High-precision anti-shaking circuit board processing device

The simulation components and fixed structure of the high-precision anti-sway circuit board processing device solve the problem of drilling position deviation when the flexible circuit board is bent, and achieves efficient and accurate processing results.

CN120456438BActive Publication Date: 2025-10-17SHENZHEN HONGLIAN CIRCUIT CO LTD
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Patent Information

Application Number
CN202510870327.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-26
Publication Date
2025-10-17
Estimated Expiration
2045-06-26

AI Technical Summary

Technical Problem

When a flexible circuit board is bent into a W shape, the drilling position shifts due to the change in shape, resulting in reduced processing accuracy and low efficiency. The existing technology requires pre-calculation of the drilling position, which is prone to errors.

Method used

A high-precision anti-sway circuit board processing device is used, which includes a processing component, a simulation component, an outer wall fixing component and a side wall fixing component. The flexible circuit board is exerted with pressure and fixed through structures such as simulation rods and limit plates to ensure bending stability and accuracy, and a drill is used for high-precision drilling.

Benefits of technology

The processing efficiency and reliability of flexible circuit boards are improved, calculation errors are avoided, and high-precision processing effects are ensured.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The application discloses a high-precision anti-shaking circuit board processing device and relates to the technical field of circuit board processing. The device comprises a bottom plate, two first grooves are symmetrically arranged on the top end side wall of the bottom plate, the inner walls of the first grooves are fixedly connected with first electric sliding rails, and the top end side walls of the first electric sliding rails are slidably connected with two first sliding plates. When the flexible circuit board needs to be processed, the first simulation rod and the second simulation rod are used to apply pressure to the side wall of the flexible circuit board, so that the flexible circuit board is bent into a W-shaped flexible circuit board meeting the subsequent use requirements. The position, at which the flexible circuit board needs to be punched, can be directly judged by the staff, calculation errors caused by the fact that the staff needs to calculate the position of the hole to be drilled on the surface of each W-shaped flexible circuit board with different forming angles one by one are avoided, and the processing efficiency and reliability of the flexible circuit board are greatly improved.
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Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of circuit board processing, and particularly relates to a high-precision anti-shaking circuit board processing device. BACKGROUND

[0002] The circuit board plays a vital role in electronic equipment, and its processing precision directly affects the performance and stability of the electronic equipment. In the processing of the circuit board, such as drilling, milling, welding and other operations, the shaking of the circuit board will lead to a decrease in processing precision, resulting in substandard products or even waste products and increasing production costs.

[0003] Taking the drilling of a flexible circuit board as an example, the traditional operation is to lay it flat on a processing platform and then fix it with a fixing member to ensure smooth processing. However, in actual application, the flexible circuit board needs to be adjusted in shape according to specific scenes to meet diversified use requirements. When it needs to be bent into a W shape, the drilling position on the surface of the circuit board will shift due to the change in shape, which will have a serious impact on subsequent use. To solve this problem, workers usually first drill the flexible circuit board after laying it flat, and also need to accurately judge the position of the through hole or blind hole after it is bent into a W shape, so as to complete the drilling in the flat state and ensure that each hole position can still meet the use requirements when it is bent into a W shape. However, different use environments require different forming angles of the flexible circuit board when it is bent into a W shape, which means that workers must calculate the drilling position on the surface of each W-shaped flexible circuit board with different forming angles one by one. This process not only is prone to calculation errors, but also is extremely inefficient, greatly reducing the processing efficiency and reliability of the flexible circuit board.

[0004] Therefore, we propose a high-precision anti-shaking circuit board processing device to solve the above problems. SUMMARY

[0005] To achieve the above purpose, the application adopts the following technical solutions:

[0006] The utility model provides a high accuracy anti -shaking's circuit board processing apparatus, including the bottom plate, the top end lateral wall of bottom plate is opened with two first recesses, the inner wall of first recess is all fixedly connected with first electric slide rail, the top end lateral wall of first electric slide rail is all slidably connected with two first sliding plates, the lateral wall of two first sliding plates in one first electric slide rail is respectively fixedly connected with the lateral wall of first sliding plate in the same side of another first electric slide rail with same support board, the inner wall of support board is fixedly connected with processing assembly for processing flexible circuit board, the top end lateral wall of bottom plate is fixedly connected with analog assembly for making flexible circuit board into the form of subsequent use, the top end lateral wall of bottom plate is fixedly connected with outer wall fixed component for fixing the outer wall of flexible circuit board, the top end lateral wall of bottom plate is opened with the lateral wall fixed component for fixing the lateral wall of both ends of flexible circuit board.

