洁工作。

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121104424B_ABST
    Figure CN121104424B_ABST
Patent Text Reader

Abstract

This invention discloses a high-precision welding device for adaptive adjustment inductor processing, belonging to the technical field of inductor processing equipment. It includes a positioning and pressing mechanism, comprising a first U-shaped plate fixed to a base plate, a first motor mounted on the first U-shaped plate, the output shaft of the first motor extending to a rotating shaft, and a first pressure roller and a cleaning roller movably connected to both ends of the rotating shaft via steering rods. A T-shaped rod is integrally formed on the outer wall of the steering rod, and the T-shaped rod is connected to a movable rod by abutting contact. The bottom of the movable rod is connected to a push block via a Y-axis spring, and a second pressure roller is movably connected to the push block. This invention solves the technical problem that manually connecting twisted coils to electronic components reduces the connection accuracy and welding quality of the product, and hinders work efficiency.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention belongs to the technical field of inductor processing equipment, specifically relating to a high-precision welding equipment for adaptive adjustment inductor processing. Background Technology

[0002] Inductance usually refers to an inductor, which is a component that converts electrical energy into magnetic energy and stores it. The structure of an inductor is similar to a transformer, but it has only one winding. An inductor has a certain inductance, which only impedes changes in current. If no current is flowing through the inductor, it will attempt to impede the current flow when the circuit is closed; if current is flowing through the inductor, it will attempt to maintain a constant current when the circuit is open. Inductors are also called chokes, reactors, or dynamic reactors.

[0003] Inductors can be made by winding a conductive material around a magnetic core, typically copper wire. The core can also be removed or replaced with a ferromagnetic material. A core material with a higher permeability than air can more tightly confine the magnetic field around the inductor, thus increasing the inductance. There are many types of inductors, most of which are made with an outer ceramic coil and a ferrite bobbin. Some protective inductors place the coil entirely within the ferrite core. Inductors primarily function in circuits for filtering, oscillation, delay, and notch filtering. They also perform functions such as signal screening, noise filtering, current stabilization, and electromagnetic interference suppression. The most common application of inductors in circuits is in conjunction with capacitors to form LC filter circuits.

[0004] A toroidal coil is made by winding metal wire around a ring-shaped frame. When soldering the end of the toroidal coil to the circuit board or the pin of an electronic component, the coil end is usually irregularly twisted. Therefore, it is usually necessary to manually pinch the coil end to make it touch the pin of the electronic component. On the one hand, manual operation is inconvenient, which reduces the docking accuracy and the soldering quality of the product. On the other hand, it is not conducive to improving work efficiency. At the same time, it is easy to cause cold solder joints or solder joints to fall off, which seriously affects the stability and reliability of subsequent circuits. Summary of the Invention

[0005] The purpose of this invention is to provide a high-precision welding equipment for adaptive adjustment inductor processing, in order to solve the technical problems that manually connecting twisted coils to electronic components reduces the welding accuracy and product quality, and is detrimental to improving work efficiency.

[0006] To achieve the above objectives, the present invention adopts the following technical solution: High-precision welding equipment for adaptively adjusting inductor machining includes: The positioning and pressing mechanism includes a first U-shaped plate fixed on a base plate, a first motor mounted on the first U-shaped plate, the output shaft of the first motor extending to a rotating shaft, and steering rods rotatably connected to both ends of the rotating shaft. A first pressure roller and a cleaning roller are rotatably connected to the ends of the two steering rods away from the rotating shaft, and a T-shaped rod is integrally formed on the outer wall of the steering rod. The T-shaped rod can abut against and fit against the movable rod. The bottom of the movable rod is connected to the push block by a Y-axis spring. A second pressure roller is movably connected to the push block. The second pressure roller is rolled on the first guide groove in the length direction of the first worktable. One end of the push block is connected to a fixed block placed on the first worktable by an X-axis spring. The movable rod and the first slider in the frame are connected by a first swing rod, and a first pressure plate extending into the first guide groove is connected to the first slider by a bracket; The first slider is slidably connected to the strip groove in the height direction of the frame. The two ends of the first swing rod are rotatably connected to the first slider and the movable rod, respectively. The corners of the outer walls of both ends of the T-shaped rod are connected with slopes. The connection between the bottom of the frame and the first worktable is fixed by locking with positioning pins. It also includes an adjusting welding mechanism, which includes a second U-shaped plate fixed on the base plate, a second motor fixedly connected to the second U-shaped plate, an output shaft of the second motor extending to a reciprocating screw, and two second sliders moving in opposite directions driven by the reciprocating screw. The second sliders are equipped with guide posts connected to the second U-shaped plate, and the outer walls of the guide posts are slidably connected to the movable openings of the second sliders.

