A quartz stone high-efficiency thermal transfer equipment

By designing the coordination of the water receiving tray, thermal transfer table, thermal transfer equipment and transfer clamping components, the problem of single positioning structure in the existing quartz stone thermal transfer equipment is solved, the automatic clamping and replacement of quartz stone is realized, and the thermal transfer efficiency is improved.

CN119567712BActive Publication Date: 2025-09-26FOSHAN MONICA QUARTZ STONE CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202411732759.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-09-26
Estimated Expiration
2044-11-29

AI Technical Summary

Technical Problem

The positioning structure of the existing quartz stone thermal transfer equipment is simple and can only be used to position the quartz stone plate, and the quartz stone plate to be processed cannot be replaced outside the equipment.

Method used

Abstract: A high-efficiency thermal transfer equipment for quartz stone is designed, which includes a water receiving tray, a thermal transfer table, a thermal transfer device and a transfer clamping component. The automatic clamping and replacement of quartz stone are realized through the coordinated design of the transfer clamping component. Combined with the preliminary preparation of the cleaning component and the drying component, the automatic operation of quartz stone is realized by the coordination of the hydraulic telescopic rod and the electromagnet.

Benefits of technology

It improves the efficiency of quartz stone thermal transfer, realizes the automatic clamping and replacement of quartz stone, facilitates the transportation and pre-positioning of quartz stone, and improves the operating efficiency of the equipment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119567712B_ABST
    Figure CN119567712B_ABST
Patent Text Reader

Abstract

This application discloses a high-efficiency thermal transfer device for quartz stone, relating to the technical field of quartz stone thermal transfer. The device comprises a water receiving tray, a thermal transfer table, and a thermal transfer device, which are arranged vertically from bottom to top. A transfer clamping assembly is rotatably provided on the upper surface of the thermal transfer table. The transfer clamping assembly is located between the thermal transfer table and the thermal transfer device, and a transfer clamping area is provided at the swinging end of the transfer clamping assembly. The coordinated design of the water receiving tray, the thermal transfer table, the thermal transfer device, and the transfer clamping assembly facilitates the transfer and clamping of quartz stone, thereby improving the efficiency of high-efficiency thermal transfer of quartz stone.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of quartz stone thermal transfer printing, and in particular to a high-efficiency thermal transfer printing device for quartz stone. Background Art

[0002] Quartz stone heat transfer printing is a process that uses heat pressing to print patterns, text, or images onto the surface of quartz stone. This technology is commonly used for the personalized customization of products such as quartz countertops, quartz slabs, kitchenware, and decoration materials, aiming to create a variety of decorative effects on the quartz stone surface.

[0003] In the prior art, there is a quartz stone heat transfer method with the announcement number CN118205324A, which includes a carrier body, a transfer device arranged on the top of the carrier body, and a quartz stone plate placed on the top of the carrier body. The top of the carrier body is provided with a positioning structure located on the outside of the quartz stone plate, and the front and back of the carrier body are both provided with a transmission structure located at the bottom of the positioning structure. The positioning structure includes a rocker arm arranged on the top of the carrier body. The present invention squeezes the rocker arm through the transmission structure, causing the rocker arm to swing around the pin shaft at the top of the carrier body as the axis. When the rocker arm is close to the side of the quartz stone plate and contacts the surface of the quartz stone plate, the effect of squeezing and positioning the quartz stone plate is achieved.

[0004] However, in the prior art, the positioning structure used in the quartz stone thermal transfer method is simple and only focuses on positioning the quartz stone plate. In addition, it is not possible to replace the quartz stone plate to be processed outside the quartz stone thermal transfer equipment. Summary of the Invention

[0005] In response to the above technical problems, the present application solves the problem that the positioning structure used in the quartz stone thermal transfer method in the prior art is single in structure, the positioning structure is only for positioning the quartz stone plate, and it is impossible to replace the quartz stone plate to be processed outside the quartz stone thermal transfer equipment.

[0006] In order to achieve the above purpose, the technical solution adopted in this application is: a quartz stone high-efficiency thermal transfer equipment, including a water receiving tray, a thermal transfer table and a thermal transfer equipment arranged vertically from bottom to top,

[0007] A transfer clamping assembly is rotatably provided on the upper surface of the thermal transfer station. The transfer clamping assembly is located between the thermal transfer station and the thermal transfer equipment, and a transfer clamping area is provided at the swinging end of the transfer clamping assembly.

