High-precision anti-shaking circuit board processing device

By setting up circuit board processing devices for processing components and fixed components, the problem of drilling position offset when the flexible circuit board is bent into W-shaped is solved, and efficient and high-precision circuit board processing is achieved.

CN120456438AActive Publication Date: 2025-08-08SHENZHEN HONGLIAN CIRCUIT CO LTD
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Patent Information

Application Number
CN202510870327.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-26
Publication Date
2025-08-08
Estimated Expiration
2045-06-26

AI Technical Summary

Technical Problem

When the flexible circuit board is bent into a W-shaped, the drilling position is easily offset, resulting in calculation errors and low processing efficiency, making it difficult for the prior art to achieve high-precision and efficient processing.

Method used

Using a circuit board processing device including processing components, simulation components, outer wall fixing components and side wall fixing components, the flexible circuit board is applied through the first simulation rod and the second simulation rod to bend it into a W-shaped type that meets the needs of use, and the two ends are fixed by the limiting plate and the side wall clamp to ensure stability and accuracy.

Benefits of technology

The processing efficiency and reliability of flexible circuit boards are improved, calculation errors are avoided, and high-precision circuit board processing is achieved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a high-precision anti-shaking circuit board processing device, and relates to the technical field of circuit board processing, the high-precision anti-shaking circuit board processing device comprises a bottom plate, two first grooves are symmetrically formed in the side wall of the top end of the bottom plate, and first electric sliding rails are fixedly connected to the inner walls of the first grooves; the side wall of the top end of each first electric sliding rail is slidably connected with two first sliding plates. According to the invention, when the flexible circuit board needs to be processed, the first simulation rod and the second simulation rod are utilized 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 follow-up use requirements, workers can directly judge the position where the flexible circuit board needs to be punched, and the punching efficiency of the flexible circuit board is improved. And calculation errors caused by the fact that workers need to calculate the positions, needing to be drilled, of the surfaces of the W-shaped flexible circuit boards one by one according to the W-shaped flexible circuit boards with the different forming angles are avoided, and the machining efficiency and reliability of the flexible circuit boards are greatly improved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of circuit board processing, and in particular relates to a high-precision anti-shaking circuit board processing device. Background Art

[0002] Circuit boards play a vital role in electronic devices. Their processing accuracy directly affects the performance and stability of electronic devices. During the processing of circuit boards, such as drilling, milling, welding and other operations, the shaking of the circuit boards will lead to a decrease in processing accuracy, resulting in defective products or even waste, and increasing production costs.

[0003] Taking the drilling process of flexible circuit boards as an example, the traditional operation is to lay them flat on a processing platform and then secure them with fixtures to ensure smooth processing. However, in actual applications, flexible circuit boards need to adjust their shape according to specific scenarios to meet diverse usage requirements. When they need to be bent into a W-shape, the drilling positions on the circuit board surface will shift due to the change in shape, which will seriously affect subsequent use. To solve this problem, workers usually lay the flexible circuit board flat before drilling. At the same time, they must accurately determine the location of the through holes or blind vias after the W-shape is bent. They strive to complete the drilling in the flat state so that the hole positions still meet the usage requirements when bent into the W shape. However, different usage environments require the flexible circuit board to be bent into a W-shape at different forming angles. This means that workers must calculate the required drilling positions on the surface of each W-shaped flexible circuit board with different forming angles. This process is not only prone to calculation errors but also extremely inefficient, greatly reducing the processing efficiency and reliability of the flexible circuit board.

[0004] To this end, we propose a high-precision anti-shake circuit board processing device to solve the above problems. Summary of the Invention

[0005] In order to achieve the above object, the present invention adopts the following technical solutions: A high-precision anti-sway circuit board processing device includes a base plate, the top side wall of the base plate is symmetrically provided with two first grooves, the inner walls of the first grooves are fixedly connected with first electric slide rails, the top side walls of the first electric slide rails are slidably connected with two first slides, the side walls of the first slides are fixedly connected with the same support plate, the inner wall of the support plate is fixedly connected with a processing component for processing the circuit board, the top side wall of the base plate is fixedly connected with a simulation component for simulating the shape of the flexible circuit board when in use, the top side wall of the base plate is fixedly connected with an outer wall fixing component for fixing the outer wall of the circuit board, and the top side wall of the base plate is provided with a side wall fixing component for fixing the side walls at both ends of the circuit board.