[0007] Furthermore, the T-shaped rod is symmetrically arranged with respect to the center of the first workbench, and the fixing block is fixed in the slot on the first workbench by a plug-in installation method.

[0008] Furthermore, a cylinder is fixedly installed on one side of the bottom end of the first workbench, and one end of the piston rod on the cylinder extends to the support plate. A first limiting block adapted to the first workbench is installed on the support plate, and the outer edge of the rotating shaft is rotatably connected in the rolling groove of the first U-shaped plate.

[0009] Furthermore, the bottom of the second slider is mounted on the welder via a vertical rod, and a second worktable is provided directly below the welder. A second guide groove is provided along the length of the second worktable, and one end of the second guide groove is provided with a receiving port for connecting to electronic components.

[0010] Furthermore, the vertical rod and the movable block are connected by a second swing rod. The movable block is movably connected to the limiting groove in the height direction of the baffle, and the top of the baffle is connected to the second U-shaped plate by a mounting rod. The extended end of the bottom of the movable block extends to the first gear plate. The outer wall of the first gear plate is driven by a second gear plate that moves in the opposite direction through the meshing of the central rotating teeth. The bottom of the second gear plate penetrates the housing and is connected to the second pressure plate through a bending rod.

[0011] Furthermore, the upper end of the mounting rod is fixed to the second U-shaped plate, the lower end of the mounting rod is set in a U-shape, and the baffle is provided with an insertion hole for connecting to the guide post. The bottom of the second pressure plate is directly opposite the second guide groove of the second workbench. Both ends of the second swing rod are mounted on the vertical rod and the moving block by means of rotational connection, and the top of the housing is fixed to the baffle.

[0012] Furthermore, the second worktable has a telescopic structure design, and the bottom of the second worktable is connected to a translation groove placed on the base plate via a third slider. A panel is fixedly connected to the base plate, and a second limiting block connected to an inductor is provided on the panel.

[0013] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are: (1) In this invention, the support plate connected by the cylinder can limit the connection of the coil's ring frame. Then, the two ends of the wire can be placed in the first guide groove. The movement of the cylinder can distribute the wire in the first guide groove, and the back-and-forth movement can facilitate subsequent pressing and cleaning.

[0014] (2) In this invention, after the first motor starts, it can drive the rotating shaft to rotate. The rotating shaft drives the first pressure roller and the cleaning roller on the steering rod to rotate synchronously. During the rotation, the first pressure roller adjusts the flatness of the wire by rolling and pressing. The cleaning roller can ensure the cleanliness of the wire surface by rotating and rubbing to clean, thereby improving the welding quality of the subsequent process. During the rotation, the steering rod is connected to the movable rod by contacting and fitting. With the help of the X-axis spring on the fixed block, the movable rod can drive the second pressure roller to move horizontally back and forth by utilizing the elastic recovery effect of the spring itself. The flatness of the wire is improved by rolling and pressing. In addition, during the movement, the movable rod can move up and down by means of the rotational connection of the first swing rod, thereby allowing the first pressure plate to further improve the flatness of the wire by collision and pressing, which greatly facilitates the improvement of the welding quality of the subsequent process. The Y-axis spring on the movable rod can play a certain buffering and adjustment role in its movement, increasing the stability of the equipment operation. The flatness of the wire is ensured by combining multiple pressing methods, which effectively improves the product quality.

