Coining device of cold stamping all-in-one machine
By using a translation mechanism and a cleaning mechanism in the printing device of the cold foil stamping machine, the friction between the paper box and the conveyor belt is enhanced. By utilizing the cooperation of the ratchet plate and ratchet ring, the problem of slippage and displacement of the paper box during the conveying process is solved, thus achieving precise printing of the paper box and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-12
- Publication Date
- 2026-03-10
AI Technical Summary
During the conveying process, the paper box has smooth surfaces on the top and bottom, as well as the front and rear ends, resulting in insufficient friction with the conveyor belt. This makes it easy for the box to slip and shift on the cold foil, preventing it from accurately entering the printing area and causing waste.
A cold foil stamping machine is used, which uses a translation mechanism, a first electric push rod and a cleaning mechanism to clean and press the surface of the paper box with a cleaning plate and a pressure roller to enhance friction. The counterclockwise rotation of the paper box is restricted by the cooperation of a ratchet plate, a ratchet ring and a spring to ensure that the paper box enters the stamping area accurately.
This effectively prevents cardboard boxes from slipping and shifting during transport, ensuring that the boxes enter the printing area precisely, thus improving production efficiency and reducing scrap rates.
Smart Images

Figure CN121625610A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of cold foil stamping technology, and in particular to a cold foil stamping integrated machine embossing device. Background Technology
[0002] Cold foil stamping technology refers to a method of transferring hot stamping foil onto a substrate using UV adhesive. The UV adhesive is printed on the substrate, cured, and then bonded to the substrate using pressure rollers. Excess hot stamping foil is peeled off the substrate, and only the portion of the foil coated with adhesive is transferred to the substrate to obtain the desired hot stamping image.
[0003] When stamping cardboard boxes, there are two methods: manual stamping and stamping. Manual stamping requires applying glue to the cardboard box before placing it under the stamping device. This method is cumbersome and inefficient. The other method uses a conveyor platform for automatic feeding and glue application, sending the cardboard box to the stamping device for stamping. In this method, there are no restrictions on the cardboard box while it is being conveyed on the conveyor belt. If the top and bottom surfaces and the front and rear ends of the cardboard box are all smooth, the friction between the cardboard box and the conveyor belt during the conveying process is small. In addition, the surface of the cold foil is also smooth. When the front end of the cardboard box comes into contact with the cold foil, the front end of the cardboard box is prone to slipping and displacement, causing the cardboard box to fail to enter the stamping area accurately, resulting in waste. Summary of the Invention
[0004] The purpose of this invention is to address the problem that when paper boxes are transported on a conveyor belt without any restrictions, and if the upper and lower surfaces and front and rear ends of the paper box are all smooth, the friction between the paper box and the conveyor belt during transport is small. In addition, the surface of the cold foil is also smooth, so when the front end of the paper box comes into contact with the cold foil, the front end of the paper box is prone to slipping and displacement, causing the paper box to fail to accurately enter the embossing area, thus generating waste. Therefore, this invention proposes an integrated cold foil stamping device.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: a cold foil stamping machine printing device includes a conveying platform, a housing is fixedly connected to the conveying platform, a printing mechanism is fixedly connected inside the housing, a glue dispensing mechanism is fixedly connected to the side wall of the housing, a work frame and a translation mechanism are fixedly connected to the top of the conveying platform, a first electric push rod is fixedly connected to the top of the work frame, and a cleaning mechanism is fixedly connected to the bottom of the first electric push rod. The cleaning mechanism includes a bending plate connected to the output end of the first electric push rod. Both ends of the bending plate are fixedly connected to a crossbar, and both ends of the crossbar are slidably connected to a cleaning plate. One side of the cleaning plate is connected to a side plate via a spring clip. The middle part of one side of the cleaning plate is connected to the side plate via a movable hinge. Both ends of the cleaning plate are provided with grooves. A connecting mechanism is fixedly connected inside the groove. A pressure roller is rotatably connected to one side of the groove, and a ratchet ring is fixedly connected to one side of the pressure roller.