[0007] Preferably, the processing assembly includes a second electric slide rail fixedly connected to the inner wall of the support plate, the bottom end lateral wall of the second electric slide rail is slidably connected with two second sliding plates, the bottom end lateral wall of the second sliding plate is fixedly connected with a first electric telescopic rod, the telescopic end of the first electric telescopic rod is fixedly connected with a first U-shaped plate, the inner wall of the first U-shaped plate is rotatably connected with a first circular rod, the rod wall of the first circular rod is fixedly connected with a second electric telescopic rod, the side wall of the first U-shaped plate is fixedly connected with a first motor, the output end of the first motor is fixedly connected with the first circular rod through the side wall of the first U-shaped plate, the telescopic end of the second electric telescopic rod is fixedly connected with a second motor, the output end of the second motor is fixedly connected with a drill bit.

[0008] Preferably, the analog assembly includes two third electric telescopic rods fixedly connected to the top end lateral wall of the bottom plate, the telescopic ends of the two third electric telescopic rods are fixedly connected with a same first analog rod, the two ends of the lateral wall of the bottom plate are symmetrically provided with two second recesses, the inner wall of the second recess is fixedly connected with a third electric slide rail, the lateral wall of the third electric slide rail is slidably connected with a third sliding plate, the lateral wall of the third sliding plate is fixedly connected with a bending rod, the opposite end of the bending rod is fixedly connected with a same side plate, the bottom end lateral wall of the side plate is fixedly connected with a fourth electric telescopic rod, the telescopic end of the fourth electric telescopic rod is fixedly connected with a second analog rod.

[0009] Preferably, the outer wall fixing assembly includes two groups of mounting plates fixedly connected to the top end lateral wall of the bottom plate, each group of mounting plates has two, the inner wall of the mounting plate is fixedly connected with a fourth electric slide rail, the lateral wall of the fourth electric slide rail is slidably connected with a fourth sliding plate, the lateral wall of the fourth sliding plate is fixedly connected with a connecting plate, and the inner wall of the connecting plate is fixedly connected with a fifth electric slide rail.

[0010] Preferably, the side walls of the fifth electric sliding rail are slidably connected with two fifth sliding plates, the inner walls of the fifth sliding plates are fixedly connected with third motors, the output ends of the third motors are fixedly connected with fifth electric telescopic rods, the telescopic ends of the fifth electric telescopic rods are fixedly connected with concave plates, the inner walls of the two ends of the concave plates are fixedly connected with sixth electric telescopic rods, and the telescopic ends of the sixth electric telescopic rods are fixedly connected with outer wall clamping plates.

[0011] Preferably, the side wall fixing assembly comprises two third grooves symmetrically formed in the top end side walls of the bottom plate, the inner walls of the third grooves are fixedly connected with sixth electric sliding rails, the top end side walls of the sixth electric sliding rails are slidably connected with sixth sliding plates, the top end side walls of the sixth sliding plates are fixedly connected with seventh electric telescopic rods, the telescopic ends of the seventh electric telescopic rods are fixedly connected with fixed blocks, and the inner walls of the fixed blocks are fixedly connected with seventh electric sliding rails.

[0012] Preferably, the side walls of the seventh electric sliding rail are slidably connected with a plurality of seventh sliding plates, the side walls of the seventh sliding plates are fixedly connected with second U-shaped plates, the side walls of the second U-shaped plates are fixedly connected with fourth motors, the inner walls of the second U-shaped plates are rotatably connected with second circular rods, the output ends of the fourth motors are fixedly connected with one ends of the second circular rods in a penetrating manner, the rod walls of the second circular rods are fixedly connected with third U-shaped plates, the inner walls of the upper and lower ends of the third U-shaped plates are fixedly connected with eighth electric telescopic rods, and the telescopic ends of the eighth electric telescopic rods are fixedly connected with side wall clamping plates.

