Production device of antistatic composite board and preparation method thereof

By designing an antistatic composite board production device with a pressing and transmission mechanism, the problem of low efficiency in manual edge application in existing technologies has been solved, enabling simultaneous processing of multiple sides and continuous production, thereby improving production efficiency.

CN117067618BActive Publication Date: 2026-05-08JIANGSU MINGCHANGHE TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
JIANGSU MINGCHANGHE TECH CO LTD
Filing Date
2023-08-20
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

In the current processing of antistatic composite boards, the side edge bonding requires manual operation, resulting in low work efficiency and waste of manpower and resources.

Method used

Design an antistatic composite board production device including a pressing mechanism and a transmission mechanism. The device uses a cylinder to push the extrusion plate and the U-shaped push plate to achieve a tight fit between the conductive edge and the antistatic board, and uses a motor to drive the conveyor belt to achieve continuous conveying and unloading.

Benefits of technology

This enables simultaneous processing on multiple sides, improving work efficiency, reducing manual labor, ensuring tight bonding of antistatic boards, preventing board damage, and increasing production efficiency.

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Abstract

The application relates to the technical field of building decoration materials, and discloses a production device for an antistatic composite board and a preparation method thereof, which comprises a rack, a pressing mechanism and a transmission mechanism. The rack comprises a U-shaped seat, a motor is arranged on the side wall of the U-shaped seat, a feeding bin is fixedly installed on the upper surface of the side wall of the U-shaped seat, the pressing mechanism comprises a feeding plate and three groups of air cylinders, the feeding plate and the air cylinders are arranged in the feeding bin, the transmission mechanism comprises vertical conveying belts and a horizontal conveying belt, the vertical conveying belts are arranged on the two sides of the U-shaped seat, and the horizontal conveying belt is located between the two vertical conveying belts. The multiple conductive edges can be put into the feeding bin by the pressing mechanism, and the conductive edges can be pushed out one by one. In cooperation with the setting of the transmission mechanism, the installation of the conductive edges and the antistatic plate can be realized. In addition, automatic discharging can be realized after processing is completed, and continuous processing of the antistatic plate can be realized through continuous working of the device, so that the working efficiency of the antistatic plate edge pasting is improved.
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Description

Technical Field

[0001] This invention relates to the field of building materials technology, specifically to a production apparatus and preparation method for an antistatic composite board. Background Technology

[0002] With the rapid development of polymer composite materials, antistatic materials are increasingly being used in production and daily life. Especially in flammable and explosive environments such as military factories, chemical plants, flour mills, oil and gas fields, and coal mines, as well as in semiconductor processing and manufacturing, and communications, materials used in these fields need to have excellent antistatic properties to prevent electrostatic hazards in order to ensure production safety and the stability and reliability of information transmission.

[0003] In the processing of antistatic boards, multiple steps are required. When the board processing is about to be completed, conductive edges are usually attached to the sides of the board to increase its antistatic performance. In the existing technology, the attachment of conductive edges to the sides of antistatic composite boards usually needs to be done manually, which makes it impossible to process multiple sides at the same time, resulting in low work efficiency and a waste of a lot of manpower and resources. Therefore, a production device and preparation method for antistatic composite boards are needed to solve the above problems. Summary of the Invention

[0004] The purpose of this invention is to provide a production apparatus and preparation method for antistatic composite boards, so as to solve the problems mentioned in the background art.

[0005] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution:

[0006] This invention relates to a production apparatus for antistatic composite boards, comprising a frame, a U-shaped base, a circular hole at one end of one side wall of the U-shaped base, a motor mounted on the outer side of the side wall of the U-shaped base near the circular hole, the motor being fixedly mounted on an arc-shaped plate, the arc-shaped plate being fixedly connected to the side wall of the U-shaped base, and feeding bins fixedly mounted on the upper surfaces of both side walls of the U-shaped base. The apparatus also includes a pressing mechanism, comprising a feeding plate and three sets of cylinders, both of which are located inside the feeding bins; and a transmission mechanism, comprising a vertical conveyor belt and a horizontal conveyor belt, with two vertical conveyor belts symmetrically arranged at both ends inside the U-shaped base, and a horizontal conveyor belt located between the two vertical conveyor belts.

[0007] Furthermore, a long groove is provided on the upper surface of the feeding bin near the center of the device, and side grooves are provided at both ends of the long groove. A discharge groove is provided on the side wall of the two feeding plates that are close to each other, near the end of the U-shaped seat.