[0015] (3) In this invention, the second motor drives the reciprocating screw to rotate during startup. With the guide column on the second U-shaped plate, the second sliders at both ends can move in opposite directions. With the telescopic structure design of the second worktable, it can adaptively support and fix inductors of different widths and sizes. Moreover, the receiving port is convenient for placing electronic components, which facilitates the welding work between wires and electronic components. At the same time, during the process of the vertical rod moving closer to the center, it means that the welder reaches the corresponding welding point. Under the rotational connection of the second swing rod, the moving block moves upward, and under the action of gear meshing transmission, the power is reversed and adjusted, which in turn allows the second gear plate to drive the second pressure plate to move downward. Through the action of contact pressing, the stability of the wire being pressed is ensured, and the shaking phenomenon during the welding process is prevented. Moreover, it can achieve adaptive contact pressing work according to wires of different spacing sizes. The design is reasonable, the integration is strong, and the safety effect of the device is guaranteed, which effectively improves the applicability of the equipment. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the structure of the high-precision welding equipment for adaptive adjustment inductor machining according to the present invention. Figure 1 ; Figure 2 This is a schematic diagram of the structure of the high-precision welding equipment for adaptive adjustment inductor machining according to the present invention. Figure 2 ; Figure 3 This is a front view of the high-precision welding equipment for adaptive adjustment of inductor processing according to the present invention; Figure 4 This is a right view of the adaptively adjustable high-precision welding equipment for inductor processing according to the present invention. Figure 5 This is a schematic diagram of the connection between the rotating shaft and the steering rod of the present invention; Figure 6 This is the present invention. Figure 1 Enlarged view of point A; Figure 7 This is a schematic diagram of the interior of the casing of the present invention; Figure 8 This is a schematic diagram of the structure of the second worktable of the present invention.

[0018] Reference numerals: 1. Positioning and pressing mechanism; 2. First U-shaped plate; 3. First motor; 4. Rotating shaft; 5. Steering rod; 6. First pressure roller; 7. Cleaning roller; 8. T-shaped rod; 9. Movable rod; 10. Y-axis spring; 11. Pushing block; 12. Second pressure roller; 13. First worktable; 14. First guide groove; 15. X-axis spring; 16. Fixing block; 17. Frame; 18. First slider; 19. First swing rod; 20. First pressure plate; 21. Cylinder; 22. Support plate; 23. First limit block; 24. 25. Adjusting welding mechanism; 26. Second U-shaped plate; 27. Second motor; 28. Reciprocating lead screw; 29. ​​Second slider; 30. Guide column; 31. Vertical rod; 32. Welder; 33. Second guide groove; 34. Receiving port; 35. Moving block; 36. Second swing rod; 37. Baffle; 38. Housing; 39. First gear plate; 40. Central rotating tooth; 41. Second gear plate; 42. Bending rod; 43. Second pressure plate; 44. Third slider; 45. Panel; 46. Second limit block. Detailed Implementation

[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0020] Reference manual attached Figure 1 -Appendix Figure 8 As shown, the adaptive adjustment high-precision welding equipment for inductor processing includes: a positioning and pressing mechanism 1, which includes a first U-shaped plate 2 fixed on a base plate, a first motor 3 mounted on the first U-shaped plate 2, the output shaft of the first motor 3 extending to a rotating shaft 4, and two rotatably connected steering rods 5 at both ends of the rotating shaft 4, with a first pressure roller 6 and a cleaning roller 7 rotatably connected at the ends of the two steering rods 5 away from the rotating shaft 4, and a T-shaped rod 8 integrally formed on the outer wall of the steering rod 5, which can abut and fit against the movable rod 9; The bottom of the movable rod 9 is connected to the push block 11 via a Y-axis spring 10. A second pressure roller 12 is movably connected to the push block 11. The second pressure roller 12 is rolled on the first guide groove 14 in the length direction of the first worktable 13. One end of the push block 11 is connected to a fixed block 16 placed on the first worktable 13 via an X-axis spring 15. The movable rod 9 and the first slider 18 in the frame 17 are connected via a first swing rod 19. A first pressure plate 20 extending into the first guide groove 14 is connected to the first slider 18 via a bracket. Under the rotational connection of the first swing rod 19, the horizontal rotational force of the second pressure roller 12 can be converted into the up-and-down movement force of the first pressure plate 20, thereby enabling the wires on the coil to perform rotational pressing and collision pressing.

[0021] The support plate 22 connected to the cylinder 21 can limit the connection of the coil's ring frame. Then, the two ends of the wire can be placed in the first guide groove 14. The movement of the cylinder 21 can distribute the wire in the first guide groove 14. By moving back and forth, the contact surface can be moved to facilitate subsequent pressing and cleaning.

