A white ink ironing printing and powdering all-in-one machine

CN224796629UActive Publication Date: 2026-09-25GUANGZHOU JINGYICHENG OPTOELECTRONICS TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202522502128.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-25
Publication Date
2026-09-25
Estimated Expiration
2035-11-25

AI Technical Summary

Technical Problem

[0004]有鉴于此,本实用新型提供一种白墨烫画打印抖粉一体机,主要所要解决的技术问题是:现有设备在进行加热固化工序时,其多数加热结构缺乏主动、高效的散热与导流机制,这导致加热板产生的高温气体与挥发性物质无法被及时排出,从而在设备腔体内大量积聚,不仅会使得工作环境温度失控,影响打印介质的干燥过程与转印效果的稳定性,长期作用下更会加剧周边电子元件与机械部件的老化

Benefits of technology

[0029]1、与现有技术相比,该一种白墨烫画打印抖粉一体机,通过集成可开合的加热翻盖与独特的U形导流通道,构建了一个高效且可控的加热排气系统。在加热工序中,翻盖下压使加热板与打印材料紧密贴合,确保加热均匀性;同时,产生的热气流与挥发物能从翻盖底部的镂空槽被迅速吸入,经连通槽进入U形导流通道后由底部排气管集中导出,最终进入油烟净化器内部,经过油烟净化器的净化,防止排出的气体污染环境,这一设计避免了高温气体在设备内部腔体积聚,不仅能维持工作环境的温度稳定、保障打印介质的固化质量,更能降低高温高湿环境对精密电子元件及机械部件的侵蚀,从而整体提升了设备运行的可靠性与使用寿命。

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Abstract

The utility model relates to white ink iron picture printing technical field especially is a kind of white ink iron picture printing shakes powder all-in-one machine, including moving assembly, the top of moving assembly is fixedly connected with support, and the top of support is installed with printing assembly, and the top of support is provided with heating assembly, and the top of support is provided with conveying assembly, and the inside of conveying assembly in the inside of support is provided with adsorption assembly, and the bottom of moving assembly is provided with shakes powder assembly, and heating assembly includes flip, and the inside of flip is fixedly connected with heating plate, and the both sides outer wall of flip is equipped with rotary groove, and the inner wall of rotary groove is rotatably connected with hydraulic rod, and one end of hydraulic rod is rotatably connected with the top of support, and the bottom both sides of flip are equipped with hollow slot. The utility model, not only can maintain the temperature stability of working environment, guarantee the solidification quality of printing medium, can also reduce the erosion of high temperature and high humidity environment to precision electronic components and mechanical parts.
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Description

Technical Field

[0001] This utility model relates to the field of white ink heat transfer printing, and in particular to a white ink heat transfer printing and powder-dissipating integrated machine. Background Technology

[0002] The white ink heat transfer printing and powder-dispensing all-in-one machine is the core equipment in the field of white ink heat transfer printing technology. It integrates printing, powder dispensing, and heat curing functions into one. It forms a pattern base through white ink printing, and then adds hot-melt powder through the powder dispensing process. After heating, the powder is fused and fixed with the printing medium. It is widely used in personalized customization scenarios such as clothing and accessories to achieve high-precision and high-efficiency heat transfer pattern production.

[0003] In the existing equipment, most heating structures lack active and efficient heat dissipation and flow guidance mechanisms during the heating and curing process. This results in the inability to expel the high-temperature gases and volatile substances generated by the heating plate in time, which accumulate in large quantities inside the equipment cavity. This not only causes the working environment temperature to run out of control, affecting the drying process of the printing media and the stability of the transfer effect, but also accelerates the aging of surrounding electronic components and mechanical parts under long-term effects. Utility Model Content

