Motor-controlled transfer printer

By designing the guiding mechanism and hot stamping mechanism of the electronically controlled transfer machine, automatic positioning and precise adjustment of the embossing wheel are achieved, solving the problem of time-consuming and labor-intensive manual adjustment in traditional transfer machines, and improving transfer efficiency and accuracy.

WO2026108525A1PCT designated stage Publication Date: 2026-05-28SHANGHAI INTCO INDUSTRIES CO LTD
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Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-10-26
Publication Date
2026-05-28

AI Technical Summary

Technical Problem

The position of the embossing wheel in a traditional transfer printing machine needs to be adjusted manually by rotating the gear plate, which is time-consuming, labor-intensive, inefficient, and inaccurate in positioning.

Method used

An electronically controlled transfer machine is used, which uses a gear plate and a drive motor in the guide mechanism to achieve automatic positioning of the embossing wheel. Combined with a braking device, cylinder and adjustment module, it ensures the precise movement and position adjustment of the embossing wheel.

Benefits of technology

It improves the efficiency and accuracy of embossing wheel position adjustment, reduces the time and force required for manual operation, and ensures the stability and quality of the transfer process.

✦ Generated by Eureka AI based on patent content.

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    Figure CN2025130024_28052026_PF_FP_ABST
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Abstract

A motor-controlled transfer printer, comprising a guide mechanism (100) and a hot stamping mechanism (200). The guide mechanism comprises a vertically-arranged gear disc (110), and fixing teeth (111) are arranged around the periphery of the gear disc. The hot stamping mechanism comprises a mounting frame (220), a driving motor (210) fixedly mounted on the mounting frame, and an embossing wheel (230) mounted on the mounting frame, wherein a driving gear is fixedly mounted at the output end of the driving motor, the driving gear is in gear mesh with the fixing teeth, and when the driving motor drives the driving gear to rotate, the gear disc remains stationary, so that the mounting frame moves along the gear disc and then the embossing wheel moves to a preset position along with the mounting frame. In the transfer printer, there is no need to manually rotate the gear disc to adjust the position of the embossing wheel.
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Description

Electronic transfer printing machine Technical Field

[0001] The application relates to the field of thermal transfer technology, and in particular to an electronically controlled transfer machine. Background Technology

[0002] With the development of the transfer printing industry, in order to give profile surfaces a variety of colorful appearance effects, people have invented various transfer printing machines to transfer various desired patterns onto the surface of profiles.

[0003] Before transferring and embossing patterns onto the surface of a profile, the embossing wheel needs to be adjusted to the appropriate position. However, the position of the embossing wheel on a traditional transfer printing machine needs to be adjusted manually by rotating the gear plate, which is time-consuming, labor-intensive, inefficient, and inaccurate in positioning. Summary of the Invention

[0004] This application provides an electronically controlled transfer printing machine, which aims to solve the problems of traditional transfer printing machines where the position of the embossing wheel needs to be adjusted manually by rotating the gear plate, which is time-consuming, labor-intensive, inefficient, and inaccurate in positioning.

[0005] To solve the above-mentioned technical problems, this application proposes an electronically controlled transfer printing machine, which includes a guiding mechanism and a hot stamping mechanism;

[0006] The guiding mechanism includes a gear disk, which is vertically arranged. The edge of the gear disk has a fixed tooth. The hot stamping mechanism includes a drive motor, a mounting bracket, and an embossing wheel. The drive motor is fixedly assembled with the mounting bracket. The embossing wheel is mounted on the mounting bracket. The output end of the drive motor is fixedly assembled with a drive gear. The drive gear engages with the fixed tooth. When the drive motor drives the drive gear to rotate, the gear disk remains stationary, causing the drive motor to drive the mounting bracket to move along the gear disk, thereby causing the embossing wheel to move with the mounting bracket to a preset position.

[0007] Furthermore, the hot stamping mechanism also includes a braking device, which is fixedly assembled with the mounting bracket. The braking device includes brake pawls that clamp onto both sides of the gear disc.

[0008] Furthermore, the hot stamping mechanism also includes a first cylinder and an adjustment module. The first cylinder is fixedly assembled with the mounting bracket, and the adjustment module is fixedly connected to the output end of the first cylinder. The embossing wheel is mounted based on the adjustment module, and the first cylinder is used to drive the adjustment module and the embossing wheel to move in a straight line.

