Full-automatic heat transfer printing machine
By introducing a linear servo module to connect the slide and assembly components in the heat transfer machine, the problem of inconvenient disassembly and assembly of the material carrier is solved, enabling rapid replacement and positioning of the mold base and improving the working efficiency of the heat transfer machine.
Patent Information
- Application Number
- CN202423302919.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-12-31
AI Technical Summary
The material carrier of the existing heat transfer machine is fixed to the servo module with bolts and other fasteners, which makes it inconvenient to disassemble and assemble the material carrier, and the operation of changing material trays of different shapes is cumbersome, which affects the convenience and working efficiency of the heat transfer machine.
The connecting slide is connected by a linear servo module and an assembly component is set on it, including a mold base positioning plate, an assembly slot and a two-way clamping component. The assembly component enables convenient fixing and disassembly of the heat transfer mold base, and the two-way clamping mechanism enables quick locking and unlocking of the mold base.
It enables quick assembly and disassembly of the heat transfer lower mold base, facilitates the replacement of workpiece positioning slots of different shapes, and improves the efficiency and ease of operation of heat transfer processing.
Smart Images

Figure CN223507905U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of heat transfer machine technology, and in particular to a fully automatic heat transfer machine. Background Technology
[0002] Heat transfer printing is a special process that uses heat transfer ink to print on ordinary paper or high-precision printing paper, and then heats it to a certain temperature within a few minutes using heat transfer equipment to transfer the image and colors on the paper realistically onto materials such as ceramic cups, ceramic plates, ceramic slabs, clothing, and metal. Heat transfer machines can print flat heat transfer images and curved heat transfer images.
[0003] In the existing technology, traditional heat transfer machines mainly include a heat transfer section and a material loading section. The material loading section is generally composed of a servo module and a material carrier. The workpieces to be heat transferred can be placed on the material carrier in sequence. The servo module drives the material carrier to reciprocate along the axial direction, so that the workpieces to be heat transferred can be loaded and unloaded outside the heat transfer area. The material carrier containing the workpieces to be heat transferred is then moved to the heat transfer section of the heat transfer machine for transfer processing.
[0004] However, in actual use, due to different processing requirements, different workpieces need to be heat-transfer processed. However, in the current heat transfer machine, the material carrier and the servo module are mainly fixed with fasteners such as bolts to ensure the fixing strength. This makes it inconvenient to disassemble and replace the material carrier on the servo module. When manually replacing the material carrier with different shaped material slots, the operation is cumbersome and the disassembly and assembly are difficult, which affects the convenience of using the heat transfer machine and reduces work efficiency. Utility Model Content
[0005] The purpose of this invention is to provide a fully automatic heat transfer machine to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a fully automatic heat transfer machine, comprising:
[0007] A linear servo module, wherein a connecting slide block is connected to the linear servo module and is movable along the axial direction of the linear servo module;
[0008] A heat transfer lower mold base, wherein a workpiece positioning groove for workpiece positioning is provided on the side of the heat transfer lower mold base opposite to the linear servo module.
[0009] An assembly component is disposed between the heat transfer lower mold base and the connecting slide, and the assembly component is used to lock the position of the heat transfer lower mold base on the connecting slide.
[0010] Preferably, the assembly component includes:
[0011] Mold base positioning plates, wherein there are two mold base positioning plates and they are symmetrically fixedly connected to the side of the heat transfer lower mold base near the connecting slide;
[0012] The assembly groove is located on the side of the connecting slide near the heat transfer lower mold base and is recessed downwards.
[0013] A bidirectional clamping assembly is disposed in an assembly groove and is used to press and fix the positioning plate of the mold base.
[0014] Preferably, the bidirectional clamping assembly includes:
[0015] A partition, which is fixedly connected inside the assembly slot;
[0016] A positioning clamping block is movably disposed on the side of the partition plate near the mold base positioning plate. A flat pusher is fixedly connected to the side of the positioning clamping block near the partition plate. One side of the flat pusher passes through the partition plate and extends to the side of the partition plate away from the positioning clamping block.
[0017] An elastic tension spring is fixedly connected between the positioning clamp and the partition plate;
[0018] A driving component is slidably connected between two pushers in the middle of the assembly slot, and the driving component is used to drive the two pushers to move in opposite directions.
