Glass pattern printing structure

By using a high-precision digital printer and a multi-level control system, the problem of printing natural textures and rock patterns on glass surfaces has been solved, achieving efficient and realistic pattern printing results.

CN223546024UActive Publication Date: 2025-11-14NANXING TECH (GUANGDONG) CO LTD
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Patent Information

Application Number
CN202423265828.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-30
Publication Date
2025-11-14
Estimated Expiration
2034-12-30

AI Technical Summary

Technical Problem

Existing technologies struggle to efficiently print natural textures and rock patterns on glass surfaces, resulting in poor decorative effects.

Method used

Employing a high-precision digital printer and a multi-level control system, combined with a sliding plate and cylinder drive, it achieves precise control and distribution of ink, ensuring print quality and efficiency.

Benefits of technology

It improves the accuracy and efficiency of glass pattern printing, enabling the printing of realistic natural textures and rock patterns on glass surfaces, enhancing decorative appeal and three-dimensionality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a glass pattern printing structure which comprises a bottom plate and a connecting frame, the connecting frame is fixedly connected outside the bottom plate, a sliding plate is slidably connected inside the connecting frame and located above the bottom plate, six high-precision digital printers are movably connected inside the sliding plate at equal intervals, a first fixing plate is fixedly connected inside the connecting frame, and a second fixing plate is fixedly connected inside the connecting frame. Six first control switches are fixedly connected into the first fixing plate at equal intervals, and the input ends of the first control switches are fixedly connected with first connecting pipes. The utility model has the beneficial effects that patterns of natural texture textures and rock textures can be printed on the plane surface of the sand-blasted glass, so that the concave-convex feeling of the textures and the pattern combination are improved, the decoration of the glass is improved, the rock-like glass is formed, a multi-layer and multi-angle printing mode can be realized in the printing process, and the production efficiency is improved. The three-dimensional sense and the reality sense of the patterns are enhanced, the patterns vividly simulate natural textures and textures, and compared with a traditional device, the operation quality and the use efficiency are greatly improved.
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Description

Technical Field

[0001] This utility model relates to the field of glass pattern printing technology, and in particular to a glass pattern printing structure. Background Technology

[0002] Decorative glass is generally made by printing and sintering patterns on the glass surface. In order to improve the decorative effect and practical performance, the demand for various processing treatments on the glass surface has been increasing in recent years. In the existing technology, glass surface processing mainly includes surface screen printing, etching and coating treatment. However, for glass products that need to combine natural texture and highly simulated rock slab texture effects, the fine and irregular texture increases the difficulty of pattern forming and the overall effect is poor.

[0003] To address the aforementioned issues, we have introduced a printing structure for printing textured or rock-textured glass patterns. Utility Model Content

[0004] This utility model discloses a glass pattern printing structure, which aims to solve the technical problems in the background art.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] A glass pattern printing structure for printing on glass surfaces with minute irregularities includes a base plate and a connecting frame. The connecting frame is fixedly connected to the outside of the base plate. A sliding plate is slidably connected inside the connecting frame and above the base plate. Six high-precision digital printers are equidistantly connected inside the sliding plate. A first fixing plate is fixedly connected inside the connecting frame. Six first control switches are equidistantly fixedly connected inside the first fixing plate. The input ends of the first control switches are all fixedly connected to first connecting tubes, and the output ends of the first control switches are all fixedly connected to second connecting tubes. The ends of the second connecting tubes away from the first control switches are all fixedly connected to the ink inlets of the corresponding high-precision digital printers.

[0007] The base plate and connecting frame provide stable support and housing protection for the entire device. The sliding plate design allows the high-precision digital printer to slide freely within the connecting frame, facilitating adjustment of the printing position. The equidistant arrangement of six high-precision digital printers improves printing efficiency and accuracy. The design of the first fixed plate and the first control switch enables precise control and distribution of ink. The second connecting tube delivers ink to the ink inlet of each printer, ensuring the stability and reliability of ink supply, thus improving the printing quality and production efficiency of the device. It is suitable for printing glass patterns that require high precision and high efficiency.

[0008] In a preferred embodiment, a second fixing plate is fixedly connected inside the connecting frame and above the first fixing plate. Six second control switches are fixedly connected at equal intervals inside the second fixing plate. Ink inlet tubes are fixedly connected between the input ends of the six second control switches. The end of the first connecting tube away from the first control switch is fixedly connected to the output end of the corresponding second control switch.

[0009] The control and distribution of ink are further refined by setting a second fixed plate and a second control switch. The ink inlet tube delivers ink to six second control switches, and then distributes it to six first control switches through the first connecting tube, and finally delivers it to the high-precision digital printer. This multi-level control and distribution system ensures uniform ink supply, improves print quality and ink utilization, and reduces ink waste.