[0009] Furthermore, the mounting bracket is provided with two first dovetail grooves, which are symmetrically arranged on both sides of the adjustment module. The adjustment module includes two first sliders, which are slidably assembled with the first dovetail grooves. The first dovetail grooves are used to provide guidance for the movement of the adjustment module.

[0010] Furthermore, the adjustment module also includes a second dovetail groove, a second slider, a threaded rod, and a handwheel. The direction of the second dovetail groove is perpendicular to the direction of the first dovetail groove. The second slider is slidably assembled with the second dovetail groove. The threaded rod is threadedly assembled with the second slider. The handwheel is fixedly connected to the end of the threaded rod away from the second slider. The embossing wheel is connected to the second slider. Rotating the handwheel causes the second slider to slide along the second dovetail groove, thereby adjusting the position of the embossing wheel.

[0011] Furthermore, the gear disk is provided with a first guide rail, and the mounting bracket also includes a plurality of first rollers, which are clamped on both sides of the first guide rail in the vertical direction.

[0012] Furthermore, the gear disk also includes a circular through groove, which is concentrically arranged with the gear disk and extends through the gear disk. The mounting bracket also includes a plurality of second rollers, which clamp the gear disk in the thickness direction of the gear disk through the circular through groove.

[0013] Furthermore, the guiding mechanism also includes a guide disk, which is arranged parallel to and spaced apart from the gear disk. The guide disk is provided with a second guide rail. The mounting bracket also includes a plurality of third rollers, which are clamped on both sides of the second guide rail in the vertical direction.

[0014] Furthermore, the electronically controlled transfer machine also includes a base, the surface of which is provided with a first upright plate and a second upright plate, the first upright plate and the second upright plate being arranged parallel to each other at intervals, the gear disk being fixedly installed with the first upright plate, and the guide disk being fixedly installed with the second upright plate.

[0015] Furthermore, the electronically controlled transfer machine also includes a feeding shaft, a receiving shaft, and a receiving motor. The feeding shaft and the receiving shaft are respectively fixedly installed on both sides of the mounting bracket, and the feeding shaft and the receiving shaft are arranged in parallel and spaced apart. The receiving motor is connected to the receiving shaft and is used to drive the receiving shaft to rotate.

[0016] The beneficial effects of this application are as follows: In the electronically controlled transfer printing machine provided in this application, the guiding mechanism includes a gear disk, which is vertically arranged. The edge of the gear disk has a fixed ring of teeth. The hot stamping mechanism includes a drive motor, a mounting bracket, and an embossing wheel. The drive motor is fixedly assembled with the mounting bracket, and the embossing wheel is mounted on the mounting bracket. A drive gear is fixedly assembled at the output end of the drive motor, and the drive gear engages with the fixed teeth. When the drive motor drives the drive gear to rotate, the gear disk remains stationary, causing the mounting bracket to move along the gear disk, thereby causing the embossing wheel to move to a preset position with the mounting bracket. Compared to the traditional method of manually rotating the gear disk to adjust the position of the embossing wheel, the electronically controlled transfer printing machine provided in this application has the advantages of high efficiency and convenience. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Wherein:

[0018] Figure 1 is a three-dimensional structural schematic diagram of an electronically controlled transfer printer according to an embodiment of the present invention;

[0019] Figure 2 is a three-dimensional structural diagram of the guide mechanism and related parts in an electronically controlled transfer machine according to an embodiment of the present invention;

[0020] Figure 3 is a three-dimensional structural diagram of the hot stamping mechanism and related parts in an electronically controlled transfer printing machine according to an embodiment of the present invention;

[0021] Figure 4 is a three-dimensional structural schematic diagram of the hot stamping mechanism and related parts in an electronically controlled transfer printer according to an embodiment of the present invention from another perspective.

[0022] Figure 5 is a three-dimensional structural diagram of the braking device in an electronically controlled transfer printer according to an embodiment of the present invention.