[0004] In view of this, the present invention provides a white ink heat transfer printing and powder-dissipating all-in-one machine. The main technical problem to be solved is that in the existing equipment, most of the heating structures lack active and efficient heat dissipation and flow guiding mechanisms during the heating and curing process. This results in the high-temperature gas and volatile substances generated by the heating plate not being discharged in time, thus accumulating in large quantities in the equipment cavity. This not only causes the working environment temperature to run out of control, affecting the drying process of the printing medium and the stability of the transfer effect, but also accelerates the aging of surrounding electronic components and mechanical parts under long-term action.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: a white ink heat transfer printing and powder-dissipating all-in-one machine, comprising a movable component, a bracket fixedly connected to the top of the movable component, a printing component mounted on the top of the bracket, a heating component and a conveying component disposed on the top of the bracket, an adsorption component disposed inside the conveying component inside the bracket, a powder-dissipating component disposed at the bottom of the movable component, the heating component comprising a flip cover, a heating plate fixedly connected inside the flip cover, rotating grooves formed on the outer walls of both sides of the flip cover, a hydraulic rod rotatably connected to the inner wall of the rotating groove, one end of the hydraulic rod rotatably connected to the top of the bracket, the flip cover rotatably connected to the bracket via two hinges, hollow grooves formed on both sides of the bottom of the flip cover, and connecting grooves formed on both sides of the top of the bracket, the two hollow grooves corresponding to the two connecting grooves respectively, a guide channel fixedly connected to the inner wall of the bracket, an exhaust pipe disposed at the bottom of the guide channel, an oil fume purifier fixedly connected to the bottom of the exhaust pipe, the guide channel being U-shaped, with its two branch ends corresponding to the two connecting grooves respectively.

[0006] By adopting the above technical solution, the hydraulic rod can smoothly control the opening and closing of the flip cover, so that the heating plate and the printing medium maintain the optimal contact distance; at the same time, the high-temperature gas generated by heating can be discharged from the bottom through the hollow groove and U-shaped guide channel, effectively preventing the hot air from accumulating inside the equipment, ensuring a stable working environment and extending the life of the components.

[0007] As a further description of the above technical solution:

[0008] The movable component includes a lower frame, with side frames fixedly connected to both sides of the top of the lower frame. The top of the side frames is fixedly connected to the bottom of the support. Self-locking wheels are rotatably connected to the bottom corners of the lower frame. A reinforcing plate is installed inside the lower frame. The top of the reinforcing plate is fixedly connected to the bottom of the fume purifier. Two reinforcing ribs are fixedly connected to the top of the lower frame. The two reinforcing ribs are located at the front and rear ends of the lower frame, respectively, and the two reinforcing ribs are inclined in opposite directions.

[0009] By adopting the above technical solutions, the self-locking wheels make the equipment easy to move and position, while the internal reinforcing plates and cross-arranged reinforcing ribs significantly enhance the structural rigidity and overall stability of the bottom frame, ensuring the smooth and reliable operation of the equipment.

[0010] As a further description of the above technical solution:

[0011] The printing assembly includes a printer, the bottom of which is fixedly connected to the top of the bracket, the printer is located on the left side of the bracket, an ink cartridge holder is fixedly connected to the outer wall of the printer, multiple ink cartridges are installed inside the ink cartridge holder, and a first guide plate is fixedly connected to the outer wall of the printer's printing outlet.

[0012] By adopting the above technical solution, the printer and ink cartridge holder are integrated into the bracket, resulting in a compact structure. The first guide plate can effectively guide the printed media smoothly into the next conveying stage, preventing the material from deviating or curling, and ensuring the integrity of the printed pattern.

[0013] As a further description of the above technical solution:

[0014] The conveying assembly includes a conveying motor, which is fixedly connected to the rear side of the support. Two conveying rollers are rotatably connected to the inner wall of the support. One end of the left conveying roller is fixedly connected to the output end of the conveying motor. The two conveying rollers rotate synchronously through a mesh conveyor belt.

[0015] By adopting the above technical solution, the conveyor motor drives the conveyor roller and the mesh conveyor belt to realize the automatic and precise conveying of the printing medium, providing a stable material flow basis for the subsequent continuous powder shaking and heating processes.

[0016] As a further description of the above technical solution:

[0017] The adsorption assembly includes a hollow plate with two adsorption chambers inside. The hollow plate is located between two conveyor rollers and inside a mesh conveyor belt. Two suction pumps are fixedly connected to the front outer wall of the hollow plate. The outer walls of the two suction pumps are fixedly connected to the front inner wall of the support. The two suction pumps correspond to the two adsorption chambers respectively. Multiple air holes are opened at the top of each of the two adsorption chambers. An air outlet is provided at the bottom of the suction pumps. Fixing ears are fixedly connected to the front and rear outer walls of the hollow plate. The fixing ears are fixedly connected to the front and rear inner walls of the support by bolts.

