FFC cable production and processing equipment with bending function

By designing FFC cable production and processing equipment, efficient and precise bending and assembly of FFC cables have been achieved, solving the problems of low efficiency and insufficient inspection of manual bending, and improving production efficiency and product quality.

CN116727561BActive Publication Date: 2026-06-02CHENZHOU TSUJIMOTO ELECTRONICS CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
CHENZHOU TSUJIMOTO ELECTRONICS CO LTD
Filing Date
2023-05-26
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Manually bending FFC cables is inefficient, inaccurate, and can easily damage the connection points. It also takes a long time to assemble and lacks effective testing methods.

Method used

Design an FFC cable production and processing equipment with bending function, including a worktable, translation component, fixing plate, limiting component and detection component, to achieve precise bending and online detection through mechanized operation, prevent cable deformation, and remove dust before assembly to ensure connection reliability.

Benefits of technology

It enables efficient and precise bending and assembly of FFC cables, reduces errors from manual operation, improves production efficiency, and ensures product quality through online inspection and cleaning measures.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical field of FFC processing equipment, and particularly relates to a FFC cable production and processing equipment with a bending function. The technical problem is that manual operation is prone to inaccurate bending, slow assembly efficiency, and production of defective products. The technical scheme of the present application is a FFC cable production and processing equipment with a bending function, comprising a workbench, a translation assembly, a first fixed plate and the like. The translation assembly is connected in the workbench. The translation assembly is connected with two first fixed plates, and the two first fixed plates are driven to move left and right by the translation assembly. The pushing block and the clamping block guide the cable arched in the middle, so that the two ends of the cable arch are rotated in the direction of the inclination angle of the clamping block, preventing the cable from being wrinkled when being bent.
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Description

Technical Field

[0001] This invention relates to the technical field of FFC processing equipment, and more particularly to an FFC cable production and processing equipment with bending function. Background Technology

[0002] Flexible flat cable, abbreviated as FFC, is a new type of data cable made of PET insulation material and extremely thin tin-plated flat copper wire, pressed together by high-tech automated production line. It has the advantages of being flexible, easy to bend and fold, thin, small in size, easy to connect and disassemble, and easy to solve electromagnetic shielding (EMI).

[0003] During production, manufacturers pre-bend the cables in a Z-shape to create creases, allowing for direct installation without further bending, which is more convenient. In contrast, when bending cables in a Z-shape, workers simply bend the two ends of the cable in different directions to achieve the Z-shape. However, manual bending requires precise positioning of the bending point, which is inefficient and prone to inaccurate bending.

[0004] Meanwhile, because the connection points at both ends of the cable are easily squeezed during transportation and storage, resulting in damage and rendering the cable unusable, the manufacturer will pre-assemble the connectors and cables to be assembled.

[0005] When assembling bent cables, the bending area is prone to bending and deformation, causing deformation at the bending position. In order to prevent cable deformation during manual assembly, the operation needs to be very careful, which leads to long assembly time and slow cable production efficiency.

[0006] During cable production, problems such as missing or broken connecting components may occur, and current technology lacks detection procedures for these issues. Summary of the Invention

[0007] To overcome the drawbacks of manual placement leading to inaccurate bending, slow assembly efficiency, and defective products during production, this invention provides an FFC cable production and processing equipment with bending function.

[0008] The technical solution of this invention is as follows: an FFC cable production and processing equipment with bending function, comprising a worktable, a translation component, and a first fixed plate; the translation component is connected inside the worktable; the translation component is connected to two first fixed plates, and the translation component drives the two first fixed plates to move left and right respectively; it also includes a first fixed block, a feeding plate, a mounting frame, a first push rod, a clamping block, a translation unit, a limiting component, and an assembly system; each first fixed plate is fixedly connected to a first fixed block; each first fixed block is fixedly connected to a feeding plate on its upper side; each feeding plate is open There is a feeding trough; each first fixing block has a mounting bracket fixed to its rear side; each mounting bracket has two first push rods fixed to it; the four first push rods are distributed in a left-right direction; each of the two middle first push rods has a clamping block fixed to its telescopic part; the two outer first push rod telescopic parts, the first fixing plate, and the first fixing block are connected together to an assembly system for assembling the connector to be assembled on both sides of the cable; the two feeding plates are inclined on opposite sides; the two clamping blocks are inclined on opposite sides; the worktable and the first fixing plate are connected together to a limiting component for limiting the bending of the cable.