[0023] Explanation of reference numerals in the attached drawings: 100, guiding mechanism; 110, gear disk; 111, fixed tooth; 112, first guide rail; 113, circular through slot; 120, guide disk; 121, second guide rail; 200, hot stamping mechanism; 210, drive motor; 220, mounting bracket; 221, top plate; 222, first side plate; 223, second side plate; 224, first dovetail groove; 225, second mounting plate; 226, third mounting plate; 227, fourth mounting plate; 230, embossing wheel; 240, braking device; 241, brake pawl; 250, first cylinder; 260, adjusting module; 261, first slider; 262, first mounting plate; 263, second dovetail groove; 264, second slider; 265, threaded rod; 266, handwheel; 270. First roller; 280, Second roller; 290, Third roller; 300, Base; 310, Bearing surface; 311, First upright plate; 312, Second

[0024] Upright plate; 400, feeding shaft; 500, receiving shaft; 510, receiving motor; 600, support rod; 610, bottom wheel; 700, controller. Detailed Implementation

[0025] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.

[0026] Those skilled in the art will understand that, unless explicitly stated otherwise, the singular forms “a,” “an,” “the,” and “the” used herein may also include the plural forms. It should be further understood that the term “comprising” as used in this application means the presence of features, integers, steps, operations, elements, modules, and / or components, but does not preclude the presence or addition of one or more other features, integers, steps, operations, elements, modules, components, and / or groups thereof. It should be understood that when we say an element is “connected” or “coupled” to another element, it can be directly connected or coupled to the other element, or there may be intermediate elements. Furthermore, “connected” or “coupled” as used herein can include wireless connections or wireless coupling. The term “and / or” as used herein includes all or any modules and all combinations of one or more associated listed items.

[0027] It will be understood by those skilled in the art that, unless otherwise defined, all terms used herein (including technical and scientific terms) have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains. It should also be understood that terms such as those defined in general dictionaries should be understood to have the same meaning as in the context of the prior art, and should not be interpreted in an idealized or overly formal sense unless specifically defined as herein.

[0028] As shown in Figures 1 to 5, this application provides an electronically controlled transfer printing machine, which includes a guiding mechanism 100 and a hot stamping mechanism 200. The guiding mechanism 100 includes a gear disk 110, which is vertically arranged. The edge of the gear disk 110 is provided with a fixed tooth 111. The hot stamping mechanism 200 includes a drive motor 210, a mounting bracket 220, and an embossing wheel 230. The drive motor 210 is fixedly assembled with the mounting bracket 220. The embossing wheel 230 is mounted on the mounting bracket 220. The output end of the drive motor 210 is fixedly assembled with a drive gear. The drive gear and the fixed tooth 111 are engaged. When the drive motor 210 drives the drive gear to rotate, the gear disk 110 remains stationary, causing the mounting bracket 220 to move along the gear disk 110, thereby causing the embossing wheel 230 to move to a preset position with the mounting bracket 220.

[0029] In one specific embodiment, the guide mechanism 100 is used to guide the movement of the hot stamping mechanism 200, providing a stable movement path for the hot stamping mechanism 200. The guide mechanism 100 includes a gear disk 110, which is disc-shaped and vertically arranged. The gear disk 110 has several fixed teeth 111 around its edge. The hot stamping mechanism 200 is the core component for realizing the transfer function. The hot stamping mechanism 200 includes a drive motor 210, a mounting bracket 220, and an embossing wheel 230. The mounting bracket 220 includes a top plate.

[0030] 221. The first side plate 222 and the second side plate 223 are arranged in parallel and spaced apart. The top plate 221 fixes the first side plate 222 and the second side plate 223 together, and the first side plate 222 and the second side plate 223 are both perpendicular to the top plate 221, so that the mounting bracket 220 is n-shaped as a whole. A drive motor 210 is provided on the side of the first side plate 222 away from the second side plate 223. The drive motor 210 serves as the power source for the hot stamping mechanism 200, providing power for the movement of the entire hot stamping mechanism 200. The drive motor 210 is horizontally arranged and fixedly connected to the mounting bracket 220. A drive gear is provided at the output end of the drive motor 210. The drive gear is disc-shaped and vertically arranged. The engagement between the drive gear and the fixed teeth 111 on the edge of the gear disk 110 constitutes a gear transmission. The embossing wheel 230 is a component that directly contacts the material to be transferred and performs embossing or transfer operations. The embossing wheel 230 is fixedly installed on the mounting bracket 220.

