Printing and stripping equipment for glue surface of printed matter

By heating and humidifying components to reduce the adhesion of the rubber surface and cooling components to reduce static electricity, the problem of incomplete peeling of the printed rubber surface is solved, and efficient peeling and winding of the printed rubber surface is achieved.

CN223131622UActive Publication Date: 2025-07-22广州市世赞防伪技术开发有限公司
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Patent Information

Application Number
CN202422558596.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-23
Publication Date
2025-07-22
Estimated Expiration
2034-10-23

AI Technical Summary

Technical Problem

The existing rubber-side peeling equipment for printed products has a simple structure, which leads to incomplete peeling of the rubber-side peeling of the printed products, which is time-consuming and labor-intensive, and it is difficult to effectively peel off the rubber-side of the printed products, affecting production efficiency.

Method used

The heating and humidification component is used to reduce the adhesion between the rubber surface and the printing surface, separate the rubber surface and the printing surface by peeling the knife block, and reduce the temperature and static electricity of the printing surface by using the cooling component to ensure the smooth peeling and winding of the printed materials.

Benefits of technology

The efficiency of peeling off the rubber surface of the printed product is improved, the residual adhesive surface is reduced, the secondary cleaning of the printed product is avoided, the impact of static electricity on winding is reduced, and the production efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN223131622U_ABST
    Figure CN223131622U_ABST
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Abstract

The utility model aims to provide the printed matter rubber surface printing stripping equipment which is compact in structure and high in rubber surface stripping efficiency. The device comprises a base, a discharging assembly which is arranged on the base and is used for placing a printed matter to be stripped, a temperature rising assembly which is arranged on one side of the discharging assembly and is used for heating and humidifying the printed matter, and a stripping assembly which is arranged at the outlet end of the temperature rising assembly and is used for separating the glue surface of the printed matter, the first material collecting assembly is arranged on the upper side of the stripping assembly and used for recycling a rubber surface, the second material collecting assembly is arranged on the lower side of the stripping assembly and used for recycling a printing surface, and a plurality of tensioning rollers used for keeping the printed matter tensioned are formed on the base. The utility model is applied to the technical field of printing rubber surface stripping equipment.
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Description

Technical Field

[0001] The utility model relates to the technical field of printing glue surface peeling equipment, in particular to a printing product glue surface printing and peeling equipment. Background Art

[0002] Printing is a technology that transfers the original manuscripts such as characters, pictures, photos, anti-counterfeiting, etc. to the surfaces of materials such as paper, textiles, plastics, leather, PVC, PC, etc. through processes such as plate making, ink application, and pressurization, and batch-replicates the content of the original manuscripts. Printing is a process of transferring the approved printing plate to the printing substrate through a printing machine and special ink. In the printing production process, peeling equipment is required to peel the glue surface of the printed matter. However, the peeling equipment in the prior art has a simple structure. When peeling the glue surface of the printed matter, during the printing process of the printed matter, generally only the front side of the printed matter is printed, and the glue surface of the self-adhesive, that is, the reverse side, is not printed and is left blank and directly covered by the covering layer, so that it is very difficult to tear off the printed matter attached to products such as cosmetics and washing bottles, and it is easy to be torn. At the same time, incomplete peeling leads to the need for secondary cleaning and peeling of the printed matter, which is time-consuming and laborious. Summary of the Utility Model

[0003] The technical problem to be solved by the utility model is to overcome the deficiencies of the prior art and provide a printing product glue surface printing and peeling equipment with a compact structure and high glue surface peeling efficiency.

[0004] The technical solution adopted by the utility model is as follows: The utility model includes a base, a feeding component arranged on the base for placing the printed matter to be peeled, a temperature rise component arranged on one side of the feeding component for heating and humidifying the printed matter, a peeling component arranged at the outlet end of the temperature rise component for separating the glue surface of the printed matter, a first material collecting component arranged above the peeling component for recovering the glue surface, and a second material collecting component arranged below the peeling component for recovering the printed surface. The base is formed with a plurality of tension rollers for keeping the printed matter taut.

[0005] Further, the feeding component includes a fixed frame, a feeding driving device, a feeding wheel, and a limiting wheel. The fixed frame is fixedly connected to the base. The feeding driving device is fixedly connected to one end of the fixed frame. The feeding wheel is connected to the movable end of the feeding driving device. The limiting wheel is in guiding cooperation with the feeding wheel. The feeding wheel is formed with a feeding member for fixing the printed matter to be peeled, and the limiting wheel is provided with a top block for limiting cooperation with the feeding member.