[0018] By adopting the above technical solution, the suction pump generates uniform negative pressure through the air holes at the top of the hollow plate, which can firmly and flatly adsorb the printing medium onto the surface of the mesh conveyor belt, effectively preventing it from shifting or wrinkling during conveying and processing, and ensuring the uniformity of subsequent powder shaking and heating.

[0019] As a further description of the above technical solution:

[0020] The powder-shaking assembly includes a powder-shaking motor, the output end of which is fixedly connected to a rotating shaft. A powder-shaking plate is fixedly connected to the outer wall of the rotating shaft. A first wedge plate and a second wedge plate are fixedly connected to the inner wall of the support, forming a conical channel. A collection box is fixedly connected to the bottom of the support, located below the powder-shaking plate. A cover plate is provided on the top of the support, covering the top of the support. Two fixing rods are fixedly connected to the inner wall of the collection box. Two baffles are installed on the outer walls of the two fixing rods. Screws are threadedly connected to the tops of the two baffles, with the bottoms of the screws abutting against the tops of the fixing rods.

[0021] By adopting the above technical solution, the powder-shaking motor drives the powder-shaking plate to vibrate and spread powder efficiently, while the conical channel formed by the first and second wedge plates can accurately guide the excess powder that has not been adsorbed into the collection box, realizing the automatic recycling of powder and reducing waste and pollution.

[0022] As a further description of the above technical solution:

[0023] A winding assembly is provided on the right outer wall of the bracket. The winding assembly includes two winding frames, each with a slot inside. A winding shaft is rotatably mounted between the two slots. A winding roller is fixedly connected to the outer wall of the winding shaft. A protective cover is fixedly connected to the inner wall of the rear winding frame. A winding motor is installed inside the protective cover. A drive gear is fixedly connected to the output end of the winding motor. A driven gear is fixedly connected to the rear end of the winding shaft. The drive gear and the driven gear mesh. Both the drive gear and the driven gear are located inside the rear winding frame.

[0024] By adopting the above technical solution, the winding motor drives the winding roller to rotate at a constant speed through the gear set, realizing the automatic and neat winding of the finished product, completing the full process automation from printing to winding, and improving production efficiency.

[0025] As a further description of the above technical solution:

[0026] A second guide plate is fixedly connected to the right outer wall of the bracket. Two connecting plates are fixedly connected to the outer wall of the second guide plate. A sliding rod is fixedly connected between the two connecting plates. A slider is sleeved on the outer wall of the sliding rod. The outer wall of the printer is also provided with a second guide plate, connecting plates, sliding rod and slider. Support blocks are fixedly connected to the front and rear of the inner wall of the bracket. Multiple positioning grooves are opened inside the support blocks. Guide rods are engaged in the corresponding positioning grooves of the two support blocks.

[0027] By adopting the above technical solution, the tension and wrap angle of the printing medium during the transmission process can be flexibly controlled by adjusting the position of the slider on the slide bar, thereby ensuring that the material is always in a flat and properly tensioned state and preventing loosening or wrinkling.

[0028] By employing the above technical solution, the present invention provides a white ink heat transfer printing and powder-dissipating all-in-one machine with at least the following beneficial effects:

[0029] 1. Compared with existing technologies, this white ink heat transfer printing and powder-dissipating all-in-one machine integrates an openable and closable heated flip-top and a unique U-shaped guide channel to construct a highly efficient and controllable heating and exhaust system. During the heating process, the flip-top presses down to ensure that the heating plate and the printing material are in close contact, ensuring uniform heating. At the same time, the generated hot air and volatiles are quickly drawn in from the hollowed-out groove at the bottom of the flip-top, enter the U-shaped guide channel through the connecting groove, and are then concentrated and discharged through the bottom exhaust pipe, finally entering the fume purifier. After being purified by the fume purifier, the exhaust gas is prevented from polluting the environment. This design avoids the accumulation of high-temperature gas in the internal cavity of the equipment, which not only maintains the temperature stability of the working environment and ensures the curing quality of the printing media, but also reduces the corrosion of precision electronic components and mechanical parts by the high temperature and humidity environment, thereby improving the overall reliability and service life of the equipment.

