Discharging mechanism for copper foil machine
By designing the feed discharge mechanism for copper foil machine, using the clamping and rotating structure of the feed discharge assembly and multi-axis adsorption assembly, the problems of tension and unstable waste collection are solved, and the stable transportation of copper foil tape and efficient collection of waste are achieved.
Patent Information
- Application Number
- CN202422523164.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-17
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-10-17
AI Technical Summary
The discharge and collection devices of existing copper foil machines are not easy to synchronize, which affects the tension of copper foil tape and the stability of waste collection.
A copper foil machine discharge mechanism is designed, including a discharge assembly, a multi-axis adsorption assembly, a winding roller and a monitoring module. The stable conveying and collection of copper foil tape is achieved through clamping, rotating structure and synchronization belt.
Effectively prevent the copper foil tape from rotating and shaking, ensure the stable winding of the copper foil tape and the smooth collection of waste, and improve the stability and efficiency of production.
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Figure CN223133591U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of copper foil machines, and particularly relates to a feeding mechanism for a copper foil machine. Background Technique
[0002] A copper foil machine is a device for copper foil processing in the electronics industry. It has multiple functions, including copper foil back gluing, welding lead wires, cutting, and adsorption and transportation. When in use, it can effectively improve production efficiency, and according to different products, it can be used in combination with the copper foil machine to improve production efficiency.
[0003] The feeding mechanism can effectively control the stability of copper foil transportation when the copper foil machine is working, and form automatic release and winding of waste materials according to production conditions, thereby improving the stability of copper foil use.
[0004] During the use process, it is not convenient to effectively control the stability of the device, which is likely to cause the copper foil tape to tilt, affecting the stability of the cooperation between feeding and waste material collection.
[0005] In order to overcome the above defects, a prior art (a Chinese patent with the application number CN201811563000.7 and the application date of December 20, 2018) is a new type of copper foil wrapping machine. In this machine, a workpiece is placed on a product model seat, and a motor drives a feeding disk to convey the copper foil to a feeding platform. A tightening cylinder drives a tightening block to tighten the copper foil, a right pushing block pushes the copper foil to continuously feed, a left pushing cylinder drives a left pushing block to push the copper foil to close, and at the same time, a first telescopic cylinder drives a cutting knife to cut. Then the workpiece is inserted into a positioning block, a second telescopic cylinder drives a second flattening block to fix both sides of the workpiece and press against the copper foil on both sides. Then a flattening cylinder drives a first flattening block to press down on the workpiece to press the copper foil on the surface of the workpiece tightly. This device can reduce manual fatigue, effectively press the bonding surface of the copper foil, reduce labor costs, and improve the production efficiency of products.
[0006] Although the prior art can complete the stable transportation of the copper foil tape, during the working process, the feeding and receiving devices are not convenient to form synchronization, which affects the low tension of the copper foil tape, affects the peeling of the copper foil, and affects the stability of the collection of waste materials of the copper foil tape.
[0007] In view of the above problems, it is urgent to innovate and design on the basis of the original copper foil machine feeding mechanism. Content of the Utility Model
[0008] The purpose of the utility model is to provide a feeding mechanism for a copper foil machine, so as to solve the problems mentioned in the above background technique that during the working process, the feeding and receiving devices are not convenient to form synchronization, affecting the low tension of the copper foil tape, affecting the peeling of the copper foil, and affecting the stability of the collection of waste materials of the copper foil tape.
[0009] To achieve the above object, the present utility model provides the following technical solutions: a feeding mechanism for a copper foil machine, which is provided with a copper foil machine body that is convenient for positioning and assembling, and the inner surface of the copper foil machine body is connected with a pipeline assembly, and a multi-axis adsorption assembly is installed on the outer surface side of the pipeline assembly;
[0010] It includes: a feeding component, which is installed on the inner surface side of the copper foil machine body, and is located outside the multi-axis adsorption component and far from one side of the pipeline assembly. The outer surface of the feeding component is rotationally clamped and connected with a feeding frame, and a winding roller is connected to the outer surface side of the feeding frame. The winding roller is rotated on the inner surface of the feeding component. At the same time, a monitoring module is installed on the outer surface of the feeding component;
[0011] A platform plate is installed on the inner surface of the feeding component. The platform plate is located on the right side of the outer surface of the monitoring module. A pressing block is connected to the upper surface of the platform plate. At the same time, an optical fiber mounting plate is connected to the right side of the outer surface of the platform plate. The lower surface of the platform plate is rotationally connected with a roller shaft through the feeding component;
[0012] A rotating base is rotationally connected to the lower middle side of the inner surface of the feeding component, and is positioned by connecting with the feeding component through a first shaft body on the lower side of the rotating base, and is located on the left side of the outer surface of the roller shaft. The upper side of the inner surface of the rotating base is rotationally connected with a rotating frame through a second shaft body. A handle is assembled on the outer side of the second shaft body between the rotating base and the rotating frame. The right side of the outer surface of the rotating frame is rotationally connected with a pressing wheel, and a roller shaft is connected to the outer surface of the pressing wheel;
[0013] A support plate is installed on the lower side of the outer surface of the optical fiber mounting plate. A slide rail assembly is connected to the outer surface side of the support plate. The slide rail assembly is installed on the right side of the inner surface of the feeding component. At the same time, a camera is installed on the right side of the outer surface of the feeding component.