[0031] When the drive motor 210 starts, the drive gear rotates. Since the gear disk 110 is fixed, according to the gear transmission principle, the mounting bracket 220 will move along the circumference of the gear disk 110, thereby driving the embossing wheel 230 to the predetermined working position. This design makes the movement trajectory of the embossing wheel 230 precise and controllable.

[0032] In summary, the design of driving the embossing wheel 230 to move along the gear disk 110 via the drive motor 210 makes the motion control of the embossing wheel 230 more precise. Compared with traditional transfer printing machines, the motion path of the embossing wheel 230 is precisely controlled by gear transmission, avoiding the time-consuming and laborious problem caused by manually rotating the gear disk 110 to adjust the position of the embossing wheel 230.

[0033] As shown in Figure 5, the hot stamping mechanism 200 also includes a braking device 240, which is fixedly assembled with the mounting bracket 220. The braking device 240 includes a brake pawl 241, which clamps onto both sides of the gear disk 110.

[0034] In one specific embodiment, a braking device 240 is disposed on the side of the mounting bracket 220 near the gear disk 110. The braking device 240 is a component used to brake the movement of the mounting bracket 220. The braking device 240 is fixed together with the mounting bracket 220 to ensure that the braking device 240 can move synchronously with the mounting bracket 220. The braking device 240 includes two brake pawls 241, which are located on both sides of the gear disk 110 in the thickness direction. When it is necessary to stop the movement of the mounting bracket 220, the two brake pawls 241 clamp together, causing friction between the brake pawls 241 and the gear disk 110, thereby preventing relative movement between the gear disk 110 and the drive gear, and achieving braking of the mounting bracket 220 and the embossing wheel 230. This design of two brake pawls 241 clamping on both sides of the gear disk 110 can provide stable and uniform braking force.

[0035] In summary, the braking device 240 enables the embossing wheel 230 to stop quickly in its current position during emergencies or normal operation, ensuring the accuracy and stability of braking and preventing problems such as shaking of the mounting bracket 220 or displacement of the embossing wheel 230 due to uneven braking.

[0036] As shown in Figure 3, the hot stamping mechanism 200 also includes a first cylinder 250 and an adjustment module 260. The first cylinder 250 is fixedly assembled with the mounting bracket 220, and the adjustment module 260 is fixedly connected to the output end of the first cylinder 250. The embossing wheel 230 is mounted based on the adjustment module 260. The first cylinder 250 is used to drive the adjustment module 260 and the embossing wheel 230 to move in a straight line.

[0037] In one specific embodiment, the first cylinder 250 is a power device capable of providing linear reciprocating motion. The first cylinder 250 is fixedly connected to the middle of the top plate 221 in the mounting bracket 220, and the first cylinder 250 is perpendicular to the top plate 221. The adjustment module 260 is an intermediate component connecting the first cylinder 250 and the embossing wheel 230. The adjustment module 260 is fixedly connected to the output end of the first cylinder 250 and connected to the embossing wheel 230. The adjustment module 260 plays the role of transmitting power and adjusting the position of the embossing wheel 230. When the drive motor 210 drives the embossing wheel 230 to move to a preset position, the first cylinder 250, through its extension and retraction movement, drives the adjustment module 260 and the embossing wheel 230 to perform linear motion, so as to further adjust the position of the embossing wheel 230. This design can precisely adjust the positional relationship between the embossing wheel 230 and the material according to different transfer material thicknesses or transfer process requirements, ensuring the appropriateness of the transfer pressure.

[0038] In summary, in actual production, the thickness of the transfer material often varies. By driving the embossing wheel 230 to move in a straight line through the first cylinder 250, this variation can be easily handled, ensuring that the embossing wheel 230 and the material always maintain the best contact pressure, thus avoiding problems such as unclear transfer or material damage caused by excessive or insufficient pressure.

[0039] As shown in Figure 3, the mounting bracket 220 is provided with two first dovetail grooves 224, which are symmetrically arranged on both sides of the adjustment module 260. The adjustment module 260 includes two first sliders 261, which are slidably assembled with the first dovetail grooves 224. The first dovetail grooves 224 are used to provide guidance for the adjustment module 260 to move in the vertical direction.