[0019] Preferably, the driving component is an expansion head, the end of the expansion head near the side of the pusher is tapered, the side corner of the pusher facing the expansion head is provided with a tapered surface, and the tapered surfaces of the pusher and the expansion head on opposite sides are arranged parallel to each other.
[0020] Preferably, the bottom of the mold base positioning plate near the positioning clamping block has an outwardly convex slope, and the bottom of the positioning clamping block near the mold base positioning plate has an inwardly concave slope.
[0021] Preferably, a pull rod is slidably connected to the outer wall of the connecting slide, and one end of the pull rod extends into the assembly groove and is fixedly connected to the outer wall of the expansion head.
[0022] The technical effects and advantages of this utility model are as follows:
[0023] This invention, by setting an assembly component on a connecting slide that is driven by a linear servo module to translate axially, enables the lower heat transfer mold base to be positioned and fixed on the connecting slide using the assembly component via the workpiece positioning groove. This achieves the installation and fixation of the lower heat transfer mold base on the connecting slide. At the same time, the assembly component makes the assembly and disassembly process of the lower heat transfer mold base more convenient and efficient, so as to allow the replacement of lower heat transfer mold bases with different shaped workpiece positioning grooves according to processing requirements to meet the heat transfer processing of different workpieces, thereby helping to improve work efficiency. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0025] Figure 2 This is a bottom-view three-dimensional structural diagram of the heat transfer lower mold base of this utility model.
[0026] Figure 3 This is a side sectional view of the heat transfer lower mold base of this utility model.
[0027] Figure 4 This is a top sectional view of the connecting slide of this utility model.
[0028] In the diagram: 100, Linear servo module; 101, Connecting slide; 102, Assembly slot; 103, Positioning clamp; 104, Partition; 105, Elastic tension spring; 106, Flat push component; 107, Expansion head; 108, Pull rod; 200, Heat transfer lower mold base; 201, Workpiece positioning slot; 202, Mold base positioning plate. Detailed Implementation
[0029] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0030] This utility model provides, for example Figures 1-4 The image shows a fully automatic heat transfer machine.
[0031] Example 1 includes a linear servo module 100, a heat transfer lower mold base 200, and an assembly assembly. The linear servo module 100 is connected to a connecting slide 101 that can move along the axial direction of the linear servo module 100. The heat transfer lower mold base 200 has a workpiece positioning groove 201 for workpiece positioning on the side opposite to the linear servo module 100. The assembly assembly is disposed between the heat transfer lower mold base 200 and the connecting slide 101. The assembly assembly is used to lock the position of the heat transfer lower mold base 200 on the connecting slide 101, thereby positioning the heat transfer lower mold base 200 on the connecting slide 101. When the heat transfer lower mold base 200 is in the top position, the assembly components can be used to clamp and fix it, ensuring that the position between the heat transfer lower mold base 200 and the connecting slide 101 is locked and fixed. At the same time, the heat transfer lower mold base 200 can be quickly disassembled by unlocking the assembly components, making the replacement of the heat transfer lower mold base 200 more convenient and efficient. In this way, by replacing the heat transfer lower mold base 200 with workpiece positioning grooves 201 of different shapes, the needs of different workpieces for heat transfer processing on the heat transfer machine can be met, which helps to improve the efficiency of heat transfer processing of different workpieces.
[0032] The assembly components include a mold base positioning plate 202, an assembly groove 102, and a bidirectional clamping assembly. Two mold base positioning plates 202 are symmetrically and fixedly connected to the side of the heat transfer lower mold base 200 near the connecting slide 101. The assembly groove 102 is located on the side of the connecting slide 101 near the heat transfer lower mold base 200 and is recessed downwards. The bidirectional clamping assembly is disposed within the assembly groove 102 and is used to press and fix the mold base positioning plate 202. Using the bidirectional clamping mechanism, when the heat transfer lower mold base 200 is positioned to the top of the connecting slide 101, the mold base positioning plate 202 at the bottom of the heat transfer lower mold base 200... Inserted into the assembly slot 102 at the top of the connecting slide 101, the bidirectional clamping mechanism clamps and positions the mold base positioning plate 202 within the assembly slot 102, thereby locking and fixing the position between the heat transfer lower mold base 200 and the connecting slide 101. During disassembly, simply unlock the bidirectional clamping mechanism to release the clamping effect on the mold base positioning plate 202, allowing the heat transfer lower mold base 200 to be disassembled from the top of the connecting slide 101. The positioning is accurate and the operation is simple, making the replacement of the heat transfer lower mold base 200 more convenient and efficient, adapting to the heat transfer processing needs of different workpieces, and improving work efficiency.