[0006] Furthermore, the temperature rise component includes a temperature rise box, a heating fan, a water storage spraying member, and a water collection tank disposed inside the temperature rise box. The temperature rise box is fixedly connected to the base. The temperature rise box is provided with a fan installation cavity, a hot air duct, a flow equalizing plate, and a humidifying cavity from top to bottom. The heating fan is fixedly connected to the fan installation cavity. The water storage spraying member is disposed in the middle of the humidifying cavity. The water collection tank is disposed below the humidifying cavity. A plurality of clamping blocks are formed at the lower part of the hot air duct, and all the clamping blocks are in supporting cooperation with the flow equalizing plate. Slots for the printed matter to be peeled to enter and exit are provided on both sides of the humidifying cavity, and the two groups of slots are located below the water storage spraying member.

[0007] Furthermore, a plurality of reserved holes are formed in the humidifying cavity. The water storage spraying member includes a water storage tank, a plurality of connecting pipes, and a plurality of spray heads. The water storage tank is fixedly connected to the upper part of the temperature rise box. All the connecting pipes are fixedly connected to the bottom of the water storage tank. Each spray head is correspondingly communicated with a corresponding connecting pipe, and each spray head is correspondingly in guiding cooperation with a corresponding reserved hole. The water storage tank is provided with a first water inlet pipe connected to an external water source and a circulation pipe communicated with the bottom of the water collection tank.

[0008] Furthermore, the hot air duct includes a direct current duct connected to the fan installation cavity and a diffusion duct connected to the direct current duct. The width of the diffusion duct gradually increases from top to bottom, and all the clamping blocks are fixedly connected to the lower part of the diffusion duct.

[0009] Furthermore, the peeling component includes a peeling knife block fixedly connected to the base, two limiting blocks disposed on the upper surface of the peeling knife block, and two guiding blocks slidably connected to the middle of the peeling knife block. The two guiding blocks are disposed between the two limiting blocks. A sliding groove for sliding cooperation with the two guiding blocks is formed in the middle of the peeling knife block. A limiting groove is formed below each limiting block, and a limiting space for the printed surface to pass through is formed between the limiting groove and the peeling knife block.

[0010] Furthermore, a separating head for separating the adhesive surface of the printed matter is formed at one end of the peeling knife block, and an inclined surface for guiding cooperation with the adhesive surface of the printed matter is formed on the separating head.

[0011] Further, the first material receiving assembly includes a first material receiving driving device, a glue surface pressing seat, a glue surface pushing wheel, and a glue surface material receiving seat. The first material receiving driving device and the glue surface pressing seat are both fixedly connected to the base. The glue surface pressing seat is disposed on one side of the first material receiving driving device. The glue surface pushing wheel is rotatably connected to the glue surface pressing seat and is connected to the movable end of the first material receiving driving device through a first transmission member. The glue surface material receiving seat is disposed on one side of the glue surface pushing wheel. The glue surface material receiving seat is provided with a clamping strip for clamping and limiting the glue surface of the printed matter. The glue surface material receiving seat is in transmission cooperation with the glue surface pushing wheel through a second transmission member.

[0012] Further, the glue surface pressing seat includes a connecting frame, a first steering rod, a pressing plate, and a second steering rod. The connecting frame is fixedly connected to the base. The first steering rod is rotatably connected to the first side of the connecting frame. The second steering rod is rotatably connected to the second side of the connecting frame. The pressing plate is disposed between the first steering rod and the second steering rod and is fixedly connected to the connecting frame. A pressing plate is provided on the upper part of the connecting frame. A sliding channel for the glue surface of the printed matter to pass through is formed between the pressing plate and the pressing plate. The pressing plate is threadedly connected with an adjusting rod for adjusting the height of the sliding channel. The glue surface pushing wheel is rotatably connected to the connecting frame and is located below the second steering rod.