[0008] In order to better realize the present invention, further, a supporting horizontal bar is provided on the rear side of the thermal transfer table, and a cleaning component and a drying component are provided on the outer side of the supporting horizontal bar from right to left in sequence, and the cleaning component includes a cleaning pipe, a water tank and a water pump, one end of the cleaning pipe is placed on the upper surface of the thermal transfer table, and the other end of the cleaning pipe is connected to the water pump placed in the water tank; the drying component includes a fan and a heating wire, and the output port of the fan is provided with a heating wire.

[0009] In order to better implement the present invention, further, the thermal transfer device has a thermal transfer head, and the thermal transfer head is located directly above the transfer clamping area of ​​the transfer clamping assembly.

[0010] In order to better realize the present invention, further, the transfer clamping assembly includes a rotating arm and a transfer clamping area, one end of the rotating arm is provided with a first hydraulic telescopic rod, the end of the first hydraulic telescopic rod is provided with a transfer clamping area, the other end of the rotating arm is provided with a driven gear, and a driving gear is also provided on the upper surface of the thermal transfer table, the driving gear is connected to the first motor provided on the lower surface of the thermal transfer table through a rotating shaft, and the driving gear and the first motor are arranged in gear meshing.

[0011] In order to better realize the present invention, further, the transfer clamping area includes a clamping disc body, a quartz stone clamping cavity is opened in the middle area of ​​the upper surface of the clamping disc body, the inner wall surface of the quartz stone clamping cavity close to the first hydraulic telescopic rod is provided with a fixed elastic clip, the inner wall surface of the quartz stone clamping cavity away from the first hydraulic telescopic rod is provided with a movable elastic clip, and the fixed elastic clip and the movable elastic clip are arranged opposite to each other, the movable end of the movable elastic clip extends forward out of the retreat groove opened on the quartz stone clamping cavity, the movable end of the movable elastic clip is provided with a movable adsorption end, a control arm is provided on the right side of the clamping disc body, and an extended end of the control arm is provided with an electromagnet, and the movable adsorption end and the electromagnet can be attracted and connected to each other;

[0012] The bottom of the quartz stone clamping cavity is provided with a clamping base plate, the rear end of the clamping base plate is provided with a transition plate, the rear end of the transition plate is provided with a second hydraulic telescopic rod, the lower surface of the end of the second hydraulic telescopic rod is provided with a guide rod, a guide groove is provided at the rear side of the upper surface of the thermal transfer table, the guide rod is slidably sleeved in the guide groove, the upper surface of the thermal transfer table located on the right side of the guide groove is provided with a telescopic rod support, the upper surface of the end of the second hydraulic telescopic rod is provided with a telescopic rod connecting seat, and a third hydraulic telescopic rod is provided between the telescopic rod connecting seat and the telescopic rod support;

[0013] The quartz stone clamping cavity is provided with an installation groove on the inner wall surface of one side close to the movable elastic clip, and a guide block is provided on the sliding sleeve of the installation groove. The left side of the guide block is fixedly connected to the movable elastic clip by a connecting rod, and a second spring is provided between the right side of the guide block and the corresponding inner bottom surface of the installation groove. The bottom of the guide block is provided with a plug connector, and the left end of the plug connector can be extended into the positioning groove provided on the right side wall surface of the corresponding clamping base plate.

[0014] In order to better implement the present invention, further, a first spring is provided between the right inner wall surface of the quartz stone clamping cavity and the movable elastic clamp.

[0015] In order to better realize the present invention, the thermal transfer device further includes an extension plate arranged at the front side, and a conveyor belt and a quartz stone replacement table are arranged on the upper surface of the extension plate in sequence from back to front.

[0016] A conveyor belt bracket and a column are provided on the upper surface of the extension plate, a conveyor belt mounting platform is provided on the top of the conveyor belt bracket, a conveyor belt is provided on the upper surface of the conveyor belt mounting platform through a rotating shaft support and a rotating shaft, a fourth hydraulic telescopic rod is provided on the upper surface of the extension plate located between the conveyor belt and the quartz stone replacement table, and the fourth hydraulic telescopic rod can push the movable adsorption end to move toward the direction of the electromagnet, and a quartz stone replacement table is provided on the top of the column.