[0006] As a further description of the embossing device of the cold foil stamping machine mentioned above: the connecting mechanism includes a spring connected to the groove, and a ratchet plate is fixedly connected to the other end of the spring, the tooth surface of the ratchet plate being adapted to the ratchet ring.
[0007] As a further description of the embossing device of the above-mentioned cold foil stamping machine: the embossing mechanism includes an unwinding roller and a rewinding roller disposed inside the housing, and two first drive motors fixedly installed on the outer wall of the housing. Both ends of the unwinding roller and the rewinding roller are bolted to mounting shells, which are rotatably connected to the housing through bearings. The output ends of the two first drive motors are connected to one side of each of the two mounting shells. A cold foil stamping film is disposed between the unwinding roller and the rewinding roller, and two pressing rollers are disposed above the cold foil stamping film. Both ends of the two pressing rollers are rotatably connected to the inside of the housing.
[0008] As a further description of the embossing device of the above-mentioned cold foil stamping machine: a UV lamp plate is provided between the unwinding roller and the rewinding roller, a UV curing lamp is provided at the bottom of the UV lamp plate, and the top of the UV lamp plate is fixedly connected to the inner top wall of the housing through a connecting plate.
[0009] As a further description of the embossing device of the cold foil stamping machine mentioned above: the glue dispensing mechanism includes a glue storage box fixedly installed on the front end of the housing. The bottom of the glue storage box has a glue outlet. The top of the glue storage box is fixedly connected to a second electric push rod. The output end of the second electric push rod is fixedly connected to a slanted cutting rod. The other end of the slanted cutting rod is fixedly connected to a sealing plate. The upper surface of the sealing plate is tightly fitted to the bottom of the glue storage box.
[0010] As a further description of the embossing device of the cold foil stamping machine mentioned above: the translation mechanism includes triangular plates installed on both sides of the conveying platform, and a bidirectional lead screw is arranged between the triangular plates. A second drive motor is fixedly connected to one side of one of the triangular plates, wherein the output end of the second drive motor is connected to one end of the bidirectional lead screw. Short plates are threaded to both sides of the bidirectional lead screw, and vertical rods penetrate both sides of the two short plates. The two sets of vertical rods are respectively connected to two impurity removal plates.
[0011] As a further description of the embossing device of the cold foil stamping machine mentioned above: the two side plates are symmetrically arranged, and the two side plates are V-shaped.
[0012] As a further description of the embossing device of the cold foil stamping machine mentioned above: there are two first support rollers and two second support rollers rotatably connected inside the conveyor platform. The two first support rollers are located directly below the two heat pressing rollers, and the two second support rollers are located directly below the two sets of pressure rollers.
[0013] In summary, due to the adoption of the above-mentioned technology in the cold foil stamping device, the beneficial effects of this invention are: With the arrangement of the translation mechanism, the first electric push rod, and the cleaning mechanism, when the conveyor belt delivers the cardboard box directly below the first electric push rod, the first electric push rod drives the cleaning plate, side plate, and pressure roller to descend, pressing the cardboard box to be hot stamped. Then, the second drive motor starts, driving the bidirectional lead screw to rotate. The bidirectional lead screw drives the two short plates to move in opposite directions. When the two short plates move, they drive the two sets of vertical rods to move. The movement of the two sets of vertical rods drives the cleaning plates, side plates, and pressure rollers on both sides to move in opposite directions. The two parallel cleaning plates move towards the two edges of the cardboard box. When the two cleaning plates move towards the two edges of the cardboard box, they can clean the surface of the cardboard box. If there are impurities on the surface of the cardboard box, they can be scraped off to prevent the cardboard box from affecting the hot stamping effect due to impurities.
