Carbon fiber friction plate production equipment for jacquard
By designing carbon fiber friction plate production equipment and adopting automated processing technology, the problems of difficult maintenance of traditional friction plates and complicated processing of carbon fiber friction plates have been solved, and efficient and low-cost production of carbon fiber friction plates has been achieved.
Patent Information
- Application Number
- CN202422523541.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-18
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-10-18
AI Technical Summary
Traditional jacquard machine friction plate materials are difficult to maintain and prone to aging and wear. In addition, carbon fiber friction plates are complicated to process, costly, and have a long production cycle.
A carbon fiber friction plate production equipment is designed, which includes feeding, punching, grooving and cutting mechanisms. Friction plates are made by automatically processing carbon fiber strips, including drilling, grooving and cutting processes.
The automated production of carbon fiber friction plates has been achieved, which has improved production efficiency and quality, reduced production costs and extended service life.
Smart Images

Figure CN223314124U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of jacquard machine accessories, in particular to a production device for a carbon fiber friction plate for a jacquard machine. Background Art
[0002] As the weaving speed of jacquard machines continues to increase, the workload of the jacquard machine's knife friction plate has increased significantly. Improving the material and structure of the friction plate is the production optimization direction of the jacquard machine industry.
[0003] Traditional friction plates are generally made of MC (wear-resistant) nylon and are manufactured through an integrated injection molding process. However, in the design of this traditional friction plate, it is necessary to set an additional oil groove on its friction surface to facilitate the addition of lubricating oil, so that it can work for a long time at the ever-increasing weaving speed of the jacquard machine. However, traditional friction plates are difficult to maintain (adding lubricating oil) or replace, and are prone to aging and wear, which greatly affects the production of the jacquard machine and the use of the knives.
[0004] At present, the friction plate material of the jacquard machine knife is optimized to use carbon fiber. The wear-resistant characteristics of carbon fiber have greatly improved the service life of the carbon fiber friction plate, ensuring that the jacquard machine can meet the subsequent normal operation and basically no maintenance of the carbon fiber friction plate is required in the future. However, the processing and manufacturing of carbon fiber friction plates are complicated. They cannot be processed through traditional injection molding technology and can only be processed multiple times through multiple steps, resulting in high manufacturing costs of carbon fiber friction plates and long production cycles. Summary of the Invention
[0005] The purpose of the utility model is to overcome the above-mentioned deficiencies in the prior art and to provide a production device for a carbon fiber friction plate for a jacquard machine.
[0006] In order to achieve the above purpose, the utility model adopts the following technical solutions:
[0007] A production device for carbon fiber friction plates for jacquard machines includes a frame, a feeding mechanism, a punching mechanism, a slotting mechanism, and a cutting mechanism. The frame is provided with a feeding trough, and the punching mechanism, slotting mechanism, and cutting mechanism are arranged along the feeding trough. The feeding mechanism is provided with a storage table and a feeding plate. The storage table is provided with a storage sleeve, and a plurality of carbon fiber strips are placed in the storage sleeve. The feeding plate is used to push the carbon fiber strips into the feeding trough. The punching mechanism is provided with a drill bit, and the drill bit can approach the carbon fiber strips located in the feeding trough and penetrate the carbon fiber strips. The slotting mechanism is provided with a cutter disc, and the cutter disc can approach the carbon fiber strips located in the feeding trough and cut the upper and lower surfaces of the carbon fiber strips. The cutting mechanism is provided with a cutter, and the cutter can approach the carbon fiber strips located in the feeding trough and cut the carbon fiber strips.
[0008] Preferably, the feed trough is provided with a pressure plate 1 corresponding to the position of the punching mechanism, a pressure plate 2 corresponding to the position of the grooving mechanism, and a pressure plate 3 corresponding to the position of the cutting mechanism. The pressure plate 1, the pressure plate 2 and the pressure plate 3 can press downward the carbon fiber strips in the feed trough.
[0009] Preferably, a chip groove is installed on the frame, and the chip groove is located below the punching mechanism and the slotting mechanism.
[0010] Preferably, a material discharge chute is installed on the frame, and the material discharge chute is located below the cutting mechanism.
[0011] Preferably, a limiting plate and a push plate are respectively provided on both sides of the storage cover, and the push plate can push the carbon fiber strip to abut the limiting plate. The feeding plate is provided at one end of the limiting plate, and the other end of the limiting plate is provided with a feeding port corresponding to the position of the feeding trough.