[0006] Preferably, the processing assembly includes a second electric slide rail fixedly connected to the inner wall of the support plate, two second slide plates are slidably connected to the bottom side walls of the second electric slide rail, the bottom side walls of the second slide plates are fixedly connected to the first electric telescopic rod, the telescopic ends of the first electric telescopic rod are fixedly connected to the first U-plate, the inner wall of the first U-plate is rotatably connected to the first round rod, the rod wall of the first round rod is fixedly connected to the second electric telescopic rod, the side wall of the first U-plate is fixedly connected to the first motor, the output end of the first motor passes through the side wall of the first U-plate and is fixedly connected to one end of the first round rod, the telescopic end of the second electric telescopic rod is fixedly connected to the second motor, and the output end of the second motor is fixedly connected to the drill bit.

[0007] Preferably, the simulation component includes two third electric telescopic rods fixedly connected to the top side wall of the base plate, the telescopic ends of the two third electric telescopic rods are fixedly connected to the same first simulation rod, two second grooves are symmetrically provided on the side walls at both ends of the base plate, the inner walls of the second grooves are fixedly connected to the third electric slide rails, the side walls of the third electric slide rails are slidably connected to the third slide plate, the side walls of the third slide plate are fixedly connected to the bent rods, the opposite end of the bent rods is fixedly connected to the same side plate, the bottom end side wall of the side plate is fixedly connected to the fourth electric telescopic rod, and the telescopic end of the fourth electric telescopic rod is fixedly connected to the second simulation rod.

[0008] Preferably, the outer wall fixing assembly includes two groups of mounting plates symmetrically fixedly connected to the side walls of the top end of the base plate, each group of mounting plates has two, the inner walls of the mounting plates are fixedly connected to the fourth electric slide rail, the side walls of the fourth electric slide rail are slidably connected to the fourth slide plate, the side walls of the fourth slide plate are fixedly connected to the connecting plate, and the inner walls of the connecting plates are fixedly connected to the fifth electric slide rail.

[0009] Preferably, the side walls of the fifth electric slide rail are slidably connected to two fifth slides, the inner walls of the fifth slide are fixedly connected to a third motor, the output end of the third motor is fixedly connected to a fifth electric telescopic rod, the telescopic ends of the fifth electric telescopic rod are fixedly connected to concave plates, the inner walls at both ends of the concave plates are fixedly connected to sixth electric telescopic rods, and the telescopic ends of the sixth electric telescopic rods are fixedly connected to outer wall splints.

[0010] Preferably, the side wall fixing assembly includes two third grooves symmetrically opened on the top side wall of the bottom plate, the inner walls of the third grooves are fixedly connected with the sixth electric slide rail, the top side wall of the sixth electric slide rail is slidably connected with the sixth slide plate, the top side wall of the sixth slide plate is fixedly connected with the seventh electric telescopic rod, the telescopic end of the seventh electric telescopic rod is fixedly connected with a fixed block, and the inner wall of the fixed block is fixedly connected with the seventh electric slide rail.

[0011] Preferably, the side walls of the seventh electric slide rail are slidably connected to multiple seventh slides, the side walls of the seventh slides are fixedly connected to the second U-plate, the side walls of the second U-plate are fixedly connected to the fourth motor, the inner wall of the second U-plate is rotatably connected to the second round rod, the output end of the fourth motor passes through the side wall of the second U-plate and is fixedly connected to one end of the second round rod, the rod wall of the second round rod is fixedly connected to the third U-plate, the upper and lower inner walls of the third U-plate are fixedly connected to the eighth electric telescopic rod, and the telescopic ends of the eighth electric telescopic rod are fixedly connected to the side wall splints.

[0012] Preferably, two fourth grooves are symmetrically provided on the inner walls at the upper and lower ends of the third U plate, the inner walls of the fourth grooves are fixedly connected to the eighth electric slide rail, the side walls of the eighth electric slide rail are slidably connected to the eighth slide plate, the side walls of the eighth slide plate are fixedly connected to the ninth electric telescopic rod, the telescopic ends of the ninth electric telescopic rod are fixedly connected to the limiting rod, the inner walls at both ends of the limiting rod are symmetrically fixedly connected to two tenth electric telescopic rods, and the telescopic end of the tenth electric telescopic rod is fixedly connected to the limiting plate.