[0014] Through the design of the cleaning and connecting mechanisms, the ratchet plate, ratchet ring, and spring work together to ensure that when the pressure roller rotates clockwise, it drives the ratchet ring to rotate clockwise. After the paper box is cleaned, the two sets of pressure rollers press down on both sides of the paper box. When the conveyor belt rotates, it carries the paper box. Because the two sets of pressure rollers press down on both sides of the paper box, the pressure rollers increase the friction between the lower surface of the paper box and the conveyor belt. When the paper box moves forward, it drives the rollers to rotate clockwise, allowing the paper box to move forward continuously. Due to the combined action of the ratchet plate, ratchet ring, and spring, the pressure rollers cannot rotate counterclockwise, thus limiting the backward movement of the paper box. This prevents slippage and slight backward movement of the paper box when it comes into contact with the cold foil at the front end of the paper box, ensuring that the paper box accurately enters the area under the cold foil for stamping. Attached Figure Description
[0015] Figure 1 An overall perspective view provided according to an embodiment of the present invention is shown; Figure 2 A schematic diagram of the pressure roller merging state provided according to an embodiment of the present invention is shown; Figure 3 A structural diagram of a cleaning mechanism provided according to an embodiment of the present invention is shown; Figure 4 A top view schematic diagram of a cleaning mechanism provided according to an embodiment of the present invention is shown; Figure 5 A diagram of a pressure roller structure according to an embodiment of the present invention is shown; Figure 6A structural diagram of an embossing mechanism according to an embodiment of the present invention is shown; Figure 7 A structural diagram of the glue dispensing mechanism provided according to an embodiment of the present invention is shown; Figure 8 The present invention provides an embodiment of the invention. Figure 5 Enlarged view of point A in the middle.
[0016] Legend: 1. Conveying platform; 2. Housing; 3. Imprinting mechanism; 301. Unwinding roller; 302. Rewinding roller; 303. First drive motor; 304. Mounting housing; 305. Pressing roller; 4. Glue dispensing mechanism; 401. Glue storage box; 402. Second electric push rod; 403. Angled cutting rod; 404. Sealing plate; 405. Spreading plate; 5. Frame; 6. Translation mechanism; 601. Triangular plate; 602. Bidirectional lead screw; 603. 604. Second drive motor; 605. Short plate; 606. Vertical rod; 7. First electric push rod; 8. Cleaning mechanism; 807. Bending plate; 808. Crossbar; 809. Cleaning plate; 8000. Spring clamp; 8001. Side plate; 8002. Connecting mechanism; 8061. Spring; 8062. Ratchet plate; 807. Pressure roller; 808. Ratchet ring; 9. UV lamp plate; 10. First support roller; 11. Second support roller. Detailed Implementation
[0017] The following will describe in detail, with reference to the accompanying drawings of the embodiments of the present invention, a cold foil stamping device of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0018] Reference Figures 1-8 The cold foil stamping device provided in this embodiment includes a conveying platform 1, a housing 2 fixedly connected to the conveying platform 1, an stamping mechanism 3 fixedly connected inside the housing 2, a glue dispensing mechanism 4 fixedly connected to the side wall of the housing 2, a work frame 5 and a translation mechanism 6 fixedly connected to the top of the conveying platform 1, a first electric push rod 7 fixedly connected to the top of the work frame 5, and a cleaning mechanism 8 fixedly connected to the bottom of the first electric push rod 7.
[0019] Specifically, such as Figure 3 , Figure 4 and Figure 5As shown, the cleaning mechanism 8 includes a bent plate 801 connected to the output end of the first electric push rod 7. Both ends of the bent plate 801 are fixedly connected to a crossbar 802. Both ends of the crossbar 802 are slidably connected to a cleaning plate 803. One side of the cleaning plate 803 is connected to a side plate 805 via a spring clip 804. The middle part of one side of the cleaning plate 803 is connected to the side plate 805 via a hinge. Both ends of the cleaning plate 803 have grooves, and a connecting mechanism 806 is fixedly connected inside the grooves. A pressure roller 807 is rotatably connected to one side of the pressure roller 807, and a ratchet ring 808 is fixedly connected to one side of the pressure roller 807. When the conveying platform 1 sends the cardboard box directly below the first electric push rod 7, the first electric push rod 7 is activated. The first electric push rod 7 pushes the bending plate 801 down, and then the bending plate 801 descends, driving the two crossbars 802 down. Then, the two crossbars 802 descend, driving the impurity removal plate 803 and the pressure roller 807, which are placed side by side, to descend, pressing the cardboard box to be cold-stamped and flattening it.