[0012] Preferably, a guide block is provided on the feeding port side and is distributed opposite to the limiting plate.
[0013] Preferably, there are multiple push plates, and the multiple push plates are spaced apart along the length direction of the carbon fiber strip.
[0014] Preferably, the punching mechanism includes a lifting plate located above the feed trough, and the number of the drill bits is two and they are installed on the lifting plate, and the two drill bits are distributed along the length direction of the feed trough.
[0015] Preferably, one of the drill bits is a chamfer drill.
[0016] Preferably, a cover and a control screen are provided on the frame, and the cover is provided on the feeding mechanism, the punching mechanism, the slotting mechanism and the cutting mechanism.
[0017] The beneficial effects of the utility model are:
[0018] The carbon fiber strips are placed on a storage table and are intermittently pushed into the feed trough by a feed plate, so that holes are drilled at intervals on the surface of the carbon fiber strips by a drill bit, and grooves are cut at intervals on the upper and lower surfaces of the carbon fiber strips by a cutter. The carbon fiber strips are cut at the grooves by a cutter to process and produce friction plates, thereby realizing the automated production of friction plates and greatly improving the production efficiency and quality of friction plates. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a structural diagram of the utility model;
[0020] Figure 2 This is a schematic diagram of the structure of the utility model without the cover;
[0021] Figure 3 for Figure 2 A magnified schematic diagram of point A in the middle;
[0022] Figure 4 This is a structural diagram of the feeding mechanism of the utility model;
[0023] Figure 5 for Figure 4 A magnified schematic diagram of point B in the middle;
[0024] Figure 6 It is a schematic diagram of the local structure of the utility model;
[0025] Figure 7 for Figure 6 Enlarged schematic diagram of point C in the middle;
[0026] Figure 8 This is a schematic structural diagram of the punching mechanism of the utility model;
[0027] Figure 9 This is a schematic diagram of the partial structure of the punching mechanism of the utility model;
[0028] Figure 10 The structure diagram of the slotting mechanism of the utility model is shown as follows: Figure 1 ;
[0029] Figure 11 The structure diagram of the slotting mechanism of the utility model is shown as follows: Figure 2 ;
[0030] Figure 12 This is a structural diagram of the cutting mechanism of the utility model;
[0031] Figure 13 This is a partial structural diagram of the cutting mechanism of the utility model;
[0032] Figure 14 This is a schematic structural diagram of the carbon fiber strip of the utility model;
[0033] Figure 15 This is a schematic structural diagram of the carbon fiber sheet of the present invention.
[0034] In the figure: frame 1, feeding trough 11, pressing plate 1 12, cylinder 1 121, pressing plate 2 13, cylinder 2 131, pressing plate 3 14, cylinder 3 141, cover 15, chip discharge trough 16, unloading trough 17, feeding mechanism 2, storage platform 21, storage sleeve 211, feeding notch 212, limiting plate 22, push plate 23, cylinder 4 231, feeding plate 24, driving member 1 241, feeding port 25, guide block 26, punching Hole mechanism 3, drill bit 31, drive part 2 311, lifting plate 32, drive part 3 321, slotting mechanism 4, slide plate 1 41, drive part 4 411, cutter disc 42, drive part 5 421, bracket 43, slide bar 431, cutting mechanism 5, cutter 51, drive part 6 511, slide plate 2 52, cylinder 5 521, counter 53, control panel 6, carbon fiber strip 7, through hole 71, V-groove 72, friction plate 73. DETAILED DESCRIPTION
[0035] The present invention will be further described below with reference to the accompanying drawings and specific embodiments:
[0036] In the description of this specification, the directions or positional relationships indicated by the terms "up", "down", "left", "right", etc. are based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or unit referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they cannot be understood as a limitation on the present invention.
[0037] like Figures 1 to 15 As shown, a carbon fiber friction plate production equipment for jacquard machine includes a frame 1, a feeding mechanism 2, a punching mechanism 3, a slotting mechanism 4, and a cutting mechanism 5. The feeding mechanism 2 is arranged on one side of the frame 1, and the punching mechanism 3, the slotting mechanism 4, and the cutting mechanism 5 are installed on the frame 1. A cover 15 and a control screen 6 are provided on the frame 1. The cover 15 is covered on the feeding mechanism 2, the punching mechanism 3, the slotting mechanism 4, and the cutting mechanism 5. A feeding trough 11 is provided on the frame 1. The upper end of the feeding trough 11 is open and is installed on the frame 1 in a straight line. The punching mechanism 3, the slotting mechanism 4, and the cutting mechanism 5 are arranged along the feeding trough 11.
