Efficient group pasting device and method for conductive copper foil composite adhesive tape
By introducing a combined design of movable nozzle and fixed nozzle into the tape bonding device, combined with the limiting plate and driving components, the problem of uneven spraying is solved, uniform spraying of adhesives and efficient utilization of resources is achieved, and production costs are reduced.
Patent Information
- Application Number
- CN202510433005.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2025-07-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing tape bonding device cannot adjust the nozzle position according to the change in material width, resulting in uneven spraying or waste of resources, increasing production costs.
An efficient patching device for conductive copper foil composite tape is designed, using a combination of movable nozzles and fixed nozzles, adjusting the nozzle spacing through limiting plates and driving components to ensure spray uniformity, and is equipped with scraping rings and anti-pleasure components to adapt to material width and thickness variations.
A uniform spraying of adhesives is achieved, resource waste is avoided, coating quality is improved and production costs are reduced.
Smart Images

Figure CN120243372A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of composite tape processing, and particularly relates to an efficient assembly device and method for a conductive copper foil composite tape. Background Art
[0002] The conductive copper foil composite tape is composed of materials such as copper foil, conductive adhesive, and protective film, and has characteristics such as good electrical conductivity, anti-interference, and shielding properties, and is widely used in industries such as electronics, communication, and aerospace. In the existing tape laminating device during the glue spraying process, the position of the nozzle is fixed and cannot be adjusted according to the change in the width of the material. This results in that during the spraying process, either the adhesive cannot cover the entire surface of the material, causing insecure bonding, or spraying is performed in unnecessary areas, resulting in waste of resources and increased production costs. In view of this, the present invention proposes an efficient assembly device and method for a conductive copper foil composite tape to solve the above-mentioned technical problems. Summary of the Invention
[0003] In order to overcome the technical problems mentioned in the background art, the present invention provides an efficient assembly device and method for a conductive copper foil composite tape.
[0004] The technical implementation solution of the present invention is: An efficient assembly device for a conductive copper foil composite tape, which includes a box body. Guide plates and guide rollers are installed on the upper and lower sides of the left part inside the box body. A winding shaft is rotatably connected to the right part inside the box body, and a winding drum is installed on the winding shaft. The winding shaft is driven by a second driving motor installed on the outer side wall of the box body to rotate. A support cylinder is fixedly connected to the middle part inside the box body, and a glue storage box is fixedly connected directly above the support cylinder. A stirring device is installed on the top surface of the box body, and the stirring device is communicated with the glue storage box through a pump body and a pipeline. A fixed nozzle is fixedly connected to the middle part of the bottom of the glue storage box. At least two movable nozzles are symmetrically and slidably connected to both ends of the bottom of the glue storage box. The movable nozzles are driven by a first driving component to slide. Telescopic plates are provided between adjacent two movable nozzles, between the movable nozzle and the fixed nozzle, and between the movable nozzle and the glue storage box. A laminating component is also provided between the glue storage box and the winding shaft. Limiting plates are symmetrically and slidably connected to the support cylinder. The left and right ends of the limiting plates are respectively slidably connected to the guide roller and the winding shaft. A bidirectional screw rod is rotatably connected to the box body, and the bidirectional screw rod is threadedly connected to the two limiting plates. Second turning handles are fixedly connected to both ends of the bidirectional screw rod. The limiting plates are connected to the first driving component through a second driving component.
[0005] As an improvement of the above solution, the spacing distances between adjacent two movable nozzles and between the movable nozzle and the fixed nozzle are equal.
[0006] As an improvement to the above solution, the first driving component includes sliding rods symmetrically fixed on the outer shell of the fixed nozzle. A pressing plate is slidably connected to the sliding rods. Elastic members are provided between the fixed nozzle and the movable nozzle and between two adjacent movable nozzles. A pair of fixed rods are symmetrically arranged on the outer shell of the fixed nozzle. Except for the outermost movable nozzles at both ends, fixed rods are symmetrically fixed on the outer shells of the remaining movable nozzles. Connecting plates are rotatably connected to the fixed rods. Guide plates are symmetrically fixed on the outer shells of all the movable nozzles. Guide grooves are provided on the guide plates. Movable rods are slidably connected in the guide grooves. The movable rods are rotatably connected to the corresponding connecting plates. All the movable rods jointly contact the bottom surface of the pressing plate.
[0007] As an improvement to the above solution, the second driving component includes a pressing block fixed to the limiting plate through a bent pipe. The two ends of the pressing plate are provided with inclined surfaces, and the pressing block abuts against the inclined surfaces.
