Rock plate printer with anti-deviation structure

By designing an anti-offset structure and efficient drying mechanism in the rock slab printer, the problem of slow offset and drying speed of the rock slab printer during the printing process is solved, and a more stable and efficient printing process is achieved.

CN223014175UActive Publication Date: 2025-06-24GUANGDONG SANFI CERAMICS GRP CO LTD
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Patent Information

Application Number
CN202421740547.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-23
Publication Date
2025-06-24
Estimated Expiration
2034-07-23

AI Technical Summary

Technical Problem

Existing stone slab printers are prone to deviating the rock slabs due to collision during printing, affecting the printing pattern, and drying at a slower rate when the ambient temperature is high.

Method used

A rock slab printer with an anti-offset structure is designed, using electric slide rails, U-shaped frames and fixing mechanisms. The rock slabs are fixed to the printing table through butterfly bolts and motors to prevent offsets. At the same time, a drying mechanism of a cooling box, an air pump and a nozzle is used to accelerate the drying process of the rock slabs by cooling air.

Benefits of technology

It effectively prevents the offset of the rock slabs during the printing process, improves the stability of the printing and pattern clarity, and significantly accelerates the drying speed of the rock slabs under high temperature environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of rock plate printers, in particular to a rock plate printer with an anti-deviation structure, which comprises a printing table, an electric slide rail, a U-shaped frame and a printer, an electric sliding rail is connected to one side of the printing table, a U-shaped frame is slidably connected into the electric sliding rail, and a printer is slidably connected to the U-shaped frame. According to the rock plate printer with the anti-deviation structure, a rock plate needing to be printed is placed in the printing table, then butterfly bolts are unscrewed, a positioning plate slides to enable a sliding plate to abut against the rock plate, the butterfly bolts are screwed, then a motor is started to drive a push plate to extrude the rock plate, and the periphery of the rock plate is fixed; the spray head is directly wrenched to be aligned with the rock plate, the air pump is started to feed external air into the cooling box, the external air is cooled by the semiconductor chilling plate and then sprayed out of the spray head to cool pigment printed by the printer, and then the rock plate on the rock plate printer is rapidly dried.
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Description

Technical Field

[0001] The utility model relates to the technical field of rock plate printers, and specifically relates to a rock plate printer with an anti-offset structure. Background Technique

[0002] A rock plate printer is a device for printing on slate materials. Workers can output the patterns to be printed to the rock plate printer through computer data. The rock plate printer can directly spray-print the slate materials according to the data content. However, there are still certain defects in the existing rock plate printers during use, such as;

[0003] Most of the existing rock plate printers directly place the rock plate on the printing table of the printer. If it shakes due to collision during printing, the rock plate is likely to shift, thereby affecting the printed pattern. Moreover, most of the existing rock plate printers use natural cooling for drying after printing. When the printed content is small and needs to be removed in time, or when the ambient temperature is relatively high, the drying speed is relatively slow. Content of the Utility Model

[0004] The purpose of the utility model is to provide a rock plate printer with an anti-offset structure to solve the problems raised in the above background technique.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A rock plate printer with an anti-offset structure, including: a printing table, an electric slide rail, a U-shaped frame, and a printer;

[0006] One side of the printing table is connected with an electric slide rail, a U-shaped frame is slidably connected in the electric slide rail, and a printer is slidably connected to the U-shaped frame;

[0007] The bottom of the electric slide rail is connected with a support plate, a drag chain is arranged above the support plate, the drag chain is arranged on the U-shaped frame, and one end of the drag chain is connected to one side of the printer. A fixing mechanism is arranged in the printing table, and a drying mechanism is connected to one side of the printing table. The fixing mechanism includes: a positioning plate, a bidirectional cylinder, a sliding plate, a telescopic rod, an inverted U-shaped plate, an L-shaped rod, a wing nut, a motor, a reducer, a threaded rod, a pushing plate, and a guide rod. A positioning plate is slidably connected in the printing table, a bidirectional cylinder is connected through the positioning plate, a sliding plate is connected to one side of the bidirectional cylinder, a telescopic rod is connected through the positioning plate away from the bidirectional cylinder, and the telescopic rod is connected to one side of the sliding plate.