[0009] More preferably, it also includes a pusher plate; each material block is connected to a pusher plate at the lower middle part of its lower side via a torsion spring shaft, and the two pusher plates are initially in a figure-eight shape.

[0010] More preferably, the flat push unit includes a second push rod and a bending block; two second push rods are fixedly connected to the opposing sides of the two first fixed blocks; and the telescopic parts of the two second push rods on the same first fixed block are jointly fixedly connected to a bending block.

[0011] More preferably, the limiting component includes a connecting block, a third push rod, a motor, and a pusher block; the connecting block is fixedly connected to the center of the worktable; the connecting block is fixedly connected to the third push rod; the telescopic part of the third push rod is fixedly connected to the motor; and the pusher block is fixedly connected to the motor output shaft.

[0012] More preferably, it also includes clamping blocks; one clamping block is fixed to each side of the pusher block.

[0013] More preferably, the assembly system includes a first sliding rod, a connecting plate, a first spring, a second sliding rod, a first clamping plate, a second spring, a second fixing plate, a third sliding rod, a third spring, a second clamping plate, a limiting block, and a detection component; several first sliding rods are slidably connected to the opposite sides of the two first fixing blocks; all the first sliding rods on the same first fixing block are fixedly connected to a connecting plate; each first sliding rod is fitted with a first spring; both ends of the first spring are fixedly connected to the first fixing block and the connecting plate; a second sliding rod is slidably connected to each side of each connecting plate; two second sliding rods on the same connecting plate are fixedly connected to a first clamping plate; each Each of the second sliding rods is fitted with a second spring; both ends of the second springs are fixedly connected to the connecting plate and the first clamping plate; the first clamping plate has several clamping grooves; each of the two outer first push rod telescopic parts is fixedly connected to a second fixing plate; a third sliding rod is slidably connected to both sides of each second fixing plate; two third sliding rods on the same second fixing plate are jointly fixedly connected to a second clamping plate; each of the third sliding rods is fitted with a third spring; both ends of the third springs are fixedly connected to the second fixing plate and the second clamping plate; a limiting block is fixedly connected to both sides of each first fixing block; the first fixing plate is connected to a detection component for detecting cables and assembling connectors to be assembled.

[0014] More preferably, the detection assembly includes a rotating platform, a second fixed block, a fourth push rod, a detector, and an electric gripper; each first fixed plate is fixedly connected to a rotating platform; each rotating part of each rotating platform is fixedly connected to a second fixed block; each second fixed block is fixedly connected to two vertically distributed fourth push rods; the two fourth push rods on the same second fixed block are arranged in a cross shape; each of the two horizontally oriented fourth push rod telescopic parts is fixedly connected to a detector; each detector is connected to a detection connector; each of the two vertically distributed fourth push rod telescopic parts is fixedly connected to an electric gripper.

[0015] More preferably, it also includes airbags; an airbag is fixedly connected to each of the two first clamping plates on opposite sides; an airbag is fixedly connected to each of the two second clamping plates on opposite sides; the two airbags on the same side are symmetrical vertically, and air outlet grooves are opened on the opposite sides of the two airbags on the same side.

[0016] More preferably, the upper part of the pusher block is arc-shaped.

[0017] More preferably, the air vent of the airbag is inclined toward the side away from the first clamping plate.