[0038] refer to Figures 4 and 5 As shown, the feeding mechanism 2 is provided with a storage table 21 for placing the carbon fiber strips 7, and the storage table 21 is provided with relatively distributed storage covers 211, and a number of carbon fiber strips 7 are placed in the storage covers 211. The storage covers 211 are arranged at both ends of the carbon fiber strips 7, and the carbon fiber strips 7 are long and stacked between the two storage covers 211.
[0039] A limiting plate 22 and a push plate 23 are respectively provided on both sides of the storage cover 211. The limiting plate 22 is arranged along the length direction. A feeding notch 212 is opened on the side of the storage cover 211 close to the limiting plate 22. The height of the feeding notch 212 is slightly higher than the height of a carbon fiber strip 7.
[0040] A cylinder four 231 is installed on the storage table 21, and the output end of the cylinder four 231 is connected to the push plate 23 to drive the push plate 23 to move closer to or away from the limit plate 22. When the push plate 23 moves close to the limit plate 22, the push plate 23 can push the bottom layer of carbon fiber strips 7 in the storage cover 211 to abut or close to the limit plate 22, that is, the push plate 23 can push the carbon fiber strips 7 to abut the limit plate 22.
[0041] In order to improve the stability of the push plate 23 when pushing the carbon fiber strip 7 to move, the number of the push plates 23 can be multiple, and the multiple push plates 23 are spaced apart along the length direction of the carbon fiber strip 7.
[0042] The storage table 21 is provided with a feeding plate 24 and a driving member 241. The driving member 241 can be a servo motor. The driving member 241 drives the rotating belt to move forward and backward to control the feeding plate 24 to move forward and backward, that is, the feeding plate 24 can move along the length direction of the limiting plate 22.
[0043] Further, refer to Figures 2 to 7 As shown, the feeding plate 24 is provided at one end of the limiting plate 22 , and the other end of the limiting plate 22 is provided with a feeding port 25 corresponding to the position of the feeding trough 11 , and the carbon fiber strips 7 can enter the feeding trough 11 through the feeding port 25 .
[0044] In order to improve the stability and smoothness of feeding the carbon fiber strips 7 into the feeding trough 11, a guide block 26 is provided on the side of the feeding port 25 and is distributed opposite to the limiting plate 22. Through the guidance of the guide block 26, the carbon fiber strips 7 can be fed into the feeding trough 11 more quickly, stably and smoothly.
[0045] Specifically, the carbon fiber strips 7 that are in contact with the limiting plate 22 are moved and pushed by the feeding plate 24 to be fed into the feeding trough 11, that is, the feeding plate 24 is used to push the carbon fiber strips 7 into the feeding trough 11, and then the feeding plate 24 can be driven to move at intervals by a driving member 241 to control the intervals and transport the carbon fiber strips 7 into the feeding trough 11.
[0046] By conveying the carbon fiber strips 7 at intervals, that is, first pushing the carbon fiber strips 7 for a certain distance and then pausing the conveying, and after the punching mechanism 3, the grooving mechanism 4, and the cutting mechanism 5 are activated, the carbon fiber strips 7 are conveyed for a certain distance again to achieve the control of the processing length of the carbon fiber strips 7, so that the subsequently prepared carbon fiber friction plate 73 has better overall consistency.
[0047] refer to Figures 6 to 9 As shown, the punching mechanism 3 is provided with a drill bit 31 and a lifting plate 32 located above the feed trough 11, and a second driving component 311 is installed on the lifting plate 32. The second driving component 311 can be a servo motor, and the second driving component 311 is used to drive the drill bit 31 to rotate. The rotation speed of the drill bit 31 can be controlled between 2000 and 3000 rpm.
[0048] The punching mechanism 3 is provided with a driving member 321, and the driving member 321 can be a motor, which drives the lifting plate 32 to move up and down. The number of the drill bits 31 is two and they are installed on the lifting plate 32. The two drill bits 31 are distributed along the length direction of the feed trough 11. One of the drill bits 31 is a chamfer drill. When the carbon fiber strips 7 in the feed trough 11 are transported to the bottom of the drill bit 31, the drill bit 31 can approach the carbon fiber strips 7 in the feed trough 11 and penetrate the carbon fiber strips 7. The lifting plate 32 drives the rotating drill bits 31 to move synchronously downward, so that the carbon fiber strips 7 can be drilled at the same time by the two drill bits 31, and then a through hole 71 is opened on the carbon fiber strips 7 (reference Figure 14 Carbon fiber strips in 7).