[0033] Example 2 includes a linear servo module 100, a heat transfer lower mold base 200, and an assembly assembly. The linear servo module 100 is connected to a connecting slide 101 that can move along the axial direction of the linear servo module 100. The heat transfer lower mold base 200 has a workpiece positioning groove 201 for workpiece positioning on the side opposite to the linear servo module 100. The assembly assembly is disposed between the heat transfer lower mold base 200 and the connecting slide 101. The assembly assembly is used to lock the position of the heat transfer lower mold base 200 on the connecting slide 101, thereby positioning the heat transfer lower mold base 200 on the connecting slide 101. When the heat transfer lower mold base 200 is in the top position, the assembly components can be used to clamp and fix it, ensuring that the position between the heat transfer lower mold base 200 and the connecting slide 101 is locked and fixed. At the same time, the heat transfer lower mold base 200 can be quickly disassembled by unlocking the assembly components, making the replacement of the heat transfer lower mold base 200 more convenient and efficient. In this way, by replacing the heat transfer lower mold base 200 with workpiece positioning grooves 201 of different shapes, the needs of different workpieces for heat transfer processing on the heat transfer machine can be met, which helps to improve the efficiency of heat transfer processing of different workpieces.
[0034] The assembly components include a mold base positioning plate 202, an assembly groove 102, and a bidirectional clamping assembly. Two mold base positioning plates 202 are symmetrically and fixedly connected to the side of the heat transfer lower mold base 200 near the connecting slide 101. The assembly groove 102 is located on the side of the connecting slide 101 near the heat transfer lower mold base 200 and is recessed downwards. The bidirectional clamping assembly is disposed within the assembly groove 102 and is used to press and fix the mold base positioning plate 202. Using the bidirectional clamping mechanism, when the heat transfer lower mold base 200 is positioned to the top of the connecting slide 101, the mold base positioning plate 202 at the bottom of the heat transfer lower mold base 200... Inserted into the assembly slot 102 at the top of the connecting slide 101, the bidirectional clamping mechanism clamps and positions the mold base positioning plate 202 within the assembly slot 102, thereby locking and fixing the position between the heat transfer lower mold base 200 and the connecting slide 101. During disassembly, simply unlock the bidirectional clamping mechanism to release the clamping effect on the mold base positioning plate 202, and the heat transfer lower mold base 200 can be disassembled from the top of the connecting slide 101. The positioning is accurate and the operation is simple, making the replacement of the heat transfer lower mold base 200 more convenient and efficient, adapting to the heat transfer processing needs of different workpieces, and improving work efficiency.
[0035] The bidirectional clamping assembly includes a partition 104, a positioning clamping block 103, an elastic spring 105, and a driving component. The partition 104 is fixedly connected inside the assembly groove 102. The positioning clamping block 103 is movably disposed on the side of the partition 104 near the mold base positioning plate 202. A flat pusher 106 is fixedly connected to the side of the positioning clamping block 103 near the partition 104. One side of the flat pusher 106 passes through the partition 104 and extends to the side of the partition 104 opposite to the positioning clamping block 103. The elastic spring 105 is fixedly connected between the positioning clamping block 103 and the partition 104. The driving component is slidably connected between the two flat pushers 106 in the middle of the assembly groove 102. The driving component is used to drive the two flat pushers 106 to move in opposite directions. By pulling the driving component to move, the driving component drives the two flat pushers 106 during the translation process. 6. Move towards the mold base positioning plate 202. At this time, the elastic spring 105 stretches and deforms to generate an elastic counter-pushing force until the flat pusher 106 drives the positioning clamp 103 to adhere to and squeeze the side wall of the mold base positioning plate 202. It cooperates with the inner wall of the assembly groove 102 to clamp and fix the mold base positioning plate 202, so that the heat transfer lower mold base 200 cannot be detached from the top of the connecting slide 101, thus completing the assembly of the heat transfer lower mold base 200. When disassembling, simply move the expansion head 107 in the opposite direction so that the positioning clamp 103 and the flat pusher 106 can be reset and move away from the mold base positioning plate 202 by the elastic pushing force of the elastic spring 105, releasing the pressure on the mold base positioning plate 202. This allows the heat transfer lower mold base 200 to be directly detached from the top of the connecting slide 101, making the disassembly and assembly process of the heat transfer lower mold base 200 simple and efficient.