[0008] Preferably, the upper surface of the printing table is connected with an inverted U-shaped plate through bolts, an L-shaped rod is slidably connected to the inverted U-shaped plate, the L-shaped rod is connected to the upper surface of the positioning plate, and a wing nut is threadedly connected in the L-shaped rod, and the wing nut abuts above the inverted U-shaped plate.

[0009] Preferably, a motor is connected to the back of the printing table, the output end of the motor is connected to a speed reducer, the speed reducer is embedded in the inner wall of the printing table, and the output end of the speed reducer is connected to a threaded rod, and the threaded rod is rotatably connected to the inner wall of the printing table.

[0010] Preferably, a push plate is threadedly connected to the threaded rod, and a guide rod is slidably connected in the push plate away from the threaded rod, and the guide rod is connected to the inner wall of the printing table.

[0011] Preferably, the drying mechanism includes: a cooling box, an air pump, a filter, a semiconductor refrigeration sheet, a heat dissipation fan, a heat conduction sheet, a heat preservation pipe, a universal gooseneck pipe and a nozzle. One side of the printing table is bolted with a cooling box, and the end of the drag chain away from the printer is connected to the rear of the cooling box. The front of the cooling box is connected with an air pump, the air pump is connected to one side of the printing table through a support, and a filter is connected above the air pump.

[0012] Preferably, a semiconductor refrigeration sheet is penetrated and connected to the lower part of the inner wall of the cooling box, a heat dissipation fan is connected below the semiconductor refrigeration sheet, the heat dissipation fan is connected to the bottom of the cooling box, a heat conduction sheet is connected above the semiconductor refrigeration sheet, and the heat conduction sheet is arranged in the cooling box.

[0013] Preferably, a heat preservation pipe is arranged in the drag chain, the heat preservation pipe is connected to the rear of the cooling box, and the other end of the heat preservation pipe penetrates the inner wall of the drag chain and is connected to one side of the printer.

[0014] Preferably, a universal gooseneck pipe is connected to one end of the heat preservation pipe close to the printer, the other end of the universal gooseneck pipe is connected to a nozzle, and the nozzle is arranged on one side of the printer.

[0015] Compared with the prior art, the beneficial effects of the present utility model are as follows: for the rock plate printer with an anti-offset structure, by placing the rock plate to be printed in the printing table, then loosening the wing nut, sliding the positioning plate to abut the sliding plate against the rock plate, and tightening the wing nut, and then starting the motor to drive the push plate to squeeze the rock plate, so as to fix the four sides of the rock plate, thereby preventing the rock plate on the rock plate printer from offsetting. By directly turning the nozzle to align with the rock plate and starting the air pump to send the outside air into the cooling box, which is cooled by the semiconductor refrigeration sheet and then sprayed out from the nozzle to cool the pigment printed by the printer, thereby quickly drying the rock plate on the rock plate printer. The specific content is as follows:

[0016] 1. Place the slab to be printed inside the printing table, then loosen the wing bolt. Slide the positioning plate to drive the sliding plate into contact with the slab, and tighten the wing bolt. Then start the motor to drive the threaded rod to rotate, drive the push plate to slide, squeeze the slab, fix the four sides of the slab, and print on the slab. Then start the motor to reverse, reset the push plate, then shorten the double-acting cylinder to pull the sliding plate away from the slab, and then remove the slab. Place the next group of slabs on one side of the sliding plate, start the double-acting cylinder and the motor, and fix the slab, thereby preventing the slab on the slab printer from shifting;

[0017] 2. Directly pull the nozzle close to the print head of the printer and align it with the slab. Start the air pump to filter the outside air through the filter and send it into the cooling box. The semiconductor refrigeration sheet cools the air in the cooling box, and then it is transported through the heat preservation pipe and the universal gooseneck pipe and sprayed out from the nozzle to cool the pigment printed by the printer, thereby quickly drying the slab on the slab printer. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a schematic main view cross-sectional structure diagram of the printing table of the present utility model;

[0019] Figure 2 It is a schematic top view cross-sectional structure diagram of the printing table of the present utility model;

[0020] Figure 3 It is a schematic side view cross-sectional structure diagram of the printing table of the present utility model;

[0021] Figure 4 It is a schematic side view cross-sectional structure diagram of the cooling box of the present utility model;

[0022] Figure 5 It is a schematic main view structure diagram of the present utility model.