[0040] In one specific embodiment, two first dovetail grooves 224 are symmetrically arranged on both sides of the adjustment module 260. The first dovetail grooves 224 are in the same direction as the first cylinder 250. The adjustment module 260 includes two symmetrically arranged first sliders 261. The first sliders 261 match the first dovetail grooves 224. The two first sliders 261 are slidably assembled with the two first dovetail grooves 224 respectively. The first sliders 261 can slide smoothly within the dovetail grooves. The way the first sliders 261 and the first dovetail grooves 224 are engaged can effectively limit the movement direction of the adjustment module 260, ensuring that the adjustment module 260 moves stably and accurately. When the first cylinder 250 pushes the adjustment module 260...

[0041] When the section module 260 moves, the first slider 261 slides along the first dovetail groove 224, ensuring the movement accuracy of the embossing wheel 230 in the straight direction and avoiding positional deviation caused by lateral force or other factors.

[0042] As shown in Figure 4, the adjustment module 260 also includes a second dovetail groove 263, a second slider 264, a threaded rod 265, and a handwheel 266. The direction of the second dovetail groove 263 is perpendicular to the direction of the first dovetail groove 224. The second slider 264 is slidably assembled with the second dovetail groove 263. The threaded rod 265 is threadedly assembled with the second slider 264. The handwheel 266 is fixedly connected to the end of the threaded rod 265. The embossing wheel 230 is connected to the second slider 264. When the handwheel 266 is rotated, the second slider 264 will slide along the second dovetail groove 263, thereby adjusting the position of the embossing wheel 230.

[0043] In one specific embodiment, the adjustment module 260 further includes a first mounting plate 262, a second dovetail groove 263, a second slider 264, a threaded rod 265, and a handwheel 266. The first mounting plate 262 is disposed between the first side plate 222 and the second side plate 223, and the first mounting plate 262 is parallel and spaced apart from the top plate 221. The output end of the first cylinder 250 is fixedly connected to the first mounting plate 262. Two first sliders 261 are symmetrically disposed on both sides of the first mounting plate 262 and fixedly assembled with the first mounting plate 262. The first mounting plate 262 has a second dovetail groove 263 on the side near the embossing wheel 230. The direction of the second dovetail groove 263 is perpendicular to the direction of the first dovetail groove 224. The shape of the second slider 264 matches the shape of the second dovetail groove 263. The second slider 264 and the second dovetail groove 263 are aligned. The sliding assembly includes a threaded rod 265 and a second dovetail groove 263 arranged in the same direction, and the threaded rod 265 is threadedly assembled with the second slider 264. A handwheel 266 is provided at the end of the threaded rod 265 away from the second slider 264, and the handwheel 266 is fixedly connected to the threaded rod 265. The hot stamping mechanism 200 also includes a fixed plate and a roller motor. The fixed plate is fixedly assembled with the second slider 264, and a mounting hole is provided on the side of the fixed plate away from the second slider 264. The roller motor passes through the mounting hole and is fixedly assembled with the fixed plate. The embossing wheel 230 is fixedly assembled with the output end of the roller motor, and the roller motor is used to drive the embossing wheel 230 to rotate.

[0044] In summary, the adjustment structure composed of the second dovetail groove 263, the second slider 264, the threaded rod 265, and the handwheel 266 provides high precision and convenience for adjusting the position of the embossing wheel 230 in the direction perpendicular to the first cylinder 250. In actual operation, it is sometimes necessary to adjust the position of the embossing wheel 230 from multiple directions. After the drive motor 210 adjusts the position of the embossing wheel 230 along the gear disk 110, the first cylinder 250 drives the embossing wheel 230 to move linearly, facilitating further adjustment of its position. Then, by rotating the handwheel 266, the embossing wheel 230 is driven to move in the direction perpendicular to the first cylinder 250, achieving omnidirectional position adjustment of the embossing wheel 230. Furthermore, during the adjustment of the embossing wheel 230's position by the first cylinder 250 and the handwheel 266, the first dovetail groove 224 and the second dovetail groove 263 provide guidance, ensuring the stability of the adjustment process and avoiding positional deviations caused by shaking or loosening during adjustment.

[0045] As shown in Figures 2 and 3, the gear disk 110 is provided with a first guide rail 112, and the mounting bracket 220 also includes a number of first rollers 270, which are clamped on both sides of the first guide rail 112 in the vertical direction.