[0020] Specifically, such as Figure 1 and Figure 2 As shown, the translation mechanism 6 includes triangular plates 601 installed on both sides of the conveying platform 1. A bidirectional lead screw 602 is arranged between the triangular plates 601. A second drive motor 603 is fixedly connected to one side of one of the triangular plates 601. The output end of the second drive motor 603 is connected to one end of the bidirectional lead screw 602. Short plates 604 are threaded to both sides of the bidirectional lead screw 602. Vertical rods 605 pass through both sides of the two short plates 604. The two sets of vertical rods 605 are respectively connected to two impurity removal plates 803.
[0021] The second drive motor 603 starts and drives the bidirectional lead screw 602 to rotate. When the bidirectional lead screw 602 rotates, it drives the two short plates 604 to move in opposite directions. When the bidirectional lead screw 602 drives the two short plates 604 to move in opposite directions, the two short plates 604 move, which in turn drives the two sets of vertical rods 605 to move. The movement of the two sets of vertical rods 605 drives the impurity removal plates 803, side plates 805 and pressure rollers 807 on both sides to move relative to each other, so that the two sets of pressure rollers 807 on both sides merge together. After the two sets of pressure rollers 807 are combined, the two side plates 805 compress the spring clips 804 outwards, so that the side plates 805 and the impurity removal plates 803 are parallel. After the impurity removal plates 803 and the pressure rollers 807 are lowered and pressed to complete the pressing of the middle paper box to be cold stamped, the two impurity removal plates 803 are moved to the two side edges of the paper box. When the two impurity removal plates 803 move to the two side edges of the paper box, the surface of the paper box can be cleaned once. If there are impurities on the surface of the paper box, the impurities can be scraped off to prevent the paper box from affecting the hot stamping effect due to impurities.
[0022] Specifically, such as Figure 3 , Figure 4 and Figure 8 As shown, the two side plates 805 are symmetrically arranged, forming a V-shape between them. When the two combined impurity removal plates 803 move to the edges of the paper box and separate, the spring clip 804 rebounds. The rebounding spring clip 804 causes the side plates 805 and pressure rollers 807 on both sides to tilt, forming a V-shape. When the conveyor platform 1 conveys the paper box through the two sets of side plates 805 and pressure rollers 807 arranged in the V-shape, the V-shaped pressure rollers 807 in the entire contact area of the paper box allow the paper box to be subjected to a continuous and stable centering force, enabling the paper box to move forward in the center on the conveyor belt, avoiding deviation during conveying, which would affect the effect of subsequent hot stamping and gluing. The connecting mechanism 806 includes a spring 8061 connected to the groove, and a ratchet plate 8062 fixedly connected to the other end of the spring 8061. The tooth surface of the ratchet plate 8062 is adapted to the ratchet ring 808.
[0023] Due to the combined action of the ratchet plate 8062, ratchet ring 808, and spring 8061, when the pressure roller 807 rotates clockwise, it drives the ratchet ring 808 to rotate clockwise. Conversely, the ratchet plate 8062, ratchet ring 808, and spring 8061 cannot rotate counterclockwise. If the cardboard box is simply placed directly on the conveyor belt for transport, and both the top and bottom surfaces of the cardboard box are smooth, the friction between the cardboard box and the conveyor belt will be greatly reduced. Therefore, when the front end and surface of the cardboard box are smooth, and the surface of the cold foil is also smooth, the friction between the bottom surface of the cardboard box and the conveyor belt is insufficient. When the cardboard box needs to enter under the cold foil, the front end of the cardboard box will continuously slip against the surface of the cold foil, causing the cardboard box to shift slightly backward, making it impossible for the cardboard box to enter accurately. The box is inserted under the cold foil for hot stamping. After the box is cleaned of impurities, two sets of pressure rollers 807 press down on both sides of the box. When the conveyor belt rotates, it drives the box to move forward. As the two sets of pressure rollers 807 press down on both sides of the box, the pressure rollers 807 can increase the friction between the lower surface of the box and the conveyor belt. When the box moves forward, it drives the pressure rollers 807 to rotate clockwise, which allows the box to move forward continuously. Due to the cooperation of the ratchet plate 8062, ratchet ring 808 and spring 8061, the pressure rollers 807 cannot rotate counterclockwise, which restricts the box from moving backward. This prevents the box from slipping when it comes into contact with the cold foil at the front end and causing the box to move backward slightly, so that the box can accurately enter under the cold foil for hot stamping.