[0018] Beneficial effects: The rotation of the two pusher plates will push the two sides of the cable to move in opposite directions, so that the cable is in a horizontal state and the bending position is more accurate.

[0019] The pusher block and clamping block guide the cable that is arched in the middle, causing the two ends of the cable arch to rotate in the direction of the clamping block's tilt angle, preventing wrinkles from forming when the cable is bent, which could cause product damage or non-compliance with bending standards.

[0020] The testing connector is inserted into the connecting element, and then the detector at one end begins to send a signal, which is transmitted to the detector at the other end through the cable. When the detector at the other end receives the signal, the green light will illuminate, indicating that the cable has not been damaged during the manufacturing process and can be used normally. When the detector at the other end does not receive a signal or receives an incomplete signal, the red light will illuminate, indicating that there is a problem with the cable and it cannot be used normally.

[0021] Gas is injected into the testing connector or the connector to be assembled, thereby blowing away the dust inside the testing connector or the connector to be assembled, preventing poor contact due to dust accumulation in the connecting elements during testing, which would lead to inaccurate testing. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the structure of the FFC cable production and processing equipment with bending function of the present invention.

[0023] Figure 2 This is a partial structural cross-sectional view of the FFC cable production and processing equipment with bending function disclosed in this invention;

[0024] Figure 3 This is a schematic diagram of the second partial structure of the FFC cable production and processing equipment with bending function disclosed in this invention;

[0025] Figure 4 This is a schematic diagram of the third part of the FFC cable production and processing equipment with bending function disclosed in this invention.

[0026] Figure 5 This is a cross-sectional view of the limiting component structure disclosed in the FFC cable production and processing equipment with bending function of the present invention;

[0027] Figure 6 This is a schematic diagram of the first partial structure of the assembly system disclosed in the FFC cable production and processing equipment with bending function of the present invention;

[0028] Figure 7 This is a schematic diagram of the second part of the assembly system disclosed in the FFC cable production and processing equipment with bending function of the present invention.

[0029] The diagram is labeled as follows: 1-Workbench, 101-Guide rail, 102-Moving block, 103-First fixed plate, 104-First fixed block, 105-Discharging plate, 106-Mounting bracket, 107-First push rod, 108-Clamping block, 109-Pushing plate, 1010-Second push rod, 1011-Bending block, 201-Connecting block, 202-Third push rod, 203-Motor, 204-Pushing block, 205-Clamping block, 301-First sliding rod, 302-Connecting plate, 303-First spring, 3 04-Second sliding rod, 305-First clamping plate, 306-Second spring, 307-Second fixing plate, 308-Third sliding rod, 309-Third spring, 3010-Second clamping plate, 3011-Limiting block, 311-Rotating platform, 312-Second fixing block, 313-Fourth push rod, 314-Detector, 315-Electric gripper, 316-Airbag, 100-Detection connector, 200-Connector to be assembled, 300-Cable, 105a-Discharge trough, 305a-Clamping trough. Detailed Implementation

[0030] The present invention will be further described below with reference to the embodiments shown in the accompanying drawings.

[0031] Example 1

[0032] An FFC cable manufacturing and processing equipment with bending function, such as Figure 1-4 As shown, it includes a worktable 1, a translation component and a first fixed plate 103; the worktable 1 is connected to the translation component; the translation component is connected to two first fixed plates 103, and the translation component drives the two first fixed plates 103 to move left and right respectively;