[0008] Furthermore, the feeding bin is fixedly installed on the side wall of the feeding bin away from the center of the device along the feeding bin track. A chute is formed between the feeding plate and the bottom inner wall of the feeding bin. Vertical plates are fixedly connected to both ends of the feeding plate. The vertical plates are distributed along the side wall of the long chute. Through holes are opened at both the upper and lower ends of the vertical plates. Slide plates are provided on the side of the two vertical plates that are close to each other. The slide plates are slidably disposed between the feeding plate and the side wall of the feeding bin. A connecting plate is fixedly connected to the end of the slide plate that is close to the side chute. The connecting plate is slidably disposed inside the side chute.

[0009] Furthermore, the same guide posts are fixedly connected to the upper and lower sides of the skateboard near the upright plate. The guide posts pass through the through holes and are fixedly connected to the connecting seats. Clamping springs are fixedly installed between the connecting seats and the side wall of the upright plate.

[0010] Furthermore, the cylinder is fixedly installed on the inner wall of the two feeding bins on opposite sides. The output end of the cylinder is fixedly connected to an extrusion plate. The extrusion plate is slidably disposed inside several identical U-shaped push plates. The U-shaped push plates are all slidably disposed inside the slide groove. The bottom inner wall of several cylinders is fixedly connected to the extrusion plate with the same extrusion spring.

[0011] Furthermore, the upper ends of the two vertical conveyor belts are each internally connected to the same rotating shaft 1. Both ends of the rotating shaft 1 are rotatably connected to the inside of the fixed cylinder, which is fixedly installed on the side wall of the feeding hopper. The ends of the two vertical conveyor belts away from the rotating shaft 1 are respectively internally connected to rotating shaft 2 and rotating shaft 3. Both ends of rotating shaft 2 and rotating shaft 3 are respectively rotatably connected to the inside of fixed sleeve 1 and fixed sleeve 2. Fixed sleeve 1 and fixed sleeve 2 are both fixedly connected to the inner side wall of the U-shaped seat. The side walls of the two vertical conveyor belts are fixedly connected to bearing plates with the same relative position.

[0012] Furthermore, pulley one is fixedly installed at both ends of shaft two, and belt one is driven to pulley one. Large gears are fixedly installed at both ends of shaft three. Small gears are driven to the side of the large gears near the bottom inner wall of the U-shaped seat. Pulley two is fixedly connected to the side of the two small gears that are far apart from each other. Small gears and pulley two are fixedly installed on the drive shaft. Both ends of the drive shaft are rotatably connected to the inside of the connecting ring. The connecting ring is fixedly installed on the inner side wall of the U-shaped seat. One end of the drive shaft is fixedly connected to the output end of the motor through the circular hole.

[0013] Furthermore, drive shaft one and drive shaft two are respectively connected to the internal ends of the transverse conveyor belt. Both ends of drive shaft one and drive shaft two are rotatably installed inside connecting cylinder one and connecting cylinder two, respectively. Both ends of drive shaft one and drive shaft two are fixedly connected to drive wheel one and drive wheel two. The end of belt one away from drive shaft two is connected to drive wheel one. Belt two is connected to drive wheel two. The end of belt two away from drive wheel two is connected to pulley two.

[0014] A method for preparing an antistatic composite board includes the following steps:

[0015] S1: Place several conductive edges into the feeding bin through the feeding plate, and place the anti-static plate on the two bearing plates at the top of the vertical conveyor belts on both sides in sequence.

[0016] S2: Start the motor to drive the vertical conveyor belts on both sides to rotate and transport the antistatic board between the two discharge troughs;

[0017] S3: The motor stops working, and the starting cylinder pushes the extrusion plate and the U-shaped push plate to move synchronously, pushing out the conductive edge that has fallen to the bottom of the feeding hopper, so that it can be tightly attached to the anti-static plate.

[0018] S4: The cylinder retracts, the motor starts, the vertical conveyor belt rotates, and the processed antistatic board falls onto the rotating horizontal conveyor belt and is transported out. At the same time, the antistatic boards to be processed and the conductive edges are transported to the processing station to realize the continuous processing of antistatic boards.

[0019] The present invention has the following beneficial effects:

[0020] (1) By setting up a pressing mechanism, the cylinder reciprocates and pushes the extrusion plate and the U-shaped push plate to move synchronously, thereby pushing out the conductive edge that falls to the bottom of the feeding bin and making it fit tightly with the antistatic plate. When the cylinder pulls the extrusion plate back, the U-shaped push plate moves synchronously, which allows the subsequent conductive edge to fall into the bottom of the feeding bin, making it easier for the next edge-fitting work to proceed smoothly. Furthermore, by setting up feeding bins on both sides, the antistatic plate can be processed on multiple sides at the same time, which improves work efficiency.