[0008] As an improvement to the above solution, the fitting component includes mounting blocks symmetrically fixed on the outer side wall of the box body. A lead screw is rotatably connected in the mounting blocks. Pressing rollers are symmetrically threadedly connected to the lead screw. A driving shaft is rotatably connected to the box body. The driving shaft is connected to the lead screw through a third bevel gear set. The driving shaft penetrates through the box body and first rotating handles are fixed to both ends thereof.
[0009] As an improvement to the above solution, it further includes an anti-wrinkle component. The anti-wrinkle component includes a mounting plate arranged on the mutually remote sides of the two guiding plates. The mounting plate is in a "V" shape. A fixed shaft is fixed to the pointed end of the "V" shape of the mounting plate. The fixed shaft is in a "V" shape. Cylinders are symmetrically rotatably connected to the fixed shaft. The two cylinders are connected through a first bevel gear set. A first driving motor is mounted on the outer side wall of the box body. The output shaft of the first driving motor is connected to one of the cylinders through a second bevel gear set.
[0010] As an improvement to the above solution, it further includes scraping rings symmetrically slidably connected to both ends of the support cylinder. Second synchronous wheels are fixed to the mutually remote side surfaces of the scraping rings. The second synchronous wheels are rotatably connected to the limiting plate. A transmission gear is fixed to the bidirectional screw. A first synchronous wheel is rotatably connected to the limiting plate. The first synchronous wheel is sleeved on the bidirectional screw. The first synchronous wheel is provided with internal teeth meshing with the transmission gear. The first synchronous wheel and the second synchronous wheel are connected through a synchronous belt.
[0011] As an improvement to the above solution, it further includes a scraping plate. The scraping plate is fixed to the bottom surface of the limiting plate. The scraping plate contacts the mutually close side surfaces of the scraping rings.
[0012] As an improvement to the above solution, it further includes a bracket fixed to the side of the limiting plate close to the guiding plate. A detection roller is rotatably connected to the bracket. A rotation detector is provided on the rotating shaft of the detection roller.
[0013] A method of using an efficient assembly device for a conductive copper foil composite tape, comprising the following steps:
[0014] S1: Install the take-up reel on the take-up shaft, and then rotate the second turning handle, so that the bidirectional screw drives the limiting plates to approach or move away from each other, so that the limiting plates limit the position of the take-up reel, and at the same time the limiting plates can adapt to the width of the material, so that the limiting plates can limit the two materials at the guide rollers;
[0015] S2: When the limiting plates move, the limiting plates cause the movable nozzles to displace through the first driving assembly and the second driving assembly. After the movable nozzles are displaced, the spacing distances between adjacent two movable nozzles and between the movable nozzle and the fixed nozzle are still equal, and the two movable nozzles at the farthest distance apart can adapt to the width of the material. Then, adjust the spraying widths of the movable nozzles and the fixed nozzle to adapt to the width of the material;
[0016] S3: When rotating the second turning handle, the bidirectional screw drives the limiting plates to approach or move away from each other. The limiting plates drive the first synchronous wheel, the second synchronous wheel and the scraping ring to move. The scraping ring contacts the surface of the support cylinder, so that the scraping ring can scrape off the sundries on the surface of the support cylinder. The sundries adhere to the side surface of the scraping ring. And because the bidirectional screw rotates, the bidirectional screw drives the transmission gear to rotate. The transmission gear drives the first synchronous wheel to rotate through meshing transmission. Then, the first synchronous wheel drives the second synchronous wheel to rotate through the synchronous belt. Then, the second synchronous wheel drives the scraping ring to rotate. Then, the sundries on the side surface of the scraping ring will be scraped off by the scraper, so that the scraping ring can be cleaned;
[0017] S4: Rotate the first turning handle, so that the drive shaft drives the lead screw to rotate through the third bevel gear set, so that the pressing rollers approach or move away from each other, so that the distance between the pressing rollers can be adjusted, so that different thicknesses of materials can be adapted, and at the same time the fitting pressure can be adjusted to make the two materials fit more tightly;
[0018] S5: Start the second driving motor, and the second driving motor drives the take-up reel to wind. At the same time, start the first driving motor. The output shaft of the first driving motor drives one of the cylinders to rotate through the second bevel gear set. The cylinder drives the other cylinder to rotate through the first bevel gear set, so as to help the material stay flat and avoid wrinkles;
[0019] S6: When the limiting plates move, they can drive the detection roller to move. Then, the detection roller fits against the side wall of the material. By rotating the detector to detect whether the rotating shaft of the detection roller rotates, it can be detected whether the material deviates.