[0023] In the figure: 1, printing table; 2, electric slide rail; 3, U-shaped frame; 4, printer; 5, pallet; 6, drag chain; 7, fixing mechanism; 701, positioning plate; 702, double-acting cylinder; 703, sliding plate; 704, telescopic rod; 705, inverted U-shaped plate; 706, L-shaped rod; 707, wing bolt; 708, motor; 709, reducer; 710, threaded rod; 711, push plate; 712, guide rod; 8, drying mechanism; 801, cooling box; 802, air pump; 803, filter; 804, semiconductor refrigeration sheet; 805, heat dissipation fan; 806, heat conduction sheet; 807, heat preservation pipe; 808, universal gooseneck pipe; 809, nozzle. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0024] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0025] Please refer to Figures 1 - 3 and Figure 5 , the present invention provides a technical solution: a rock plate printer with an anti-offset structure, including: a printing table 1, an electric slide rail 2, a U-shaped frame 3, and a printer 4;

[0026] One side of the printing table 1 is connected with an electric slide rail 2, a U-shaped frame 3 is slidably connected in the electric slide rail 2, and a printer 4 is slidably connected on the U-shaped frame 3; a support plate 5 is connected to the bottom of the electric slide rail 2, a drag chain 6 is arranged above the support plate 5, the drag chain 6 is arranged on the U-shaped frame 3, and one end of the drag chain 6 is connected to one side of the printer 4. A fixing mechanism 7 is arranged in the printing table 1, and a drying mechanism 8 is connected to one side of the printing table 1. The fixing mechanism 7 includes: a positioning plate 701, a double-acting cylinder 702, a sliding plate 703, a telescopic rod 704, an inverted U-shaped plate 705, an L-shaped rod 706, a wing bolt 707, a motor 708, a reducer 709, a threaded rod 710, a pushing plate 711, and a guiding rod 712. A positioning plate 701 is slidably connected in the printing table 1, a double-acting cylinder 702 is penetrated and connected in the positioning plate 701, a sliding plate 703 is connected to one side of the double-acting cylinder 702, a telescopic rod 704 is penetrated and connected in the positioning plate 701 away from the double-acting cylinder 702, and the telescopic rod 704 is connected to one side of the sliding plate 703.

[0027] The upper surface of the printing table 1 is connected with an inverted U-shaped plate 705 by bolts, an L-shaped rod 706 is slidably connected on the inverted U-shaped plate 705, the L-shaped rod 706 is connected to the upper surface of the positioning plate 701, and a wing bolt 707 is threadedly connected in the L-shaped rod 706, and the wing bolt 707 abuts above the inverted U-shaped plate 705. A motor 708 is connected to the back of the printing table 1, the output end of the motor 708 is connected with a reducer 709, the reducer 709 is embedded in the inner wall of the printing table 1, and the output end of the reducer 709 is connected with a threaded rod 710. The threaded rod 710 is rotatably connected to the inner wall of the printing table 1, a pushing plate 711 is threadedly connected to the threaded rod 710, and a guiding rod 712 is slidably connected in the pushing plate 711 away from the threaded rod 710. The guiding rod 712 is connected to the inner wall of the printing table 1.

[0028] During specific implementation, place the slab to be printed in the printing table 1. Then loosen the wing bolt 707 to release the fixation of the inverted U-shaped plate 705 and the L-shaped rod 706. Slide the positioning plate 701 to drive the sliding plate 703 to abut against the slab, and tighten the wing bolt 707. Then start the motor 708. After the torque is increased by deceleration through the reducer 709, drive the threaded rod 710 to rotate, so as to drive the push plate 711 to slide along the guide rod 712, squeeze the slab, fix the four sides of the slab, and print on the slab. Then start the motor 708 to reverse, reset the push plate 711. Then shorten the double-acting cylinder 702 to pull the sliding plate 703 away from the slab. At the same time, the telescopic rod 704 guides the sliding plate 703. Then remove the slab, place the next group of slabs on one side of the sliding plate 703, start the double-acting cylinder 702 to drive the sliding plate 703 to squeeze the slab, and then start the motor 708 to fix the slab to prevent the slab on the slab printer from shifting.