[0013] Preferably, the inner walls of the upper and lower ends of the third U-shaped plate are symmetrically provided with two fourth grooves, the inner walls of the fourth grooves are fixedly connected with eighth electric sliding rails, the side walls of the eighth electric sliding rails are slidably connected with eighth sliding plates, the side walls of the eighth sliding plates are fixedly connected with ninth electric telescopic rods, the telescopic ends of the ninth electric telescopic rods are fixedly connected with limiting rods, one ends of the limiting rods away from the ninth electric telescopic rods are fixedly connected with two tenth electric telescopic rods in a symmetrical manner, and the telescopic ends of the tenth electric telescopic rods are fixedly connected with limiting plates.

[0014] Compared with the prior art, the present application has the following beneficial effects:

[0015] The machining assembly, the simulation assembly, the outer wall fixing assembly and the side wall fixing assembly can exert pressure on the side wall of the flexible circuit board by the first simulation rod and the second simulation rod when the flexible circuit board needs to be processed, so that the flexible circuit board is bent into a W-shaped flexible circuit board meeting the subsequent use requirements, the staff can directly determine the position of the flexible circuit board that needs to be punched, and the two ends can be fixed by the limiting plate and the side wall clamping plate, and when the flexible circuit board is bent, the two ends of the flexible circuit board are prevented from moving around, so that the flexible circuit board is better bent, and the limiting plate and the side wall clamping plate can always fix the same position of the side wall of the flexible circuit board during the bending process of the flexible circuit board, without exerting other pressure on the side wall of the flexible circuit board, improving the stability of the flexible circuit board when bent into a W shape, and the inclination angle of the outer wall clamping plate can be adjusted according to the inclination angle of the outer wall of the flexible circuit board after being bent into a W-shaped flexible circuit board, so that the outer wall of the flexible circuit board is fixed by the outer wall clamping plate, the flexible circuit board is prevented from shaking during processing, high-precision processing of the flexible circuit board is realized, then the specified position of the flexible circuit board is punched by the drill bit, the processing of the flexible circuit board is completed, and the staff does not need to calculate the position of the surface of each different W-shaped flexible circuit board to be drilled, which avoids calculation errors and greatly improves the processing efficiency and reliability of the flexible circuit board. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 It is a schematic diagram of the overall structure of the application;

[0017] Figure 2 It is a schematic diagram of other angle structure of the application;

[0018] Figure 3 It is a schematic diagram of part of the structure of the application Figure 1 ;

[0019] Figure 4 It is an enlarged view of part A of the application Figure 3 ;

[0020] Figure 5 It is a schematic diagram of part of the structure of the application Figure 2 ;

[0021] Figure 6 It is a schematic diagram of part of the structure of the application Figure 3 ;

[0022] Figure 7 It is a schematic diagram of part of the structure of the application Figure 4 ;

[0023] Figure 8 It is an enlarged view of part B of the application Figure 7 .

[0024] In the figure: 1, bottom plate; 2, first groove; 3, first electric sliding rail; 4, first sliding plate; 5, support plate; 6, processing assembly; 61, second electric sliding rail; 62, second sliding plate; 63, first electric telescopic rod; 64, first U-shaped plate; 65, first round rod; 66, second electric telescopic rod; 67, first motor; 68, second motor; 69, drill bit; 7, simulation assembly; 71, third electric telescopic rod; 72, first simulation rod; 73, second groove; 74, third electric sliding rail; 75, third sliding plate; 76, bent rod; 77, side plate; 78, fourth electric telescopic rod; 79, second simulation rod; 8, outer wall fixing assembly; 81, mounting plate; 82, fourth electric sliding rail; 83, fourth sliding plate; 84, connecting plate; 85, fifth electric sliding rail; 86, fifth sliding plate; 87, third motor; 88, fifth electric telescopic rod; 89, concave plate; 810, sixth electric telescopic rod; 811, outer wall clamping plate; 9, side wall fixing assembly; 91, third groove; 92, sixth electric sliding rail; 93, sixth sliding plate; 94, seventh electric telescopic rod; 95, fixed block; 96, seventh electric sliding rail; 97, seventh sliding plate; 98, second U-shaped plate; 99, fourth motor; 910, second round rod; 911, third U-shaped plate; 912, eighth electric telescopic rod; 913, side wall clamping plate; 914, fourth groove; 915, eighth electric sliding rail; 916, eighth sliding plate; 917, ninth electric telescopic rod; 918, limiting rod; 919, tenth electric telescopic rod; 920, limiting plate. DETAILED DESCRIPTION

[0025] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all embodiments.