[0024] Specifically, such as Figure 6 and Figure 7As shown, the glue dispensing mechanism 4 includes a glue storage box 401 fixedly installed on the front end of the housing 2. The bottom of the glue storage box 401 has a glue outlet. A spreading plate 405 is fixedly connected to one side of the bottom of the glue storage box 401. A second electric push rod 402 is fixedly connected to the top of the glue storage box 401. A bevel cutting rod 403 is fixedly connected to the output end of the second electric push rod 402. A sealing plate 404 is fixedly connected to the other end of the bevel cutting rod 403. The upper surface of the sealing plate 404 is tightly fitted to the bottom of the glue storage box 401.
[0025] When the cardboard box enters below the cold foil, it first passes through the glue outlet. When it passes through the glue outlet, the second electric push rod 402 extends and drives the sealing plate 404 to open the glue outlet. Then, the glue inside the glue storage box 401 falls from the glue outlet onto the cardboard box. The advancing cardboard box then passes through the spreading plate 405 to evenly spread the fallen glue onto the upper surface of the cardboard box. When a cardboard box is glued, the second electric push rod 402 retracts and drives the sealing plate 404 to close the glue outlet.
[0026] Specifically, such as Figure 6 and Figure 7 As shown, the embossing mechanism 3 includes an unwinding roller 301 and a rewinding roller 302 disposed inside the housing 2, and two first drive motors 303 fixedly mounted on the outer wall of the housing 2. Both ends of the unwinding roller 301 and the rewinding roller 302 are bolted to mounting shells 304, which are rotatably connected to the housing 2 via bearings. The output ends of the two first drive motors 303 are connected to one side of each mounting shell 304. A cold foil is disposed between the unwinding roller 301 and the rewinding roller 302, and two pressing rollers 305 are disposed above the cold foil. Both ends of the two pressing rollers 305 are rotatably connected inside the housing 2. When the glued paper box continues to advance and enters under the cold foil, the unwinding roller 301 and the rewinding roller 302 unwind and rewind the cold foil. Then, when the paper box passes the pressing rollers 305, the pressing rollers 305 emboss the paper box. A UV lamp plate 9 is provided between the unwinding roller 301 and the winding roller 302. A UV curing lamp is provided at the bottom of the UV lamp plate 9, and the top of the UV lamp plate 9 is fixedly connected to the inner top wall of the housing 2 through a connecting plate.
[0027] In this process, after the cardboard box is stamped, the adhesive between the cold foil and the cardboard box is cured by irradiation with a UV lamp plate 9.
[0028] Specifically, such as Figure 2 As shown, the conveyor platform 1 is rotatably connected to two first support rollers 10 and two second support rollers 11. The two first support rollers 10 are located directly below the two pressing rollers 305, and the two second support rollers 11 are located directly below the two sets of pressure rollers 807.
[0029] When the cardboard box passes under two heat pressing rollers 305 and two sets of pressure rollers 807, the support force of the conveyor belt can be strengthened by two first support rollers 10 and two second support rollers 11.