[0017] The technical solution provided by the present invention has the following beneficial effects compared with the prior art:

[0018] 1. The present invention facilitates the transportation and clamping of quartz stone through the coordinated design of the water receiving tray, the thermal transfer table, the thermal transfer equipment and the transfer clamping assembly, thereby improving the efficiency of the quartz stone high-efficiency thermal transfer.

[0019] 2. The present invention prepares for the early stage of efficient thermal transfer of quartz stone through the design of cleaning components and drying components.

[0020] 3. The present invention facilitates the transportation and clamping of quartz stones through the coordinated design of the rotating arm and the transfer and clamping area. On the one hand, it also facilitates the replacement of quartz stones in the transfer and clamping area. This improves the efficiency of quartz stone high-efficiency thermal transfer.

[0021] 4. On the one hand, the present invention realizes the automatic clamping and replacement of quartz stone through the cooperation of the movable adsorption end and the electromagnet (the electromagnet itself is an existing mature technology); on the other hand, the locking of the clamping base plate is realized through the coordinated design of the second spring, the plug connector, the guide block and the connecting rod; at the same time, in the unlocked state (when the movable adsorption end is adsorbed by the electromagnet), the coordinated design of the second hydraulic telescopic rod, the guide groove, the third hydraulic telescopic rod, the telescopic rod support, the guide rod and the transition plate facilitate the retraction of the clamping base plate from the rear side of the clamping disc until the bottom of the quartz stone clamping cavity is opened to allow the quartz stone plate to fall onto the upper surface of the conveyor belt.

[0022] 5. The present invention further enhances the clamping function of the movable elastic clamp by providing a first spring between the right inner wall of the quartz stone clamping cavity and the movable elastic clamp.

[0023] 6. The present invention, through the design of the conveyor belt and the quartz stone replacement table, on the one hand, facilitates the transportation of the quartz stone to be heat-transferred to the position pre-designated by the operator; on the other hand, by activating the first hydraulic telescopic rod, the entire transfer clamping assembly is moved to the upper surface of the quartz stone replacement table, making it convenient for the operator to replace the quartz stone.

[0024] 7. The present invention, through the design of the fourth hydraulic telescopic rod, can, on the one hand, push the movable adsorption end toward the electromagnet until the movable adsorption end and the electromagnet are in contact. On the other hand, a limit switch can be set at the contact position between the fourth hydraulic telescopic rod and the movable adsorption end, thereby providing an electrical signal for piece counting, thereby facilitating the piece counting of the quartz stone being thermally transferred (each collision and contact is counted once). BRIEF DESCRIPTION OF THE DRAWINGS

[0025] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present application. For those skilled in the art, other drawings can be obtained based on these drawings without paying any creative labor.

[0026] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0027] Figure 2 for Figure 1 Front view of

[0028] Figure 3 for Figure 1 Left side view;

[0029] Figure 4 for Figure 1 Rear view;

[0030] Figure 5 for Figure 1 Right side view;

[0031] Figure 6 Schematic diagram of the structure of the heat transfer table, support bar, cleaning pipe, fan, heating wire, conveyor belt installation platform, rotating shaft support, rotating shaft and fourth hydraulic telescopic rod in the present invention;

[0032] Figure 7 for Figure 6 Side view of;

[0033] Figure 8 for Figure 6 A top view of

[0034] Figure 9 Schematic diagram of the assembly of the transfer clamping assembly on the thermal transfer table of the present invention;

[0035] Figure 10 Schematic diagram of the structure of the transfer clamping assembly in the present invention;

[0036] Figure 11 This is a schematic structural diagram of the clamping base plate, the second hydraulic telescopic rod, the guide rod plug connector and the transition plate in the present invention;

[0037] Figure 12 Schematic diagram of the structure of the second spring, the second hydraulic telescopic rod, the guide rod, the plug connector, the transition plate, the guide block and the connecting rod in the present invention;

[0038] Figure 13 This is a structural diagram of the conveyor belt, the second motor, the quartz stone replacement table and the column.