[0014] Preferably, the feeding component and the copper foil machine body form an integrated structure, and the feeding component forms a clamping and rotating structure with the copper foil tape through the feeding frame. The feeding component and the winding roller form a rotating structure. At the same time, the feeding component and the monitoring module are installed in an embedded manner on the outer surface side.
[0015] Through the above structure, the stability of the feeding component can be effectively controlled during use, and the copper foil tape can be clamped and positioned through the feeding frame to prevent self-rotation. In addition, with the damping rotation setting between the feeding frame and the feeding component, the feeding frame can be prevented from rotating inertia during the transportation of the copper foil tape.
[0016] Preferably, the platform plate is installed in an embedded manner on the inner surface of the feeding component. The platform plate and the pressing block form an integrated structure. The upper surface of the platform plate and the upper surface of the optical fiber mounting plate are horizontally arranged. At the same time, the feeding component and the roller shaft form a rotating structure.
[0017] With the above structure, during use, the stability of the cooperation between the platform plate and the pressing block can be effectively controlled, preventing the free movement of the peeled copper foil body and forming a limit at the initial position of the peeled copper foil body.
[0018] Preferably, a first synchronous wheel is rotatably connected to the rear side of the outer surface of the roller shaft, a synchronous belt is rotatably connected to the outer surface of the first synchronous wheel, a second synchronous wheel is rotatably connected to the left side of the outer surface of the synchronous belt, and a winding roller is rotatably connected to the front side of the outer surface of the second synchronous wheel.
[0019] The roller shaft forms a rotating structure with the synchronous belt through the first synchronous wheel, the synchronous belt forms a synchronous rotating structure with the winding roller through the second synchronous wheel, and the winding roller and the copper foil tape waste form a clamping structure.
[0020] With the above structure, during use, the cooperation between the first synchronous wheel and the second synchronous wheel can be effectively controlled, used for clamping and extruding to control the conveyance of the copper foil tape waste, and while controlling the conveyance, the copper foil tape waste is conveyed to the winding roller for collection.
[0021] Preferably, the lower side of the rotating base forms a positioning and rotating structure with the feeding assembly through a first shaft body, the upper side of the rotating base forms a rotating structure with the rotating frame through a second shaft body, the rotating frame forms a coaxial rotating structure with the handle through the second shaft body, and the rotating frame forms an extrusion and rotating structure with the roller shaft through a pressing wheel.
[0022] With the above structure, during use, it is convenient to effectively rotate and adjust the angle of the rotating frame assembled on the rotating base, thereby controlling the stable conveyance of the copper foil tape waste passing through the roller shaft for use.
[0023] Preferably, the support plate forms a sliding structure with the feeding assembly through a slide rail assembly, the support plate and the optical fiber mounting plate form an integrated structure, and the optical fiber mounting plate and the copper foil body form an adsorption structure.
[0024] With the above structure, during use, the stability of the optical fiber mounting plate assembled on the support plate can be effectively controlled, and the copper foil body can be adsorbed for use.