[0021] (2) By setting the compression spring, the present invention will play a buffering role when the compression plate and the U-shaped push plate move closer to the side of the antistatic plate, and can ensure that the conductive edge is tightly attached to the antistatic plate, preventing the antistatic plate from being damaged due to excessive pressure.

[0022] (3) The present invention, through the setting of the transmission mechanism, drives the vertical conveying plate and the horizontal conveying plate on both sides to rotate synchronously through the operation of the motor. While feeding the antistatic board, the processed antistatic board can be unloaded, which greatly reduces the workload of workers. Furthermore, the continuous operation of the device can realize the continuous processing of antistatic boards, which greatly improves production efficiency.

[0023] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0024] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0025] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0026] Figure 2 This is a schematic diagram of the frame structure of the present invention;

[0027] Figure 3 This is a schematic diagram of the internal structure of the feeding bin of the present invention;

[0028] Figure 4 This is a schematic diagram of the clamping mechanism of the present invention;

[0029] Figure 5 This is an exploded view of the cylinder structure of the present invention;

[0030] Figure 6 This is a schematic diagram of the transmission mechanism of the present invention;

[0031] Figure 7 This is a schematic diagram of the transmission mechanism structure of the present invention;

[0032] Figure 8 This is a schematic diagram of the workflow of the present invention.

[0033] The attached diagram lists the components represented by each number as follows:

[0034] In the diagram: 1. U-shaped seat; 101. Round hole; 11. Motor; 111. Arc plate; 12. Feeding bin; 121. Long trough; 122. Side trough; 123. Discharge trough; 2. Feeding plate; 201. Slide; 21. Vertical plate; 211. Through hole; 22. Slide plate; 221. Connecting plate; 23. Guide column; 231. Connecting seat; 24. Clamping spring; 3. Cylinder; 31. Extrusion plate; 32. U-shaped push plate; 33. Extrusion spring; 4. Vertical conveyor belt; 401. Rotary shaft one; 4011 402. Fixed cylinder; 41. Bearing plate; 423. Rotating shaft 2; 414. Fixed sleeve 1; 415. Belt pulley 1; 426. Rotating shaft 3; 427. Fixed sleeve 2; 428. Large gear; 43. Belt 1; 44. Small gear; 45. Belt pulley 2; 46. Drive shaft; 4601. Connecting ring; 57. Transverse conveyor belt; 51. Drive shaft 1; 5101. Connecting cylinder 1; 511. Drive wheel 1; 52. Drive shaft 2; 5201. Connecting cylinder 2; 521. Drive wheel 2; 53. Belt 2. Detailed Implementation

[0035] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention. Example 1

[0036] Please see Figures 1-7 As shown, the present invention is a production device for antistatic composite boards, including a frame, the frame including a U-shaped base 1, one end of one side wall of the U-shaped base 1 having a circular hole 101, a motor 11 being arranged on the outer side of the side wall of the U-shaped base 1 near the circular hole 101, the motor 11 being fixedly mounted on an arc plate 111, the arc plate 111 being fixedly connected to the side wall of the U-shaped base 1, and feeding bins 12 being fixedly mounted on the upper surfaces of both side walls of the U-shaped base 1, and also including: a pressing mechanism, the pressing mechanism including a feeding plate 2 and three sets of cylinders 3, the feeding plate 2 and cylinders 3 being arranged inside the feeding bins 12; and a transmission mechanism, the transmission mechanism including a vertical conveyor belt 4 and a horizontal conveyor belt 5, there being two vertical conveyor belts 4, and the two vertical conveyor belts 4 being symmetrically arranged at both ends inside the U-shaped base 1, the horizontal conveyor belt 5 being located between the two vertical conveyor belts 4.

[0037] A long groove 121 is provided on the upper surface of the feeding bin 12 near the center of the device. Side grooves 122 are provided at both ends of the long groove 121. A discharge groove 123 is provided on the side wall of the two feeding plates 2 that are close to each other, near the end of the U-shaped seat 1.