[0013] Compared with the prior art, the present invention has the following beneficial effects: By setting up the processing assembly, simulation assembly, outer wall fixing assembly and side wall fixing assembly, when the flexible circuit board needs to be processed, the first simulation rod and the second simulation rod can be used to apply pressure to the side wall of the flexible circuit board, so that the flexible circuit board can be bent into a W-shaped flexible circuit board that meets the subsequent use requirements, which is convenient for the staff to directly judge the position where the flexible circuit board needs to be punched. At the same time, the limiting plate and the side wall clamping plate can be used to fix the two ends, and when bending the flexible circuit board, it is ensured that the two ends of the flexible circuit board do not move around, which is convenient for better bending of the flexible circuit board. In the bending process of the flexible circuit board, the limiting plate and the side wall clamping plate can always keep the side wall of the flexible circuit board fixed in the same position. , and does not apply other pressure to the side wall of the flexible circuit board, thereby improving 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 splint can be adjusted according to the inclination angle of the outer wall after the flexible circuit board is bent into a W shape, so that the outer wall of the flexible circuit board can be fixed with the outer wall splint, ensuring that the flexible circuit board does not shake during processing, thereby achieving high-precision processing of the flexible circuit board. After that, the drill bit is used to punch holes at designated positions on the flexible circuit board to complete the processing of the flexible circuit board, avoiding the need for workers to calculate the positions of the holes required to be drilled on the surface of each W-shaped flexible circuit board with different forming angles one by one, resulting in calculation errors, thereby greatly improving the processing efficiency and reliability of the flexible circuit board. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2This is a schematic diagram of the structure of the present invention from other angles; Figure 3 Schematic diagram of part of the structure of the present invention Figure 1 ; Figure 4 For the present invention Figure 3 A magnified view of part A; Figure 5 Schematic diagram of part of the structure of the present invention Figure 2 ; Figure 6 Schematic diagram of part of the structure of the present invention Figure 3 ; Figure 7 Schematic diagram of part of the structure of the present invention Figure 4 ; Figure 8 For the present invention Figure 7 Magnified view of part B.

[0015] In the figure: 1, bottom plate; 2, first groove; 3, first electric slide; 4, first slide; 5, support plate; 6, processing assembly; 61, second electric slide; 62, second slide; 63, first electric telescopic rod; 64, first U 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 slide; 75, third slide; 76, bending rod; 77, side plate; 78, fourth electric telescopic rod; 79, second simulation rod; 8, outer wall fixing assembly; 81, mounting plate; 82, fourth electric slide; 83, fourth slide; 84, connecting plate; 85, fifth electric Movable slide rail; 86, fifth slide plate; 87, third motor; 88, fifth electric telescopic rod; 89, concave plate; 810, sixth electric telescopic rod; 811, outer wall splint; 9, side wall fixing assembly; 91, third groove; 92, sixth electric slide rail; 93, sixth slide plate; 94, seventh electric telescopic rod; 95, fixing block; 96, seventh electric slide rail; 97, seventh slide plate; 98, second U plate; 99, fourth motor; 910, second round rod; 911, third U plate; 912, eighth electric telescopic rod; 913, side wall splint; 914, fourth groove; 915, eighth electric slide rail; 916, eighth slide plate; 917, ninth electric telescopic rod; 918, limit rod; 919, tenth electric telescopic rod; 920, limit plate. DETAILED DESCRIPTION

[0016] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0017] The following electrical components are all electrically connected to the peripheral PLC controller.

[0018] Reference Figures 1-8 , a high-precision anti-sway circuit board processing device, including a base plate 1, the top side wall of the base plate 1 is symmetrically provided with two first grooves 2, the inner walls of the first grooves 2 are fixedly connected with first electric slide rails 3, the top side walls of the first electric slide rails 3 are slidably connected with two first slides 4, the side walls of the first slides 4 are fixedly connected with the same support plate 5, the inner wall of the support plate 5 is fixedly connected with a processing component 6 for processing the circuit board, the top side wall of the base plate 1 is fixedly connected with a simulation component 7 for simulating the shape of the flexible circuit board when in use, the top side wall of the base plate 1 is fixedly connected with an outer wall fixing component 8 for fixing the outer wall of the circuit board, and the top side wall of the base plate 1 is provided with a side wall fixing component 9 for fixing the side walls at both ends of the circuit board.