[0046] In one specific embodiment, a first annular guide rail 112 is provided on the gear disk 110. The first guide rail 112 is concentrically arranged with the gear disk 110 and provides a guiding path for the movement of the mounting bracket 220. A second mounting plate 225 is provided on the side of the first side plate 222 near the gear disk 110. Four first rollers 270 are fixedly mounted on the second mounting plate 225. The four first rollers 270 are arranged in a matrix and are sandwiched between the two sides of the first guide rail 112, so that the first rollers 270 can roll along the first guide rail 112 to ensure the stability of the mounting bracket 220 when it moves along the gear disk 110.

[0047] In summary, the design of the first roller 270 changes the friction method from sliding to rolling, reducing motion resistance and making the movement of the mounting bracket 220 smoother and more agile. This not only reduces the load on the drive motor 210 and improves energy efficiency but also extends the service life of the equipment. Furthermore, the structure of the first roller 270 clamped between both sides of the first guide rail 112 ensures the stability and accuracy of the mounting bracket 220's movement, avoiding positional deviations of the embossing wheel 230 caused by the mounting bracket 220 wobbling or deviating from the track, thereby improving the transfer quality.

[0048] As shown in Figures 2 and 3, the gear disk 110 also includes a circular through groove 113, which is concentrically arranged with the gear disk 110 and passes through the gear disk 110. The mounting bracket 220 also includes several second rollers 280, which clamp the gear disk 110 in the thickness direction through the circular through groove 113.

[0049] In one specific embodiment, a circular through groove 113 is provided at the center of the gear disk 110. The circular through groove 113 is concentric with the gear disk 110 and passes through the gear disk 110. The mounting bracket 220 also includes a third mounting plate 226, which is perpendicularly connected to the second mounting plate 225. Four second rollers 280 are provided on the third mounting plate 226. The four second rollers 280 are arranged in a matrix. The second rollers 280 are clamped in pairs in the thickness direction of the gear disk 110 through the circular through groove 113.

[0050] In summary, the second roller 280 positions and supports the mounting bracket 220 in a direction perpendicular to the plane of the gear disk 110. During the circumferential movement of the mounting bracket 220 along the gear disk 110, the second roller 280 can ensure the stability of the mounting bracket 220 in the thickness direction of the gear disk 110, and prevent the mounting bracket 220 from being displaced in the thickness direction of the gear disk 110 when subjected to external forces or its own vibration.

[0051] As shown in Figures 1 and 4, the guide mechanism 100 also includes a guide disk 120, which is arranged parallel to and spaced apart from the gear disk 110. The guide disk 120 is provided with a second guide rail 121. The mounting bracket 220 also includes several third rollers 290, which are clamped on both sides of the second guide rail 121 in the vertical direction.

[0052] In one specific embodiment, the guide disk 120 is part of the guide mechanism 100. The guide disk 120 is disc-shaped and is arranged parallel to and spaced apart from the gear disk 110. The guide disk 120 and the gear disk 110 work together to provide more comprehensive motion guidance for the mounting bracket 220. The position and structural design of the guide disk 120 further optimizes the motion trajectory of the mounting bracket 220 and enhances the motion stability of the entire transfer machine.

[0053] The second guide rail 121 is annular and is located on the side of the guide plate 120 near the gear plate 110. The second guide rail 121 is concentric with the first guide rail 112 and has the same diameter as the first guide rail 112. A fourth mounting plate 227 is provided on the side of the second side plate 223 near the guide plate 120. Four third rollers 290 are provided on the fourth mounting plate 227. The four third rollers 290 are arranged in a matrix and clamped in pairs on both sides of the second guide rail 121 in the vertical direction. This clamping method allows the third rollers 290 to roll along the second guide rail 121, which is the same as the movement principle of the first roller 270 on the first guide rail 112. This converts the friction between the mounting bracket 220 and the guide plate 120 into rolling friction, reducing movement resistance and ensuring the stability and accuracy of the movement of the mounting bracket 220 on the second guide rail 121.

[0054] In summary, the design of the guide plate 120, the second guide rail 121, and the third roller 290 further improves the stability and accuracy of the movement of the mounting bracket 220. In the actual operation of the transfer machine, relying solely on the gear plate 110 and its associated guide rails and rollers cannot fully meet the complex motion requirements. Adding the guide plate 120 and its matching second guide rail 121 and third roller 290 structure guides and supports the mounting bracket 220 from another plane, forming a stable motion guide as shown in Figure 2. The electronic transfer machine also includes a base 300, whose surface is provided with a first upright plate 311 and a second upright plate 312. The first upright plate 311 and the second upright plate 312 are arranged parallel and spaced apart. The gear plate 110 is fixedly installed to the first upright plate 311, and the guide plate 120 is fixedly installed to the second upright plate 312.