[0030] Working principle: The cardboard box to be cold-stamped is placed on the conveyor platform 1. When the cardboard box is delivered directly below the first electric push rod 7, the conveyor stops first. Then the first electric push rod 7 starts and pushes the bending plate 801 down. When the bending plate 801 descends, it drives the two crossbars 802 down. Then the two crossbars 802 descend and drive the impurity removal plate 803 and pressure roller 807, which are placed side by side, down to press the middle part of the cardboard box to be cold-stamped and flatten the cardboard box. Then, the second drive motor 603 starts, driving the bidirectional lead screw 602 to rotate. When the bidirectional lead screw 602 rotates, it drives the two short plates 604 to move in opposite directions. When the bidirectional lead screw 602 drives the two short plates 604 to move in opposite directions, the two short plates 604 move, driving the two sets of vertical rods 605 to move. The movement of the two sets of vertical rods 605 drives the impurity removal plates 803, side plates 805 and pressure rollers 807 on both sides to move relative to each other, so that the two sets of pressure rollers 807 on both sides merge together. After the two sets of pressure rollers 807 are combined, the two side plates 805 compress the spring clips 804 outwards, so that the side plates 805 and the impurity removal plate 803 are parallel. After the impurity removal plate 803 and the pressure rollers 807 are lowered to press the middle paper box to be cold stamped, the two impurity removal plates 803 are moved to the two side edges of the paper box. When the two impurity removal plates 803 move to the two side edges of the paper box, the surface of the paper box can be cleaned once. If there are impurities on the surface of the paper box, the impurities can be scraped off to prevent the paper box from affecting the hot stamping effect due to impurities. When the two combined impurity removal plates 803 move and separate towards the two sides of the carton, the spring clip 804 rebounds. The rebounding spring clip 804 causes the side plates 805 and pressure rollers 807 on both sides to tilt, forming a V-shape. When the conveyor platform 1 conveys the carton through the two sets of side plates 805 and pressure rollers 807 arranged in the V-shape, the carton is subjected to a continuous and stable centering force by the V-shaped pressure rollers 807 in the entire contact area of the pressure rollers 807, so that the carton can move forward in the center on the conveyor belt and avoid deviation during conveying. With the combined action of the ratchet plate 8062, ratchet ring 808, and spring 8061, when the pressure roller 807 rotates clockwise, it drives the ratchet ring 808 to rotate clockwise; conversely, the ratchet plate 8062, ratchet ring 808, and spring 8061 cannot rotate counterclockwise. After the paper box is cleaned, the two sets of pressure rollers 807 press down on both sides of the paper box. When the conveyor belt rotates, it drives the paper box to move. Because the two sets of pressure rollers 807 are pressing down on both sides of the paper box, the pressure rollers 807 press down on the paper box. During pressing, the friction between the lower surface of the cardboard box and the conveyor belt can be increased. When the cardboard box moves forward, it drives the pressure roller 807 to rotate clockwise, which allows the cardboard box to move forward continuously. Due to the cooperation of the ratchet plate 8062, ratchet ring 808 and spring 8061, the pressure roller 807 cannot rotate counterclockwise, which restricts the backward movement of the cardboard box. This avoids slippage and slight backward movement of the cardboard box when it comes into contact with the cold foil at the front end of the cardboard box, allowing the cardboard box to accurately enter under the cold foil for pressing. Then, as the cardboard box continues to advance past the glue outlet, the second electric push rod 402 extends and drives the sealing plate 404 to open the glue outlet. Then, the glue inside the glue storage box 401 falls from the glue outlet onto the cardboard box. The advancing cardboard box then passes through the spreading plate 405 to evenly spread the fallen glue onto the upper surface of the cardboard box. After one cardboard box is glued, the second electric push rod 402 retracts and drives the sealing plate 404 to close the glue outlet. When the glued cardboard box continues to advance and enters under the cold foil, the unwinding roller 301 and the rewinding roller 302 unwind and rewind the cold foil. Then, when the cardboard box passes through the pressing roller 305, the pressing roller 305 presses the cardboard box. After the cardboard box is pressed, it is then irradiated by the UV lamp plate 9 to cure the adhesive between the cold foil and the cardboard box, completing the pressing process.
[0031] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the present invention's technology and inventive concept, should be covered within the scope of protection of the present invention.