[0036] In a preferred embodiment, the driving component is an expansion head 107. The end of the expansion head 107 near the pusher 106 is tapered, and the pusher 106 has a tapered surface at one corner facing the expansion head 107. The tapered surfaces of the pusher 106 and the expansion head 107 are parallel to each other. This allows the expansion head 107 to move horizontally, and the guide effect of the tapered surfaces between the expansion head 107 and the pusher 106 enables the pusher 106 to move in a direction perpendicular to the direction of movement of the expansion head 107. A pull rod 108 is slidably connected to the outer wall of the connecting slide 101, and one end of the pull rod 108 extends into the assembly groove 102. It is fixedly connected to the outer wall of the expansion head 107. The pull rod 108 assists the operator in manually pulling the expansion head 107 to move, making the driving operation more convenient and labor-saving. The bottom of the mold base positioning plate 202 near the positioning clamp 103 is an outward convex slope, and the bottom of the positioning clamp 103 near the mold base positioning plate 202 is an inward concave slope. The bottom slopes of the mold base positioning plate 202 and the positioning clamp 103 are set to form a mutual interlocking state. In this way, when the positioning clamp 103 presses the side wall of the mold base positioning plate 202, it can enhance the locking effect of the mold base positioning plate 202 in the vertical direction, thereby improving the stability of the positioning of the heat transfer lower mold base 200.
[0037] 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 fully automatic heat transfer machine, characterized in that, include: A linear servo module (100) is provided with a connecting slide (101) that can move along the axial direction of the linear servo module (100). A heat transfer lower mold base (200) has a workpiece positioning groove (201) on the side opposite to the linear servo module (100) for workpiece positioning. An assembly component is disposed between the heat transfer lower mold base (200) and the connecting slide (101), the assembly component being used to lock the position of the heat transfer lower mold base (200) on the connecting slide (101).
2. The fully automatic heat transfer machine according to claim 1, characterized in that, The assembly components include: The mold base positioning plate (202) consists of two plates, which are symmetrically fixedly connected to the side of the heat transfer lower mold base (200) near the connecting slide (101); Assembly groove (102), the assembly groove (102) is located on the side of the connecting slide (101) near the heat transfer lower mold base (200) and is recessed downward; A bidirectional clamping assembly is disposed in the assembly groove (102) and is used to press and fix the mold base positioning plate (202).
3. The fully automatic heat transfer machine according to claim 2, characterized in that, The bidirectional clamping assembly includes: A partition (104) is fixedly connected to the inside of the assembly slot (102); A positioning clamp (103) is movably disposed on the side of the partition (104) near the mold base positioning plate (202). A flat pusher (106) is fixedly connected to the side of the positioning clamp (103) near the partition (104). One side of the flat pusher (106) passes through the partition (104) and extends to the side of the partition (104) away from the positioning clamp (103). An elastic tension spring (105) is fixedly connected between the positioning clamp (103) and the partition plate (104); A driving component is slidably connected between two pushers (106) in the middle of the assembly groove (102), and the driving component is used to drive the two pushers (106) to translate in opposite directions.
4. The fully automatic heat transfer machine according to claim 3, characterized in that, The driving component is an expansion head (107). The end of the expansion head (107) near the pusher (106) is conical. The pusher (106) has a conical surface at one corner facing the expansion head (107). The conical surfaces of the pusher (106) and the expansion head (107) are parallel to each other.
5. A fully automatic heat transfer machine according to claim 4, characterized in that, The bottom of the mold base positioning plate (202) near the positioning clamp (103) is a convex outward slope, and the bottom of the positioning clamp (103) near the mold base positioning plate (202) is a concave inward slope.
6. A fully automatic heat transfer machine according to claim 5, characterized in that, A pull rod (108) is slidably connected to the outer wall of the connecting slide (101). One end of the pull rod (108) extends into the assembly groove (102) and is fixedly connected to the outer wall of the expansion head (107).