[0039] In the figure: 100-water receiving tray; 200-thermal transfer station; 300-thermal transfer equipment; 400-transfer clamping assembly; 500-conveyor belt; 600-quartz stone replacement station; 201-support horizontal bar; 202-cleaning pipe; 203-fan; 204-heating wire; 205-first motor base; 206-water tank; 207-water pump; 401-first hydraulic telescopic rod; 402-driven gear; 403-clamping plate; 404-fixed elastic clamp; 405-movable elastic clamp; 406-clamping bottom plate; 407-second hydraulic telescopic rod; 408-guide groove; 409-first Three hydraulic telescopic rods; 410-telescopic rod support; 411-mounting slot; 412-first spring; 413-second spring; 414-retreat slot; 415-movable adsorption end; 416-control arm; 417-electromagnet; 418-driving gear; 419-first motor; 420-guide rod; 421-plug connector; 422-transition plate; 423-guide block; 424-connecting rod; 501-conveyor belt mounting platform; 502-rotating shaft support; 503-rotating shaft; 504-fourth hydraulic telescopic rod; 505-conveyor belt bracket; 506-second motor; 601-column. DETAILED DESCRIPTION

[0040] To make the objectives, technical solutions, and advantages of the embodiments of the present application more clear, the technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Generally, the components of the embodiments of the present application described and shown in the drawings herein can be arranged and designed in various different configurations.

[0041] Therefore, the following detailed description of the embodiments of the present application provided in the accompanying drawings is not intended to limit the scope of the present application for protection, but merely represents selected embodiments of the present application. All other embodiments obtained by persons of ordinary skill in the art based on the embodiments in the present application without making any creative efforts shall fall within the scope of protection of the present application.

[0042] It should be noted that similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, it does not need to be further defined or explained in subsequent drawings.

[0043] In the description of this application, it should be noted that if the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. appear, the orientation or position relationship indicated is based on the orientation or position relationship shown in the accompanying drawings, or the orientation or position relationship in which the product of the application is usually placed when in use. It is only for the convenience of describing this application and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation. Therefore, it cannot be understood as a limitation on this application. In addition, if the terms "first", "second", etc. appear in the description of this application, they are only used to distinguish the description and cannot be understood as indicating or implying relative importance.

[0044] Furthermore, the use of terms such as "horizontal" and "vertical" in the description of this application does not necessarily imply that a component must be absolutely horizontal or suspended, but rather that it can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical" and does not mean that the structure must be completely horizontal, but rather that it can be slightly tilted.

[0045] It should also be noted that, unless otherwise expressly specified or limited, the terms "disposed," "installed," "connected," and "connected" should be understood broadly. For example, they may refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal connections between two components. A person of ordinary skill in the art will understand the specific meanings of the above terms in this application based on the specific circumstances. Example 1

[0046] like Figures 1 to 13 As shown, a quartz stone high-efficiency thermal transfer device includes a water receiving tray 100, a thermal transfer table 200 and a thermal transfer device 300 which are vertically arranged from bottom to top.

[0047] A transfer clamping assembly 400 is rotatably provided on the upper surface of the heat transfer table 200 . The transfer clamping assembly 400 is located between the heat transfer table 200 and the heat transfer device 300 , and a transfer clamping area is provided at the swinging end of the transfer clamping assembly 400 .

[0048] Through the coordinated design of the water receiving tray 100, the thermal transfer table 200, the thermal transfer equipment 300 and the transfer clamping assembly 400, the transfer and clamping of the quartz stone are facilitated, thereby improving the efficiency of the efficient thermal transfer of the quartz stone.

[0049] like Figures 1 to 13As shown, in this embodiment, a supporting horizontal bar 201 is provided on the rear side of the thermal transfer table 200, and a cleaning component and a drying component are provided on the outer side of the supporting horizontal bar 201 from right to left. The cleaning component includes a cleaning pipe 202, a water tank 206 and a water pump 207. One end of the cleaning pipe 202 is placed on the upper surface of the thermal transfer table 200, and the other end of the cleaning pipe 202 is connected to the water pump 207 placed in the water tank 206; the drying component includes a fan 203 and a heating wire 204, and the output port of the fan 203 is provided with a heating wire 204.

[0050] Through the design of cleaning components and drying components, we prepare for the early stage of efficient thermal transfer of quartz stone.

[0051] like Figures 1 to 13 As shown, in this embodiment, the thermal transfer device 300 has a thermal transfer head, which is located directly above the transfer clamping area of ​​the transfer clamping assembly 400.