[0055] In one specific embodiment, the base 300 is located below the guide mechanism 100 and the hot stamping mechanism 200. The base 300 is the fundamental support component of the entire electronic transfer machine, providing a platform for the installation of other components, ensuring a stable foundation for each component during operation, bearing the forces generated during operation, and maintaining the stability of the entire device. The base 300 has a bearing surface 310, which is horizontal. A first vertical plate 311 and a second vertical plate are provided on the bearing surface 310.

[0056] 312, the first upright plate 311 and the second upright plate 312 are arranged parallel to each other and spaced apart, and both the first upright plate 311 and the second upright plate 312 are connected to the bearing.

[0057] The cross-section 310 is vertically connected, and the gear disk 110 is fixedly assembled with the side of the first vertical plate 311 near the second vertical plate 312, so that the gear...

[0058] The disk 110 can remain stable in the vertical direction. The guide disk 120 is fixedly assembled with the side of the second vertical plate 312 near the first vertical plate 311, which ensures the positional stability of the guide disk 120 and enables it to work in conjunction with the gear disk 110 to provide accurate guidance for the movement of the mounting bracket 220.

[0059] As shown in Figure 3, the electronic transfer machine also includes a feeding shaft 400, a receiving shaft 500, and a receiving motor 510. The feeding shaft 400 and the receiving shaft 500 are respectively fixedly installed on both sides of the mounting bracket 220, and the feeding shaft 400 and the receiving shaft 500 are arranged in parallel and spaced apart. The receiving motor 510 is connected to the receiving shaft 500 so as to drive the receiving shaft 500 to rotate.

[0060] In one specific embodiment, the feeding shaft 400 is cylindrical and horizontally positioned, and is fixedly connected to the side of the first side plate 222 near the gear disk 110. The feeding shaft 400 is mainly used to hold the roll of transfer film and is the source of the transfer film supply. It enables the transfer film material to be supplied to the transfer area in an orderly manner in the form of a roll, facilitating continuous transfer operations.

[0061] The take-up shaft 500 and the unload shaft 400 are arranged parallel to each other and spaced apart. The take-up shaft 500 is fixedly connected to the side of the second side plate 223 near the guide plate 120. A take-up motor 510 is provided at the end of the take-up shaft 500. The output end of the take-up motor 510 is fixedly assembled to the take-up shaft 500. When the take-up motor 510 is started, the rotation of the motor drives the take-up shaft 500 to rotate, thereby realizing the winding operation of the transfer film. By controlling the speed of the take-up motor 510, the take-up speed can be adjusted to match the transfer speed, avoiding material accumulation or over-tension, and ensuring the smooth progress of the transfer process.

[0062] In one specific embodiment, the electronic transfer machine further includes support rods 600 and bottom wheels 610. Two support rods 600 are provided, arranged parallel and spaced apart, positioned between the first vertical plate 311 and the second vertical plate 312, and mounted based on the first and second vertical plates 311 and 312. The support rods 600 are horizontally arranged, each with a mounting groove in its middle section. A roller is located at the axial center of the bottom wheel 610, matching the mounting groove and placed within it to fix the position of the bottom wheel 610. The bottom wheel 610 and the embossing wheel 230 are arranged opposite each other. The bottom wheel 610 supports the profile to be transferred, preventing deformation of the profile when the embossing wheel 230 applies pressure.

[0063] In one specific embodiment, the electronic transfer machine also includes a controller 700, which is equipped with various control buttons. Users can control the start and stop of the drive motor 210 and the brake device 240 through the control buttons, and make it convenient for users to adjust the position of the embossing wheel 230. A magnet is provided on the back of the controller 700 so that the controller 700 can be attached to the electronic transfer machine to prevent the controller 700 from being lost.

[0064] The above are merely preferred embodiments of this application and do not limit the patent scope of this application. Any equivalent structural or procedural transformations made using the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this application.