[0025] Compared with the prior art, the beneficial effects of the present utility model are:
[0026] 1. For the copper foil machine feeding mechanism, there is a feeding assembly that is convenient for positioning and assembly. Through the cooperation of the shaft lock and the two side baffles assembled on the feeding frame, the copper foil tape is effectively clamped, preventing self-rotation and wobbling. And through the cooperation of the assembled winding roller and the monitoring module, the copper foil tape is effectively wound on the roller shaft and wound through the platform plate, and the peeled copper foil can be effectively conveyed smoothly onto the optical fiber mounting plate for later adsorption and use by the multi-axis adsorption assembly;
[0027] 2. The feeding mechanism for this copper foil machine can form a lever extrusion mechanism between the rotating base assembled by the feeding components and the rotating frame. Thus, by controlling the handle, the rotating frame connected to the shaft body assembled on the upper side of the rotating base can be rotated, and then the pressing wheel adjusted by the rotation of the rotating frame can be stably pressed against the outer side of the roller shaft. Through the extrusion and conveyance of the copper foil tape by the roller shaft and the winding of the waste material by the take-up roller controlled by the synchronous belt, the waste material of the copper foil tape can be effectively collected. Brief Description of the Drawings
[0028] Figure 1 It is a three-dimensional structural schematic diagram of the copper foil machine body of the present utility model;
[0029] Figure 2 It is a three-dimensional structural schematic diagram of the half-sectional view of the copper foil machine body of the present utility model;
[0030] Figure 3 It is a three-dimensional structural schematic diagram of the rear view of the feeding component of the present utility model;
[0031] Figure 4 It is a three-dimensional structural schematic diagram of the partial sectional view of the feeding component of the present utility model;
[0032] Figure 5 It is a three-dimensional structural schematic diagram of the feeding component of the present utility model;
[0033] Figure 6 It is a three-dimensional structural schematic diagram of the half-sectional view of the rotating frame of the present utility model.
[0034] In the figure: 1. Copper foil machine body; 2. Assembly line component; 3. Multi-axis adsorption component; 4. Feeding component; 5. Feeding rack; 6. Winding roller; 7. Monitoring module; 8. Platform plate; 9. Pressing block; 10. Optical fiber mounting plate; 11. Roller shaft; 12. First synchronous pulley; 13. Synchronous belt; 14. Second synchronous pulley; 15. Take-up roller; 16. Rotating base; 17. Handle; 18. Rotating frame; 19. Pressing wheel; 20. Support plate; 21. Slide rail component; 22. Camera. Detailed Embodiment
[0035] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present utility model.
[0036] Please refer to Figures 1-6, the present utility model provides a technical solution: a feeding mechanism for a copper foil machine, which is provided with a copper foil machine body 1 that is convenient for positioning and assembly, and the inner surface of the copper foil machine body 1 is connected with a pipeline assembly 2, and a multi-axis adsorption assembly 3 is installed on the outer surface side of the pipeline assembly 2;
[0037] It includes: a feeding component 4, which is installed on the inner surface side of the copper foil machine body 1, and is located outside the multi-axis adsorption component 3 and away from one side of the pipeline assembly 2. The outer surface of the feeding component 4 is rotationally clamped and connected to a feeding rack 5, and a winding roller 6 is connected to the outer surface side of the feeding rack 5, and the winding roller 6 is rotated on the inner surface of the feeding component 4. At the same time, a monitoring module 7 is installed on the outer surface of the feeding component 4;
[0038] A platform plate 8 is installed on the inner surface of the feeding component 4, and the platform plate 8 is located on the right side of the outer surface of the monitoring module 7. A pressing block 9 is connected to the upper surface of the platform plate 8. At the same time, an optical fiber mounting plate 10 is connected to the outer surface right side of the platform plate 8, and a roller shaft 11 is rotationally connected to the lower surface of the platform plate 8 through the feeding component 4;
[0039] The feeding component 4 and the copper foil machine body 1 form an integrated structure, and the feeding component 4 and the copper foil tape form a clamping and rotating structure through the feeding rack 5. At the same time, the feeding component 4 and the winding roller 6 form a rotating structure, and the monitoring module 7 is embedded and installed on the outer surface side of the feeding component 4.
[0040] The platform plate 8 is embedded and installed on the inner surface of the feeding component 4, and the platform plate 8 and the pressing block 9 form an integrated structure. The upper surface of the platform plate 8 and the upper surface of the optical fiber mounting plate 10 are horizontally arranged. At the same time, the feeding component 4 and the roller shaft 11 form a rotating structure.
