Full-automatic heat transfer printing machine
By designing adjustment components and buffer components in the thermal transfer machine, a fully automated continuous thermal transfer operation is achieved, which solves the problem of low loading and unloading efficiency in existing thermal transfer machines, improves work efficiency and production capacity, and extends the service life of the equipment.
Patent Information
- Application Number
- CN202421811165.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-30
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-07-30
AI Technical Summary
In continuous production, existing thermal transfer machines have reduced their working efficiency due to the neutral time of loading and unloading, and their capacity output is affected.
A fully automatic thermal transfer machine is designed, using adjustment components to realize automatic loading and unloading of materials. Through the coordination of the drive motor, transmission screw and bottom plate, seamless material displacement is achieved, and the impact force of the thermal printing plate on the material is reduced through the buffer assembly.
A seamless loading and unloading process is achieved, working efficiency and production capacity are improved, manual intervention and waiting time are reduced, and the service life of the equipment is extended.
Smart Images

Figure CN223014134U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of printing, and particularly relates to a full-automatic heat transfer machine. Background Art
[0002] A heat transfer machine is the general term for the machines used in heat transfer technology. The heat transfer machine includes a flat heat transfer machine, a high-pressure heat transfer machine, a swing heat transfer machine, a mug heat press machine, a baking pan heat press machine, a hat heat press machine and other heat transfer machines.
[0003] However, in the actual use process of the existing heat transfer machine, once an object is heat-transferred, the staff needs to immediately take it out and place a new object to be heat-transferred on the working station. Although the empty time for loading and unloading is short, it will continuously accumulate during continuous production, resulting in a decrease in the overall working efficiency, shortening the actual working time of the heat transfer machine, and thus affecting the overall production capacity output. Therefore, the utility model provides a full-automatic heat transfer machine to meet the demand. Summary of the Utility Model
[0004] To solve the above technical problems, the utility model provides the following technical solutions:
[0005] A full-automatic heat transfer machine includes a heat transfer machine main body. A side frame is arranged on one side of the heat transfer machine main body, and a main control chassis is fixedly connected to the top of the side frame. A partition board is fixedly connected to the top of the heat transfer machine main body; a transfer component for heat-transferring materials, which is connected to the main control chassis; an adjustment component for adjusting the position of the materials, which is connected to the side frame; and a buffer component for reducing the impact force when the transfer component presses down.
[0006] Optionally, the adjustment component includes a driving motor fixedly connected to one end of the heat transfer machine main body. A transmission screw rod is fixedly connected to the output shaft of the driving motor. A transmission block is threadedly connected to the outside of the transmission screw rod. The top of the transmission block is fixedly connected to a bottom plate, and the bottom plate is slidably connected inside the partition board. Three equally spaced heat printing bottom plates are fixedly connected to the top of the bottom plate.
[0007] Optionally, a limiting rod is fixedly connected inside the heat transfer machine main body, and the bottom plate is slidably connected to the outside of the limiting rod. A roller is rotatably connected to the bottom of the bottom plate, and the roller is in rolling connection with the bottom of the inner cavity of the heat transfer machine main body.
[0008] Optionally, the transfer component includes a heat printing plate arranged on one side of the main control chassis, and the heat printing plate is located directly above the bottom plate.
[0009] Optionally, the buffer assembly includes four connection holes opened inside the four corners of the hot stamping plate, and a buffer column is slidably connected inside each connection hole. A bolt is threadedly connected inside the top end of the buffer column, and a semi-circular abutting portion is fixedly connected to the bottom end of the buffer column.
[0010] Optionally, a set of symmetrically arranged buffer plates are fixedly connected to the top of the partition plate, and a abutting groove is opened at the top of each buffer plate, and the abutting groove is located directly below the abutting portion.
[0011] Optionally, a spring is fixedly connected between the top of the abutting portion and the bottom of the hot stamping plate, and the spring is sleeved outside the buffer column.
[0012] Compared with the prior art, the present utility model has at least the following beneficial effects:
[0013] In the above solution, by setting the adjustment assembly, when a group of materials is completed with heat transfer printing, the adjustment assembly can automatically move this group of materials out of the transfer area and move the next group of materials to be transferred in, realizing a seamless loading and unloading process. This design not only eliminates the efficiency bottleneck caused by manual loading and unloading in traditional heat transfer printers, but also reduces the waiting time of the staff, enabling them to perform other tasks while the materials are being transferred, thereby improving the overall work efficiency and production capacity.