[0020] Advantages of the present invention: The present invention is provided with components such as movable nozzles and fixed nozzles. When the limit plate moves, the limit plate causes the movable nozzles to displace through the first driving assembly and the second driving assembly. After the displacement of the movable nozzles, the spacing distances between two adjacent movable nozzles and between the movable nozzles and the fixed nozzles remain equal, and the two movable nozzles at the farthest distance can adapt to the width of the material. Then, the spraying widths of the movable nozzles and the fixed nozzles are adjusted to adapt to the width of the material, avoiding either the adhesive failing to cover the entire surface of the material during spraying, resulting in insecure bonding, or spraying in unnecessary areas, causing waste of resources and increasing production costs. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 is a schematic structural diagram of the present invention.
[0022] Figure 2 is another schematic structural diagram of the present invention.
[0023] Figure 3 is a cross-sectional view of the present invention.
[0024] Figure 4 is a cross-sectional view of components such as the glue storage tank, fixed nozzles, and movable nozzles of the present invention.
[0025] Figure 5 is a schematic diagram of components such as the fixed nozzles, movable nozzle sliders, etc. of the present invention.
[0026] Figure 6 is a partial schematic diagram of components such as the scraping ring, bidirectional screw, and second turning handle of the present invention.
[0027] Figure 7 is a cross-sectional view of components such as the transmission gear, internal teeth, and first synchronous pulley of the present invention.
[0028] Figure 8 is a schematic diagram of the anti-crease assembly of the present invention.
[0029] Figure 9 is a cross-sectional view of the fitting assembly of the present invention.
[0030] Figure 10 is a schematic diagram of components such as the bracket, detection roller, and rotation detector of the present invention.
[0031] Wherein: 101: box body, 102: guiding plate, 103: guiding roller, 104: rewinding shaft, 105: rewinding cylinder, 106: second driving motor, 107: stirring device, 111: limiting plate, 112: bidirectional screw, 113: second turning handle, 201: supporting cylinder, 202: glue storage box, 203: fixed nozzle, 204: movable nozzle, 205: telescopic plate, 211: sliding rod, 212: pressing plate, 2121: inclined surface, 213: elastic member, 214: fixed rod, 215: connecting plate, 216: guiding plate, 2161: guiding groove, 217: movable rod, 301: elbow pipe, 302: extrusion block, 401: mounting block, 402: lead screw, 403: extrusion roller, 404: driving shaft, 405: third helical gear set, 406: first turning handle, 501: mounting plate, 502: fixed shaft, 503: cylinder, 504: first helical gear set, 505: first driving motor, 506: second helical gear set, 601: scraping ring, 602: second synchronous pulley, 603: transmission gear, 604: first synchronous pulley, 605: internal teeth, 606: synchronous belt, 611: scraping plate, 701: bracket, 702: detection roller, 703: rotation detector. Detailed implementation manners
[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0033] An efficient assembly device for conductive copper foil composite tape, as Figures 1-10As shown in the figure, it includes a box body 101. Guide plates 102 and guide rollers 103 are installed on the upper and lower sides of the left part inside the box body 101. A winding shaft 104 is rotatably connected to the right part inside the box body 101. A winding drum 105 is installed on the winding shaft 104. The winding shaft 104 is driven by a second driving motor 106 installed on the outer side wall of the box body 101 to rotate. In this way, through the guide plates 102 and guide rollers 103, the path of the material can be effectively guided. At the same time, by using the second driving motor 106 to drive the winding drum 105 for winding, the automation degree of the device is improved. A support cylinder 201 is fixedly connected to the middle part inside the box body 101. A glue storage box 202 is fixedly connected directly above the support cylinder 201. The support cylinder 201 can provide support for the material to prevent the material from sagging during glue spraying. A stirring device 107 is installed on the top surface of the box body 101. The stirring device 107 is a prior art, that is, it includes a stirring box, stirring rods and a third driving motor. Among them, the stirring box is installed on the top surface of the box body 101. Stirring rods are rotatably connected inside the box body 101. The stirring rods are driven by a third driving motor installed on the outer side wall of the stirring box to rotate. In this way, the adhesive can be evenly stirred, avoiding precipitation or stratification of the adhesive components. The stirring device 107 is communicated with the glue storage box 202 through a pump body and a pipeline. A fixed nozzle 203 is fixedly connected to the middle part of the bottom of the glue storage