[0030] 2. Compared with existing technologies, this white ink heat transfer printing and powder-dissipating integrated machine achieves a highly efficient closed-loop system for powder utilization and recycling by embedding the adsorption component into the mesh conveyor belt and working in conjunction with the powder-dissipating component, wedge plates, and collection box. The negative pressure generated by the adsorption component stably adsorbs the printing material onto the conveyor belt surface, ensuring its flatness at the powder-dissipating station and laying the foundation for uniform powder application. After the powder-dissipating plate vibrates and applies powder, any unused excess powder naturally falls through the mesh belt and is precisely guided to the collection box at the bottom via the conical channel formed by the first and second wedge plates. This design reduces unnecessary dispersion and waste of hot melt powder, not only lowering material costs but also improving the cleanliness of the working environment inside and around the equipment, meeting the requirements of green production. Attached Figure Description

[0031] Figure 1 This is a first-view overall structural diagram of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model;

[0032] Figure 2 This is a schematic diagram of the internal structure of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model;

[0033] Figure 3 This is a second-view overall structural diagram of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model;

[0034] Figure 4This is a third-view overall structural diagram of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model;

[0035] Figure 5 This is a schematic diagram of the support block and guide rod of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model;

[0036] Figure 6 This is a schematic diagram of the conveying component and adsorption component of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model.

[0037] Figure 7 This is a schematic diagram of the powder-dissipating component of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model;

[0038] Figure 8 This is a schematic diagram of the heating component of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model;

[0039] Figure 9 This is a schematic diagram of the bottom of the flip-top of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model;

[0040] Figure 10 This is a schematic diagram of the flow channel and exhaust pipe of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model;

[0041] Figure 11 This is a schematic diagram of the winding component of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model;

[0042] Figure 12 This is a schematic diagram of the fixing rod and baffle of a white ink heat transfer printing and powder-dissipating all-in-one machine proposed in this utility model.

[0043] Legend:

[0044] 1. Moving assembly; 101. Lower frame; 102. Side frame; 103. Self-locking wheel; 104. Reinforcing plate; 105. Reinforcing rib; 2. Bracket; 3. Printing assembly; 301. Printer; 302. Ink cartridge holder; 303. First guide plate; 4. Heating assembly; 401. Flip cover; 402. Heating plate; 403. Rotating groove; 404. Hydraulic rod; 405. Hinge; 406. Hollow groove; 407. Connecting groove; 408. Guide channel; 409. Exhaust pipe; 410. Fume purifier; 5. Conveying assembly; 501. Conveying motor; 502. Conveying roller; 503. Mesh conveyor belt; 6. Adsorption assembly; 601. Hollow plate; 60 2. Suction pump; 603. Air outlet; 604. Fixing lug; 605. Bolt; 7. Powder shaking assembly; 701. Powder shaking motor; 702. Rotating shaft; 703. Powder shaking plate; 704. First wedge plate; 705. Second wedge plate; 706. Collection box; 707. Cover plate; 708. Fixing rod; 709. Baffle; 8. Rewinding assembly; 801. Rewinding frame; 802. Slot; 803. Rewinding shaft; 804. Rewinding roller; 805. Protective cover; 806. Rewinding motor; 807. Drive gear; 808. Driven gear; 9. Second guide plate; 10. Connecting plate; 11. Slide rod; 12. Slider; 13. Support block; 14. Guide rod. Detailed Implementation

[0045] Reference Figure 1-12 This utility model provides a white ink heat transfer printing and powder-dissipating all-in-one machine: It includes a moving component 1, a support 2 fixedly connected to the top of the moving component 1, a printing component 3 mounted on the top of the support 2, a heating component 4 and a conveying component 5 on the top of the support 2, an adsorption component 6 inside the conveying component 5, and a powder-dissipating component 7 at the bottom of the moving component 1. The heating component 4 includes a flip cover 401, a heating plate 402 fixedly connected inside the flip cover 401, rotating grooves 403 on both outer walls of the flip cover 401, and hydraulic rods 404 rotatably connected to the inner walls of the rotating grooves 403. One end of the hydraulic rod 404 is connected to the support... The top of the frame 2 is rotatably connected, and the flip cover 401 is rotatably connected to the support 2 through two hinges 405. The bottom two sides of the flip cover 401 are provided with hollow grooves 406, and the top two sides of the support 2 are provided with connecting grooves 407. The two hollow grooves 406 correspond to the two connecting grooves 407 respectively. The inner wall of the support 2 is fixedly connected with a flow guide channel 408. The bottom of the flow guide channel 408 is provided with an exhaust pipe 409. The bottom of the exhaust pipe 409 is fixedly connected with an oil fume purifier 410. The oil fume purifier 410 is model "LB-DYJ-HI-2000". The flow guide channel 408 is U-shaped, and its two branch ends correspond to the two connecting grooves 407 respectively.