[0049] In order to improve the processing quality of drilling the carbon fiber strips 7, the frame 1 is provided with an air compressed air pipe corresponding to the punching mechanism 3. When the drill bit 31 rotates and drills the carbon fiber strip 7 downward for a certain distance, the drill bit 31 moves upward and blows off the drilling material chips on the carbon fiber strip 7 through the air compressed air pipe, and performs multiple drilling and chip blowing actions until the drilling of the carbon fiber strip 7 is completed.
[0050] Furthermore, through multiple drilling and chip blowing operations, it is ensured that the chips of the carbon fiber strip 7 will not be squeezed on the drill bit 31 during the drilling process, so as to avoid burrs on the surface of the carbon fiber strip 7 during the drilling process, making the processed surface of the carbon fiber strip 7 smoother and flatter, and the processing quality is better.
[0051] Furthermore, the feed trough 11 is provided with a pressure plate 12 corresponding to the position of the punching mechanism 3, a pressure plate 2 13 corresponding to the position of the grooving mechanism 4, and a pressure plate 3 14 corresponding to the position of the cutting mechanism 5. The frame 1 is also equipped with a cylinder 121, a cylinder 2 131, and a cylinder 3 141. The pressure plate 12 is installed at the output end of the cylinder 121 and drives the pressure plate 12 to move downward through the cylinder 121. The pressure plate 2 13 is installed at the output end of the cylinder 2 131 and drives the pressure plate 2 13 to move downward through the cylinder 2 131. The pressure plate 3 14 is installed at the output end of the cylinder 3 141 and drives the pressure plate 3 14 to move downward through the cylinder 3 141, that is, the pressure plate 12, the pressure plate 2 13, and the pressure plate 3 14 can press downward against the carbon fiber strips 7 located in the feed trough 11.
[0052] When the drill bit 31 rotates downward to drill a hole in the carbon fiber strip 7, the pressing plate 12 is pressed downward and presses the carbon fiber strip 7 located in the feed trough 11 to improve the stability and reliability of the drill bit 31 when drilling the carbon fiber strip 7.
[0053] The frame 1 is equipped with a chip chute 16 and a feed chute 17. The chip chute 16 is located below the punching mechanism 3 and the grooving mechanism 4, and the feed chute 17 is located below the cutting mechanism 5. When the carbon fiber strip 7 is drilled by the drill bit 31, the compressed air pipe corresponding to the punching mechanism 3 blows the drilling chips to the chip chute 16, so that the chips are collected centrally through the chip chute 16.
[0054] refer to Figures 10 and 11 As shown, the grooving mechanism 4 is provided with a knife disc 42 and a driving member 5 421, which can be a servo motor. The driving member 5 421 is used to drive the knife disc 42 to rotate for cutting. The number of the knife discs 42 is two and they are spaced apart in an upper and lower manner. The grooving mechanism 4 is also provided with a bracket 43 installed on the frame 1, and a slide plate 41 and a driving member 411 are provided on the bracket 43. The slide plate 41 is slidably set on the slide rod 431 of the bracket 43. The driving member 411 can be a servo motor, which drives the slide plate 41 to slide along the slide rod 431 through the driving member 411, thereby driving the two knife discs 42 to move horizontally, so as to realize that the two knife discs 42 move to cut the upper and lower surfaces of the carbon fiber strip 7, that is, the knife disc 42 can approach the carbon fiber strip 7 located in the feeding trough 11 and cut the upper and lower surfaces of the carbon fiber strip 7, so as to open a V-shaped groove 72 on the upper and lower surfaces of the carbon fiber strip 7 (reference Figure 14 Carbon fiber strips in 7).
[0055] In order to improve the processing quality of the grooving of the carbon fiber strips 7, an air compressed air pipe corresponding to the grooving mechanism 4 is provided on the frame 1. When the two cutter discs 42 rotate and move horizontally to cut a certain distance from the upper and lower surfaces of the carbon fiber strips 7, the cutter discs 42 move in the opposite direction and blow off the cut material chips on the carbon fiber strips 7 through the air compressed air pipe, and perform multiple cutting and chip blowing actions until the grooving of the carbon fiber strips 7 is completed.