[0026] The following electrical elements are all electrically connected with the PLC controller of the peripheral device.

[0027] Reference Figures 1-8The utility model provides a high accuracy anti -shaking circuit board processing apparatus, including bottom plate 1, the top end lateral wall of bottom plate 1 is symmetrically opened with two first recesses 2, and the inner wall of first recess 2 is fixedly connected with first electric slide rail 3, and the top end lateral wall of first electric slide rail 3 is slidably connected with two first sliding plates 4, and the lateral wall of two first sliding plates 4 in one of first electric slide rail 3 is fixedly connected with the lateral wall of first sliding plate 4 on the same side in the other first electric slide rail 3 with same support plate 5, and the inner wall of support plate 5 is fixedly connected with processing assembly 6 for processing flexible circuit board, and the top end lateral wall of bottom plate 1 is fixedly connected with simulation assembly 7 for making flexible circuit board into the form of subsequent use, and the top end lateral wall of bottom plate 1 is fixedly connected with outer wall fixing assembly 8 for fixing the outer wall of flexible circuit board, and the top end lateral wall of bottom plate 1 is opened with side wall fixing assembly 9 for fixing the lateral wall of both ends of flexible circuit board.

[0028] In the embodiment, the processing assembly 6 includes a second electric slide rail 61 fixedly connected to the inner wall of the support plate 5. The bottom end lateral wall of the second electric slide rail 61 is slidably connected with two second sliding plates 62. The bottom end lateral wall of each second sliding plate 62 is fixedly connected with a first electric telescopic rod 63. The telescopic end of each first electric telescopic rod 63 is fixedly connected with a first U-shaped plate 64. The inner wall of the first U-shaped plate 64 is rotatably connected with a first circular rod 65. The rod wall of the first circular rod 65 is fixedly connected with a second electric telescopic rod 66. The lateral wall of the first U-shaped plate 64 is fixedly connected with a first electric motor 67. The output end of the first electric motor 67 is fixedly connected with one end of the first circular rod 65 through the lateral wall of the first U-shaped plate 64. The telescopic end of the second electric telescopic rod 66 is fixedly connected with a second electric motor 68. The output end of the second electric motor 68 is fixedly connected with a drill bit 69.

[0029] The simulation assembly 7 includes two third electric telescopic rods 71 fixedly connected to the top end lateral wall of the bottom plate 1. The telescopic ends of the two third electric telescopic rods 71 are fixedly connected with a same first simulation rod 72. The two ends of the lateral wall of the bottom plate 1 are symmetrically opened with two second recesses 73. The inner wall of each second recess 73 is fixedly connected with a third electric slide rail 74. The lateral wall of each third electric slide rail 74 is slidably connected with a third sliding plate 75. The lateral wall of each third sliding plate 75 is fixedly connected with a bending rod 76. The opposite end of the bending rod 76 is fixedly connected with a same side plate 77. The bottom end lateral wall of the side plate 77 is fixedly connected with a fourth electric telescopic rod 78. The telescopic end of the fourth electric telescopic rod 78 is fixedly connected with a second simulation rod 79.

[0030] Specifically, when the flexible circuit board needs to be processed, the first simulation rod 72 and the second simulation rod 79 can be used to exert pressure on the lateral wall of the flexible circuit board, so that the flexible circuit board is bent into a W-shaped flexible circuit board that meets the subsequent use requirements, making it convenient for the staff to directly determine the position where the flexible circuit board needs to be punched.

[0031] In the embodiment, the outer wall fixing assembly 8 comprises two groups of mounting plates 81 fixedly connected to the side walls at the top end of the bottom plate 1, each group of mounting plates 81 has two mounting plates 81, the inner walls of the mounting plates 81 are fixedly connected with fourth electric sliding rails 82, the side walls of the fourth electric sliding rails 82 are slidably connected with fourth sliding plates 83, the side walls of the fourth sliding plates 83 are fixedly connected with connecting plates 84, and the inner walls of the connecting plates 84 are fixedly connected with fifth electric sliding rails 85.