[0033] It also includes a first fixing block 104, a feeding plate 105, a mounting bracket 106, a first push rod 107, a clamping block 108, a flat pushing unit, a limiting component, and an assembly system; each first fixing plate 103 is bolted to a first fixing block 104; each first fixing block 104 is fixedly connected to a feeding plate 105 on its upper side; each feeding plate 105 has a feeding groove 105a; each first fixing block 104 is fixedly connected to a mounting bracket 106 on its rear side; each mounting bracket 106 is bolted to two first push rods 107; four The first push rods 107 are distributed in the left and right direction; each of the two middle first push rods 107 telescopic parts is fixed with a clamping block 108; the telescopic parts of the two outer first push rods 107, the first fixing plate 103 and the first fixing block 104 are connected to the assembly system; the two feeding plates 105 are inclined to the opposite side; the two clamping blocks 108 are inclined to the opposite side, so that after the cable 300 is bent along the feeding plate 105 and the clamping block 108, the cable 300 can obtain a Z-shaped crease; the worktable 1 and the first fixing plate 103 are connected to the limit assembly.

[0034] It also includes a pusher plate 109; each material block 108 is connected to a pusher plate 109 at the lower middle part of its lower side through a torsion spring shaft, and the two pusher plates 109 are initially in a figure-eight shape.

[0035] The flat push unit includes a second push rod 1010 and a bending block 1011; two first fixing blocks 104 are each fixed to two second push rods 1010 on opposite sides; the telescopic parts of the two second push rods 1010 on the same first fixing block 104 are jointly fixed to a bending block 1011.

[0036] The translation component includes a guide rail 101 and a moving block 102; a guide rail 101 is fixedly connected to the left and right sides of the worktable 1; two moving blocks 102 are slidably connected to each of the two guide rails 101; and a first fixed plate 103 is fixedly connected to each of the two moving blocks 102.

[0037] The specific work steps are as follows:

[0038] Before the actual work begins, the connector 200 to be assembled is placed into the assembly system. Then, both ends of the cable 300 are placed into the feeding slots 105a of the two feeding plates 105. During placement, the middle of the cable 300 is positioned into the limiting component. Then, the two middle first push rods 107 push the clamping blocks 108 down to clamp the cable 300. Because the cable 300 cannot be guaranteed to be taut during placement, the middle of the cable 300 arches after placement. When the two clamping blocks 108 descend, they will cause the initial... Initially, the two pusher plates 109, tilted in a V-shape, descend. When the two pusher plates 109 contact the cable 300, they are squeezed and rotated, causing them to push the two sides of the cable 300 to move in opposite directions. This straightens the arched part in the middle of the cable 300, bringing it to a horizontal position and making the bending position more precise. After clamping the cable 300, the two guide rails 101 drive the corresponding moving blocks 102 to move the first fixing plate 103 towards each other. The first fixing plate 103 will move the first fixing block 104, the feeding plate 105, the mounting bracket 106, the first push rod 107, the clamping block 108, the push plate 109, the second push rod 1010, the bending block 1011, and the assembly system together. At the same time, the feeding plate 105 and the clamping block 108 will clamp the two ends of the cable 300 and move it towards the middle of the cable 300, causing the middle of the cable 300 to arch. When the moving block 102 moves, the limiting component will rise and lift the middle of the cable 300, ensuring that the cable 300 is properly positioned. The middle part of the cable 300 arches upwards, and when the limiting component rises, it causes the cable 300 to rotate together. After rotation, the bending position of the cable 300 fits against the opposing inclined surfaces of the two clamping blocks 108. Then, the second push rod 1010 pushes the corresponding bending block 1011 to move upwards, making the bending block 1011 and the clamping block 108 flush. When the bending block 1011 rises, it will slowly push the cable 300 upwards, thereby squeezing the cable 300 against the inclined surface of the clamping block 108, so that creases are formed at both ends of the cable 300.

[0039] Example 2

[0040] Based on Example 1, such as Figure 5 As shown, the limiting assembly includes a connecting block 201, a third push rod 202, a motor 203, and a pusher block 204; the connecting block 201 is bolted to the center of the worktable 1; the third push rod 202 is fixedly connected to the connecting block 201; the motor 203 is fixedly connected to the telescopic part of the third push rod 202; and the pusher block 204 is fixedly connected to the output shaft of the motor 203.