[0013] Further, the second material receiving assembly includes a cooling and fixing box, a plurality of guide rollers, an ion cooling blower, and a material receiving driving wheel. The cooling and fixing box is fixedly connected to the base. A plurality of the guide rollers are all disposed in the cooling and fixing box and are rotatably connected to the base. The ion cooling blower is disposed at the bottom of the cooling and fixing box. Openings for the printed surface to enter and exit are provided at both the upper and lower ends of the cooling and fixing box. The material receiving driving wheel is disposed on one side of the upper opening of the cooling and fixing box and is fixedly connected to the base.

[0014] The beneficial effects of the present utility model are as follows: Since the temperature rise assembly of the present utility model uses a heating element in cooperation with a cross-flow blower to provide heat to the printed matter, the glue surface of the printed matter is heated and softened, reducing the adhesion between the glue surface and the printed surface, facilitating the reduction of the residual adhesive glue surface when passing through the peeling knife block. The flow equalizing plate provided at the lower part of the air outlet duct can evenly distribute the air flow blown by the cross-flow blower in the area, ensuring uniform heating of the printed matter. The water storage and spraying member located in the humidifying chamber sprays water mist in the humidifying chamber, and the water droplets cover the surface of the printed matter under the push of the hot air, moistening the glue surface to further reduce the adhesion and improve the peeling efficiency of the printed matter; after the printed matter is peeled off, the printed surface enters the second material receiving assembly. The ion cooling blower provided in the cooling and fixing box in the second material receiving assembly blows a circulating wind for removing static electricity and cooling inside, reducing the temperature of the printed surface and the static electricity attached thereto, and reducing the deviation caused by static electricity during winding. Description of the Drawings

[0015] Figure 1 is a structural schematic diagram of the present utility model;

[0016] Figure 2 is a structural schematic diagram of the printed matter peeling of the present utility model;

[0017] Figure 3 is an exploded view of the feeding component of the present utility model;

[0018] Figure 4 is a structural schematic diagram of the temperature rise component of the present utility model;

[0019] Figure 5 is another perspective of the structural schematic diagram of the temperature rise component of the present utility model;

[0020] Figure 6 is a cross-sectional view of the temperature rise component of the present utility model;

[0021] Figure 7 is Figure 6 a partial enlarged view of part A in;

[0022] Figure 8 is a structural schematic diagram of the peeling component of the present utility model;

[0023] Figure 9 is a cross-sectional view of the peeling component of the present utility model;

[0024] Figure 10 is an exploded view of the first material receiving component of the present utility model;

[0025] Figure 11 is an exploded view of the rubber surface pressing seat of the present utility model;

[0026] Figure 12 is an exploded view of the second material receiving component of the present utility model.

[0027] In the figure: 1. Base; 2. Feeding component; 21. Fixed frame; 22. Feeding driving device; 23. Feeding wheel; 24. Limiting wheel; 25. Feeding piece; 26. Top block; 3. Temperature rise component; 31. Temperature rise box; 311. Fan installation cavity; 312. Hot air duct; 313. Flow equalizing plate; 314. Humidifying cavity; 315. Clamping block; 316. Groove; 32. Heating fan; 33. Water storage spraying piece; 331. Water storage tank; 332. Connecting pipe; 333. Spray head; 34. Water collecting tank; 35. First water inlet pipe; 36. Circulation pipe; 4. Stripping component; 41. Stripping knife block; 42. Limiting block; 43. Guide block; 44. Chute; 45. Limiting groove; 46. Separation head; 5. First material collecting component; 51. First material collecting driving device; 52. Glue surface pressing seat; 521. Connecting frame; 522. First steering rod; 523. Pressing plate; 524. Second steering rod; 525. Pressing plate; 526. Adjusting rod; 53. Glue surface pushing wheel; 54. Glue surface material collecting seat; 55. First transmission part; 56. Clamping strip; 57. Second transmission part; 6. Second material collecting component; 61. Cooling fixed box; 62. Guide roller; 63. Ion cooling fan; 64. Material collecting driving wheel; 7. Tensioning roller. Detailed implementation manners