[0019] 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, two second slide plates 62 are slidably connected to the side walls of the bottom end of the second electric slide rail 61, the side walls of the bottom end of the second slide plate 62 are fixedly connected to the first electric telescopic rod 63, the telescopic ends of the first electric telescopic rod 63 are 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; 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 provided on the side walls at both ends of the base plate 1, the inner walls of the second grooves 73 are fixedly connected to the third electric slide rails 74, the side walls of the third electric slide rails 74 are slidably connected to the third slide plates 75, the side walls of the third slide plates 75 are fixedly connected to the bent rods 76, the opposite end of the bent rods 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.

[0020] 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 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, which makes it easier for staff to directly determine the location where holes need to be punched in the flexible circuit board.

[0021] In the embodiment, the outer wall fixing assembly 8 includes two sets of mounting plates 81 symmetrically fixedly connected to the side walls of the top end of the base plate 1, each set of mounting plates 81 having 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 plates 84, and the inner walls of the connecting plates 84 are fixedly connected to the fifth electric slide rail 85; The side walls of the fifth electric slide rail 85 are slidably connected to two fifth slides 86, the inner walls of the fifth slides 86 are fixedly connected to the third motor 87, the output end of the third motor 87 is fixedly connected to the fifth electric telescopic rod 88, the telescopic ends of the fifth electric telescopic rod 88 are fixedly connected to the concave plate 89, the inner walls at both ends of the concave plate 89 are fixedly connected to the sixth electric telescopic rod 810, and the telescopic ends of the sixth electric telescopic rod 810 are fixedly connected to the outer wall splint 811.

[0022] Specifically, the inclination angle of the outer wall clamp 811 can be adjusted according to the inclination angle of the outer wall after the flexible circuit board is bent into a W shape, so that the outer wall of the flexible circuit board can be fixed with the outer wall clamp 811, ensuring that the flexible circuit board does not shake during processing, thereby achieving high-precision processing of the flexible circuit board. Afterwards, the drill bit 69 is used to drill holes at designated positions on the flexible circuit board to complete the processing of the flexible circuit board, thereby avoiding calculation errors caused by the staff needing to calculate the positions of the holes required to be drilled on the surface of each W-shaped flexible circuit board with different forming angles, thereby greatly improving the processing efficiency and reliability of the flexible circuit board.

[0023] In the embodiment, the side wall fixing assembly 9 includes two third grooves 91 symmetrically formed on the top side wall of the base plate 1. The inner walls of the third grooves 91 are fixedly connected to a sixth electric slide rail 92. The top side wall of the sixth electric slide rail 92 is slidably connected to a sixth slide plate 93. The top side wall of the sixth slide plate 93 is fixedly connected to a seventh electric telescopic rod 94. The telescopic end of the seventh electric telescopic rod 94 is fixedly connected to a fixing block 95. The inner wall of the fixing block 95 is fixedly connected to the seventh electric slide rail 96. The side walls of the seventh electric slide rail 96 are slidably connected to a plurality of seventh slide plates 97, the side walls of the seventh slide plates 97 are fixedly connected to a second U-plate 98, the side walls of the second U-plate 98 are fixedly connected to a fourth motor 99, the inner wall of the second U-plate 98 is rotatably connected to a 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 a third U-plate 911, the upper and lower inner walls of the third U-plate 911 are fixedly connected to an eighth electric telescopic rod 912, and the telescopic ends of the eighth electric telescopic rod 912 are fixedly connected to a 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, and the inner walls of the fourth grooves 914 are fixedly connected to the eighth electric slide rail 915, and the side walls of the eighth electric slide rail 915 are slidably connected to the eighth slide plate 916, and the side walls of the eighth slide plate 916 are fixedly connected to the ninth electric telescopic rod 917, and the telescopic ends of the ninth electric telescopic rod 917 are fixedly connected to the limiting rod 918, and the inner walls at both ends of the limiting rod 918 are symmetrically fixedly connected to two tenth electric telescopic rods 919, and the telescopic ends of the tenth electric telescopic rod 919 are fixedly connected to the limiting plate 920.

[0024] Specifically, the limiting plate 920 and the side wall clamp 913 can be used to fix the two ends, and when bending the flexible circuit board, ensure that the two ends of the flexible circuit board do not move around, which facilitates better bending of the flexible circuit board. In the bending process of the flexible circuit board, the limiting plate 920 and the side wall clamp 913 can always keep the side wall of the flexible circuit board fixed in the same position, and do not apply other pressure to the side wall of the flexible circuit board, thereby improving the stability of the flexible circuit board when it is bent into a W shape.