box 202. Two movable nozzles 204 are symmetrically and slidably connected to both ends of the bottom of the glue storage box 202. The movable nozzles 204 are driven by a first driving component to slide. Expansion plates 205 are arranged between adjacent two movable nozzles 204, between the movable nozzle 204 and the fixed nozzle 203, and between the movable nozzle 204 and the glue storage box 202. The expansion plates 205 are made of polytetrafluoroethylene and have excellent corrosion resistance. The spacing distances between adjacent two movable nozzles 204 and between the movable nozzle 204 and the fixed nozzle 203 are equal. A fitting component is also arranged between the glue storage box 202 and the winding shaft 104. Limiting plates 111 are symmetrically and slidably connected to the support cylinder 201. The limiting plates 111 are in a "U" shape. The left and right ends of the limiting plates 111 are respectively slidably connected to the guide roller 103 and the winding shaft 104. A bidirectional screw 112 is rotatably connected to the box body 101. The bidirectional screw 112 is threadedly connected to the two limiting plates 111. Second turning handles 113 are fixedly connected to both ends of the bidirectional screw 112. The limiting plates 111 are connected to the first driving component through a second driving component;
[0034] Specifically, the first driving component includes sliding rods 211 symmetrically fixed to the outer shell of the fixed nozzle 203. A pressing plate 212 is slidably connected to the sliding rods 211. Slope surfaces 2121 are provided at both ends of the pressing plate 212. Elastic members 213 are provided between the fixed nozzle 203 and the movable nozzle 204 and between two adjacent movable nozzles 204. The elastic members 213 are specifically springs and are always in a compressed state. A pair of fixed rods 214 are symmetrically provided on the outer shell of the fixed nozzle 203. Fixed rods 214 are symmetrically fixed to the outer shells of the movable nozzles 204 except for the outermost movable nozzles 204 at both ends. Connecting plates 215 are rotatably connected to the fixed rods 214. Guide plates 216 are symmetrically fixed to the outer shells of all the movable nozzles 204. Guide grooves 2161 are provided on the guide plates 216. Movable rods 217 are slidably connected in the guide grooves 2161. The movable rods 217 are rotatably connected to the corresponding connecting plates 215, that is, the movable rods 217 and the fixed rods 214 that are adjacent and not on the same movable nozzle 204 are connected by the connecting plates 215. All the movable rods 217 are in contact with the bottom surface of the pressing plate 212 together. Specifically, the second driving component includes a pressing block 302 fixed to the limiting plate 111 through a bent pipe 301. The pressing block 302 abuts against the slope surface 2121. Since the elastic members 213 are always in a compressed state, the pressing plate 212 and the movable rods 217 are in an abutting state;
[0035] It can be seen from this that by manually rotating the second rotating handle 113, the bidirectional screw rod 112 is further rotated. Then, due to the threaded connection relationship, the two limiting plates 111 approach or move away from each other, so as to adapt to materials of different widths. At the same time, the left and right ends of the limiting plate 111 are respectively slidably connected to the guiding roller 103 and the winding shaft 104 to limit the front and rear positions of the material and the winding drum 105, avoiding the deviation or instability of the material during the processing. At the same time, since the limiting plate 111 moves, the elbow pipe 301 and the extrusion block 302 are driven to move. For example, when the limiting plates 111 approach each other, the two extrusion blocks 302 are driven to approach each other, so that the extrusion block 302 extrudes the inclined surface 2121, causing the pressing plate 212 to move downward. Then, the pressing plate 212 presses the movable rod 217, causing the movable rod 217 to move downward in the guiding groove 2161. Since the two ends of the connecting plate 215 are respectively rotatably connected to the fixed rod 214 and the movable rod 217, the movable rod 217 further presses the movable spray head 204, causing the movable spray head 204 to move towards the fixed spray head 203. Since all the movable rods 217 are in contact with the pressing plate 212, the distance between adjacent two movable spray heads 204 and between the movable spray head 204 and the fixed spray head 203 always remains equal. Therefore, the movable spray head 204 and the fixed spray head 203 can adapt to the widths of different materials, ensuring that the adhesive is evenly and accurately sprayed onto the surface of the material, improving the coating quality. At the same time, the distance between the two outermost movable spray heads 204 always aligns with the width of the material, avoiding the movable spray head 204 working in unnecessary areas and reducing resource waste.