[0041] It also includes a clamping block 205; a clamping block 205 is fixedly connected to the front and rear sides of the pusher block 204, and the clamping block 205 can prevent the cable 300 from falling off the pusher block 204.

[0042] The specific work steps are as follows:

[0043] When the pusher block 204 is placed in the middle of the cable 300, it is initially blocked by the clamping block 205 on the front and back sides of the middle of the cable 300. When the two pusher plates 109 push the sides of the cable 300 and move them in opposite directions, the middle of the cable 300 becomes taut, thus squeezing the clamping block 205 and deforming it. This allows the cable 300 to pass over the clamping block 205, so that the lower side of the middle of the cable 300 is in contact with the pusher block 204, placing the cable 300 between the pusher block 204 and the clamping block 205. At the same time as the first fixing plate 103 moves, the third pusher 202 pushes... The motor 203, pusher block 204, and clamping block 205 rise, causing the pusher block 204 and clamping block 205 to arch the middle of the cable 300, so that the middle of the cable 300 is at the highest point of the arch. At the same time as rising, the motor 203 will drive the pusher block 204 and clamping block 205 to rotate counterclockwise at a top-down angle, so that the pusher block 204 and clamping block 205 guide the cable 300 with the middle arch, thereby driving the cable 300 to rotate, so that the two ends of the cable 300 arch are attached to the opposite sides of the two clamping blocks 108, which facilitates subsequent bending.

[0044] Example 3

[0045] Based on Example 1, such as Figure 6-7As shown, the assembly system includes a first sliding rod 301, a connecting plate 302, a first spring 303, a second sliding rod 304, a first clamping plate 305, a second spring 306, a second fixing plate 307, a third sliding rod 308, a third spring 309, a second clamping plate 3010, a limiting block 3011, and a detection component; three first sliding rods 301 are slidably connected to the opposite sides of two first fixing blocks 104; all the first sliding rods 301 on the same first fixing block 104 are fixedly connected to a connecting plate 302; each first sliding rod 301 is fitted with a first spring 303; both ends of the first spring 303 are fixedly connected to the first fixing block 104 and the connecting plate 302; a second sliding rod 304 is slidably connected to the front and rear of each connecting plate 302; two second sliding rods 304 on the same connecting plate 302 are fixedly connected to a first spring 3011. A clamping plate 305; each second sliding rod 304 is fitted with a second spring 306; both ends of the second spring 306 are fixedly connected to the connecting plate 302 and the first clamping plate 305; the first clamping plate 305 has several clamping grooves 305a; each of the two outer first push rods 107 telescopic parts is fixedly connected to a second fixing plate 307; each second fixing plate 307 has a third sliding rod 308 slidably connected to its front and rear sides; the two third sliding rods 308 on the same second fixing plate 307 are jointly fixedly connected to a second clamping plate 3010; each third sliding rod 308 is fitted with a third spring 309; both ends of the third spring 309 are fixedly connected to the second fixing plate 307 and the second clamping plate 3010; each first fixing block 104 has a limit block 3011 bolted to its front and rear; the first fixing plate 103 is connected to a detection component.

[0046] The detection assembly includes a rotating platform 311, a second fixed block 312, a fourth push rod 313, a detector 314, and an electric gripper 315. Each first fixed plate 103 is bolted to a rotating platform 311. A second fixed block 312 is fixed to the rotating part of each rotating platform 311. Each second fixed block 312 is fixed to two vertically distributed fourth push rods 313. The two fourth push rods 313 on the same second fixed block 312 are arranged in a cross shape. A detector 314 is bolted to the telescopic part of each of the two horizontally oriented fourth push rods 313. Each detector 314 is connected to a... A detection connector 100 pushes two detectors 314 toward each other via a fourth push rod 313. This causes the detectors 314 to push the detection connector 100, allowing the connector 100 to be tested to be inserted into the connection end of the cable 300, putting the cable 300 into a transmission state. If the detection connector 100 receives a transmission signal, a green light will illuminate, indicating that the cable 300 is functioning normally. If no transmission signal is received, a red light will illuminate, indicating that the cable 300 is damaged and cannot be used normally. Each of the two longitudinally distributed fourth push rods 313 has an electric gripper 315 fixedly attached to its telescopic section.