[0028] As Figures 1 to 12As shown, in this embodiment, the utility model includes a base 1, a feeding component 2 arranged on the base 1 for placing the printed matter to be peeled, a temperature-raising component 3 arranged on one side of the feeding component 2 for heating and humidifying the printed matter, a peeling component 4 arranged at the outlet end of the temperature-raising component 3 for separating the glue surface of the printed matter, a first material collecting component 5 arranged above the peeling component 4 for recovering the glue surface, and a second material collecting component 6 arranged below the peeling component 4 for recovering the printed surface. The base 1 is formed with a plurality of tension rollers 7 for keeping the printed matter taut. The tension rollers 7 can rotate freely. Multiple groups of tension rollers 7 are respectively arranged between the feeding component 2 and the temperature-raising component 3, between the temperature-raising component 3 and the first material collecting component and the second material collecting component, for guiding and tensioning the printed matter to ensure that the glue surface and the printed surface do not shift during peeling and winding. Before peeling, the printed matter enters the temperature-raising component 3. The temperature-raising component 3 uses a heating element and a cross-flow fan to provide heat to the printed matter, making the glue surface of the printed matter heated and sticky, reducing the adhesion between the glue surface and the printed surface, and facilitating the reduction of the residual sticky glue surface when passing through the peeling blade block 41. A flow equalizing plate 313 arranged at the lower part of the air outlet duct can evenly distribute the air flow blown out by the cross-flow fan in the area, ensuring that the printed matter is heated evenly. The water storage and spraying part 33 located in the humidifying cavity 314 sprays water mist in the humidifying cavity 314. The water droplets cover the surface of the printed matter under the push of the hot air, moistening the glue surface and further reducing the adhesion, improving the peeling efficiency of the printed matter. After the printed matter is peeled, the printed surface enters the second material collecting component 6. An ion cooling fan 63 arranged in the cooling and fixing box 61 in the second material collecting component 6 blows circulating air for removing static electricity and cooling inside, reducing the temperature of the printed surface and the static electricity attached to it, and reducing the offset caused by static electricity during winding.

[0029] In this embodiment, the feeding component 2 includes a fixing frame 21, a feeding driving device 22, a feeding wheel 23 and a limiting wheel 24. The fixing frame 21 is fixedly connected to the base 1. The feeding driving device 22 is fixedly connected to one end of the fixing frame 21. The feeding wheel 23 is connected to the movable end of the feeding driving device 22. The limiting wheel 24 is in guiding cooperation with the feeding wheel 23. The feeding wheel 23 is formed with a feeding part 25 for fixing the printed matter to be peeled. The limiting wheel 24 is provided with a top block 26 that is in limiting cooperation with the feeding part 25. The feeding driving device 22 is a reducer, which can be used to adjust the feeding speed of the printed matter, effectively avoiding the situation that the printed matter folds and loosens due to too fast feeding speed. The feeding driving device 22 is provided with a rotating rod. The rotating part is locked with the rotating rod and rotates synchronously. The feeding part 25 is used to place the printed matter. The limiting wheel 24 and the feeding wheel 23 are formed with two groups of limiting plates.

[0030] In this embodiment, the temperature rise component 3 includes a temperature rise box 31, a heating blower 32, a water storage spraying member 33, and a water collecting tank 34 arranged in the temperature rise box 31. The temperature rise box 31 is fixedly connected to the base 1. The temperature rise box 31 is provided with a blower installation cavity 311, a hot air duct 312, a flow equalizing plate 313, and a humidifying cavity 314 from top to bottom. The heating blower 32 is fixedly connected to the blower installation cavity 311. The water storage spraying member 33 is arranged in the middle of the humidifying cavity 314. The water collecting tank 34 is arranged below the humidifying cavity 314. A plurality of clamping blocks 315 are formed at the lower part of the hot air duct 312. All the plurality of clamping blocks 315 are in supporting cooperation with the flow equalizing plate 313. Open slots 316 for the printed matter to be peeled to enter and exit are arranged on both sides of the humidifying cavity 314. The two groups of open slots 316 are located below the water storage spraying member 33. The heating blower 32 includes a cross-flow blower and an electric heating plate. The air outlet of the cross-flow blower faces downward, and blows out the heat emitted by the electric heating plate downward. Installation openings are formed in the upper part and the side of the installation cavity, facilitating the staff to put in and install the heating blower 32. The water collecting tank 34 is structured at the bottom of the temperature rise box 31, used to receive the water sprayed by the water storage spraying member 33 in the humidifying cavity 314, and return to the water storage tank 331 under the pressure of a water pump through a circulation pipe 36 at the bottom of the water collecting tank 34, reducing the cost of external water. The temperature rise component 3 uses a heating member in cooperation with a cross-flow blower to provide heat to the printed matter, making the adhesive surface of the printed matter heated and sticky, reducing the adhesion between the adhesive surface and the printed surface, and facilitating reducing the residual sticky adhesive surface when passing through the peeling knife block 41. The flow equalizing plate 313 arranged at the lower part of the air outlet duct can evenly distribute the air flow blown out by the cross-flow blower in the area, ensuring that the printed matter is heated evenly. The water storage spraying member 33 located in the humidifying cavity 314 sprays water mist in the humidifying cavity 314. The water droplets cover the surface of the printed matter under the push of the hot air, moistening the adhesive surface and further reducing the adhesion, improving the peeling efficiency of the printed matter.