[0052] like Figures 1 to 13 As shown, in this embodiment, the transfer clamping assembly 400 includes a rotating arm and a transfer clamping area, a first hydraulic telescopic rod 401 is provided at one end of the rotating arm, a transfer clamping area is provided at the end of the first hydraulic telescopic rod 401, a driven gear 402 is provided at the other end of the rotating arm, and a driving gear 418 is also provided on the upper surface of the thermal transfer table 200, and the driving gear 418 is connected to the first motor 419 provided on the lower surface of the thermal transfer table 200 through a rotating shaft, and the driving gear 418 and the first motor 419 are arranged in gear meshing.

[0053] The coordinated design of the rotating arm and the transfer and clamping area not only facilitates the transfer and clamping of quartz stones, but also facilitates the replacement of quartz stones in the transfer and clamping area, thereby improving the efficiency of quartz stone thermal transfer.

[0054] like Figures 1 to 13As shown, in this embodiment, the transfer clamping area includes a clamping disc 403, and a quartz stone clamping cavity is provided in the middle area of ​​the upper surface of the clamping disc 403, and the inner wall surface of the quartz stone clamping cavity close to the first hydraulic telescopic rod 401 is provided with a fixed elastic clip 404, and the inner wall surface of the quartz stone clamping cavity away from the first hydraulic telescopic rod 401 is provided with a movable elastic clip 405, and the fixed elastic clip 404 and the movable elastic clip 405 are arranged opposite to each other, and the movable end of the movable elastic clip 405 extends forward from the retreat groove 414 provided on the quartz stone clamping cavity, and the movable end of the movable elastic clip 405 is provided with a movable adsorption end 415, and a control arm 416 is provided on the right side of the clamping disc 403, and an electromagnet 417 is provided at the extended end of the control arm 416, and the movable adsorption end 415 and the electromagnet 417 can be attracted and connected to each other;

[0055] A clamping base plate 406 is provided at the bottom of the quartz stone clamping cavity, a transition plate 422 is provided at the rear end of the clamping base plate 406, a second hydraulic telescopic rod 407 is provided at the rear end of the transition plate 422, a guide rod 420 is provided on the lower surface of the end of the second hydraulic telescopic rod 407, a guide groove 408 is provided at the rear side of the upper surface of the heat transfer table 200, the guide rod 420 is slidably sleeved in the guide groove 408, a telescopic rod support 410 is provided on the upper surface of the heat transfer table 200 located on the right side of the guide groove 408, a telescopic rod connecting seat is provided on the upper surface of the end of the second hydraulic telescopic rod 407, and a third hydraulic telescopic rod 409 is provided between the telescopic rod connecting seat and the telescopic rod support 410;

[0056] An installation groove 411 is provided on the inner wall surface of one side of the quartz stone clamping cavity close to the movable elastic clip 405, and a guide block 423 is slidably sleeved on the installation groove 411. The left side of the guide block 423 is fixedly connected to the movable elastic clip 405 by a connecting rod 424, and a second spring 413 is provided between the right side of the guide block 423 and the corresponding inner bottom surface of the installation groove 411. A plug connector 421 is provided at the bottom of the guide block 423, and the left end of the plug connector 421 can be extended into the positioning groove provided on the right side wall of the corresponding clamping base plate 406.

[0057] On the one hand, the automatic clamping and replacement of the quartz stone is achieved through the cooperation between the movable adsorption end 415 and the electromagnet 417 (the electromagnet 417 itself is an existing mature technology); on the other hand, the locking of the clamping base plate 406 is achieved through the coordinated design of the second spring 413, the plug connector 421, the guide block 423 and the connecting rod 424; at the same time, in the unlocked state (when the movable adsorption end 415 is adsorbed by the electromagnet 417), the second hydraulic telescopic rod 407, the guide groove 408, the third hydraulic telescopic rod 409, the telescopic rod support 410, the guide rod 420 and the transition plate 422 are coordinated to facilitate the retraction of the clamping base plate 406 from the rear side of the clamping disc 403 until the bottom of the quartz stone clamping cavity is opened and the quartz stone plate falls on the upper surface of the conveyor belt.

[0058] like Figures 1 to 13 As shown, in this embodiment, a first spring 412 is provided between the right inner wall surface of the quartz stone clamping cavity and the movable elastic clamp 405 .

[0059] The first spring 412 is provided between the right inner wall of the quartz stone clamping cavity and the movable elastic clamp 405 , thereby further enhancing the clamping function of the movable elastic clamp 405 .