[0046] The material with the pattern and hot melt powder attached is conveyed to the heating component 4 for curing. The hydraulic rod 404 is activated, pushing the flip cover 401 to rotate around the hinge 405, causing the internal heating plate 402 to press down and heat the material evenly. During this process, the high-temperature gas and volatiles generated by heating enter from the hollow groove 406 at the bottom of the flip cover 401, and then through the connecting groove 407 at the top of the bracket 2, are guided into a U-shaped guide channel 408. After the gas gathers along the guide channel 408, it finally enters the fume purifier 410 from the exhaust pipe 409 at the bottom. After being purified by the fume purifier 410, it is discharged to the outside, effectively preventing the accumulation of hot air inside the equipment, ensuring the stable operation of each component and the printing quality, and preventing air pollution.

[0047] The movable component 1 includes a lower frame 101, with side frames 102 fixedly connected to both sides of the top of the lower frame 101. The top of the side frames 102 is fixedly connected to the bottom of the bracket 2. Self-locking wheels 103 are rotatably connected to the bottom corners of the lower frame 101. A reinforcing plate 104 is installed inside the lower frame 101. The top of the reinforcing plate 104 is fixedly connected to the bottom of the fume purifier 410. Two reinforcing ribs 105 are fixedly connected to the top of the lower frame 101. The two reinforcing ribs 105 are located at the front and rear ends of the lower frame 101 respectively, and the two reinforcing ribs 105 are inclined in opposite directions.

[0048] The printing assembly 3 includes a printer 301, the bottom of which is fixedly connected to the top of the bracket 2. The printer 301 is located on the left side of the bracket 2. An ink cartridge holder 302 is fixedly connected to the outer wall of the printer 301. Multiple ink cartridges are installed inside the ink cartridge holder 302. A first guide plate 303 is fixedly connected to the outer wall of the printing outlet of the printer 301.

[0049] The conveying assembly 5 includes a conveying motor 501, which is fixedly connected to the rear side of the support 2. Two conveying rollers 502 are rotatably connected to the inner wall of the support 2. One end of the left conveying roller 502 is fixedly connected to the output end of the conveying motor 501. The two conveying rollers 502 rotate synchronously via a mesh conveyor belt 503. The adsorption assembly 6 includes a hollow plate 601, which has two adsorption chambers inside. The hollow plate 601 is located between the two conveying rollers 502 and simultaneously within the mesh conveyor belt 503. Inside the hollow plate 601, two suction pumps 602 are fixedly connected to the front outer wall of the hollow plate 601. The outer walls of the two suction pumps 602 are fixedly connected to the front inner wall of the bracket 2. The two suction pumps 602 correspond to the two adsorption chambers respectively. Multiple air holes are opened at the top of the two adsorption chambers. An air outlet 603 is provided at the bottom of the suction pump 602. Fixing ears 604 are fixedly connected to the front and rear outer walls of the hollow plate 601. The fixing ears 604 are fixedly connected to the front and rear inner walls of the bracket 2 by bolts 605.

[0050] The printed material moves forward under the drive of the conveying component 5. Specifically, the conveying motor 501 drives the conveying roller 502 and the mesh conveyor belt 503 to move. To ensure that the material is flat and does not shift during the conveying process, the adsorption component 6 starts synchronously. The suction pump 602 inside generates negative pressure through the air holes at the top of the hollow plate 601, which stably adsorbs the material onto the mesh conveyor belt 503.