[0047] It also includes an airbag 316; each of the two first clamping plates 305 is clamped to an airbag 316 on its opposite side; each of the two second clamping plates 3010 is clamped to an airbag 316 on its opposite side; the two airbags 316 on the same side are symmetrical, and the two airbags 316 on the same side have air outlet grooves on their facing sides.

[0048] The upper part of the bending side of the bending block 1011 is inclined. When bending, the cable 300 will be in a bent state. When the bending block 1011 is pushed, it can slowly push the cable 300 flat to prevent wrinkles from being caused by direct pushing.

[0049] The upper part of the pusher block 204 is arc-shaped, so that when the cable 300 is bent, the upper part of the pusher block 204 fits the cable 300 better.

[0050] The opposing sides of the limiting block 3011 and the second sliding rod 304 are inclined.

[0051] The air vent of the airbag 316 is tilted toward the side away from the first clamping plate 305, so that the blown gas is obliquely blown into the insertion hole of the test connector 100 or the connector 200 to be assembled.

[0052] The specific work steps are as follows:

[0053] When the clamping block 108 descends and flattens the cable 300, the two outer first push rods 107 push the second fixing plate 307 downward, thereby causing the second fixing plate 307 to drive the third sliding rod 308, the third spring 309, and the second clamping plate 3010 to descend. After the second fixing plate 307 and the second clamping plate 3010 descend, they cooperate with the connecting plate 302 and the first clamping plate 305 to clamp both ends of the cable 300, so that the connecting elements exposed at both ends of the cable 300 enter the clamping groove 305a. Then, the two horizontal fourth push rods 313 push the detector 314 to move towards the connecting elements. Insert the connector 100 connected to detector 314 into the connecting element. Then, detector 314 at one end begins to transmit a signal, which is transmitted to detector 314 at the other end via cable 300. When detector 314 at the other end receives a signal, its green light will illuminate, indicating that cable 300 has not been damaged during the manufacturing process and can be used normally. When detector 314 at the other end does not receive a signal or receives an incomplete signal, its red light will illuminate, indicating that cable 300 has a problem and cannot be used normally. After the test is completed, the horizontal... The two fourth push rods 313 push the detector 314 back to its original position. Then, the corresponding rotating platform 311 on the right end drives the second fixing block 312, the fourth push rod 313, the detector 314, the detection connector 100, the electric gripper 315, and the connector 200 to be assembled to rotate 90 degrees clockwise from a top-view angle. At the same time, the rotating platform 311 on the left end drives the corresponding second fixing block 312, the fourth push rod 313, the detector 314, the detection connector 100, the electric gripper 315, and the connector 200 to be assembled held by the electric gripper 315 to rotate counterclockwise from a top-view angle. Rotate 90 degrees to rotate the two connectors 200 to be assembled, which are held by the electric grippers 315, to both ends of the cable 300 connecting element. Then, the fourth push rod 313 connected to the connectors 200 to be assembled pushes the electric grippers 315 to move towards the cable 300, so that the electric grippers 315 drive the connectors 200 to be assembled towards the cable 300, thereby assembling the connectors 200 and the cable 300 together. Then, the electric grippers 315 release the connectors 200 to be assembled. After all parts return to their original state, the bent and assembled cable 300 can be taken out.