[0022] Specifically, the first guide groove 14 on the first workbench 13 can effectively place the extension end of the coil. The support plate 22 connected to the cylinder 21, together with the first limiting block 23 on the support plate 22, can effectively position and clamp the ring coil skeleton. During the start-up process of the cylinder 21, it can pull the support plate 22 to move, thereby allowing the extension end wire on the coil to effectively contact the positioning and pressing mechanism 1. By expanding the contact surface, the flatness of the wire is ensured.

[0023] In addition, in order to accommodate wires on coils of different widths and sizes, the first worktable 13 can also be adapted to be a telescopic structure, so that the first guide groove 14 can come into contact with and fit wires of different widths and sizes.

[0024] After the first motor 3 starts, it can drive the rotation of the steering rod 5. Under the action of mechanical transmission, it can drive the rotation of the first pressure roller 6 and the cleaning roller 7. The first pressure roller 6 can effectively improve the flatness of the wires on the coil by rotating and pressing in conjunction with the rolling and pressing of the second pressure roller 12. Moreover, the first pressure plate 20 on the first slider 18 can further improve the flatness of the wires by pressing during the up and down movement.

[0025] The first slider 18 is slidably connected to the strip groove in the height direction of the frame 17. The two ends of the first swing rod 19 are rotatably connected to the first slider 18 and the movable rod 9, respectively. The corners of the outer walls at both ends of the T-shaped rod 8 are connected with slopes. The connection between the bottom of the frame 17 and the first worktable 13 is fixed by locking with a positioning pin. The slope is relative to the rounded corners of the structure. By expanding the contact surface, the pressure of the transmission components during the movement is reduced, thereby improving the service life of the device.

[0026] The T-shaped rod 8 is symmetrically arranged with respect to the center of the first worktable 13. The fixing block 16 is fixed in the slot on the first worktable 13 by plug-in installation. The shape of the T-shaped rod 8 itself can prevent structural interference during movement and prevent the T-shaped rod 8 from colliding with the first worktable 13 when rotating.

[0027] A cylinder 21 is fixedly installed on one side of the bottom of the first worktable 13. One end of the piston rod on the cylinder 21 extends to the support plate 22. A first limiting block 23 adapted to the first worktable 13 is installed on the support plate 22. The outer edge of the rotating shaft 4 is rotatably connected to the rolling groove of the first U-shaped plate 2.

[0028] The adaptive adjustment high-precision welding equipment for inductor processing also includes an adjustment welding mechanism 24. The adjustment welding mechanism 24 includes a second U-shaped plate 25 fixed on the base plate. A second motor 26 is fixedly connected to the second U-shaped plate 25. The output shaft of the second motor 26 extends to a reciprocating screw 27. The reciprocating screw 27 has two second sliders 28 that move in opposite directions. A guide post 29 connected to the second U-shaped plate 25 is installed on the second slider 28, and the outer wall of the guide post 29 is slidably connected to the movable opening of the second slider 28.

[0029] The bottom of the second slider 28 is mounted on the welder 31 via a vertical rod 30. A second worktable 32 is located directly below the welder 31. A second guide groove 33 is provided along the length of the second worktable 32. One end of the second guide groove 33 is provided with a receiving port 34 for connecting to electronic components. The output shaft of the second motor 26 and the reciprocating screw 27 can be fixedly connected by a coupling. This can achieve stable power transmission and prevent the force from shifting during transmission.

[0030] After the first motor 3 starts, it drives the rotating shaft 4 to rotate. The rotating shaft 4 drives the first pressure roller 6 and the cleaning roller 7 on the steering rod 5 to rotate synchronously. During the rotation, the first pressure roller 6 adjusts the flatness of the wire by rolling and pressing. The cleaning roller 7 ensures the cleanliness of the wire surface by rotating and rubbing, thereby improving the welding quality in the subsequent process. During the rotation, the steering rod 5 is connected to the movable rod 9 by contacting and adhering. With the help of the X-axis spring 15 on the fixed block 16, the elastic recovery of the spring allows the movable rod 9 to drive the second pressure roller 12 to move back and forth horizontally. The flatness of the wire is improved by rolling and pressing. In addition, during the movement of the movable rod 9, the first slider 18 can move up and down by means of the rotational connection of the first swing rod 19. This allows the first pressure plate 20 to further improve the flatness of the wire by collision and pressing, which greatly facilitates the improvement of the welding quality in the subsequent process. The Y-axis spring 10 on the movable rod 9 can play a certain buffering and adjustment role in its movement, increasing the stability of the equipment. By combining multiple pressing methods, the flatness of the wire is ensured, effectively improving the product quality.