[0031] In this embodiment, a plurality of reserved holes are formed in the humidifying cavity 314. The water storage spraying member 33 includes a water storage tank 331, a plurality of connecting pipes 332, and a plurality of spray heads 333. The water storage tank 331 is fixedly connected to the upper part of the temperature rise box 31. All the plurality of connecting pipes 332 are fixedly connected to the bottom of the water storage tank 331. Each spray head 333 is correspondingly communicated with a corresponding connecting pipe 332. Each spray head 333 is correspondingly in guiding cooperation with a corresponding reserved hole. The water storage tank 331 is provided with a first water inlet pipe 35 connected to an external water source, and a circulation pipe 36 communicated with the bottom of the water collecting tank 34. The spray head 333 is a pressurized sprayer, forming water mist in the humidifying cavity 314 to cover above the printed matter, reducing the viscosity of the adhesive surface, and at the same time avoiding the printed matter being too dry, resulting in a reduction in flexibility and easy breakage. The water storage tank 331 is formed with an observation window for the staff to monitor the water level.

[0032] In this embodiment, the hot air duct 312 includes a straight duct connected to the fan installation cavity 311 and a diffuser duct connected to the straight duct. The width of the diffuser duct gradually increases from top to bottom. A plurality of the clamping blocks 315 are fixedly connected to the lower part of the diffuser duct. The duct structure gradually increases from top to bottom, so that the flow velocity of the hot air gradually decreases. The hot air with reduced velocity can better cover and flow into the lower humidification cavity 314 from the flow equalizing plate 313, ensuring the stability and effectiveness of the hot air propagation.

[0033] In this embodiment, the peeling assembly 4 includes a peeling knife block 41 fixedly connected to the base 1, two limiting blocks 42 arranged on the upper surface of the peeling knife block 41, and two guiding blocks 43 slidably connected to the middle of the peeling knife block 41. The two guiding blocks 43 are arranged between the two limiting blocks 42. A sliding groove 44 that slidably cooperates with the two guiding blocks 43 is formed in the middle of the peeling knife block 41. A limiting groove 45 is formed below each limiting block 42. A limiting space for the printing surface to pass through is formed between the limiting groove 45 and the peeling knife block 41. The separating head 46 of the peeling knife block 41 has a round head structure. The peeling knife block 41 is used to separate the adhesive surface and the printing surface. The printed product is stressed at the separating head 46 to peel off the adhesive surface and the printing surface. The printing surface is located above the peeling knife head block and enters the limiting space. The two guiding blocks 43 arranged on the peeling knife block 41 are adjusted to be the same width as the printing surface, playing a guiding role to avoid deviation caused by uneven stress during peeling. The limiting space formed by the limiting block 42 and the peeling knife block 41 is used to prevent the printing surface from bouncing up and down due to uneven stress during peeling. The adhesive surface enters the first material collecting assembly 5 along the lower inclined surface of the lower peeling knife block 41.

[0034] In this embodiment, a separating head 46 for separating the adhesive surface of the printed product is formed at one end of the peeling knife block 41. The separating head 46 is formed with an inclined surface that guides and cooperates with the adhesive surface of the printed product.