[0036] Furthermore, during the operation of the support cylinder 201, residues of adhesives, debris or other materials may accumulate. If these sundries accumulate on the surface of the support cylinder, it may affect the subsequent replacement of materials with different widths. The present invention can solve this problem. It further includes scraping rings 601 symmetrically and slidably connected to both ends of the support cylinder 201. The scraping rings 601 are in contact with the surface of the support cylinder 201. On the side surfaces of the scraping rings 601 away from each other, second synchronous wheels 602 are fixedly connected. The second synchronous wheels 602 are rotatably connected to the limiting plates 111. A transmission gear 603 is fixedly connected to the bidirectional screw 112. A first synchronous wheel 604 is rotatably connected to the limiting plate 111. The first synchronous wheel 604 is sleeved on the bidirectional screw 112. The first synchronous wheel 604 is provided with internal teeth 605 that mesh with the transmission gear 603. In this way, when the first synchronous wheel 604 moves following the limiting plate 111, the transmission gear 603 always remains in a meshed state with the internal teeth 605. The first synchronous wheel 604 and the second synchronous wheel 602 are connected by a synchronous belt 606. It further includes a scraping plate 611. The scraping plate 611 is fixedly connected to the bottom surface of the limiting plate 111. The scraping plate 611 is in contact with the side surface of the scraping ring 601 close to it. It can be seen from this that when the second turning handle 113 is rotated, the bidirectional screw 112 is further rotated. Then, due to the threaded connection relationship, the two limiting plates 111 approach or move away from each other. Then, the limiting plates 111 drive the first synchronous wheel 604, the second synchronous wheel 602 and the scraping ring 601 to move. Since the scraping ring 601 is in contact with the surface of the support cylinder 201, the scraping ring 601 can scrape off the sundries on the surface of the support cylinder 201. The sundries adhere to the side surface of the scraping ring 601. During the movement of the first synchronous wheel 604, the internal teeth 605 always remain in a meshed state with the transmission gear 603. And because the bidirectional screw 112 rotates, the bidirectional screw 112 drives the transmission gear 603 to rotate. The transmission gear 603 drives the first synchronous wheel 604 to rotate through meshing transmission. Then, the first synchronous wheel 604 drives the second synchronous wheel 602 to rotate through the synchronous belt 606. Then, the second synchronous wheel 602 drives the scraping ring 601 to rotate. Then, the sundries on the side surface of the scraping ring 601 will be scraped off by the scraping plate 611. Thus, the scraping ring 601 can be cleaned.
[0037] Furthermore, in order to better adapt to materials of different thicknesses, the fitting assembly includes mounting blocks 401 symmetrically fixed on the outer side wall of the box body 101. A lead screw 402 is rotatably connected inside the mounting block 401. Extrusion rollers 403 are symmetrically threadedly connected to the lead screw 402. A drive shaft 404 is rotatably connected to the box body 101. The drive shaft 404 is connected to the lead screw 402 through a third bevel gear set 405. The drive shaft 404 penetrates the box body 101 and first turning handles 406 are fixedly connected to both ends thereof. It can be seen that by rotating the first turning handle 406, the first turning handle 406 drives the drive shaft 404 to rotate. Then, the drive shaft 404 drives the lead screw 402 to rotate through the third bevel gear set 405. Then, the lead screw 402 drives the extrusion rollers 403 to approach or move away from each other through the threaded connection relationship. Thus, the distance between the extrusion rollers 403 can be adjusted, and materials of different thicknesses can be adapted. At the same time, the fitting pressure can also be adjusted to make the two materials fit more tightly.
[0038] Furthermore, in order to prevent the material from wrinkling during transportation, an anti-wrinkle assembly is further included. The anti-wrinkle assembly includes a mounting plate 501 provided on one side of the two guiding plates 102 away from each other. The mounting plate 501 is in a "V" shape. A fixed shaft 502 is fixedly connected to the pointed end of the "V" of the mounting plate 501. The fixed shaft 502 is in a "V" shape. Cylinders 503 are symmetrically rotatably connected to the fixed shaft 502. The two cylinders 503 are connected through a first bevel gear set 504. A first drive motor 505 is installed on the outer side wall of the box body 101. The output shaft of the first drive motor 505 is connected to one of the cylinders 503 through a second bevel gear set 506. It can be seen that by starting the first drive motor 505, the output shaft of the first drive motor 505 drives one of the cylinders 503 to rotate through the second bevel gear set 506. The cylinder 503 drives the other cylinder 503 to rotate through the first bevel gear set 504. The rotation directions of the two cylinders 503 are adapted to the material transportation direction, that is, from the perspective of the first drive motor 505, the cylinders 503 rotate counterclockwise. In this way, when the material is transported, there will be a pulling force on both sides, which helps the material to remain flat and avoids wrinkles caused by uneven tension during the material transportation process.