[0041] During use, the copper foil machine body 1 is stably assembled at the corresponding working position, and the assembly line component 2 of the copper foil machine body 1 is controlled to convey the products. And according to the conveyance of the products, the use of the multi-axis adsorption component 3, the feeding component 4 and the camera 22 is effectively coordinated to control the copper foil body on the copper foil tape to be adsorbed and assembled on the products. When the copper foil tape is used, it is stably assembled on the feeding rack 5 installed on the feeding component 4. Thus, the feeding rack 5 is controlled to have a damping rotation function to avoid inertial rotation of the feeding rack 5, and the copper foil tape can be stably wound through the winding roller 6, and pass through the monitoring module 7, and be conveyed to the upper side of the platform plate 8, and be pressed by the pressing block 9 assembled on the upper side of the platform plate 8. And through the right end side of the platform plate 8, the copper foil tape waste is connected to the upper side of the roller shaft 11. Then, by means of the rotation of the motor assembled with the synchronous pulley one 12 installed on the roller shaft 11, the rotation of the roller shaft 11 is controlled by the pressing wheel 19 pressing and connecting to the roller shaft 11, and the copper foil tape waste connected to the roller shaft 11 is stably conveyed. Then, by means of the synchronous pulley two 14 connected by the synchronous belt 13 assembled with the synchronous pulley one 12, the take-up roller 15 is controlled to rotate synchronously, and the copper foil tape waste can be collected, which is convenient for centralized replacement of the copper foil tape in the later stage. Thus, the stability of the platform plate 8 peeling the copper foil body and conveying it to the optical fiber mounting plate 10 is controlled;
[0042] The rotating base 16 is rotatably connected to the lower middle side of the inner surface of the feeding component 4, and is positioned by connecting the first shaft body on the lower side of the rotating base 16 to the feeding component 4, and is located on the left side of the outer surface of the roller shaft 11. And the upper side of the inner surface of the rotating base 16 is rotatably connected with a rotating frame 18 through a second shaft body, and a handle 17 is assembled on the outer side of the second shaft body between the rotating base 16 and the rotating frame 18. And the right side of the outer surface of the rotating frame 18 is rotatably connected with a pressing wheel 19, and the outer surface of the pressing wheel 19 is connected with the roller shaft 11;
[0043] The support plate 20 is installed on the lower side of the outer surface of the optical fiber mounting plate 10, and the side of the outer surface of the support plate 20 is connected with a slide rail component 21, and the slide rail component 21 is installed on the right side of the inner surface of the feeding component 4. At the same time, a camera 22 is installed on the right side of the outer surface of the feeding component 4.
[0044] The synchronous pulley one 12 is rotatably connected to the rear side of the outer surface of the roller shaft 11, and the synchronous belt 13 is rotatably connected to the outer surface of the synchronous pulley one 12. And the synchronous pulley two 14 is rotatably connected to the left side of the outer surface of the synchronous belt 13. At the same time, the take-up roller 15 is rotatably connected to the front side of the outer surface of the synchronous pulley two 14;
[0045] The roller shaft 11 forms a rotating structure through the synchronous pulley one 12 and the synchronous belt 13, and the synchronous belt 13 forms a synchronous rotation structure through the synchronous pulley two 14 and the take-up roller 15. And the take-up roller 15 forms a clamping structure with the copper foil tape waste.
[0046] The lower side of the rotating base 16 forms a positioning and rotating structure with the material feeding component 4 through the first shaft body, and the upper side of the rotating base 16 forms a rotating structure with the rotating frame 18 through the second shaft body. Moreover, the rotating frame 18 forms a coaxial rotating structure with the handle 17 through the second shaft body. At the same time, the rotating frame 18 forms an extrusion and rotating structure with the roller shaft 11 through the pressing wheel 19.
[0047] The support plate 20 forms a sliding structure with the material feeding component 4 through the slide rail assembly 21. The support plate 20 and the optical fiber mounting plate 10 form an integrated structure, and the optical fiber mounting plate 10 and the copper foil body form an adsorption structure.
[0048] Before the roller shaft 11 is driven to rotate by the motor, manually control the handle 17 to drive the first shaft body on the lower side of the rotating base 16 to form a positioning rotation with the material feeding component 4, and drive the rotating frame 18 connected to the second shaft body assembled on the rotating base 16. Control the pressing wheel 19 assembled on the rotating frame 18 to contact the left side of the outer surface of the roller shaft 11, so as to control the stable conveyance of the copper foil tape waste conveyed by the roller shaft 11, avoid affecting the stability of the peeling of the copper foil body. When the copper foil tape peels the copper foil body, the copper foil body can be conveyed onto the optical fiber mounting plate 10, and the height of the optical fiber mounting plate 10 can be effectively controlled through the slide rail assembly 21 provided on the support plate 20 installed on the lower side of the optical fiber mounting plate 10. When the optical fiber mounting plate 10 is installed, the multi-axis adsorption component 3 can effectively adsorb the copper foil body, and then place the copper foil body on the upper side of the camera 22 to form a positioning photograph for later positioning and use on the product.
[0049] The content not detailed in this specification belongs to the prior art well-known to those skilled in the art.