[0035] In this embodiment, the first material receiving assembly 5 includes a first material receiving driving device 51, a glue surface pressing seat 52, a glue surface pushing wheel 53, and a glue surface material receiving seat 54. The first material receiving driving device 51 and the glue surface pressing seat 52 are both fixedly connected to the base 1. The glue surface pressing seat 52 is arranged on one side of the first material receiving driving device 51. The glue surface pushing wheel 53 is rotatably connected to the glue surface pressing seat 52 and is connected to the movable end of the first material receiving driving device 51 through a first transmission member 55. The glue surface material receiving seat 54 is arranged on one side of the glue surface material receiving seat 54. The glue surface material receiving seat 54 is provided with a clamping strip 56 for clamping and limiting the glue surface of the printed matter. The glue surface material receiving seat 54 is in transmission cooperation with the glue surface pushing wheel 53 through a second transmission member 57. The first material receiving driving device 51 is a rotary motor, and the first transmission member is a belt pulley. Torque is transmitted between the two belt pulleys through a transmission belt. A transmission wheel is further connected to the glue surface pushing wheel 53, and the transmission wheel is in transmission cooperation with the glue surface material receiving seat 54 through a belt, driving the material receiving seat to rotate, ensuring that the rotational torques of the glue surface pushing wheel 53 and the glue surface material receiving seat 54 are the same, and the glue surface material receiving process is stable. After the glue surface is separated from the printed surface in the peeling assembly 4, it sequentially winds around multiple tension rollers 7 and then enters the glue surface pressing seat 52, winds upward around the first turning rod 522, enters the sliding channel between the pressing plate 525 and the pressing plate 523, and then is wound through the cooperation with the glue surface material receiving seat 54 between the second turning rod 524 and the glue surface pushing wheel 53. The glue surface pushing wheel 53 and the glue surface material receiving seat 54 output torque simultaneously, reducing the material receiving deviation caused by uneven force on the sticky glue surface.

[0036] In this embodiment, the glue surface pressing seat 52 includes a connecting frame 521, a first turning rod 522, a pressing plate 523, and a second turning rod 524. The connecting frame 521 is fixedly connected to the base 1. The first turning rod 522 is rotatably connected to the first side of the connecting frame 521. The second turning rod 524 is rotatably connected to the second side of the connecting frame 521. The pressing plate 523 is arranged between the first turning rod 522 and the second turning rod 524 and is fixedly connected to the connecting frame 521. The upper part of the connecting frame 521 is provided with a pressing plate 525. A sliding channel for the glue surface of the printed matter to pass through is formed between the pressing plate 525 and the pressing plate 523. The pressing plate 525 is threadedly connected with an adjusting rod 526 for adjusting the height of the sliding channel. The glue surface pushing wheel 53 is rotatably connected to the connecting frame 521 and is located below the second turning rod 524.

[0037] In this embodiment, the second material receiving assembly 6 includes a cooling and fixing box 61, a plurality of guide rollers 62, an ion cooling fan 63, and a material receiving driving wheel 64. The cooling and fixing box 61 is fixedly connected to the base 1. A plurality of the guide rollers 62 are all arranged in the cooling and fixing box 61 and are rotatably connected to the base 1. The ion cooling fan 63 is arranged at the bottom of the cooling and fixing box 61. Openings for the printing surface to enter and exit are provided at both the upper and lower ends of the cooling and fixing box 61. The material receiving driving wheel 64 is arranged on one side of the upper opening of the cooling and fixing box 61 and is fixedly connected to the base 1. The ion cooling fan 63 is an ion fan, which is used to blow out ion wind to eliminate the static electricity attached to the printing surface, and at the same time stir the air flow to take away the heat on the printing surface. The multiple groups of guide rollers 62 are used for the printing surface to wind and be tensioned. The material receiving driving wheel 64 is driven by a rotating motor to provide a stable and uniform winding force.

[0038] The working principle of the present utility model:

[0039] The printed matter to be peeled is placed in the feeding wheel 23 and is pressed and limited by the limiting wheel 24. The printed matter sequentially winds around multiple tension rollers 7. The printed matter enters the temperature rising assembly 3 from one side of the temperature rising assembly 3. The temperature rising assembly 3 uses a heating element and a cross-flow fan to provide heat to the printed matter, so that the adhesive surface of the printed matter is heated and adhesified, reducing the adhesion between the adhesive surface and the printing surface, and facilitating the reduction of the residual adhesive surface when passing through the peeling knife block 41. The flow equalizing plate 313 arranged at the lower part of the air outlet duct can evenly distribute the air flow blown out by the cross-flow fan in the area, ensuring that the printed matter is heated evenly. The water storage and spraying member 33 located in the humidifying cavity 314 sprays water mist in the humidifying cavity 314, and the water droplets cover the surface of the printed matter under the push of the hot air, moistening the adhesive surface to further reduce the adhesion. The printed matter after temperature rising and humidifying exits from the other side and contacts the peeling knife block 41. The peeling knife block 41 separates the adhesive surface and the printing surface in the printed matter. The printed matter is stressed at the separating head 46, and the adhesive surface and the printing surface are peeled off. The printing surface is located above the peeling knife head block and enters the limiting space. The two groups of guide blocks 43 located on the peeling knife block 41 are adjusted to be the same width as the printing surface, playing a guiding role to avoid deviation caused by uneven stress during peeling. The limiting space formed by the limiting block 42 and the peeling knife block 41 is used to prevent the printing surface from bouncing up and down due to uneven stress during peeling. The adhesive surface enters the first material receiving assembly 5 along the lower inclined surface of the lower peeling knife block 41;