[0029] Refer to Figure 1 、 Figure 4 and Figure 5 It can be seen that the drying mechanism 8 includes: a cooling box 801, an air pump 802, a filter 803, a semiconductor refrigeration sheet 804, a heat dissipation fan 805, a heat conduction sheet 806, a heat preservation pipe 807, a universal gooseneck pipe 808 and a nozzle 809. One side of the printing table 1 is connected with the cooling box 801 by bolts. One end of the drag chain 6 far away from the printer 4 is connected to the rear of the cooling box 801. The front of the cooling box 801 is connected with the air pump 802. The air pump 802 is connected to one side of the printing table 1 through a support, and a filter 803 is connected above the air pump 802. The lower part of the inner wall of the cooling box 801 is penetrated and connected with the semiconductor refrigeration sheet 804. The semiconductor refrigeration sheet 804 is connected with a heat dissipation fan 805 below. The heat dissipation fan 805 is connected to the bottom of the cooling box 801. The semiconductor refrigeration sheet 804 is connected with a heat conduction sheet 806 above. The heat conduction sheet 806 is arranged in the cooling box 801. A heat preservation pipe 807 is arranged in the drag chain 6. The heat preservation pipe 807 is connected to the rear of the cooling box 801, and the other end of the heat preservation pipe 807 penetrates the inner wall of the drag chain 6 and is connected to one side of the printer 4. One end of the heat preservation pipe 807 close to the printer 4 is connected with a universal gooseneck pipe 808. The other end of the universal gooseneck pipe 808 is connected with a nozzle 809. The nozzle 809 is arranged on one side of the printer 4.

[0030] During specific implementation, directly pull the nozzle 809 to drive the universal gooseneck tube 808 to bend, adjust the direction of the nozzle 809, approach the print head of the printer 4 and align it with the rock slab, start the air pump 802 to filter the outside air through the filter 803 and send it into the cooling box 801. The heat generated below the semiconductor refrigeration sheet 804 is dissipated by the radiator fan 805. The refrigeration above the semiconductor refrigeration sheet 804 is conducted to the cold conduction sheet 806 to cool the air in the cooling box 801, and then it is transported through the heat preservation pipe 807 and the universal gooseneck tube 808 and ejected from the nozzle 809 to cool the pigment printed by the printer 4, so as to quickly dry the rock slab on the rock slab printer.

[0031] In summary, when using the rock slab printer with an anti-offset structure, first, place the rock slab in the printing table 1, then loosen the wing nut 707 and slide the positioning plate 701 to make the sliding plate 703 abut against the rock slab to position the width of the rock slab. Shorten the double-acting cylinder 702 to drive the sliding plate 703 to approach the positioning plate 701 to expand the placement space. Place the rock slab to be printed between the two sliding plates 703 in the printing table 1, or between the positioning plate 701 and the inner wall of the printing table 1. Start the double-acting cylinder 702 to squeeze both sides of the rock slab, and start the motor 708 to squeeze the rock slab front and back to prevent offset. Connect the controller at the front of the printing table 1 to the computer, set the printing position and pattern, start the electric slide rail 2 to drive the U-shaped frame 3 to move back and forth, start the printer 4 to move left and right along the U-shaped frame 3, spray the pigment on the rock slab according to the pattern. At the same time, the nozzle 809 blows cold air to accelerate the cooling and quickly dry the printed pattern. Then reset the push plate 711, and the sliding plate 703 approaches the positioning plate 701 to remove the printed rock slab. Place the next rock slab to be printed between the two sliding plates 703 in the printing table 1, or between the positioning plate 701 and the inner wall of the printing table 1 for printing again. If it is necessary to print rock slabs of other sizes, it is necessary to adjust the position of the positioning plate 701 again to squeeze the rock slab to prevent offset. The content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.