[0038] The feeding bin 12 is fixedly installed on the side wall of the feeding bin 12 away from the center of the device along the trajectory of the feeding bin 12. A chute 201 is formed between the feeding plate 2 and the bottom inner wall of the feeding bin 12. Both ends of the feeding plate 2 are fixedly connected to the vertical plate 21, which is distributed along the side wall of the long chute 121. Both the upper and lower ends of the vertical plate 21 are provided with through holes 211. A sliding plate 22 is provided on the side of the two vertical plates 21 that are close to each other. The sliding plate 22 is slidably disposed between the feeding plate 2 and the side wall of the feeding bin 12. A connecting plate 221 is fixedly connected to the end of the sliding plate 22 that is close to the side chute 122. The connecting plate 221 is slidably disposed inside the side chute 122. The purpose of this arrangement is to facilitate the sealing of the long chute 121 and prevent debris from falling into the device and causing damage to the device.

[0039] The slide plate 22 is fixedly connected to the same guide post 23 on both the top and bottom sides of the side closest to the upright plate 21. The guide post 23 passes through the through hole 211 and is fixedly connected to the connecting seat 231. The connecting seat 231 and the side wall of the upright plate 21 are both fixedly installed with clamping springs 24. The purpose of this arrangement is to facilitate the positioning of the wire edge by using the clamping springs 24 on both sides.

[0040] The cylinder 3 is fixedly installed on the inner wall of the two feeding bins 12 on opposite sides. The output end of the cylinder 3 is fixedly connected to the extrusion plate 31. The extrusion plate 31 is slidably disposed inside several identical U-shaped push plates 32. The U-shaped push plates 32 are all slidably disposed inside the slide groove 201. The bottom inner wall of several cylinders 3 is fixedly connected to the extrusion plate 31 with the same extrusion spring 33. The purpose of this arrangement is to buffer the pressure and prevent the antistatic plate from being damaged due to excessive pressure.

[0041] Both vertical conveyor belts 4 have identical rotating shafts 401 internally connected to their upper ends. Both ends of the rotating shaft 401 are rotatably connected to the inside of a fixed cylinder 4011, which is fixedly installed on the side wall of the feeding hopper 12. The ends of the two vertical conveyor belts 4 away from the rotating shaft 401 are respectively connected to rotating shafts 41 and 42. Both ends of the rotating shafts 41 and 42 are rotatably connected to the inside of fixed sleeves 411 and 421, respectively. Fixed sleeves 411 and 421 are fixedly connected to the inner side wall of the U-shaped seat 1. Both sides of the vertical conveyor belts 4 have bearing plates 402 with the same relative position fixedly connected to their side walls. This arrangement is for the purpose of facilitating the carrying and transportation of the antistatic board.

[0042] Both ends of the rotating shaft 41 are fixedly mounted with pulley 412. Belt 43 is driven through pulley 412. Both ends of the rotating shaft 42 are fixedly mounted with large gear 422. A small gear 44 is driven through the side of the large gear 422 closest to the bottom inner wall of the U-shaped seat 1. Pulley 45 is fixedly connected to the side of the two small gears 44 that are far apart from each other. Both small gears 44 and pulley 45 are fixedly mounted on the drive shaft 46. Both ends of the drive shaft 46 are rotatably connected inside the connecting ring 4601. The connecting ring 4601 is fixedly mounted on the inner side wall of the U-shaped seat 1. One end of the drive shaft 46 passes through the circular hole 101 and is fixedly connected to the output end of the motor 11.

[0043] The transverse conveyor belt 5 has a drive shaft 51 and a drive shaft 52 connected to its two ends. Both ends of the drive shaft 51 and the drive shaft 52 are rotatably installed inside the connecting cylinder 5101 and the connecting cylinder 5201, respectively. Both ends of the drive shaft 51 and the drive shaft 52 are fixedly connected to the drive wheel 511 and the drive wheel 521, respectively. The end of the belt 43 away from the drive shaft 41 is connected to the drive wheel 511. The drive wheel 521 is connected to the belt 53. The end of the belt 53 away from the drive wheel 521 is connected to the pulley 45. The purpose of this arrangement is to facilitate the synchronous rotation of the vertical conveyor plate 4 and the transverse conveyor plate 5 on both sides by the operation of the motor 11.

[0044] In use, several conductive edges are placed into the feeding bin 12 through the feeding plate 2, and the antistatic plates are placed between the upper surfaces of the two bearing plates on the upper ends of the vertical conveyor belts 4 on both sides. The motor 11 is started, and the drive shaft 46 drives the pinion 44 and belt 53 to rotate. Through the meshing of the large gear 422 and the pinion 44, and the drive of belt 53, the vertical conveyor belt 4 located near the motor 11 can be rotated. At the same time, belt 53 drives the transverse conveyor belt 5 to rotate. Through the drive of belt 43, the vertical conveyor belt 4 located away from the motor 11 can be rotated. The vertical conveyor belts 4 on both sides rotate in opposite directions, and the bearing plates 402 on the side closer to the vertical conveyor belt 4 on both sides move towards the side closer to the transverse conveyor belt 5, thereby achieving stable transportation of the antistatic plates.