Claims
1. A cold pad-batch integrated machine stamping device comprising a conveying platform (1), characterized in that, The conveying platform (1) is fixedly connected with a shell (2), the inside of the shell (2) is fixedly connected with a stamping mechanism (3), the side wall of the shell (2) is fixedly connected with a glue placing mechanism (4), the top of the conveying platform (1) is fixedly connected with a frame (5) and a translation mechanism (6), the top of the frame (5) is fixedly connected with a first electric push rod (7), the bottom of the first electric push rod (7) is fixedly connected with a impurity removing mechanism (8); The impurity removing mechanism (8) comprises a bent plate (801) connected with the output end of the first electric push rod (7), both ends of the bent plate (801) are fixedly connected with cross bars (802), both ends of the cross bars (802) are slidably connected with impurity removing plates (803), one side of the impurity removing plate (803) is connected with a side plate (805) through a spring clamp (804), wherein the middle part of one side of the impurity removing plate (803) is connected with the side plate (805) through a movable hinge, both ends of the impurity removing plate (803) are provided with recesses, the recesses are fixedly connected with connecting mechanisms (806), one side of the recess is rotatably connected with a press wheel (807), one side of the press wheel (807) is fixedly connected with a ratchet ring (808).
2. The cold pad-batch integrated machine according to claim 1, wherein The connecting mechanism (806) comprises a spring (8061) connected with the recess, the other end of the spring (8061) is fixedly connected with a ratchet plate (8062), the tooth surface of the ratchet plate (8062) is matched with the ratchet ring (808).
3. The cold pad-batch integrated machine according to claim 1, wherein The stamping mechanism (3) comprises unwinding rollers (301) and winding rollers (302) arranged in the shell (2) and two first driving motors (303) fixedly installed on the outer side wall of the shell (2), both ends of the unwinding rollers (301) and the winding rollers (302) are connected with mounting shells (304) through bolts, the mounting shells (304) are rotatably connected to the shell (2) through bearings, one side of each of the two mounting shells (304) is connected with the output end of a first driving motor (303), a cold stamping film is arranged between the unwinding rollers (301) and the winding rollers (302), two pressing rollers (305) are arranged above the cold stamping film, both ends of the two pressing rollers (305) are rotatably connected inside the shell (2).
4. The cold pad-batch integrated machine according to claim 3, wherein UV lamp plates (9) are arranged between the unwinding rollers (301) and the winding rollers (302), the bottom of the UV lamp plate (9) is provided with a UV curing lamp, the top of the UV lamp plate (9) is fixedly connected with the inner top wall of the shell (2) through a connecting plate.
5. The cold pad-batch integrated machine according to claim 1, wherein The glue placing mechanism (4) comprises a glue storage box (401) fixedly installed on the front end of the shell (2), a glue outlet is formed in the bottom of the glue storage box (401), a second electric push rod (402) is fixedly connected to the top of the glue storage box (401), the output end of the second electric push rod (402) is fixedly connected with an inclined cutting rod (403), the other end of the inclined cutting rod (403) is fixedly connected with a blocking plate (404), the upper surface of the blocking plate (404) is tightly attached to the bottom of the glue storage box (401).
6. The cold pad-batch integrated machine according to claim 1, wherein The translation mechanism (6) comprises triangular plates (601) mounted on both sides of the conveying platform (1), bidirectional screws (602) are arranged between the triangular plates (601), one side of one of the triangular plates (601) is fixedly connected with a second driving motor (603), one end of the second driving motor (603) is connected with the bidirectional screw (602), and the two sides of the bidirectional screw (602) are threadedly connected with short plates (604); the two sides of the two short plates (604) penetrate through vertical rods (605), and the two groups of vertical rods (605) are connected with two impurity removal plates (803) respectively.
7. The cold pad-batch integrated machine according to claim 1, wherein The two edge plates (805) are symmetrically arranged, and the two edge plates (805) form a V-shaped structure.
8. The cold pad-batch integrated machine according to claim 1, wherein The conveying platform (1) is rotationally connected with two first supporting roller rods (10) and two second supporting roller rods (11) inside, the two first supporting roller rods (10) are located immediately below the two pressing and ironing rollers (305) respectively, and the two second supporting roller rods (11) are located immediately below the two groups of pressing wheels (807).