[0014] In the above solution, by setting the buffer assembly, when the hot stamping plate presses down on the materials during the heat transfer printing operation, the buffer column first contacts the abutting portion, and through the elastic buffering effect of the spring, the impact force generated by the hot stamping plate directly impacting the materials is effectively reduced. This buffering effect not only protects the materials from being damaged by the instantaneous strong force, but also reduces the vibration and wear of the internal structure of the transfer printer, extending the service life of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The drawings incorporated herein and constituting a part of the specification illustrate embodiments of the present utility model and, together with the specification, are further used to explain the principles of the present utility model and enable those skilled in the relevant art to implement and use the present utility model.
[0016] Figure 1 is a three-dimensional structural schematic diagram of a fully automatic heat transfer printer;
[0017] Figure 2 is a three-dimensional structural schematic diagram of the cooperation of the fully automatic heat transfer printer;
[0018] Figure 3 is a three-dimensional structural schematic diagram of the cooperation of the fully automatic heat transfer printer;
[0019] Figure 4 is Figure 2 an enlarged schematic diagram of part A of
[0020] [Reference Signs]
[0021] 1. Transfer machine body; 101. Side frame; 2. Main control chassis; 3. Thermal printing plate; 4. Driving motor; 5. Partition; 6. Buffer plate; 601. Resistance groove; 7. Bottom plate; 8. Thermal printing bottom plate; 9. Transmission screw; 10. Transmission block; 11. Buffer column; 12. Connection hole; 13. Bolt; 14. Resistance part; 15. Spring.
[0022] As shown in the figure, in order to clearly implement the structure of the embodiment of the utility model, specific structures and devices are marked in the figure, but this is only for illustrative purposes and is not intended to limit the utility model to the specific structure, device and environment. According to specific needs, ordinary technicians in this field can adjust or modify these devices and environments. DETAILED DESCRIPTION
[0023] The following is a detailed description of a fully automatic thermal transfer machine provided by the utility model in combination with the accompanying drawings and specific embodiments. At the same time, it is explained here that in order to make the embodiments more detailed, the following embodiments are the best and preferred embodiments, and those skilled in the art may also adopt other alternative methods to implement some known technologies; and the accompanying drawings are only for a more specific description of the embodiments, and are not intended to specifically limit the utility model.
[0024] like Figures 1 to 4As shown, an embodiment of the present utility model provides a full-automatic heat transfer machine, including a transfer machine main body 1. A side frame 101 is provided on one side of the transfer machine main body 1. A main control chassis 2 is fixedly connected to the top of the side frame 101. A partition plate 5 is fixedly connected to the top of the transfer machine main body 1. A transfer assembly for heat-transferring materials, the transfer assembly is connected to the main control chassis 2. An adjustment assembly for adjusting the position of the materials, the adjustment assembly is connected to the side frame 101. As shown in the figures, the adjustment assembly includes a driving motor 4 fixedly connected to one end of the transfer machine main body 1. A transmission screw rod 9 is fixedly connected to the output shaft of the driving motor 4. A transmission block 10 is threadedly connected to the outside of the transmission screw rod 9. A bottom plate 7 is fixedly connected to the top of the transmission block 10. The bottom plate 7 is slidably connected inside the partition plate 5. Three equally spaced heat transfer bottom plates 8 are fixedly connected to the top of the bottom plate 7. A limiting rod is fixedly connected inside the transfer machine main body 1. The bottom plate 7 is slidably connected to the outside of the limiting rod. A roller is rotatably connected to the bottom of the bottom plate 7. The roller is in rolling connection with the bottom of the inner cavity of the transfer machine main body 1. The transfer assembly includes a heat transfer plate 3 provided on one side of the main control chassis 2. The heat transfer plate 3 is located directly above the bottom plate 7. The staff places the material to be transferred on the heat transfer bottom plate 8 and adjusts it to the appropriate position. At this time, the driving motor 4 is in a standby state, and the heat transfer plate 3 is preheated to the set temperature according to the instruction of the main control chassis 2. As the main control chassis 2 receives the start signal, the driving motor 4 starts, driving the transmission screw rod 9 to rotate. The rotation of the transmission screw rod 9 pushes the transmission block 10 to slide horizontally inside the partition plate 5 through threaded connection. Since the transmission block 10 is fixedly connected to the bottom plate 7, the bottom plate 7 and the heat transfer bottom plates 8 and materials thereon also move accordingly until they reach directly below the heat transfer plate 3. When the material reaches the predetermined position, the heat transfer plate 3 slowly descends under the control of the main control chassis 2, contacts the material and performs heat transfer. During this process, the buffer assembly plays a role in reducing the impact force of the heat transfer plate 3 on the material and ensuring the transfer quality. After the heat transfer is completed, the heat transfer plate 3 rises back to the initial position. At this time, the driving motor 4 starts again, reversely rotates the transmission screw rod 9, moves the material that has completed the transfer out of the transfer area, and at the same time moves the next group of materials to be transferred into the predetermined position to prepare for the next round of heat transfer. The above process is continuously repeated, realizing fully automated continuous heat transfer operation. Through the automated loading and unloading and continuous operation mode, the manual intervention and waiting time are significantly reduced, the work efficiency and production capacity are greatly improved. The staff only needs to place the materials at the initial stage and replace the material tray when needed, which greatly reduces the labor intensity, protects the materials from damage, and at the same time ensures the accuracy and consistency of the transfer. The design of the limiting rod and roller in the adjustment assembly ensures the stability and accuracy of the bottom plate 7 during the movement process, preventing the occurrence of deviation or tipping phenomena.