[0056] Through multiple cutting and chip blowing operations, it is ensured that the material chips of the carbon fiber strip 7 will not be squeezed and stuck to the cutter disc 42 during the cutting and grooving operation, so as to avoid burrs on the surface of the carbon fiber strip 7 during the cutting and grooving process, making the surface of the carbon fiber strip 7 cut and grooved smoother and flatter.
[0057] Furthermore, when the cutter disc 42 moves to cut and groove the carbon fiber strips 7, the second pressing plate 13 is pressed downward and presses the carbon fiber strips 7 located in the feed trough 11 to improve the stability and reliability of the cutter disc 42 when groove processing the carbon fiber strips 7.
[0058] refer to Figures 12 and 13 As shown, the cutting mechanism 5 is provided with a cutter 51, a six-drive member 511, a second slide 52, and a fifth cylinder 521. The sixth drive member 511 can be a servo motor. The sixth drive member 511 is used to drive the cutter 51 to rotate to cut the carbon fiber strip 7. The sixth drive member 511 is installed on the second slide 52. The fifth cylinder 521 is used to drive the second slide 52 to move laterally. The cutter 51 is driven by the second slide 52 to move laterally to achieve the cutting operation of the carbon fiber strip 7, that is, the cutter 51 can approach the carbon fiber strip 7 located in the feed trough 11 and cut the carbon fiber strip 7, so as to cut the carbon fiber strip 7 into pieces of friction plates 73 from the slot of the carbon fiber strip 7 (reference Figure 14 、 Figure 15 ).
[0059] Furthermore, by configuring the feeding mechanism 2 , the punching mechanism 3 , the slotting mechanism 4 , and the cutting mechanism 5 , the friction plate 73 can be produced automatically, thereby significantly improving the production efficiency and quality of the friction plate 73 .
[0060] When the cutter 51 moves to cut the carbon fiber strip 7 , the pressing plate 3 14 is displaced downward and presses the carbon fiber strip 7 in the feeding trough 11 to improve the stability and reliability of the cutter 51 in cutting the carbon fiber strip 7 .
[0061] The cutting mechanism 5 is further provided with a counter 53 mounted on the frame 1. When the friction plate 73 is cut off and falls off from the carbon fiber strip 7, the counter 53 detects the falling of the friction plate 73 and counts.
[0062] This embodiment also discloses a process for processing a carbon fiber friction plate for a jacquard machine, comprising the following steps:
[0063] a. Place several carbon fiber strips 7 in the storage cover 211 of the storage table 21. Push the bottom layer of carbon fiber strips 7 to abut against the limit plate 22 through the push plate 23. Then, move the feed plate 24 along the length of the limit plate 22 at intervals to push the carbon fiber strips 7 into the feed trough 11.
[0064] b. When the carbon fiber strip 7 in the feeding trough 11 moves to the punching mechanism 3, the drill bit 31 rotates and penetrates the carbon fiber strip 7 downward to open a through hole 71 in the carbon fiber strip 7. The drilling chips of the carbon fiber strip 7 fall into the chip discharge trough 16 and are discharged outward;
[0065] c. When the carbon fiber strip 7 in the feeding trough 11 moves to the slotting mechanism 4, the cutter disc 42 moves close to the carbon fiber strip 7 and cuts the upper and lower surfaces of the carbon fiber strip 7 to form V-shaped grooves 72 on the upper and lower surfaces of the carbon fiber strip 7. The cut chips of the carbon fiber strip 7 fall into the chip discharge groove 16 and are discharged outward;
[0066] d. When the carbon fiber strip 7 in the feeding chute 11 moves to the cutting mechanism 5, the cutter 51 moves close to the carbon fiber strip 7 and cuts the carbon fiber strip 7 from the V-shaped groove 72 to form a friction plate 73. The friction plate 73 is discharged outward through the discharge chute 17;
[0067] e. Steps a to d can be repeated multiple times to achieve automated processing of the friction plate 73.