[0039] Furthermore, a bracket 701 fixedly connected to the side of the limiting plate 111 close to the guiding plate 102 is further included. A detection roller 702 is rotatably connected to the bracket 701. A rotation detector 703 is provided on the rotating shaft of the detection roller 702. It can be seen that when the material deviates towards the detection roller 702, the material drives the detection roller 702 to rotate. Then, when the rotation detector 703 detects the rotation of the detection roller 702, it will trigger the warning device to warn the operator.
[0040] Usage method of an efficient assembling device for a conductive copper foil composite tape, including the following steps:
[0041] S1: Install the take-up reel 105 on the take-up shaft 104, then rotate the second turning handle 113, so that the bidirectional screw 112 drives the limiting plates 111 to approach or move away from each other, enabling the limiting plates 111 to restrict the position of the take-up reel 105, and at the same time enabling the limiting plates 111 to adapt to the width of the material. Thus, the limiting plates 111 can limit the two materials at the guiding roller 103;
[0042] S2: When the limiting plates 111 move, the limiting plates 111 cause the movable spray heads 204 to displace through the first driving assembly and the second driving assembly. After the displacement of the movable spray heads 204, the spacing distances between adjacent two movable spray heads 204 and between the movable spray heads 204 and the fixed spray head 203 are still equal, and the two movable spray heads 204 at the farthest distance can adapt to the width of the material. Then, adjust the spraying widths of the movable spray heads 204 and the fixed spray head 203 to adapt to the width of the material;
[0043] S3: When rotating the second turning handle 113, the bidirectional screw 112 drives the limiting plates 111 to approach or move away from each other. The limiting plates 111 drive the first synchronous pulley 604, the second synchronous pulley 602 and the scraping ring 601 to move. The scraping ring 601 contacts the surface of the support cylinder 201. Thus, the scraping ring 601 can scrape off the sundries on the surface of the support cylinder 201. The sundries adhere to the side surface of the scraping ring 601. And because the bidirectional screw 112 rotates, the bidirectional screw 112 drives the transmission gear 603 to rotate. The transmission gear 603 drives the first synchronous pulley 604 to rotate through meshing transmission. Thus, the first synchronous pulley 604 drives the second synchronous pulley 602 to rotate through the synchronous belt 606. Then, the second synchronous pulley 602 drives the scraping ring 601 to rotate. Thus, the sundries on the side surface of the scraping ring 601 will be scraped off by the scraper 611, and thus the scraping ring 601 can be cleaned;
[0044] S4: Rotate the first turning handle 406, so that the drive shaft 404 drives the lead screw 402 to rotate through the third bevel gear set 405, so that the extrusion rollers 403 approach or move away from each other. Thus, the distance between the extrusion rollers 403 can be adjusted, and thus different thicknesses of materials can be adapted. At the same time, the fitting pressure can also be adjusted to make the two materials fit more tightly;
[0045] S5: Start the second drive motor 106, and then the second drive motor 106 drives the take-up reel 105 to wind. At the same time, start the first drive motor 505, and then the output shaft of the first drive motor 505 drives one of the cylinders 503 to rotate through the second helical gear set 506, and the cylinder 503 drives the other cylinder 503 to rotate through the first helical gear set 504, thereby helping to keep the material flat and avoid wrinkles.
[0046] S6: When the limit plate 111 moves, it can drive the detection roller 702 to move, and then the detection roller 702 fits against the side wall of the material. By rotating the detector 703, it is detected whether the rotating shaft of the detection roller 702 rotates, and thus it can be detected whether the material is offset.
[0047] Although the present invention has been described with reference to exemplary embodiments, it should be understood that the present invention is not limited to the disclosed exemplary embodiments. The scope of the following claims should be given the broadest interpretation so as to cover all variations and equivalent structures and functions.