[0060] like Figures 1 to 13 As shown, in this embodiment, the thermal transfer device further includes an extension plate arranged at the front side, and a conveyor belt 500 and a quartz stone replacement table 600 are arranged on the upper surface of the extension plate in sequence from back to front.

[0061] Through the design of the conveyor belt 500 and the quartz stone replacement table 600, on the one hand, it is convenient to transport the quartz stone to be heat-transferred to the position pre-specified by the operator; on the other hand, by starting the first hydraulic telescopic rod 401, the entire transfer clamping assembly 400 is moved to the upper surface of the quartz stone replacement table 600, making it convenient for the operator to replace the quartz stone.

[0062] The upper surface of the extension plate is provided with a conveyor belt bracket 505 and a column 601, and the top of the conveyor belt bracket 505 is provided with a conveyor belt mounting platform 501. The upper surface of the conveyor belt mounting platform 501 is provided with a conveyor belt 500 through a rotating shaft support 502 and a rotating shaft 503. The upper surface of the extension plate located between the conveyor belt 500 and the quartz stone replacement platform 600 is provided with a fourth hydraulic telescopic rod 504, and the fourth hydraulic telescopic rod 504 can push the movable adsorption end 415 to move toward the direction of the electromagnet 417. The top of the column 601 is provided with a quartz stone replacement platform 600.

[0063] Through the design of the fourth hydraulic telescopic rod 504, on the one hand, it is possible to push the movable adsorption end 415 toward the electromagnet 417 until the movable adsorption end 415 and the electromagnet 417 are in contact; on the other hand, a limit switch can be set at the contact position between the fourth hydraulic telescopic rod 504 and the movable adsorption end 415, thereby providing an electrical signal for piece counting to facilitate the piece counting of the quartz stone being thermally transferred (each collision and contact is counted once).

[0064] In addition, the second hydraulic telescopic rod 407 and the third hydraulic telescopic rod 409 are always in a vertical state on the horizontal plane, thereby ensuring that the clamping base plate 406 can be smoothly inserted into the lower side of the quartz stone clamping cavity when the transfer clamping assembly 400 swings to directly below the thermal transfer head of the thermal transfer equipment 300, and at the same time, ensuring that the plug connector 421 locks the clamping base plate 406 (the left end of the plug connector 421 can be extended into the corresponding positioning groove opened on the right side wall of the clamping base plate 406).

[0065] Working principle:

[0066] The second hydraulic telescopic rod 407 and the third hydraulic telescopic rod 409 move in coordination, so that the movement trajectory of the clamping base plate 406 and the transition plate 422 is consistent with the swing trajectory of the transfer clamping assembly 400.

[0067] The operator places the quartz stone to be processed into the quartz stone clamping cavity of the transfer clamping assembly 400 at the position of the quartz stone replacement table 600: starts the first motor 419 to rotate the transfer clamping assembly 400. At the same time, as the transfer clamping assembly 400 rotates, the second hydraulic telescopic rod 407 extends, and the third hydraulic telescopic rod 409 moves toward the right side of the guide groove 408 (the length of the guide groove 408 is set according to actual movement needs), so that the movement trajectory of the clamping base plate 406 and the transition plate 422 is synchronized with the swing trajectory of the transfer clamping assembly 400. When the entirety of the transport clamping assembly 400 is parallel to the guide slot 408, the transport clamping assembly 400 continues to rotate toward the quartz stone exchange platform 600, the second hydraulic telescopic rod 407 continues to extend, and the third hydraulic telescopic rod 409 moves to the left of the guide slot 408 and resets until the transport clamping assembly 400 is moved to the upper surface of the quartz stone exchange platform 600. The operator then manually presses the movable suction end 415 or activates the electromagnet 417, causing the movable suction end 415 to engage with the electromagnet 417, thereby placing the quartz stone into the quartz stone clamping cavity. During this process, the fourth hydraulic telescopic rod 504 remains in a retracted state, with the top of the fourth hydraulic telescopic rod 504 lower than the transport clamping assembly 400.

[0068] The quartz stone, clamped in the quartz stone holding chamber, is moved directly below the thermal transfer head of the thermal transfer device 300 for thermal transfer processing. The first motor 419 rotates in the opposite direction, while the second and third hydraulic telescopic rods 407 and 409 move synchronously along the rotation trajectory of the transfer clamping assembly 400. During this process, the fourth hydraulic telescopic rod 504 remains retracted, with its top lower than the transfer clamping assembly 400.