[0032] The side walls of the fifth electric sliding rails 85 are slidably connected with two fifth sliding plates 86, the inner walls of the fifth sliding plates 86 are fixedly connected with third motors 87, the output ends of the third motors 87 are fixedly connected with fifth electric telescopic rods 88, the telescopic ends of the fifth electric telescopic rods 88 are fixedly connected with concave plates 89, the inner walls of the two ends of the concave plates 89 are fixedly connected with sixth electric telescopic rods 810, and the telescopic ends of the sixth electric telescopic rods 810 are fixedly connected with outer wall clamping plates 811.

[0033] Specifically, the inclination angle of the outer wall clamping plate 811 can be adjusted according to the inclination angle of the outer wall of the flexible circuit board after being bent into a W-shaped flexible circuit board, so as to facilitate the fixation of the outer wall of the flexible circuit board by the outer wall clamping plate 811, to ensure that the flexible circuit board does not shake during processing, to realize high-precision processing of the flexible circuit board, and then to punch the specified position of the flexible circuit board by the drill bit 69, to complete the processing of the flexible circuit board, to avoid calculation errors caused by the fact that the staff needs to calculate the positions of the holes required on the surface of each W-shaped flexible circuit board with different forming angles one by one, and to greatly improve the processing efficiency and reliability of the flexible circuit board.

[0034] In the embodiment, the side wall fixing assembly 9 comprises two third grooves 91 symmetrically formed in the side walls at the top end of the bottom plate 1, the inner walls of the third grooves 91 are fixedly connected with sixth electric sliding rails 92, the top end side walls of the sixth electric sliding rails 92 are slidably connected with sixth sliding plates 93, the top end side walls of the sixth sliding plates 93 are fixedly connected with seventh electric telescopic rods 94, the telescopic ends of the seventh electric telescopic rods 94 are fixedly connected with fixed blocks 95, and the inner walls of the fixed blocks 95 are fixedly connected with seventh electric sliding rails 96.

[0035] The side walls of the seventh electric sliding rails 96 are slidably connected with a plurality of seventh sliding plates 97, the side walls of the seventh sliding plates 97 are fixedly connected with second U-shaped plates 98, the side walls of the second U-shaped plates 98 are fixedly connected with fourth motors 99, the inner walls of the second U-shaped plates 98 are rotatably connected with second round rods 910, the output ends of the fourth motors 99 are fixedly connected with one end of the second round rods 910 through the side walls of the second U-shaped plates 98, the rod walls of the second round rods 910 are fixedly connected with third U-shaped plates 911, the inner walls of the upper and lower ends of the third U-shaped plates 911 are fixedly connected with eighth electric telescopic rods 912, and the telescopic ends of the eighth electric telescopic rods 912 are fixedly connected with side wall clamping plates 913.

[0036] The inner walls of the upper and lower ends of the third U-shaped plate 911 are symmetrically provided with two fourth recesses 914, the inner walls of the fourth recesses 914 are fixedly connected with eighth electric sliding rails 915, the side walls of the eighth electric sliding rails 915 are all slidingly connected with eighth sliding plates 916, the side walls of the eighth sliding plates 916 are fixedly connected with ninth electric telescopic rods 917, the telescopic ends of the ninth electric telescopic rods 917 are all fixedly connected with limiting rods 918, the ends, away from the ninth electric telescopic rods 917, of the limiting rods 918 are symmetrically fixedly connected with two tenth electric telescopic rods 919, and the telescopic ends of the tenth electric telescopic rods 919 are fixedly connected with limiting plates 920.

[0037] Specifically, the limiting plates 920 and the side wall clamping plates 913 can fix the two ends, and when the flexible circuit board is bent, the two ends of the flexible circuit board are ensured from moving around, so that the flexible circuit board can be better bent, and the limiting plates 920 and the side wall clamping plates 913 can always fix the same position of the side wall of the flexible circuit board during the bending process of the flexible circuit board, without applying other pressure to the side wall of the flexible circuit board, thereby improving the stability when the flexible circuit board is bent into a W shape.