Claims
1. An efficient assembly device for a conductive copper foil composite tape, characterized in that: It includes a box body (101). Guide plates (102) and guide rollers (103) are installed on the upper and lower sides of the left part inside the box body (101). A winding shaft (104) is rotatably connected to the right part inside the box body (101). A winding cylinder (105) is installed on the winding shaft (104). The winding shaft (104) is driven by a second driving motor (106) installed on the outer side wall of the box body (101) to rotate. A support cylinder (201) is fixedly connected to the middle part inside the box body (101). A glue storage box (202) is fixedly connected directly above the support cylinder (201). A stirring device (107) is installed on the top surface of the box body (101). The stirring device (107) is communicated with the glue storage box (202) through a pump body and a pipeline. A fixed nozzle (203) is fixedly connected to the middle part of the bottom of the glue storage box (202). At least two movable nozzles (204) are symmetrically and slidably connected to both ends of the bottom of the glue storage box (202). The movable nozzles (204) are driven by a first driving assembly to slide. Expansion plates (205) are arranged between two adjacent movable nozzles (204), between the movable nozzle (204) and the fixed nozzle (203), and between the movable nozzle (204) and the glue storage box (202). A fitting assembly is also arranged between the glue storage box (202) and the winding shaft (104). Limiting plates (111) are symmetrically and slidably connected to the support cylinder (201). The left and right ends of the limiting plates (111) are respectively slidably connected to the guide roller (103) and the winding shaft (104). A bidirectional screw rod (112) is rotatably connected to the box body (101). The bidirectional screw rod (112) is threadedly connected to the two limiting plates (111). Second turning handles (113) are fixedly connected to both ends of the bidirectional screw rod (112). The limiting plates (111) are connected to the first driving assembly through a second driving assembly.
2. For an efficient assembling device for conductive copper foil composite tapes according to claim 1, the spacing distances between two adjacent movable nozzles (204) and between the movable nozzle (204) and the fixed nozzle (203) are equal.
3. The high-efficiency assembling device for a conductive copper foil composite tape according to claim 2, characterized in that: The first driving assembly includes sliding rods (211) symmetrically and fixedly connected to the outer shell of the fixed nozzle (203). A pressing plate (212) is slidably connected to the sliding rods (211). Elastic members (213) are arranged between the fixed nozzle (203) and the movable nozzle (204) and between two adjacent movable nozzles (204). A pair of fixed rods (214) are symmetrically arranged on the outer shell of the fixed nozzle (203). Fixed rods (214) are symmetrically and fixedly connected to the outer shells of the movable nozzles (204) except for the outermost movable nozzles (204) at both ends. Connecting plates (215) are rotatably connected to the fixed rods (214). Guide plates (216) are symmetrically and fixedly connected to the outer shells of all the movable nozzles (204). Guide grooves (2161) are arranged on the guide plates (216). Movable rods (217) are slidably connected to the guide grooves (2161). The movable rods (217) are rotatably connected to the corresponding connecting plates (215). All the movable rods (217) jointly contact the bottom surface of the pressing plate (212).
4. The high-efficiency assembly device for a conductive copper foil composite tape according to claim 3, characterized in that: The second driving component includes a pressing block (302) fixedly connected to the limiting plate (111) through a bent pipe (301). The two ends of the pressing plate (212) are provided with inclined surfaces (2121), and the pressing block (302) is in contact with the inclined surfaces (2121).
5. The high-efficiency assembling device for a conductive copper foil composite tape according to claim 4, characterized in that: The fitting component includes mounting blocks (401) symmetrically and fixedly connected to the outer side wall of the box body (101). A lead screw (402) is rotatably connected inside the mounting blocks (401). Pressing rollers (403) are symmetrically and threadedly connected to the lead screw (402). A driving shaft (404) is rotatably connected to the box body (101). The driving shaft (404) is connected to the lead screw (402) through a third bevel gear set (405). The driving shaft (404) penetrates through the box body (101) and first turning handles (406) are fixedly connected to both ends thereof.
6. The high-efficiency assembly device of a conductive copper foil composite tape according to claim 5, characterized in that: It further includes an anti-wrinkle component. The anti-wrinkle component includes a mounting plate (501) arranged on the sides of the two guiding plates (102) away from each other. The mounting plate (501) is in a "V" shape. A fixed shaft (502) is fixedly connected to the "V" end of the mounting plate (501). The fixed shaft (502) is in a "V" shape. Cylinders (503) are symmetrically and rotatably connected to the fixed shaft (502). The two cylinders (503) are connected through a first bevel gear set (504). A first driving motor (505) is mounted on the outer side wall of the box body (101). The output shaft of the first driving motor (505) is connected to one of the cylinders (503) through a second bevel gear set (506).