[0051] The powder-dispensing assembly 7 includes a powder-dispensing motor 701. A rotating shaft 702 is fixedly connected to the output end of the motor 701. A powder-dispensing plate 703 is fixedly connected to the outer wall of the shaft 702. A first wedge plate 704 and a second wedge plate 705 are fixedly connected to the inner wall of the support 2, forming a conical channel. A collection box 706 is fixedly connected to the bottom of the support 2, located below the powder-dispensing plate 703. A cover plate 707 is provided on the top of the support 2. 707 covers the top of the bracket 2. The inner wall of the collection box 706 is fixedly connected to two fixing rods 708. The outer wall of the two fixing rods 708 is equipped with two baffles 709. The top of the two baffles 709 is threaded with screws. The bottom of the screws abuts against the top of the fixing rods 708. The distance between the two baffles 709 can be adjusted by loosening the screws. Then, the distance between the two baffles 709 can be determined by tightening the screws. This can be adjusted for heat transfer films of different widths to control the amount of powder dispensed.

[0052] When the patterned film moves to the powder-shaking station in the middle of the equipment, the powder-shaking component 7 starts working. The powder-shaking motor 701 drives the rotating shaft 702 and the powder-shaking plate 703 installed on it to intermittently tap the printed film. The film is tapped and intermittently shaken by the powder-shaking plate 703, so that the white hot melt powder is evenly sprinkled on the material surface. The excess powder that does not adhere falls through the mesh conveyor belt 503. The fallen powder is guided by the conical channel formed by the first wedge plate 704 and the second wedge plate 705, and finally falls into the collection box 706 at the bottom, realizing the recycling and centralized processing of powder, avoiding waste and pollution.

[0053] A winding assembly 8 is provided on the right outer wall of the bracket 2. The winding assembly 8 includes two winding frames 801. Each winding frame 801 has a slot 802 inside. A winding shaft 803 is rotatably mounted in the middle of the two slots 802. A winding roller 804 is fixedly connected to the outer wall of the winding shaft 803. A protective cover 805 is fixedly connected to the inner wall of the rear winding frame 801. A winding motor 806 is installed inside the protective cover 805. A drive gear 807 is fixedly connected to the output end of the winding motor 806. A driven gear 808 is fixedly connected to the rear end of the winding shaft 803. The drive gear 807 and the driven gear 808 mesh with each other. Both the drive gear 807 and the driven gear 808 are located inside the rear winding frame 801.

[0054] The finished material that has been heated and cured continues to be conveyed to the right. After being sorted by the second guide plate 9, it is wound and collected by the winding assembly 8. The winding motor 806 drives the winding shaft 803 and the winding roller 804 to rotate at a constant speed through the meshing of the drive gear 807 and the driven gear 808, so as to realize the automatic winding of the finished product.

[0055] A second guide plate 9 is fixedly connected to the outer right side of the bracket 2. Two connecting plates 10 are fixedly connected to the outer wall of the second guide plate 9. A slide rod 11 is fixedly connected between the two connecting plates 10. A slider 12 is sleeved on the outer wall of the slide rod 11. The outer wall of the printer 301 is also provided with a second guide plate 9, connecting plates 10, slide rod 11 and slider 12. Support blocks 13 are fixedly connected to the inner wall of the bracket 2 at the front and back. Multiple positioning grooves are opened inside the support blocks 13. Guide rods 14 are engaged in the corresponding positioning grooves of the two support blocks 13 to ensure that the transfer material can maintain a flat, stable and appropriate tension during the transfer process after printing, thereby avoiding material wrinkling, deviation or loosening, and ensuring the quality of subsequent powder shaking and heating processes.

[0056] Working principle: After the equipment is started, the printer 301 of the printing component 3 sprays the desired pattern onto the transfer material according to the preset pattern. The material then passes sequentially through the powder-dissipating component 7, the conveying component 5, the heating component 4, and finally winds onto the take-up component 8. When the film with the printed pattern moves to the powder-dissipating station in the middle of the equipment, the powder-dissipating component 7... The process begins with the powder-dispensing motor 701 driving the rotating shaft 702 and the powder-dispensing plate 703 mounted on it to intermittently tap and print the film. The film, after being tapped and intermittently shaken by the powder-dispensing plate 703, has its white hot-melt powder evenly spread across the material surface. Excess powder that does not adhere falls through the mesh conveyor belt 503. The falling powder is guided by the conical channel formed by the first wedge plate 704 and the second wedge plate 705, ultimately falling into the collection box 706 at the bottom, achieving powder recycling and centralized processing, avoiding waste and pollution. Simultaneously, the distance between the two baffles 709 can be adjusted by loosening the screws, and then fixed by tightening the screws. This allows for adjustments to be made for heat transfer films of different widths, controlling the amount of powder dispensed.