[0032] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A rock plate printer with an anti-deviating structure, comprising: The printing platform (1), the electric slide rail (2), the U-shaped frame (3) and the printer (4) are characterized by: One side of the printing platform (1) is connected to an electric slide rail (2), a U-shaped frame (3) is slidably connected inside the electric slide rail (2), and a printer (4) is slidably connected to the U-shaped frame (3); The bottom of the electric slide rail (2) is connected to a support plate (5), a drag chain (6) is arranged above the support plate (5), the drag chain (6) is arranged on the U-shaped frame (3), and one end of the drag chain (6) is connected to one side of the printer (4), a fixing mechanism (7) is arranged in the printing table (1), and one side of the printing table (1) is connected to a drying mechanism (8), the fixing mechanism (7) comprises: a positioning plate (701), a two-way cylinder (702), a slide plate (703), a telescopic rod (704), an inverted U plate (705), an L-shaped rod (706), A butterfly bolt (707), a motor (708), a reducer (709), a threaded rod (710), a push plate (711) and a guide rod (712); a positioning plate (701) is slidably connected inside the printing table (1); a two-way cylinder (702) is penetrated inside the positioning plate (701); a slide plate (703) is connected to one side of the two-way cylinder (702); a telescopic rod (704) is penetrated inside the positioning plate (701) away from the two-way cylinder (702); and the telescopic rod (704) is connected to one side of the slide plate (703).

2. The rock plate printer with an anti-deviating structure according to claim 1, characterized in that: The upper surface of the printing platform (1) is connected to an inverted U-plate (705) by bolts, and an L-shaped rod (706) is slidably connected to the inverted U-plate (705). The L-shaped rod (706) is connected to the upper surface of the positioning plate (701), and the L-shaped rod (706) is internally threadedly connected to a butterfly bolt (707), and the butterfly bolt (707) abuts against the upper side of the inverted U-plate (705).

3. The rock plate printer with an anti-deviating structure according to claim 1, characterized in that: The back of the printing platform (1) is connected to a motor (708), the output end of the motor (708) is connected to a reducer (709), the reducer (709) is embedded in the inner wall of the printing platform (1), and the output end of the reducer (709) is connected to a threaded rod (710), and the threaded rod (710) is rotatably connected to the inner wall of the printing platform (1).

4. The rock plate printer with an anti-deviating structure according to claim 3 is characterized in that: A push plate (711) is threadedly connected to the threaded rod (710), and a guide rod (712) is slidably connected inside the push plate (711) away from the threaded rod (710), and the guide rod (712) is connected to the inner wall of the printing platform (1).

5. The rock plate printer with an anti-deviating structure according to claim 1, characterized in that: The drying mechanism (8) comprises: a cooling box (801), an air pump (802), a filter (803), a semiconductor cooling sheet (804), a cooling fan (805), a cooling fin (806), a heat preservation pipe (807), a universal gooseneck tube (808) and a nozzle (809); one side of the printing table (1) is connected to the cooling box (801) by bolts; one end of the drag chain (6) away from the printer (4) is connected to the rear of the cooling box (801); the front of the cooling box (801) is connected to the air pump (802); the air pump (802) is connected to one side of the printing table (1) by a support, and the filter (803) is connected above the air pump (802).

6. The rock plate printer with an anti-deviating structure according to claim 5, characterized in that: A semiconductor refrigeration sheet (804) is connected through the lower part of the inner wall of the cooling box (801), a heat dissipation fan (805) is connected below the semiconductor refrigeration sheet (804), the heat dissipation fan (805) is connected to the bottom of the cooling box (801), a cooling plate (806) is connected above the semiconductor refrigeration sheet (804), and the cooling plate (806) is arranged in the cooling box (801).

7. The rock plate printer with an anti-deviating structure according to claim 5, characterized in that: A heat preservation pipe (807) is arranged in the drag chain (6), and the heat preservation pipe (807) is connected to the rear of the cooling box (801), and the other end of the heat preservation pipe (807) passes through the inner wall of the drag chain (6) and is connected to one side of the printer (4).

8. The rock plate printer with an anti-deviating structure according to claim 7, characterized in that: One end of the heat preservation tube (807) close to the printer (4) is connected to a universal gooseneck tube (808), and the other end of the universal gooseneck tube (808) is connected to a nozzle (809), and the nozzle (809) is arranged on one side of the printer (4).