[0069] After the heat transfer process is completed, the fourth hydraulic telescopic rod 504 is started to rise. The top of the fourth hydraulic telescopic rod 504 is higher than the transfer clamping assembly 400. The first motor 419 is rotated forward again, so that the transfer clamping assembly 400 drives the quartz stone to move to the upper surface of the conveyor belt 500. At the same time, the fourth hydraulic telescopic rod 504 can hit the movable end of the movable elastic clamp 405, and the movable adsorption end 415 is in contact with the electromagnet 417, so that the second spring 413 is compressed, and the guide block 423 retreats into the installation groove 411, synchronously The ground connector 421 exits the positioning slot on the right wall of the clamping base 406, releasing the fixed elastic clamp 404 and the movable elastic clamp 405 from their grip on the quartz stone. This then drives the second hydraulic telescopic rod 407 to retract, opening the bottom of the quartz stone clamping cavity (retraction of the second hydraulic telescopic rod 407 only opens the bottom of the quartz stone clamping cavity; the front side of the clamping base 406 remains partially within the clamping plate 403). This allows the quartz stone to fall onto the upper surface of the conveyor belt 500, and the second motor 506 is activated to transfer the quartz stone. During this process, a limit switch can also be provided at the top of the fourth hydraulic telescopic rod 504. Each activation and closure of the limit switch serves as a basis for counting the number of quartz stones.

[0070] Close the bottom of the quartz stone clamping chamber: start the second hydraulic telescopic rod 407 to extend the second hydraulic telescopic rod 407 until the clamping base plate 406 is completely located in the clamping disc 403, completing the bottom closure of the stone clamping chamber (the left and right inner walls of the quartz stone clamping chamber are provided with horizontally arranged strip guide grooves for guiding the clamping base plate 406, and the strip guide grooves are located below the fixed elastic clamp 404 and the movable elastic clamp 405.), then start the fourth hydraulic telescopic rod 504 to retract the fourth hydraulic telescopic rod 504, and the top of the fourth hydraulic telescopic rod 504 is lower than the transport clamping assembly 400, so that the plug connector 421 is inserted into the positioning groove opened on the right side wall of the clamping base plate 406 again.

[0071] The operator at the quartz stone replacement table 600 puts another piece of quartz stone to be processed into the quartz stone clamping cavity of the transfer clamping assembly 400: starts the first motor 419, and the second hydraulic telescopic rod 407 and the third hydraulic telescopic rod 409 move synchronously until the transfer clamping assembly 400 is located at the upper surface of the quartz stone replacement table 600, thereby completing the step of putting another piece of quartz stone to be processed into the quartz stone clamping cavity.

[0072] Repeat the above process to achieve efficient thermal transfer processing and improve work efficiency.

[0073] The above description is merely a preferred embodiment of the present application and is not intended to limit the present application. Various modifications and variations are possible for those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present application shall be included within the scope of protection of the present application.