[0025] The operating principle of the present invention is now described as follows: In the present invention, when the circuit board needs to be processed, the sixth electric slide 92 is first controlled to start, driving the sixth slide 93 to move, so that the distance between the two sixth slides 93 is slightly larger than the length of the circuit board to be processed, and then the seventh electric slide 96 is controlled to start, driving multiple seventh slides 97 to move, so that the limit rod 918 in the seventh slide 97 is located on the side of the limit hole provided on the top side wall of the circuit board, and then the staff puts the two ends of the flexible circuit board into the corresponding third U plate 911 respectively, and then controls the eighth electric telescopic rod 912 to start, driving the side wall clamp The plate 913 moves, and the side wall clamping plate 913 is used to fix the two ends of the flexible circuit board. Then, the eighth electric slide rail 915 is controlled to start, driving the eighth slide plate 916 to move, so that the limit rod 918 is located above or below the limit hole opened on the side wall of the corresponding flexible circuit board. Then, the ninth electric telescopic rod 917 is controlled to start, so that the limit rod 918 moves to the corresponding limit hole. Then, the tenth electric telescopic rod 919 is controlled to start, driving the limit plate 920 to move, and the limit plate 920 is used to fix the inner wall of the limit hole, thereby achieving the fixation of the side walls at both ends of the flexible circuit board.

[0026] Then, the two third electric slide rails 74 are controlled to start, driving the corresponding third slide plate 75 to move, thereby using the bending rod 76 to drive the side plate 77 to move, so that the second analog rod 79 moves to the top of the place where the flexible circuit board needs to be bent. Then, the fourth electric telescopic rod 78 and the third electric telescopic rod 71 are controlled to start at the same time, driving the corresponding first analog rod 72 and the second analog rod 79 to move toward the flexible circuit board, applying pressure to the flexible circuit board, so that the flexible circuit board bends at the bending point. In this process, the corresponding sixth electric slide rail 92 is controlled to start continuously, driving the sixth slide plate 93 to move continuously, so that the third U plate 911 The side wall clamps 913 and the limiting plates 920 move along with the bending speed of the flexible circuit board to ensure that the side wall of the flexible circuit board can always be fixed by the side wall clamps 913 and the limiting plates 920. In this process, the fourth motor 99 is controlled to start, driving the second round rod 910 to rotate, thereby driving the third U plate 911 to rotate, so that the speed of rotation of the side wall clamps 913 and the limiting plates 920 matches the bending speed of the flexible circuit board, ensuring that the side wall clamps 913 always have the same inclination angle as the side wall of the flexible circuit board, preventing the side wall clamps 913 and the limiting plates 920 from exerting pressure on the flexible circuit board when the flexible circuit board is bent, causing deformation at the edge of the flexible circuit board. After the first analog rod 72 and the second analog rod 79 complete the extrusion of the flexible circuit board, the flexible circuit board now forms a specified W-shaped flexible circuit board, and the bending angle and bending position of the W-shaped flexible circuit board at this time meet the subsequent use requirements, and then the fourth electric slide 82 and the fifth electric slide 85 are controlled to start, driving the fourth slide 83 and the fifth slide 86 to move, so that the concave plate 89 moves to the side of the outer wall of the W-shaped flexible circuit board, and then the third motor 87 is controlled to start, driving the fifth electric telescopic rod 88 and the concave plate 89 to rotate, so that the inclination angle of the outer wall clamping plate 811 is consistent with the inclination angle of the outer wall of the W-shaped flexible circuit board. To match, the fifth electric telescopic rod 88 is controlled to start, so that the outer wall splint 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 splint 811 to move, and the outer wall splint 811 is used to fix the outer wall of the W-shaped flexible circuit board. At this time, the fixation of the formed W-shaped flexible circuit board is completed, preventing the flexible circuit board from shaking during the processing, and improving the accuracy of the flexible circuit board processing. At the same time, the flexible circuit board is adjusted to a W-shaped flexible circuit board that meets the subsequent use requirements, which is convenient for the staff to directly determine the position where the flexible circuit board needs to be punched.