[0050] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A feeding mechanism for a copper foil machine, which is provided with a copper foil machine body (1) facilitating positioning and assembly. The inner surface of the copper foil machine body (1) is connected with an assembly line component (2), and a multi-axis adsorption component (3) is installed on the outer surface side of the assembly line component (2). It is characterized in that It includes: A feeding component (4), installed on the inner surface side of the copper foil machine body (1), located outside the multi-axis adsorption component (3), away from one side of the assembly line component (2). The outer surface of the feeding component (4) is rotationally clamped and connected to a feeding rack (5). The outer surface side of the feeding rack (5) is connected with a winding roller (6), and the winding roller (6) is rotated on the inner surface of the feeding component (4). At the same time, a monitoring module (7) is installed on the outer surface of the feeding component (4). A platform plate (8), installed on the inner surface of the feeding component (4), located on the right side of the outer surface of the monitoring module (7). The upper surface of the platform plate (8) is connected with a pressing block (9). At the same time, the outer surface right side of the platform plate (8) is connected with an optical fiber mounting plate (10). The lower surface of the platform plate (8) is rotationally connected with a roller shaft (11) through the feeding component (4). A rotating base (16), rotationally connected to the lower middle side of the inner surface of the feeding component (4), and forms a positioning connection with the feeding component (4) through the first shaft body on the lower side of the rotating base (16), and is located on the left side of the outer surface of the roller shaft (11). The upper side of the inner surface of the rotating base (16) is rotationally connected with a rotating frame (18) through the second shaft body. A handle (17) is assembled on the outer side of the second shaft body between the rotating base (16) and the rotating frame (18). The right side of the outer surface of the rotating frame (18) is rotationally connected with a pressing wheel (19), and the outer surface of the pressing wheel (19) is connected with the roller shaft (11). A support plate (20), installed on the lower side of the outer surface of the optical fiber mounting plate (10). The outer surface side of the support plate (20) is connected with a slide rail component (21), and the slide rail component (21) is installed on the right side of the inner surface of the feeding component (4). At the same time, a camera (22) is installed on the right side of the outer surface of the feeding component (4).
2. The feeding mechanism for a copper foil machine according to claim 1, characterized in that: The feeding component (4) and the copper foil machine body (1) form an integral structure. The feeding component (4) and the copper foil tape form a clamping and rotating structure through the feeding rack (5). The feeding component (4) and the winding roller (6) form a rotating structure. At the same time, the feeding component (4) and the monitoring module (7) are embedded and installed on the outer surface side.
3. The unwinding mechanism for a copper foil machine according to claim 1, characterized in that: The platform plate (8) and the inner surface of the feeding component (4) are embedded and installed. The platform plate (8) and the pressing block (9) form an integral structure. The upper surface of the platform plate (8) and the upper surface of the optical fiber mounting plate (10) are horizontally arranged. At the same time, the feeding component (4) and the roller shaft (11) form a rotating structure.
4. A feeding mechanism for a copper foil machine according to claim 1, characterized in that: A first synchronous wheel (12) is rotationally connected to the rear side of the outer surface of the roller shaft (11). A synchronous belt (13) is rotationally connected to the outer surface of the first synchronous wheel (12). A second synchronous wheel (14) is rotationally connected to the left side of the outer surface of the synchronous belt (13). At the same time, a winding roller (15) is rotationally connected to the front side of the outer surface of the second synchronous wheel (14). The roller shaft (11) forms a rotating structure through the first synchronous pulley (12) and the synchronous belt (13), and the synchronous belt (13) forms a synchronous rotation structure with the winding roller (15) through the second synchronous pulley (14), and the winding roller (15) forms a clamping structure with the copper foil tape waste.
5. The feeding mechanism for a copper foil machine according to claim 1, characterized in that: The lower side of the rotating base (16) forms a positioning rotation structure with the unwinding assembly (4) through the first shaft body, and the upper side of the rotating base (16) forms a rotation structure with the rotating frame (18) through the second shaft body, and the rotating frame (18) forms a coaxial rotation structure with the handle (17) through the second shaft body. At the same time, the rotating frame (18) forms an extrusion rotation structure with the roller shaft (11) through the pressing wheel (19).
6. The feeding mechanism for a copper foil machine according to claim 1, wherein: The support plate (20) forms a sliding structure with the unwinding assembly (4) through the slide rail assembly (21), and the support plate (20) forms an integral structure with the optical fiber mounting plate (10), and the optical fiber mounting plate (10) forms an adsorption structure with the copper foil body.
Citation Information
Patent Citations
Copper foil wrapping machine
CN109494539B