[0025] In this embodiment, as Figures 2 to 4As shown in the figure, a buffer assembly is used to reduce the impact force when the transfer assembly presses down. The buffer assembly includes four connection holes 12 opened inside the four corners of the hot stamping plate 3. A buffer column 11 is slidably connected inside each connection hole 12. A bolt 13 is threadedly connected inside the top of the buffer column 11. The bottom end of the buffer column 11 is fixedly connected with a semi-circular contact part 14. A group of symmetrically arranged buffer plates 6 are fixedly connected to the top of the partition plate 5. A contact groove 601 is opened on the top of each buffer plate 6. The contact groove 601 is located directly below the contact part 14. A spring 15 is fixedly connected between the top of the contact part 14 and the bottom of the hot stamping plate 3. The spring 15 is sleeved outside the buffer column 11. Before the hot stamping plate 3 starts to press down, the buffer column 11 has been fixed in the connection hole 12 of the hot stamping plate 3 through the bolt 13, and the spring 15 is in a natural state, preparing for the subsequent buffering effect. When the hot stamping plate 3 starts to press down and before contacting the material, it will first contact the contact part 14 at the bottom end of the buffer column 11. As the hot stamping plate 3 continues to press down, the contact part 14 will gradually sink along the contact groove 601 on the top of the buffer plate 6. During the sinking process of the contact part 14, the spring 15 starts to be compressed and generates a reaction force. This reaction force counteracts the force of the hot stamping plate 3 pressing down, thereby slowing down the direct impact force of the hot stamping plate 3 on the material. At the same time, the buffer column 11 slides inside the connection hole 12, which also plays a certain guiding and supporting role. After the buffering effect of the spring 15, the hot stamping plate 3 contacts the material at a relatively gentle speed and performs thermal transfer. At this time, the contact part 14 is completely sunk into the contact groove 601, and the spring 15 is in a compressed state but still continuously provides a buffering effect. After the thermal transfer is completed, the hot stamping plate 3 rises. As the hot stamping plate 3 rises, the spring 15 gradually returns to its original state, pushing the contact part 14 and the buffer column 11 to rise until they return to the initial position, preparing for the next press down. The buffer assembly effectively reduces the impact force when the hot stamping plate 3 presses down, avoids damage to the material due to instant strong force, and ensures the transfer quality. Through the buffering effect, it reduces the vibration and impact during the transfer process of the equipment, improves the overall stability and durability of the equipment. The introduction of the buffer assembly reduces the wear and fatigue of the internal structure of the equipment, thereby extending the service life of the equipment, reducing the discomfort caused by equipment vibration and noise, and improving the working environment and working efficiency of the operator. The design of the buffer assembly allows adjustment of the stiffness of the spring 15 and the length of the buffer column 11 according to different transfer requirements to adapt to the transfer of materials with different materials and sizes.