[0038] The operation principle of the present application is described as follows:

[0039] In the present application, when the circuit board needs to be processed, first control the sixth electric sliding rail 92 to start, drive the sixth sliding plate 93 to move, make the distance between the two sixth sliding plates 93 slightly larger than the length of the circuit board to be processed, then control the seventh electric sliding rail 96 to start, drive the plurality of seventh sliding plates 97 to move, make the limiting rod 918 in the seventh sliding plate 97 located at one side of the limiting hole opened in the top side wall of the circuit board, then the staff puts the two ends of the flexible circuit board into the corresponding third U plate 911 respectively, then control the eighth electric telescopic rod 912 to start, drive the side wall clamping plate 913 to move, use the side wall clamping plate 913 to fix the two ends of the flexible circuit board, then control the eighth electric sliding rail 915 to start, drive the eighth sliding plate 916 to move, make the limiting rod 918 located above or below the limiting hole opened in the side wall of the corresponding flexible circuit board, then control the ninth electric telescopic rod 917 to start, make the limiting rod 918 move into the corresponding limiting hole, then control the tenth electric telescopic rod 919 to start, drive the limiting plate 920 to move, use the limiting plate 920 to fix the inner wall of the limiting hole, so as to realize the fixation of the two end side walls of the flexible circuit board, then control the two third electric sliding rails 74 to start, drive the corresponding third sliding plate 75 to move, so as to use the bending rod 76 to drive the side plate 77 to move, make the second simulation rod 79 move above the position where the flexible circuit board needs to be bent, then control the fourth electric telescopic rod 78 and the third electric telescopic rod 71 to start at the same time, drive the corresponding first simulation rod 72 and the second simulation rod 79 to move towards the flexible circuit board, exert pressure on the flexible circuit board, make the flexible circuit board appear bending at the bending position, in this process, control the corresponding sixth electric sliding rail 92 to start constantly, drive the sixth sliding plate 93 to move constantly, make the third U plate 911 move at the speed of the bending of the flexible circuit board, ensure that the side wall clamping plate 913 and the limiting plate 920 can always keep fixing the side wall of the flexible circuit board, and in this process, control the fourth motor 99 to start, drive the second circular rod 910 to rotate, so as to drive the third U plate 911 to rotate, make the rotating speed of the side wall clamping plate 913 and the limiting plate 920 match the bending speed of the flexible circuit board, ensure that the side wall clamping plate 913 always has the same inclination angle with the side wall of the flexible circuit board, prevent the flexible circuit board from being deformed at the edge due to the pressure on the flexible circuit board by the side wall clamping plate 913 and the limiting plate 920 when the flexible circuit board is bent, after the first simulation rod 72 and the second simulation rod 79 complete the extrusion of the flexible circuit board, the flexible circuit board forms a specified W-shaped flexible circuit board at this time, and the bending angle and the bending position of the W-shaped flexible circuit board at this time all meet the subsequent use requirements, then control the fourth electric sliding rail 82 and the fifth electric sliding rail 85 to start, drive the fourth sliding plate 83 and the fifth sliding plate 86 to move, make the concave plate 89 move to one side of the outer wall of the corresponding W-shaped flexible circuit board, then control the third motor 87 to start, drive the fifth electric telescopic rod 88 and the concave plate 89 to rotate, make the inclination angle of the outer wall clamping plate 811 match the inclination angle of the outer wall of the W-shaped flexible circuit board,Afterwards, the fifth electric telescopic rod 88 is controlled to start, so that the outer wall clamping plate 811 is located on the upper and lower sides of the outer wall of the W-shaped flexible circuit board. Then, the sixth electric telescopic rod 810 is controlled to start, driving the outer wall clamping plate 811 to move. The outer wall clamping plate 811 is used to fix the outer wall of the W-shaped flexible circuit board. At this time, the fixing of the W-shaped flexible circuit board after forming is completed, preventing the flexible circuit board from shaking during the processing process, and improving the accuracy of the flexible circuit board during the processing process. At the same time, the flexible circuit board is adjusted to a W-shaped flexible circuit board that meets the subsequent use requirements, so that the staff can directly determine the position of the flexible circuit board that needs to be punched. Then, the first electric sliding rail 3 and the second electric sliding rail 61 are controlled to start, driving the corresponding first sliding plate 4 and the second sliding plate 62 to move, so that the drill bit 69 moves to one side of the position of the flexible circuit board that needs to be punched. Then, the first electric motor 67 is controlled to start, driving the first round rod 65 to rotate, so as to adjust the inclination angle of the drill bit 69, so that one end of the drill bit 69 is perpendicular to the side wall of the flexible circuit board. Then, the first electric telescopic rod 63 and the second electric telescopic rod 66 are controlled to start, driving the drill bit 69 to move towards the side wall of the flexible circuit board. Then, the second electric motor 68 is controlled to start, driving the drill bit 69 to rotate, so as to punch the side wall of the specified position of the flexible circuit board by using the drill bit 69. The processing of the flexible circuit board is completed. When the flexible circuit board needs to be processed, the first simulation rod 72 and the second simulation rod 79 are used to apply pressure to the side wall of the flexible circuit board, so that the flexible circuit board is bent into a W-shaped flexible circuit board that meets the subsequent use requirements. This is convenient for the staff to directly determine the position of the flexible circuit board that needs to be punched. At the same time, the limiting plate 920 and the side wall clamping plate 913 can fix the two ends. When the flexible circuit board is bent, it is ensured that the two ends of the flexible circuit board do not move around, so as to better bend the flexible circuit board. During the bending process of the flexible circuit board, the limiting plate 920 and the side wall clamping plate 913 can always fix the same position of the side wall of the flexible circuit board, without applying other pressure to the side wall of the flexible circuit board. This improves the stability of the flexible circuit board when it is bent into a W shape. At the same time, the inclination angle of the outer wall clamping plate 811 can be adjusted according to the inclination angle of the outer wall of the W-shaped flexible circuit board after bending, so as to fix the outer wall of the flexible circuit board by using the outer wall clamping plate 811. This ensures that the flexible circuit board does not shake during the processing process, realizes high-precision processing of the flexible circuit board, and then punches the specified position of the flexible circuit board by using the drill bit 69, completing the processing of the flexible circuit board. This avoids the staff from calculating the positions of the holes needed on the surface of each W-shaped flexible circuit board with different forming angles one by one, which may cause calculation errors. This greatly improves the processing efficiency and reliability of the flexible circuit board.