[0045] When the antistatic board is transported between the two discharge troughs 123, the motor 11 stops working and the cylinder 3 is started to push the extrusion plate 31 and the U-shaped push plate 32 to move synchronously, thereby pushing out the conductive edge that has fallen to the bottom of the feeding hopper 12 and making it fit tightly with the antistatic board.

[0046] Afterwards, cylinder 3 retracts, motor 11 starts working, and continues to drive the vertical conveyor belts 4 on both sides to rotate, transporting the processed antistatic board to the top of the rotating horizontal conveyor belt 5, realizing automatic unloading, avoiding manual unloading which increases workload, and preventing the antistatic board from accumulating inside the device, affecting the normal operation of the work.

[0047] Meanwhile, the antistatic boards to be processed will be transported between the discharge troughs 123 on both sides. The conductive edge will fall back to the discharge trough 123 due to gravity, making it easy to push out during the next processing, thus completing the edge-attaching work of the antistatic board. Through the continuous operation of the device, the antistatic board can be processed continuously, avoiding the low work efficiency caused by manual edge-attaching of the antistatic board, saving a lot of manpower and material resources, and improving the processing efficiency of antistatic boards. Example 2

[0048] like Figure 8 As shown, a method for preparing an antistatic composite board includes the following steps:

[0049] S1: Several conductive edges are placed into the feeding bin 12 through the feeding plate 2, and the antistatic plates are placed on the two bearing plates 402 at the upper end of the vertical conveyor belts 4 on both sides in sequence.

[0050] S2: Start motor 11, drive the vertical conveyor belts 4 on both sides to rotate, and transport the antistatic board between the two discharge troughs 123;

[0051] S3: Motor 11 stops working, and starting cylinder 3 pushes extrusion plate 31 and U-shaped push plate 32 to move synchronously, pushing out the conductive edge at the bottom of the feeding bin 12 to achieve tight contact with the antistatic plate.

[0052] S4: Cylinder 3 retracts, motor 11 operates, vertical conveyor belt 4 rotates, and the processed antistatic board falls onto the rotating horizontal conveyor belt 5 and is transported out. At the same time, the antistatic boards to be processed and the conductive edges are transported to the processing station to realize the continuous processing of antistatic boards.

[0053] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.

Claims

1. A production apparatus for antistatic composite boards, comprising a frame, the frame including a U-shaped base (1), one end of one side wall of the U-shaped base (1) having a circular hole (101), a motor (11) being provided on the outer side wall of the U-shaped base (1) near the circular hole (101), the motor (11) being fixedly mounted on an arc-shaped plate (111), the arc-shaped plate (111) being fixedly connected to the side wall of the U-shaped base (1), and feeding bins (12) being fixedly mounted on the upper surfaces of both side walls of the U-shaped base (1), further comprising: The clamping mechanism includes a feeding plate (2) and three sets of cylinders (3), both of which are located inside the feeding bin (12). The transmission mechanism includes a vertical conveyor belt (4) and a horizontal conveyor belt (5). There are two vertical conveyor belts (4), which are symmetrically arranged at both ends inside the U-shaped seat (1). The horizontal conveyor belt (5) is located between the two vertical conveyor belts (4). Its characteristic is that: The upper surface of the feeding bin (12) is provided with a long groove (121) on the side near the center of the device. The long groove (121) is provided with side grooves (122) at both ends. The two feeding plates (2) are provided with a discharge groove (123) on the side wall near the U-shaped seat (1). The feeding plate (2) is fixedly installed on the side wall of the feeding bin (12) away from the center of the device along the trajectory of the feeding bin (12). A groove (201) is formed between the feeding plate (2) and the bottom inner wall of the feeding bin (12). Both ends of the feeding plate (2) are fixedly connected to the vertical plate (21). The vertical plate (21) is distributed along the side wall of the long groove (121). The upper and lower ends of the vertical plate (21) are provided with through holes (211). The two vertical plates (21) are provided with a sliding plate (22) on the side that is close to each other. The sliding plate (22) is slidably disposed between the feeding plate (2) and the side wall of the feeding bin (12). The end of the sliding plate (22) close to the side groove (122) is fixedly connected to the connecting plate (221). The connecting plate (221) is slidably disposed inside the side groove (122). The cylinder (3) is fixedly installed on the inner wall of the two feeding bins (12) on the side away from each other. The output end of the cylinder (3) is fixedly connected to the extrusion plate (31). The extrusion plate (31) is slidably arranged inside several identical U-shaped push plates (32). The U-shaped push plates (32) are all slidably arranged inside the slide groove (201). The bottom inner wall of several cylinders (3) is fixedly connected to the extrusion plate (31) with the same extrusion spring (33).