[0057] The printed material moves forward under the drive of the conveying component 5. Specifically, the conveying motor 501 drives the conveying roller 502 and the mesh conveyor belt 503 to move. To ensure that the material is flat and does not shift during the conveying process, the adsorption component 6 starts synchronously. The suction pump 602 inside generates negative pressure through the air holes at the top of the hollow plate 601, which stably adsorbs the material onto the mesh conveyor belt 503.

[0058] Subsequently, the material with the pattern and hot melt powder attached is conveyed to the heating component 4 for curing. The hydraulic rod 404 is activated, pushing the flip cover 401 to rotate around the hinge 405, causing the internal heating plate 402 to press down and heat the material evenly. During this process, the high-temperature gas and volatiles generated by heating enter from the hollow groove 406 at the bottom of the flip cover 401, and then through the connecting groove 407 at the top of the bracket 2, are guided into a U-shaped guide channel 408. After the gas gathers along the guide channel 408, it finally enters the fume purifier 410 from the exhaust pipe 409 at the bottom. After being purified by the fume purifier 410, it is discharged to the outside, effectively preventing the accumulation of hot air inside the equipment, ensuring the stable operation of each component and the printing quality, and preventing air pollution.

[0059] The finished material that has been heated and cured continues to be conveyed to the right. After being sorted by the second guide plate 9, it is wound and collected by the winding assembly 8. The winding motor 806 drives the winding shaft 803 and the winding roller 804 to rotate at a constant speed through the meshing of the drive gear 807 and the driven gear 808, so as to realize the automatic winding of the finished product.

[0060] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A white ink heat transfer printing and powder-dissipating all-in-one machine, comprising a moving component (1), characterized in that: The top of the moving component (1) is fixedly connected to a bracket (2), the top of the bracket (2) is equipped with a printing component (3), the top of the bracket (2) is provided with a heating component (4), the top of the bracket (2) is provided with a conveying component (5), the inside of the conveying component (5) of the bracket (2) is provided with an adsorption component (6), the bottom of the moving component (1) is provided with a powder shaking component (7), the heating component (4) includes a flip cover (401), the inside of the flip cover (401) is fixedly connected to a heating plate (402), the outer walls on both sides of the flip cover (401) are provided with rotating grooves (403), the inner walls of the rotating grooves (403) are rotatably connected to hydraulic rods (404), the hydraulic rods (404) are... One end is rotatably connected to the top of the bracket (2). The flip cover (401) is rotatably connected to the bracket (2) through two hinges (405). Hollow slots (406) are provided on both sides of the bottom of the flip cover (401). Connecting slots (407) are provided on both sides of the top of the bracket (2). The two hollow slots (406) correspond to the two connecting slots (407) respectively. A flow guide channel (408) is fixedly connected to the inner wall of the bracket (2). An exhaust pipe (409) is provided at the bottom of the flow guide channel (408). An oil fume purifier (410) is fixedly connected to the bottom of the exhaust pipe (409). The flow guide channel (408) is U-shaped, and its two branch ends correspond to the two connecting slots (407) respectively.

2. The white ink heat transfer printing and powder-dissipating all-in-one machine according to claim 1, characterized in that: The moving component (1) includes a lower frame (101), with side frames (102) fixedly connected to both sides of the top of the lower frame (101). The top of the side frames (102) is fixedly connected to the bottom of the bracket (2). Self-locking wheels (103) are rotatably connected to the bottom corners of the lower frame (101). A reinforcing plate (104) is installed inside the lower frame (101). The top of the reinforcing plate (104) is fixedly connected to the bottom of the fume purifier (410). Two reinforcing ribs (105) are fixedly connected to the top of the lower frame (101). The two reinforcing ribs (105) are located at the front and rear ends of the lower frame (101) respectively, and the two reinforcing ribs (105) are inclined in opposite directions.