Claims

1. A quartz stone high-efficiency thermal transfer device, characterized by: It comprises a water receiving tray (100), a heat transfer table (200) and a heat transfer device (300) which are arranged vertically from bottom to top. A transfer clamping assembly (400) is rotatably provided on the upper surface of the heat transfer station (200), the transfer clamping assembly (400) is located between the heat transfer station (200) and the heat transfer device (300), and a transfer clamping area is provided at the swing end of the transfer clamping assembly (400); The transfer clamping assembly (400) includes a rotating arm and a transfer clamping area, one end of the rotating arm is provided with a first hydraulic telescopic rod (401), the end of the first hydraulic telescopic rod (401) is provided with a transfer clamping area, the other end of the rotating arm is provided with a driven gear (402), the upper surface of the thermal transfer table (200) is also provided with a driving gear (418), the driving gear (418) is connected to a first motor (419) provided on the lower surface of the thermal transfer table (200) through a rotating shaft, and the driving gear (418) and the first motor (419) are arranged in a gear meshing arrangement; The transport clamping area includes a clamping disc (403), a quartz stone clamping cavity is provided in the middle area of ​​the upper surface of the clamping disc (403), a fixed elastic clamp (404) is provided on the inner wall surface of the quartz stone clamping cavity close to the first hydraulic telescopic rod (401), and a movable elastic clamp (405) is provided on the inner wall surface of the quartz stone clamping cavity away from the first hydraulic telescopic rod (401), and the fixed elastic clamp (404) and the movable elastic clamp (405) are connected to each other. ) are arranged opposite to each other, the movable end of the movable elastic clip (405) extends forward from the retreat groove (414) provided on the quartz stone clamping cavity, the movable end of the movable elastic clip (405) is provided with a movable adsorption end (415), the right side of the clamping disc (403) is provided with a control arm (416), the extended end of the control arm (416) is provided with an electromagnet (417), and the movable adsorption end (415) and the electromagnet (417) can be attracted and connected to each other; The bottom of the quartz stone clamping cavity is provided with a clamping base plate (406), the rear end of the clamping base plate (406) is provided with a transition plate (422), the rear end of the transition plate (422) is provided with a second hydraulic telescopic rod (407), the lower surface of the end of the second hydraulic telescopic rod (407) is provided with a guide rod (420), a guide groove (408) is provided at the rear side of the upper surface of the thermal transfer station (200), the guide rod (420) is slidably sleeved in the guide groove (408), the upper surface of the thermal transfer station (200) on the right side of the guide groove (408) is provided with a telescopic rod support (410), the upper surface of the end of the second hydraulic telescopic rod (407) is provided with a telescopic rod connecting seat, and a third hydraulic telescopic rod (409) is provided between the telescopic rod connecting seat and the telescopic rod support (410); A mounting groove (411) is provided on the inner wall surface of one side of the quartz stone clamping cavity close to the movable elastic clamp (405), and a guide block (423) is slidably sleeved on the mounting groove (411). The left side of the guide block (423) is fixedly connected to the movable elastic clamp (405) via a connecting rod (424), and a second spring (413) is provided between the right side of the guide block (423) and the corresponding inner bottom surface of the mounting groove (411). A plug connector (421) is provided at the bottom of the guide block (423), and the left end of the plug connector (421) can be extended into a positioning groove provided on the right side wall surface of the corresponding clamping base plate (406).

2. The quartz stone high-efficiency thermal transfer equipment according to claim 1, characterized in that: A supporting horizontal bar (201) is provided on the rear side of the heat transfer station (200), and a cleaning component and a drying component are provided on the outer side of the supporting horizontal bar (201) from right to left. The cleaning component comprises a cleaning pipe (202), a water tank (206) and a water pump (207). One end of the cleaning pipe (202) is placed on the upper surface of the heat transfer station (200), and the other end of the cleaning pipe (202) is connected to the water pump (207) placed in the water tank (206); the drying component comprises a fan (203) and a heating wire (204), and the output port of the fan (203) is provided with a heating wire (204).

3. The quartz stone high-efficiency thermal transfer equipment according to claim 1, characterized in that: The thermal transfer device (300) has a thermal transfer head, which is located directly above the transfer clamping area of ​​the transfer clamping assembly (400).

4. The quartz stone high-efficiency thermal transfer equipment according to claim 1, characterized in that: A first spring (412) is provided between the right inner wall surface of the quartz stone clamping cavity and the movable elastic clamp (405).

5. A quartz stone high-efficiency thermal transfer device according to any one of claims 1 to 4, characterized in that: The thermal transfer device further comprises an extension plate arranged at the front side, and a conveyor belt (500) and a quartz stone replacement table (600) are arranged on the upper surface of the extension plate in sequence from back to front. The upper surface of the extension plate is provided with a conveyor belt bracket (505) and a column (601), the top of the conveyor belt bracket (505) is provided with a conveyor belt installation platform (501), the upper surface of the conveyor belt installation platform (501) is provided with a conveyor belt (500) through a rotating shaft support (502) and a rotating shaft (503), the upper surface of the extension plate located between the conveyor belt (500) and the quartz stone replacement platform (600) is provided with a fourth hydraulic telescopic rod (504), and the fourth hydraulic telescopic rod (504) can push the movable adsorption end (415) to move toward the electromagnet (417), and the top of the column (601) is provided with a quartz stone replacement platform (600).

Citation Information

Patent Citations

  • Digital printing heat transfer printing machine

    CN115042509A

  • Quartz stone heat transfer printing method

    CN118205324A