[0054] It should be noted that the descent of the two second clamping plates 3010 will cause the corresponding airbags 316 to descend. After the two airbags 316 descend, they will fit against the lower airbag 316. After the second clamping plates 3010 descend and fit against the first clamping plate 305, they will clamp the cable 300 connector into the clamping groove 305a. This means that after the second clamping plates 3010 descend and fit against the first clamping plate 305, the two airbags 316 on the same side will block the space on one side of the cable 300. When the testing connector 100 or the connector to be assembled 200 is pushed towards the cable 300, the testing connector 100 or the connector to be assembled 200 will... The airbags 316 are aligned so that the insertion hole of the testing connector 100 or the connector 200 to be assembled is located between the two airbags 316. Then, the testing connector 100 or the connector 200 to be assembled squeezes the airbags 316, causing them to expel gas. This gas is then injected into the insertion hole of the testing connector 100 or the connector 200 to be assembled, blowing away dust from inside. Since the connector 200 to be assembled is composed of multiple parts, the blown dust will escape from the gaps between the parts, thus preventing dust from escaping during testing due to misalignment between the testing connector 100 and the connector 200. Dust accumulation in the connecting components can lead to poor contact and inaccurate detection. When the detection connector 100 or the connector to be assembled 200 continues to move towards the cable 300, it pushes the first clamping plate 305 and the second clamping plate 3010 together. Meanwhile, the second spring 306 and the third spring 309 retract. Because the PET layer wraps the tin-plated flat copper wire, there will be a height difference between the PET layer and the exposed connecting components at both ends of the cable 300. If the first clamping plate 305 continues to move, the clamping groove 305a of the first clamping plate 305 will... This would squeeze and damage the PET layer. Therefore, when the first clamping plate 305 moves the second sliding rod 304 to the limiting block 3011, it will be blocked by the limiting block 3011, causing the second sliding rod 304 to move diagonally downward. The diagonal downward movement of the second sliding rod 304 will cause the connecting plate 302 and the first clamping plate 305 to move downward together. The downward movement of the connecting plate 302 will cause the first spring 303 to contract. After the first clamping plate 305 moves downward, the upper surface of the first clamping plate 305 will be below the lower surface of the PET layer. Then, when the first clamping plate 305 moves to the PET layer, it will not squeeze the PET layer.

[0055] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.

Claims

1. A production and processing equipment for FFC cables with bending function, characterized in that: The system includes a worktable (1), a translation component, and a first fixed plate (103); the worktable (1) is connected to a translation component; the translation component connects to two first fixed plates (103), and the translation component drives the two first fixed plates (103) to move left and right respectively; it also includes a first fixed block (104), a feeding plate (105), a mounting bracket (106), a first push rod (107), a clamping block (108), a horizontal push unit, a limiting component, and an assembly system; each first fixed plate (103) is fixedly connected to a first fixed block (104); each first fixed block (104) is fixedly connected to a feeding plate (105) on its upper side; each feeding plate (105) has a feeding groove (105a); each first fixed block (104) Each of the four first push rods (107) is fixed to a mounting bracket (106) on the rear side; each mounting bracket (106) is fixed to two first push rods (107); the four first push rods (107) are distributed in the left and right directions; each of the two middle first push rods (107) has a clamping block (108) fixed to its telescopic part; the telescopic parts of the two outer first push rods (107), the first fixing plate (103) and the first fixing block (104) are connected to an assembly system for assembling the connector (200) to be assembled on both sides of the cable (300); the two feeding plates (105) are inclined on the opposite side; the two clamping blocks (108) are inclined on the opposite side; the worktable (1) and the first fixing plate (103) are connected to a limiting component for limiting the bending cable (300); The flat push unit includes a second push rod (1010) and a bending block (1011); two first fixed blocks (104) are each fixed to two second push rods (1010) on opposite sides; the telescopic parts of the two second push rods (1010) on the same first fixed block (104) are jointly fixed to a bending block (1011). The limiting assembly includes a connecting block (201), a third push rod (202), a motor (203), and a pusher block (204); the connecting block (201) is fixedly connected to the center of the worktable (1); the third push rod (202) is fixedly connected to the connecting block (201); the motor (203) is fixedly connected to the telescopic part of the third push rod (202); the pusher block (204) is fixedly connected to the output shaft of the motor (203); It also includes a clamping block (205); a clamping block (205) is fixedly connected to each side of the pusher block (204).