[0040] After the adhesive surface is separated from the printing surface in the peeling assembly 4, it sequentially winds around multiple groups of tension rollers 7 and then enters the adhesive surface pressing seat 52, winds upward around the first turning rod 522, enters the sliding channel between the pressing plate 525 and the pressing plate 523, and then passes through the second turning rod 524 and the adhesive surface pushing wheel 53 and is wound up in cooperation with the adhesive surface receiving seat 54;

[0041] The printed surface enters the second material receiving component 6. A cooling and fixing box 61 is arranged inside the second material receiving component 6. An ion cooling fan 63 arranged inside the cooling and fixing box 61 blows circulating air for static elimination and temperature reduction inside, reducing the temperature of the printed surface and the static electricity attached thereto, and finally it is wound and enters the material receiving driving wheel 64.

[0042] Although the embodiments of the present invention are described with actual solutions, they do not constitute a limitation on the meaning of the present invention. For those skilled in the art, modifications to its implementation solutions according to this specification and combinations with other solutions are obvious.

Claims

1. A printing adhesive surface printing and peeling device, characterized in that: It includes a base (1), a feeding component (2) arranged on the base (1) for placing the printed matter to be peeled, a temperature-raising component (3) arranged on one side of the feeding component (2) for heating and humidifying the printed matter, a peeling component (4) arranged at the outlet end of the temperature-raising component (3) for separating the glue surface of the printed matter, a first material collecting component (5) arranged above the peeling component (4) for recycling the glue surface, and a second material collecting component (6) arranged below the peeling component (4) for recycling the printed surface. The base (1) is formed with a number of tension rollers (7) for keeping the printed matter taut.

2. The stripping device for printing on the glue surface of printed matter according to claim 1, wherein: The feeding component (2) includes a fixing frame (21), a feeding driving device (22), a feeding wheel (23) and a limiting wheel (24). The fixing frame (21) is fixedly connected to the base (1). The feeding driving device (22) is fixedly connected to one end of the fixing frame (21). The feeding wheel (23) is connected to the movable end of the feeding driving device (22). The limiting wheel (24) is in guiding cooperation with the feeding wheel (23). The feeding wheel (23) is formed with a feeding piece (25) for fixing the printed matter to be peeled. The limiting wheel (24) is provided with a top block (26) in limiting cooperation with the feeding piece (25).

3. A printed matter adhesive surface printing and peeling device according to claim 1, characterized in that: The temperature-raising component (3) includes a temperature-raising box (31) and a heating fan (32), a water storage spraying piece (33) and a water collecting tank (34) arranged in the temperature-raising box (31). The temperature-raising box (31) is fixedly connected to the base (1). The temperature-raising box (31) is provided with a fan installation cavity (311), a hot air duct (312), a flow equalizing plate (313) and a humidifying cavity (314) from top to bottom. The heating fan (32) is fixedly connected to the fan installation cavity (311). The water storage spraying piece (33) is arranged in the middle of the humidifying cavity (314). The water collecting tank (34) is arranged below the humidifying cavity (314). A number of clamping blocks (315) are formed at the lower part of the hot air duct (312). All the clamping blocks (315) are in supporting cooperation with the flow equalizing plate (313). Openings (316) for the printed matter to be peeled to enter and exit are arranged on both sides of the humidifying cavity (314). The two groups of openings (316) are located below the water storage spraying piece (33).