7. The high-efficiency assembly device for a conductive copper foil composite tape according to claim 6, characterized in that: It further includes scraping rings (601) symmetrically and slidably connected to both ends of the support cylinder (201). Second synchronous wheels (602) are fixedly connected to the sides of the scraping rings (601) away from each other. The second synchronous wheels (602) are rotatably connected to the limiting plate (111). A transmission gear (603) is fixedly connected to the bidirectional screw (112). A first synchronous wheel (604) is rotatably connected to the limiting plate (111). The first synchronous wheel (604) is sleeved on the bidirectional screw (112). The first synchronous wheel (604) is provided with internal teeth (605) meshing with the transmission gear (603). The first synchronous wheel (604) and the second synchronous wheels (602) are connected through a synchronous belt (606).
8. The high-efficiency assembly device for a conductive copper foil composite tape according to claim 7, characterized in that: It further includes a scraping plate (611). The scraping plate (611) is fixedly connected to the bottom surface of the limiting plate (111). The scraping plate (611) is in contact with the side of the scraping ring (601) close to it.
9. The high-efficiency assembling device for a conductive copper foil composite tape according to claim 8, characterized in that: It further includes a bracket (701) fixedly connected to the side of the limiting plate (111) close to the guiding plate (102). A detection roller (702) is rotatably connected to the bracket (701). A rotation detector (703) is arranged on the rotating shaft of the detection roller (702).
10. A method for using an efficient assembly device for a conductive copper foil composite tape according to any one of claims 1-9, characterized in that: It includes the following steps: S1: Install the take-up reel (105) on the take-up shaft (104), then rotate the second turning handle (113), so that the bidirectional screw rod (112) drives the limiting plates (111) to approach or move away from each other, restricting the position of the take-up reel (105) with the limiting plates (111), and at the same time enabling the limiting plates (111) to adapt to the width of the material. Thus, the limiting plates (111) can limit the two materials at the guide roller (103). S2: When the limiting plates (111) move, the limiting plates (111) cause the movable spray heads (204) to displace through the first driving assembly and the second driving assembly. After the displacement of the movable spray heads (204), the spacing distances between adjacent movable spray heads (204) and between the movable spray heads (204) and the fixed spray heads (203) remain equal, and the two movable spray heads (204) at the farthest distance apart can adapt to the width of the material. Then, adjust the spraying widths of the movable spray heads (204) and the fixed spray heads (203) to adapt to the width of the material. S3: When rotating the second turning handle (113), the bidirectional screw rod (112) drives the limiting plates (111) to approach or move away from each other. The limiting plates (111) drive the first synchronous pulley (604), the second synchronous pulley (602) and the scraping ring (601) to move. The scraping ring (601) contacts the surface of the support cylinder (201). Thus, the scraping ring (601) can scrape off the debris on the surface of the support cylinder (201). The debris adheres to the side of the scraping ring (601). Since the bidirectional screw rod (112) rotates, the bidirectional screw rod (112) drives the transmission gear (603) to rotate. The transmission gear (603) drives the first synchronous pulley (604) to rotate through meshing transmission. Thus, the first synchronous pulley (604) drives the second synchronous pulley (602) to rotate through the synchronous belt (606). Then, the second synchronous pulley (602) drives the scraping ring (601) to rotate. Thus, the debris on the side of the scraping ring (601) will be scraped off by the scraper (611), and the scraping ring (601) can be cleaned. S4: Rotate the first turning handle (406), so that the drive shaft (404) drives the lead screw (402) to rotate through the third bevel gear set (405), so that the extrusion rollers (403) approach or move away from each other. Thus, the distance between the extrusion rollers (403) can be adjusted to adapt to materials of different thicknesses. At the same time, the fitting pressure can also be adjusted to make the two materials fit more tightly. S5: Start the second drive motor (106), so that the second drive motor (106) drives the take-up reel (105) to wind. At the same time, start the first drive motor (505). The output shaft of the first drive motor (505) drives one of the cylinders (503) to rotate through the second bevel gear set (506). The cylinder (503) drives the other cylinder (503) to rotate through the first bevel gear set (504), thus helping the material to remain flat and avoiding wrinkles. S6: When the limit plate (111) moves, it can drive the detection roller (702) to move, so that the detection roller (702) fits against the side wall of the material. By means of the rotation detector (703), it is detected whether the rotation axis of the detection roller (702) rotates, and thus it can be detected whether the material is offset.