[0026] The working principle provided by the present utility model is as follows. The staff places the material to be transferred on the hot stamping bottom plate 8 and adjusts it to the appropriate position. At this time, the driving motor 4 is in the standby state, and the hot stamping plate 3 is preheated to the set temperature according to the instruction of the main control chassis 2. With the main control chassis 2 receiving the start signal, the driving motor 4 starts and drives the transmission screw 9 to rotate. The rotation of the transmission screw 9 drives the transmission block 10 to slide horizontally within the partition plate 5 through a threaded connection. Since the transmission block 10 is fixedly connected to the bottom plate 7, the bottom plate 7, the hot stamping bottom plate 8 and the material thereon also move accordingly until they reach directly below the hot stamping plate 3. When the material reaches the predetermined position, the hot stamping plate 3 slowly descends under the control of the main control chassis 2, contacts the material and performs thermal transfer. When the hot stamping plate 3 starts to press down and before contacting the material, it will first contact the abutting portion 14 at the bottom end of the buffer column 11. As the hot stamping plate 3 continues to press down, the abutting portion 14 gradually sinks along the abutting groove 601 at the top of the buffer plate 6. During the sinking process of the abutting portion 14, the spring 15 starts to be compressed and generates a reaction force, which counteracts the force of the hot stamping plate 3 pressing down, thereby slowing down the direct impact force of the hot stamping plate 3 on the material. At the same time, the buffer column 11 slides within the connection hole 12, which also plays a certain guiding and supporting role. After the buffering effect of the spring 15, the hot stamping plate 3 contacts the material at a relatively gentle speed and performs thermal transfer.
[0027] The present utility model covers any substitutions, modifications, equivalent methods and solutions made within the essence and scope of the present utility model. In order to enable the public to have a thorough understanding of the present utility model, specific details are described in detail in the following preferred embodiments of the present utility model. However, those skilled in the art can fully understand the present utility model without the description of these details. In addition, in order to avoid unnecessary confusion to the essence of the present utility model, well-known methods, processes, procedures, components and circuits are not described in detail.
[0028] The above are only the preferred embodiments of the present utility model. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present utility model, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present utility model.
Claims
1. A fully automatic thermal transfer machine, comprising a transfer machine body (1), characterized in that: A side frame (101) is provided on one side of the transfer machine body (1); a main control box (2) is fixedly connected to the top of the side frame (101); and a partition plate (5) is fixedly connected to the top of the transfer machine body (1); A transfer assembly, the transfer assembly is used for thermal transfer of materials, the transfer assembly is connected to a main control chassis (2); An adjustment component, the adjustment component is used to adjust the position of the material, the adjustment component is connected to the side frame (101); The buffer component is used to reduce the impact force when the transfer component is pressed down.
2. The fully automatic thermal transfer machine according to claim 1, characterized in that: The adjustment assembly comprises a driving motor (4) fixedly connected to one end of a transfer machine body (1); a transmission screw (9) is fixedly connected to the output shaft of the driving motor (4); an external thread of the transmission screw (9) is connected to a transmission block (10); a bottom plate (7) is fixedly connected to the top of the transmission block (10); the bottom plate (7) is slidably connected to the inside of a partition (5); and three equidistantly distributed thermal printing bottom plates (8) are fixedly connected to the top of the bottom plate (7).
3. The fully automatic thermal transfer machine according to claim 2, characterized in that: A limiting rod is fixedly connected to the interior of the transfer machine body (1), the bottom plate (7) is slidably connected to the outside of the limiting rod, the bottom of the bottom plate (7) is rotatably connected to a roller, and the roller is rollingly connected to the bottom of the inner cavity of the transfer machine body (1).
4. The fully automatic thermal transfer machine according to claim 2, characterized in that: The transfer assembly comprises a thermal printing plate (3) arranged on one side of the main control chassis (2), and the thermal printing plate (3) is located directly above the bottom plate (7).
5. The fully automatic thermal transfer machine according to claim 4, characterized in that: The buffer assembly comprises four connection holes (12) opened inside the four corners of the thermal printing plate (3), and a buffer column (11) is slidably connected inside each of the connection holes (12), a bolt (13) is internally threadedly connected to the top of the buffer column (11), and a semicircular abutment portion (14) is fixedly connected to the bottom end of the buffer column (11).
6. The fully automatic thermal transfer machine according to claim 5, characterized in that: A group of symmetrically arranged buffer plates (6) are fixedly connected to the top of the partition plate (5), and a resistance groove (601) is provided on the top of each buffer plate (6), wherein the resistance groove (601) is located directly below the resistance portion (14).
7. The fully automatic thermal transfer machine according to claim 6, characterized in that: A spring (15) is fixedly connected between the top of the abutment portion (14) and the bottom of the thermal printing plate (3), and the spring (15) is sleeved on the outside of the buffer column (11).