Claims

1. An electronically controlled transfer printing machine, characterized in that, include: A guiding mechanism and a hot stamping mechanism are provided. The guiding mechanism includes a gear disk, which is vertically arranged and has a fixed tooth on its edge. The hot stamping mechanism includes a drive motor, a mounting bracket, and an embossing wheel. The drive motor is fixedly assembled with the mounting bracket, and the embossing wheel is mounted on the mounting bracket. A drive gear is fixedly assembled at the output end of the drive motor, and the drive gear engages with the fixed tooth. When the drive motor drives the drive gear to rotate, the gear disk remains stationary, causing the drive motor to drive the mounting bracket to move along the gear disk, thereby causing the embossing wheel to move to a preset position with the mounting bracket.

2. The electronically controlled transfer printing machine according to claim 1, characterized in that, The hot stamping mechanism also includes a braking device, which is fixedly assembled with the mounting bracket. The braking device includes brake pawls that clamp onto both sides of the gear disc.

3. The electronically controlled transfer printing machine according to claim 1, characterized in that, The hot stamping mechanism further includes a first cylinder and an adjustment module. The first cylinder is fixedly assembled with the mounting bracket, and the adjustment module is fixedly connected to the output end of the first cylinder. The embossing wheel is mounted based on the adjustment module. The first cylinder is used to drive the adjustment module and the embossing wheel to move in a straight line.

4. The electronically controlled transfer printing machine according to claim 3, characterized in that, The mounting bracket is provided with two first dovetail grooves, which are symmetrically arranged on both sides of the adjustment module. The adjustment module includes two first sliders, which are slidably assembled with the first dovetail grooves. The first dovetail grooves are used to guide the movement of the adjustment module.

5. The electronically controlled transfer printing machine according to claim 4, characterized in that, The adjustment module further includes a second dovetail groove, a second slider, a threaded rod, and a handwheel. The direction of the second dovetail groove is perpendicular to the direction of the first dovetail groove. The second slider is slidably assembled with the second dovetail groove. The threaded rod is threadedly assembled with the second slider. The handwheel is fixedly connected to the end of the threaded rod away from the second slider. The embossing wheel is connected to the second slider. When the handwheel is rotated, the second slider will slide along the second dovetail groove, thereby adjusting the position of the embossing wheel.

6. The electronically controlled transfer printing machine according to claim 1, characterized in that, The gear disk is provided with a first guide rail, and the mounting bracket also includes a plurality of first rollers, which are clamped on both sides of the first guide rail in the vertical direction.

7. The electronically controlled transfer printing machine according to claim 1, characterized in that, The gear disk also includes a circular through groove, which is concentrically arranged with the gear disk and passes through the gear disk. The mounting bracket also includes a plurality of second rollers, which clamp the gear disk in the thickness direction of the gear disk through the circular through groove.

8. The electronically controlled transfer printing machine according to claim 1, characterized in that, The guiding mechanism further includes a guide disk, which is arranged parallel to and spaced apart from the gear disk. The guide disk is provided with a second guide rail. The mounting bracket further includes a plurality of third rollers, which are clamped on both sides of the second guide rail in the vertical direction.

9. The electronically controlled transfer printing machine according to claim 1, characterized in that, The electronically controlled transfer machine also includes a base, on the surface of which are provided a first vertical plate and a second vertical plate. The first vertical plate and the second vertical plate are arranged parallel to each other and spaced apart. The gear disk is fixedly installed to the first vertical plate, and the guide disk is fixedly installed to the second vertical plate.

10. The electronically controlled transfer printing machine according to claim 1, characterized in that, The electronically controlled transfer machine also includes a feeding shaft, a receiving shaft, and a receiving motor. The feeding shaft and the receiving shaft are respectively fixedly installed on both sides of the mounting bracket, and the feeding shaft and the receiving shaft are arranged in parallel and spaced apart. The receiving motor is connected to the receiving shaft and is used to drive the receiving shaft to rotate.

Citation Information

Patent Citations

  • Hot-stamping machine

    CN106274042A

  • Device for PS micro-foaming profile surface hot-stamping

    CN111391491A

  • Method and device for PS micro-foamed profile surface heat transfer printing

    CN111497429A

  • Electric control transfer printing machine

    CN119261357A

  • Laser transfer printing machine and transfer printing method thereof

    WO2024230442A1