2. The production apparatus for antistatic composite boards according to claim 1, characterized in that: The slide plate (22) is fixedly connected to the same guide post (23) on the upper and lower sides of the side closest to the upright plate (21). The guide post (23) passes through the through hole (211) and is fixedly connected to the connecting seat (231). The connecting seat (231) and the side wall of the upright plate (21) are both fixedly installed with clamping springs (24).

3. The production apparatus for antistatic composite boards according to claim 2, characterized in that: The upper ends of the two vertical conveyor belts (4) are connected to the same rotating shaft one (401). Both ends of the rotating shaft one (401) are rotatably connected to the inside of the fixed cylinder (4011). The fixed cylinder (4011) is fixedly installed on the side wall of the feeding bin (12). The ends of the two vertical conveyor belts (4) away from the rotating shaft one (401) are respectively connected to rotating shaft two (41) and rotating shaft three (42). The ends of rotating shaft two (41) and rotating shaft three (42) are respectively rotatably connected to the inside of fixed sleeve one (411) and fixed sleeve two (421). Fixed sleeve one (411) and fixed sleeve two (421) are both fixedly connected to the inner side wall of the U-shaped seat (1). The side walls of the two vertical conveyor belts (4) are fixedly connected to bearing plates (402) with the same relative position.

4. The production apparatus for antistatic composite boards according to claim 3, characterized in that: Both ends of the rotating shaft 2 (41) are fixedly mounted with pulley 1 (412), and belt 1 (43) is driven to pulley 1 (412). Both ends of the rotating shaft 3 (42) are fixedly mounted with large gear (422). A small gear (44) is driven to the side of the large gear (422) near the bottom inner wall of the U-shaped seat (1). Pulley 2 (45) is fixedly connected to the side of the two small gears (44) that are far apart from each other. Both small gears (44) and pulley 2 (45) are fixedly mounted on the drive shaft (46). Both ends of the drive shaft (46) are rotatably connected to the inside of the connecting ring (4601). The connecting ring (4601) is fixedly mounted on the inner side wall of the U-shaped seat (1). One end of the drive shaft (46) is fixedly connected to the output end of the motor (11) through the circular hole (101).

5. The production apparatus for antistatic composite boards according to claim 4, characterized in that: The transverse conveyor belt (5) is internally connected to drive shaft one (51) and drive shaft two (52) respectively. Both ends of drive shaft one (51) and drive shaft two (52) are rotatably installed inside connecting cylinder one (5101) and connecting cylinder two (5201) respectively. Both ends of drive shaft one (51) and drive shaft two (52) are fixedly connected to drive wheel one (511) and drive wheel two (521). The end of belt one (43) away from shaft two (41) is connected to drive wheel one (511). Belt two (53) is connected to drive wheel two (521). The end of belt two (53) away from drive wheel two (521) is connected to pulley two (45).

6. A method for preparing antistatic composite boards using the production apparatus described in claim 5, characterized in that, Includes the following steps: S1: Place several conductive edges into the feeding bin (12) through the feeding plate (2), and place the antistatic plate on the two bearing plates (402) at the top of the vertical conveyor belts (4) on both sides in sequence; S2: Start the motor (11) to drive the vertical conveyor belts (4) on both sides to rotate and transport the antistatic board between the two discharge troughs (123); S3: The motor (11) stops working, and the cylinder (3) pushes the extrusion plate (31) and the U-shaped push plate (32) to move synchronously, pushing out the conductive edge that has fallen to the bottom of the feeding bin (12) so that it can be tightly attached to the antistatic plate. S4: The cylinder (3) retracts, the motor (11) works, the vertical conveyor belt (4) rotates, and the processed antistatic board falls above the rotating horizontal conveyor belt (5) and is transported out. At the same time, the antistatic boards to be processed and the conductive edges are transported to the processing station to realize the continuous processing of the antistatic board.

Citation Information

Patent Citations

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    CN210362551U