[0068] After the drill bit 31 rotates and drills the carbon fiber strip 7 downward, the drill bit 31 moves upward and blows off the drilling material chips on the carbon fiber strip 7 through the compressed air pipe, and performs the drilling and chip blowing actions multiple times until the drilling of the carbon fiber strip 7 is completed;
[0069] After the cutter disc 42 moves close to the carbon fiber strip 7 and cuts the carbon fiber strip 7, the cutter disc 42 moves back and blows off the cut material chips on the carbon fiber strip 7 through the air pipe, and performs multiple cutting and chip blowing actions until the grooving of the carbon fiber strip 7 is completed.
[0070] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A production equipment for carbon fiber friction plates for jacquard machines, characterized by: The invention comprises a frame (1), a feeding mechanism (2), a punching mechanism (3), a slotting mechanism (4), and a cutting mechanism (5); the frame (1) is provided with a feeding trough (11); the punching mechanism (3), the slotting mechanism (4), and the cutting mechanism (5) are arranged along the feeding trough (11); the feeding mechanism (2) is provided with a storage platform (21) and a feeding plate (24); a storage cover (211) is provided on the storage platform (21); a plurality of carbon fiber strips (7) are placed in the storage cover (211); and the feeding plate (24) is used to push the carbon fiber strips (7) to the feeding platform. In the slot (11), the punching mechanism (3) is provided with a drill bit (31), and the drill bit (31) can approach the carbon fiber strip (7) located in the feeding slot (11) and penetrate the carbon fiber strip (7). The slotting mechanism (4) is provided with a cutter disc (42), and the cutter disc (42) can approach the carbon fiber strip (7) located in the feeding slot (11) and cut the upper and lower surfaces of the carbon fiber strip (7). The cutting mechanism (5) is provided with a cutter (51), and the cutter (51) can approach the carbon fiber strip (7) located in the feeding slot (11) and cut the carbon fiber strip (7).
2. The production equipment for carbon fiber friction plates for jacquard machines according to claim 1, characterized in that: The feed trough (11) is provided with a pressure plate 1 (12) corresponding to the position of the punching mechanism (3), a pressure plate 2 (13) corresponding to the position of the slotting mechanism (4), and a pressure plate 3 (14) corresponding to the position of the cutting mechanism (5). The pressure plate 1 (12), the pressure plate 2 (13), and the pressure plate 3 (14) can press downwards against the carbon fiber strip (7) located in the feed trough (11).
3. The production equipment for carbon fiber friction plates for jacquard machines according to claim 1, characterized in that: A chip groove (16) is installed on the frame (1), and the chip groove (16) is located below the punching mechanism (3) and the slotting mechanism (4).
4. The production equipment for carbon fiber friction plates for jacquard machines according to claim 1, characterized in that: A material discharge chute (17) is installed on the frame (1), and the material discharge chute (17) is located below the cutting mechanism (5).
5. The production equipment for carbon fiber friction plates for jacquard machines according to any one of claims 1 to 4, characterized in that: A limiting plate (22) and a push plate (23) are respectively provided on both sides of the storage sleeve (211); the push plate (23) can push the carbon fiber strip (7) to abut against the limiting plate (22); the feeding plate (24) is provided at one end of the limiting plate (22); and the other end of the limiting plate (22) is provided with a feeding port (25) corresponding to the position of the feeding trough (11).
6. The production equipment for carbon fiber friction plates for jacquard machines according to claim 5, characterized in that: A guide block (26) is provided on the side of the feeding port (25) and is distributed opposite to the limiting plate (22).
7. The production equipment for carbon fiber friction plates for jacquard machines according to claim 5, characterized in that: There are a plurality of push plates (23), and the plurality of push plates (23) are distributed at intervals along the length direction of the carbon fiber strip (7).
8. The equipment for producing carbon fiber friction plates for jacquard machines according to any one of claims 1 to 4, characterized in that: The punching mechanism (3) comprises a lifting plate (32) located above the feed trough (11), and the number of the drill bits (31) is two and they are installed on the lifting plate (32), and the two drill bits (31) are distributed along the length direction of the feed trough (11).
9. The production equipment for carbon fiber friction plates for jacquard machines according to claim 8, characterized in that: One of the drill bits (31) is a chamfer drill.
10. The equipment for producing carbon fiber friction plates for jacquard machines according to any one of claims 1 to 4, characterized in that: A cover shell (15) and a control panel (6) are provided on the frame (1), and the cover shell (15) is provided on the feeding mechanism (2), the punching mechanism (3), the slotting mechanism (4), and the cutting mechanism (5).
Citation Information
Cited By
Processing technology and equipment of carbon fiber friction plate for jacquard
CN119188299A