[0040] The above merely describes preferred specific embodiments of the present application, but the protection scope of the present application is not limited thereto, and any person skilled in the art, according to the technical solution and inventive concept of the present application, makes equivalent replacement or change within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.

Claims

1. A high-precision anti-shake circuit board processing device, comprising a base plate (1), characterized in that: The top side wall of the bottom plate (1) is symmetrically provided with two first grooves (2), the inner walls of the first grooves (2) are fixedly connected to first electric slide rails (3), the top side walls of the first electric slide rails (3) are slidably connected to two first slide plates (4), the side walls of the two first slide plates (4) in one of the first electric slide rails (3) are respectively fixedly connected to the same support plate (5) as the side walls of the first slide plate (4) located on the same side of the other first electric slide rail (3), the inner wall of the support plate (5) is fixedly connected to a processing component (6) for processing the flexible circuit board, the top side wall of the bottom plate (1) is fixedly connected to a simulation component (7) for bending the flexible circuit board into a shape for subsequent use, the top side wall of the bottom plate (1) is fixedly connected to an outer wall fixing component (8) for fixing the outer wall of the flexible circuit board, and the top side wall of the bottom plate (1) is provided with a side wall fixing component (9) for fixing the side walls at both ends of the flexible circuit board; The side wall fixing assembly (9) comprises two third grooves (91) symmetrically opened on the top side wall of the bottom plate (1), the inner walls of the third grooves (91) are fixedly connected to the sixth electric slide rail (92), the top side wall of the sixth electric slide rail (92) is slidably connected to the sixth slide plate (93), the top side wall of the sixth slide plate (93) is fixedly connected to the seventh electric telescopic rod (94), the telescopic end of the seventh electric telescopic rod (94) is fixedly connected to the fixing block (95), and the inner wall of the fixing block (95) is fixedly connected to the seventh electric slide rail (96); The side wall of the seventh electric slide rail (96) is slidably connected to a plurality of seventh slide plates (97), the side walls of the seventh slide plates (97) are all fixedly connected to the second U plate (98), the side wall of the second U plate (98) is fixedly connected to the fourth motor (99), the inner wall of the second U plate (98) is rotatably connected to the second round rod (910), the output end of the fourth motor (99) passes through the side wall of the second U plate (98) and is fixedly connected to one end of the second round rod (910), the rod wall of the second round rod (910) is fixedly connected to the third U plate (911), the inner walls of the upper and lower ends of the third U plate (911) are both fixedly connected to the eighth electric telescopic rod (912), and the telescopic ends of the eighth electric telescopic rod (912) are both fixedly connected to the side wall clamping plate (913); Two fourth grooves (914) are symmetrically provided on the inner walls at the upper and lower ends of the third U plate (911); the inner walls of the fourth grooves (914) are fixedly connected to the eighth electric slide rail (915); the side walls of the eighth electric slide rail (915) are slidably connected to the eighth slide plate (916); the side walls of the eighth slide plate (916) are fixedly connected to the ninth electric telescopic rod (917); the telescopic ends of the ninth electric telescopic rod (917) are fixedly connected to the limiting rod (918); the end of the limiting rod (918) away from the ninth electric telescopic rod (917) is symmetrically fixedly connected to two tenth electric telescopic rods (919); the telescopic end of the tenth electric telescopic rod (919) is fixedly connected to the limiting plate (920).