3. The white ink heat transfer printing and powder-dissipating all-in-one machine according to claim 1, characterized in that: The printing assembly (3) includes a printer (301), the bottom of which is fixedly connected to the top of the bracket (2). The printer (301) is located on the left side of the bracket (2). An ink cartridge holder (302) is fixedly connected to the outer wall of the printer (301). Multiple ink cartridges are installed inside the ink cartridge holder (302). A first guide plate (303) is fixedly connected to the outer wall of the printing outlet of the printer (301).

4. The white ink heat transfer printing and powder-dissipating all-in-one machine according to claim 1, characterized in that: The conveying assembly (5) includes a conveying motor (501), which is fixedly connected to the rear side of the support (2). Two conveying rollers (502) are rotatably connected to the inner wall of the support (2). One end of the left conveying roller (502) is fixedly connected to the output end of the conveying motor (501). The two conveying rollers (502) rotate synchronously through the mesh conveyor belt (503).

5. The white ink heat transfer printing and powder-dissipating all-in-one machine according to claim 1, characterized in that: The adsorption assembly (6) includes a hollow plate (601), which has two adsorption chambers. The hollow plate (601) is located between two conveying rollers (502) and inside the mesh conveyor belt (503). Two suction pumps (602) are fixedly connected to the front outer wall of the hollow plate (601). The outer walls of the two suction pumps (602) are fixedly connected to the front inner wall of the bracket (2). The two suction pumps (602) are respectively corresponding to the two adsorption chambers. Multiple air holes are opened at the top of the two adsorption chambers. An air outlet (603) is provided at the bottom of the suction pump (602). Fixing ears (604) are fixedly connected to the front and rear outer walls of the hollow plate (601). The fixing ears (604) are fixedly connected to the front and rear inner walls of the bracket (2) by bolts (605).

6. The white ink heat transfer printing and powder-dissipating all-in-one machine according to claim 1, characterized in that: The powder-shaking assembly (7) includes a powder-shaking motor (701), the output end of which is fixedly connected to a rotating shaft (702), the outer wall of which is fixedly connected to a powder-shaking plate (703), the inner wall of which is fixedly connected to a first wedge plate (704) and a second wedge plate (705), which form a conical channel, and the bottom of which is fixedly connected to a collection box (706). The collection box (706) is located below the powder shaking plate (703). The top of the support (2) is provided with a cover plate (707), which covers the top of the support (2). The inner wall of the collection box (706) is fixedly connected with two fixing rods (708). The outer walls of the two fixing rods (708) are equipped with two baffles (709). The top of the two baffles (709) is threaded with screws, and the bottom of the screws abuts against the top of the fixing rods (708).

7. The white ink heat transfer printing and powder-dissipating all-in-one machine according to claim 1, characterized in that: A winding assembly (8) is provided on the right outer wall of the bracket (2). The winding assembly (8) includes two winding frames (801). Each of the two winding frames (801) has a slot (802) inside. A winding shaft (803) is rotatably installed in the middle of the two slots (802). A winding roller (804) is fixedly connected to the outer wall of the winding shaft (803). A protective cover (805) is fixedly connected to the inner wall of the rear winding frame (801). A winding motor (806) is installed inside the protective cover (805). A drive gear (807) is fixedly connected to the output end of the winding motor (806). A driven gear (808) is fixedly connected to the rear end of the winding shaft (803). The drive gear (807) meshes with the driven gear (808). Both the drive gear (807) and the driven gear (808) are located inside the rear winding frame (801).

8. The white ink heat transfer printing and powder-dissipating all-in-one machine according to claim 3, characterized in that: The right outer wall of the bracket (2) is fixedly connected to a second guide plate (9), and the outer wall of the second guide plate (9) is fixedly connected to two connecting plates (10). A slide rod (11) is fixedly connected between the two connecting plates (10). A slider (12) is sleeved on the outer wall of the slide rod (11). The outer wall of the printer (301) is also provided with a second guide plate (9), a connecting plate (10), a slide rod (11), and a slider (12). The inner wall of the bracket (2) is fixedly connected to a support block (13) at the front and back. Multiple positioning grooves are opened inside the support block (13). A guide rod (14) is snapped into the corresponding positioning groove of the two support blocks (13).