[0031] The vertical rod 30 and the movable block 35 are connected by the second swing rod 36. The movable block 35 is movably connected to the limiting groove in the height direction of the baffle 37, and the top of the baffle 37 is connected to the second U-shaped plate 25 by the mounting rod. The extended end of the bottom of the movable block 35 passes through the housing 38 and extends to the first gear plate 39. The outer wall of the first gear plate 39 is connected to the second gear plate 41 that moves in the opposite direction by the meshing of the central rotating tooth 40. The bottom of the second gear plate 41 passes through the housing 38 and is connected to the second pressure plate 43 by the bending rod 42.

[0032] The upper end of the mounting rod is fixed on the second U-shaped plate 25, the lower end of the mounting rod is set in a square shape, and the baffle 37 is provided with an insertion hole for connecting with the guide post 29. The bottom of the second pressure plate 43 is directly opposite the second guide groove 33 of the second worktable 32. Both ends of the second swing rod 36 are mounted on the vertical rod 30 and the moving block 35 by means of rotational connection, and the top of the housing 38 is fixed on the baffle 37.

[0033] Specifically, the technical solution of adjusting the welding mechanism 24 in this invention is mainly to address the situation where the welding device 31 reaches the corresponding welding point during the centering and approaching movement. In the initial position, the welding device 31 is placed on both sides of the outer wall of the second workbench 32. During the centering movement, it can approach the welding position. This structural design can better adapt to the wire spacing of the extension ends of the coil with a large range of changes.

[0034] The second worktable 32 has a telescopic structure design, and the bottom of the second worktable 32 is connected to a translation groove placed on the base plate via a third slider 44. A panel 45 is fixedly connected to the base plate, and a second limiting block 46 connected to the inductor is provided on the panel 45. The bottom of the second worktable 32 is fixedly connected to the third slider 44 on all four sides, and the telescopic movement of the second worktable 32 can be driven by the translation groove. The distance between the second guide grooves 33 can be changed by the telescopic movement, so as to accommodate inductor wires with different spacing sizes.

[0035] During startup, the second motor 26 drives the reciprocating screw 27 to rotate. In conjunction with the guide column 29 on the second U-shaped plate 25, the second sliders 28 at both ends can move in opposite directions under the action of helical transmission. Combined with the telescopic design of the second worktable 32, it can adaptively support and fix inductors of different widths and sizes. The receiving opening 34 facilitates the placement of electronic components, thus facilitating the welding work between wires and electronic components. Simultaneously, as the vertical rod 30 moves closer to the center, it means that the welder 31 has reached the corresponding welding point. Under the rotational connection of the second swing rod 36, the moving block 35 moves upward, and under the action of gear meshing, the power is reversed and adjusted, causing the second gear plate 41 to drive the second pressure plate 43 downward. Through the action of contact and pressing, the stability of the wire is ensured, preventing shaking during welding. Furthermore, it can achieve adaptive contact and pressing work according to wires of different spacing sizes. The design is reasonable, highly integrated, and ensures the safety of the device during operation, effectively improving the applicability of the equipment.

[0036] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

[0037] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to specific implementations. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.