[0027] Then, the first electric slide 3 and the second electric slide 61 are controlled to start, driving the corresponding first slide 4 and the second slide 62 to move, so that the drill bit 69 moves to the side of the flexible circuit board where a hole needs to be punched, and then the first motor 67 is controlled to start, driving the first round rod 65 to rotate 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, by controlling the first electric telescopic rod 63 and the second electric telescopic rod 66 to start, the drill bit 69 is driven to move toward the side wall of the flexible circuit board, and then the second motor 68 is controlled to start, driving the drill bit 69 to rotate, and the drill bit 69 is used to punch a hole in the side wall of the flexible circuit board at a specified position to complete the processing of the flexible circuit board. When the flexible circuit board needs to be processed, the first analog rod 72 and the second analog rod 79 can be used to apply pressure to the side wall of the flexible circuit board to bend the flexible circuit board into a W-shaped flexible circuit board that meets the subsequent use requirements, so that the staff can directly judge the position where the flexible circuit board needs to be punched. At the same time, the limit plate 920 and the side wall clamp 913 can be used to The two ends can be fixed, and when the flexible circuit board is bent, the two ends of the flexible circuit board are ensured not to move around, which is convenient for better bending of the flexible circuit board. In the bending process of the flexible circuit board, the limit plate 920 and the side wall clamping plate 913 can always keep the side wall of the flexible circuit board fixed in the same position, and do not apply other pressure to the side wall of the flexible circuit board, thereby improving 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 after the flexible circuit board is bent into a W shape, so that the outer wall of the flexible circuit board can be fixed by the outer wall clamping plate 811, ensuring that the flexible circuit board does not shake during processing, and realizing high-precision processing of the flexible circuit board. Afterwards, the drill bit 69 is used to drill holes in the specified position of the flexible circuit board to complete the processing of the flexible circuit board, avoiding the need for staff to calculate the position of the holes required to be drilled on the surface of each W-shaped flexible circuit board with different forming angles one by one, resulting in calculation errors, thereby greatly improving the processing efficiency and reliability of the flexible circuit board.

[0028] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

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 two first grooves (2) are fixedly connected to a first electric slide rail (3), the top side wall of the first electric slide rail (3) is slidably connected to two first slide plates (4), the side walls of the first slide plates (4) are fixedly connected to the same support plate (5), the inner wall of the support plate (5) is fixedly connected to a processing component (6) for processing a circuit board, the top side wall of the bottom plate (1) is fixedly connected to a simulation component (7) for simulating the shape of a flexible circuit board when in 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 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 circuit board; 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), and two second grooves (73) are symmetrically formed on the side walls at both ends of the base plate (1), and the inner wall of the second groove (73) is fixedly connected to the third electric slide rail (74); A concave plate (89) is provided on one side of the outer wall fixing assembly (8), and the inner walls at 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); A ninth electric telescopic rod (917) is provided on one side of the side wall fixing assembly (9), the telescopic ends of the ninth electric telescopic rod (917) are fixedly connected to a limiting rod (918), two tenth electric telescopic rods (919) are symmetrically fixedly connected to the inner walls of both ends of the limiting rod (918), and the telescopic ends of the tenth electric telescopic rod (919) are fixedly connected to a 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 side walls of the third electric slide rail (74) are slidably connected to a third slide plate (75), the side walls of the third slide plate (75) are fixedly connected to a bent rod (76), the bent rod (76) is fixedly connected to the same side plate (77) at one opposite end, the bottom side wall of the side plate (77) is fixedly connected to a fourth electric telescopic rod (78), and the telescopic end of the fourth electric telescopic rod (78) is fixedly connected to a 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), and the telescopic end of the fifth electric telescopic rod (88) is fixedly connected to a concave plate (89).

6. The high-precision anti-shake circuit board processing device according to claim 1, characterized in that: 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 a sixth electric slide rail (92), the top side wall of the sixth electric slide rail (92) is slidably connected to a sixth slide plate (93), the top side wall of the sixth slide plate (93) is fixedly connected to a seventh electric telescopic rod (94), the telescopic end of the seventh electric telescopic rod (94) is fixedly connected to a fixed block (95), and the inner wall of the fixed block (95) is fixedly connected to the seventh electric slide rail (96).

7. A high-precision anti-shake circuit board processing device according to claim 6, characterized in that: 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 a second U-plate (98), the side wall of the second U-plate (98) is fixedly connected to a fourth motor (99), the inner wall of the second U-plate (98) is rotatably connected to a 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 a third U-plate (911), the inner walls of the upper and lower ends of the third U-plate (911) are both fixedly connected to an eighth electric telescopic rod (912), and the telescopic ends of the eighth electric telescopic rod (912) are both fixedly connected to a side wall clamp (913).

8. The high-precision anti-shake circuit board processing device according to claim 7, characterized in that: 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); and the side walls of the eighth slide plate (916) are fixedly connected to the ninth electric telescopic rod (917).

Citation Information

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