2. The FFC cable production and processing equipment with bending function according to claim 1, characterized in that: It also includes a pusher plate (109); each material block (108) is connected to a pusher plate (109) at the lower middle part of its lower side through a torsion spring shaft, and the two pusher plates (109) are initially in a figure-eight shape.

3. The FFC cable production and processing equipment with bending function according to claim 1, characterized in that: The assembly system includes a first sliding rod (301), a connecting plate (302), a first spring (303), a second sliding rod (304), a first clamping plate (305), a second spring (306), a second fixing plate (307), a third sliding rod (308), a third spring (309), a second clamping plate (3010), a limiting block (3011), and a detection component; several first sliding rods (301) are slidably connected to the opposite sides of the two first fixing blocks (104); the same first fixing block ( All the first sliding rods (301) on the first fixed block (104) are fixedly connected to a connecting plate (302); each first sliding rod (301) is fitted with a first spring (303); the two ends of the first spring (303) are fixedly connected to the first fixed block (104) and the connecting plate (302); each connecting plate (302) has a second sliding rod (304) slidably connected to each side; the two second sliding rods (304) on the same connecting plate (302) are fixedly connected to a first clamping plate (305); each Each of the second sliding rods (304) is fitted with a second spring (306); the two ends of the second springs (306) are fixedly connected to the connecting plate (302) and the first clamping plate (305); the first clamping plate (305) has several clamping grooves (305a); the telescopic parts of the two outer first push rods (107) are each fixedly connected to a second fixing plate (307); each of the two sides of each second fixing plate (307) is slidably connected to a third sliding rod (308); the two third sliding rods on the same second fixing plate (307) are... The sliding rods (308) are all fixedly connected to a second clamping plate (3010); each third sliding rod (308) is fitted with a third spring (309); the two ends of the third spring (309) are fixedly connected to the second fixing plate (307) and the second clamping plate (3010); each first fixing block (104) is fixedly connected to a limiting block (3011) on both sides; the first fixing plate (103) is connected to a detection component for detecting the cable (300) and assembling the connector (200) to be assembled.

4. The FFC cable production and processing equipment with bending function according to claim 3, characterized in that: The detection assembly includes a rotating platform (311), a second fixed block (312), a fourth push rod (313), a detector (314), and an electric gripper (315); each first fixed plate (103) is fixedly connected to a rotating platform (311); each rotating part of each rotating platform (311) is fixedly connected to a second fixed block (312); each second fixed block (312) is fixedly connected to two vertically distributed fourth push rods (313); the two fourth push rods (313) on the same second fixed block (312) are arranged in a cross shape; each of the two horizontally oriented fourth push rods (313) has a detector (314) fixedly connected to its telescopic part; each detector (314) is connected to a detection connector (100); each of the two vertically distributed fourth push rods (313) has an electric gripper (315) fixedly connected to its telescopic part.

5. The FFC cable production and processing equipment with bending function according to claim 4, characterized in that: It also includes an airbag (316); an airbag (316) is fixedly connected to each of the two first clamping plates (305) on opposite sides; an airbag (316) is fixedly connected to each of the two second clamping plates (3010) on opposite sides; the two airbags (316) on the same side are symmetrical, and air outlet grooves are opened on the opposite sides of the two airbags (316) on the same side.

6. The FFC cable production and processing equipment with bending function according to any one of claims 3-5, characterized in that: The upper part of the pusher block (204) is arc-shaped.

7. The FFC cable production and processing equipment with bending function according to claim 6, characterized in that: The air vent (316) is inclined toward the side away from the first clamping plate (305).