4. A printing product glue surface printing and peeling device according to claim 3, characterized in that: A number of reserved holes are formed in the humidifying cavity (314). The water storage spraying piece (33) includes a water storage tank (331), a number of connecting pipes (332) and a number of spray heads (333). The water storage tank (331) is fixedly connected to the upper part of the temperature-raising box (31). All the connecting pipes (332) are fixedly connected to the bottom of the water storage tank (331). Each spray head (333) is correspondingly communicated with the corresponding connecting pipe (332). Each spray head (333) is in guiding cooperation with the corresponding reserved hole. The water storage tank (331) is provided with a first water inlet pipe (35) connected to an external water source and a circulating pipe (36) communicated with the bottom of the water collecting tank (34).

5. A printing adhesive surface printing and peeling device according to claim 3, characterized in that: The hot air duct (312) includes a direct duct connected to the fan installation cavity (311), and a diffuser duct connected to the direct duct. The width of the diffuser duct gradually increases from top to bottom, and several of the clamping blocks (315) are fixedly connected to the lower part of the diffuser duct.

6. The printing glue surface printing and peeling device according to claim 1, wherein: The peeling assembly (4) includes a peeling blade block (41) fixedly connected to the base (1), two limiting blocks (42) arranged on the upper surface of the peeling blade block (41), and two guiding blocks (43) slidably connected to the middle of the peeling blade block (41). The two guiding blocks (43) are arranged between the two limiting blocks (42). A sliding groove (44) that slidably cooperates with the two guiding blocks (43) is formed in the middle of the peeling blade block (41). A limiting groove (45) is formed below each limiting block (42). A limiting space for the printing surface to pass through is formed between the limiting groove (45) and the peeling blade block (41).

7. The printing glue surface printing and peeling device according to claim 6, characterized in that: One end of the peeling blade block (41) forms a separating head (46) for separating the adhesive surface of the printed matter. The separating head (46) is formed with an inclined surface that guides and cooperates with the adhesive surface of the printed matter.

8. A printing adhesive surface printing and peeling device according to claim 1, characterized in that: The first material collecting assembly (5) includes a first material collecting driving device (51), an adhesive surface pressing seat (52), an adhesive surface pushing wheel (53), and an adhesive surface material collecting seat (54). The first material collecting driving device (51) and the adhesive surface pressing seat (52) are both fixedly connected to the base (1). The adhesive surface pressing seat (52) is arranged on one side of the first material collecting driving device (51). The adhesive surface pushing wheel (53) is rotatably connected to the adhesive surface pressing seat (52) and is connected to the movable end of the first material collecting driving device (51) through a first transmission member (55). The adhesive surface material collecting seat (54) is arranged on one side of the adhesive surface material collecting seat (54). The adhesive surface material collecting seat (54) is provided with a clamping strip (56) for clamping and limiting the adhesive surface of the printed matter. The adhesive surface material collecting seat (54) is in transmission cooperation with the adhesive surface pushing wheel (53) through a second transmission member (57).

9. A printing glue surface printing and peeling device according to claim 8, characterized in that: The adhesive surface pressing seat (52) includes a connecting frame (521), a first steering rod (522), a pressing plate (523), and a second steering rod (524). The connecting frame (521) is fixedly connected to the base (1). The first steering rod (522) is rotatably connected to the first side of the connecting frame (521). The second steering rod (524) is rotatably connected to the second side of the connecting frame (521). The pressing plate (523) is arranged between the first steering rod (522) and the second steering rod (524) and is fixedly connected to the connecting frame (521). A sliding channel for the adhesive surface of the printed matter to pass through is formed between the upper part of the connecting frame (521) and the pressing plate (525). The pressing plate (525) is threadedly connected with an adjusting rod (526) for adjusting the height of the sliding channel. The adhesive surface pushing wheel (53) is rotatably connected to the connecting frame (521) and is located below the second steering rod (524).

10. A printing product glue surface printing and peeling device according to claim 1, characterized in that: The second material receiving component (6) includes a cooling and fixing box (61), a plurality of guide rollers (62), an ion cooling fan (63), and a material receiving driving wheel (64). The cooling and fixing box (61) is fixedly connected to the base (1). A plurality of the guide rollers (62) are all arranged in the cooling and fixing box (61) and rotatably connected to the base (1). The ion cooling fan (63) is arranged at the bottom of the cooling and fixing box (61). Openings for the printing surface to enter and exit are provided at both the upper and lower ends of the cooling and fixing box (61). The material receiving driving wheel (64) is arranged on one side of the upper opening of the cooling and fixing box (61) and is fixedly connected to the base (1).