2. A high-precision anti-shake circuit board processing device according to claim 1, characterized in that: The processing assembly (6) includes a second electric slide rail (61) fixedly connected to the inner wall of the support plate (5), two second slide plates (62) are slidably connected to the side wall of the bottom end of the second electric slide rail (61), the side wall of the bottom end of the second slide plate (62) is fixedly connected to the first electric telescopic rod (63), the telescopic end of the first electric telescopic rod (63) is fixedly connected to the first U plate (64), the inner wall of the first U plate (64) is rotatably connected to the first round rod (65), the rod wall of the first round rod (65) is fixedly connected to the second electric telescopic rod (66), the side wall of the first U plate (64) is fixedly connected to the first motor (67), the output end of the first motor (67) passes through the side wall of the first U plate (64) and is fixedly connected to one end of the first round rod (65), the telescopic end of the second electric telescopic rod (66) is fixedly connected to the second motor (68), and the output end of the second motor (68) is fixedly connected to the drill bit (69).

3. The high-precision anti-shake circuit board processing device according to claim 1, characterized in that: The simulation component (7) includes two third electric telescopic rods (71) fixedly connected to the top side wall of the base plate (1), the telescopic ends of the two third electric telescopic rods (71) are fixedly connected to the same first simulation rod (72), two second grooves (73) are symmetrically opened on the side walls at both ends of the base plate (1), the inner wall of the second groove (73) is fixedly connected to the third electric slide rail (74), the side walls of the third electric slide rail (74) are slidably connected to the third slide plate (75), the side walls of the third slide plate (75) are fixedly connected to the bent rod (76), the opposite end of the bent rod (76) is fixedly connected to the same side plate (77), the bottom side wall of the side plate (77) is fixedly connected to the fourth electric telescopic rod (78), and the telescopic end of the fourth electric telescopic rod (78) is fixedly connected to the second simulation rod (79).

4. The high-precision anti-shake circuit board processing device according to claim 1, characterized in that: The outer wall fixing assembly (8) comprises two groups of mounting plates (81) symmetrically fixedly connected to the side walls of the top end of the bottom plate (1), each group of mounting plates (81) comprises two, the inner walls of the mounting plates (81) are fixedly connected to the fourth electric slide rail (82), the side walls of the fourth electric slide rail (82) are slidably connected to the fourth slide plate (83), the side walls of the fourth slide plate (83) are fixedly connected to the connecting plate (84), and the inner walls of the connecting plate (84) are fixedly connected to the fifth electric slide rail (85).

5. A high-precision anti-shake circuit board processing device according to claim 4, characterized in that: The side walls of the fifth electric slide rail (85) are slidably connected to two fifth slide plates (86), the inner walls of the fifth slide plates (86) are fixedly connected to a third motor (87), the output end of the third motor (87) is fixedly connected to a fifth electric telescopic rod (88), the telescopic ends of the fifth electric telescopic rod (88) are fixedly connected to a concave plate (89), the inner walls of both ends of the concave plate (89) are fixedly connected to a sixth electric telescopic rod (810), and the telescopic ends of the sixth electric telescopic rod (810) are fixedly connected to an outer wall clamping plate (811).

Citation Information

Patent Citations

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