Claims

1. A high-precision welding equipment for adaptive adjustment inductor machining, characterized in that, include: The positioning and pressing mechanism (1) includes a first U-shaped plate (2) fixed on the base plate, a first motor (3) is installed on the first U-shaped plate (2), the output shaft of the first motor (3) extends to the rotating shaft (4), the two ends of the rotating shaft (4) are respectively rotatably connected to a steering rod (5), the two ends of the steering rod (5) away from the rotating shaft (4) are respectively rotatably connected to a first pressure roller (6) and a cleaning roller (7), a T-shaped rod (8) is integrally formed on the outer wall of the steering rod (5), and the T-shaped rod (8) can abut against and fit with the movable rod (9); The bottom of the movable rod (9) is connected to the push block (11) via a Y-axis spring (10). A second pressure roller (12) is movably connected to the push block (11). The second pressure roller (12) is rolled on the first guide groove (14) in the length direction of the first worktable (13). One end of the push block (11) is connected to a fixed block (16) placed on the first worktable (13) via an X-axis spring (15). The movable rod (9) and the first slider (18) in the frame (17) are connected by a first swing rod (19), and a first pressure plate (20) extending into the first guide groove (14) is connected to the first slider (18) by a bracket. The first slider (18) is slidably connected to the strip groove in the height direction of the frame (17). The two ends of the first swing rod (19) are rotatably connected to the first slider (18) and the movable rod (9) respectively. The corners of the outer walls of the two ends of the T-shaped rod (8) are connected to the slope. The bottom of the frame (17) and the first worktable (13) are connected by locking the connection with the positioning pin. It also includes an adjusting welding mechanism (24), which includes a second U-shaped plate (25) fixed on the base plate. A second motor (26) is fixedly connected to the second U-shaped plate (25). The output shaft of the second motor (26) extends to a reciprocating screw (27). The reciprocating screw (27) has two second sliders (28) that move in opposite directions. A guide post (29) connected to the second U-shaped plate (25) is installed on the second slider (28), and the outer wall of the guide post (29) is slidably connected to the movable opening of the second slider (28).

2. The adaptive adjustment high-precision welding equipment for inductor machining according to claim 1, characterized in that, The T-shaped rod (8) is symmetrically arranged with respect to the center of the first workbench (13), and the fixing block (16) is fixed in the slot on the first workbench (13) by plug-in installation.

3. The adaptive adjustment high-precision welding equipment for inductor machining according to claim 1, characterized in that, A cylinder (21) is fixedly installed on one side of the bottom end of the first workbench (13). One end of the piston rod on the cylinder (21) extends to the support plate (22). A first limiting block (23) adapted to the first workbench (13) is installed on the support plate (22). The outer edge of the rotating shaft (4) is rotatably connected to the rolling groove of the first U-shaped plate (2).

4. The adaptive adjustment high-precision welding equipment for inductor machining according to claim 1, characterized in that, The bottom of the second slider (28) is mounted on the welder (31) via a vertical rod (30). A second workbench (32) is provided directly below the welder (31). A second guide groove (33) is provided along the length of the second workbench (32). One end of the second guide groove (33) is provided with a receiving port (34) connected to the electronic components.

5. The adaptive adjustment high-precision welding equipment for inductor machining according to claim 4, characterized in that, The vertical rod (30) and the movable block (35) are connected by a second swing rod (36). The movable block (35) is movably connected to the limiting groove in the height direction of the baffle (37), and the top of the baffle (37) is connected to the second U-shaped plate (25) by a mounting rod. The extended end of the bottom of the movable block (35) extends to the first gear plate (39). The outer wall of the first gear plate (39) is meshed with a second gear plate (41) that moves in the opposite direction through a central rotating tooth (40). The bottom of the second gear plate (41) penetrates the housing (38) and is connected to the second pressure plate (43) through a bending rod (42).

6. The adaptive adjustment high-precision welding equipment for inductor machining according to claim 5, characterized in that, The upper end of the mounting rod is fixed on the second U-shaped plate (25), the lower end of the mounting rod is set in a square shape, and the baffle (37) is provided with an insertion hole connected to the guide post (29). The bottom of the second pressure plate (43) is directly opposite to the second guide groove (33) of the second worktable (32). Both ends of the second swing rod (36) are mounted on the vertical rod (30) and the moving block (35) by means of rotational connection, and the top of the housing (38) is fixed on the baffle (37).

7. The adaptive adjustment high-precision welding equipment for inductor machining according to claim 6, characterized in that, The second workbench (32) is a telescopic structure design, and the bottom of the second workbench (32) is connected to a translation groove placed on the base plate via a third slider (44). A panel (45) is fixedly connected to the base plate, and a second limiting block (46) connected to an inductor is provided on the panel (45).

Citation Information

Patent Citations

  • Integrated circuit chip component feeding device

    CN117896971A

  • Inductor core processing and forming device

    CN117954220A