[0010] In a preferred embodiment, two waste ink collectors are fixedly connected inside the sliding plate. Each waste ink collector has three ink discharge pipes fixedly connected to its input end. The end of each ink discharge pipe away from the waste ink collector is fixedly connected to the ink discharge port of a high-precision digital printer. A third connecting pipe is fixedly connected between the output ends of the two waste ink collectors.

[0011] By setting up waste ink collectors and ink discharge pipes, the waste ink discharged by high-precision digital printers can be effectively collected and managed, preventing waste ink from polluting the printing environment and equipment. The third connecting pipe connects the two waste ink collectors together for centralized waste ink treatment, simplifying the maintenance process, improving the environmental friendliness and ease of maintenance of the device, and ensuring a clean printing environment and long-term stable operation of the equipment.

[0012] In a preferred embodiment, each of the high-precision digital printers has a power socket fixedly connected to its top, and each power socket has a connector movably connected inside. A connecting wire is fixedly connected between the tops of the six connectors, and the end of the connecting wire away from the connector is connected to an external control device.

[0013] The design of setting up power sockets and connectors enables fast and convenient power supply for high-precision digital printers. The connecting cable connects all connectors to external control devices, ensuring unified management and control, simplifying the power supply and control connections of the device, and improving the installation efficiency and ease of operation.

[0014] In a preferred embodiment, cylinders are fixedly connected to both ends of the bottom of the base plate, and the output ends of the cylinders penetrate the base plate and are fixedly connected to the bottom of the sliding plate.

[0015] By setting a cylinder to provide the power source for the sliding plate, the sliding plate can be precisely adjusted within the connecting frame through the cylinder drive, which improves the motion accuracy and automation of the sliding plate, ensures the accuracy and efficiency of the printing position, and is suitable for multi-pattern printing tasks that require frequent adjustment of the printing position.

[0016] In a preferred embodiment, two side ears are fixedly connected to both sides of the high-precision digital printer, and each side ear is connected to a sliding plate by screws.

[0017] The high-precision digital printer is securely fixed to the sliding plate by using side lugs and screws to prevent shaking or displacement during sliding.

[0018] In a preferred embodiment, two fixed brackets are fixedly connected to both sides of the bottom of the base plate.

[0019] By setting up fixed brackets, a stable support is provided for the base plate, ensuring the stability and safety of the device during installation and use.

[0020] The glass pattern printing structure provided by this utility model has the following advantages:

[0021] In this invention, a sliding plate allows the high-precision digital printer to slide freely within the connecting frame. The equidistant arrangement of six high-precision digital printers improves printing efficiency and accuracy. The second connecting pipe delivers ink to the ink inlet of each printer, ensuring the stability and reliability of ink supply. It can print patterns with natural textures and rock patterns on flat glass surfaces with micro-concave and convex shapes formed by laser etching or sandblasting, thereby enhancing the decorative properties of the glass and creating a rock-like glass. During the printing process, multi-layer and multi-angle printing methods can be achieved, enhancing the three-dimensionality and realism of the pattern, making it realistically simulate the texture of natural textures and rock slabs. Compared with traditional devices, it greatly improves the quality of operation and efficiency of use. Attached Figure Description

[0022] Figure 1 This is a first-view perspective stereoscopic diagram of a glass pattern printing structure proposed in this utility model.

[0023] Figure 2 This is a second-view perspective stereoscopic diagram of a glass pattern printing structure proposed in this utility model.

[0024] Figure 3 This is a schematic diagram of the base plate structure of a glass pattern printing structure proposed in this utility model.

[0025] Figure 4 This is a schematic diagram of the first fixing plate structure of the glass pattern printing structure proposed in this utility model.

[0026] Figure 5 This is a schematic diagram of a high-precision digital printer with a glass pattern printing structure proposed in this utility model.

[0027] Figure 6 This is a schematic diagram of the connecting line structure of a glass pattern printing structure proposed in this utility model.

[0028] In the attached diagram: 1. Base plate; 2. Connecting frame; 3. Sliding plate; 4. High-precision digital printer; 5. First fixing plate; 6. First control switch; 7. First connecting pipe; 8. Second connecting pipe; 9. Second fixing plate; 10. Second control switch; 11. Ink inlet pipe; 12. Waste ink collector; 13. Ink outlet pipe; 14. Third connecting pipe; 15. Power socket; 16. Power connector; 17. Connecting wire; 18. Cylinder; 19. Side lug; 20. Screw; 21. Fixing bracket. Detailed Implementation

[0029] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. The components of the embodiments of this application described and marked in the accompanying drawings can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of this application provided in the accompanying drawings is not intended to limit the scope of the claimed application, but merely represents selected embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.

[0030] The glass pattern printing structure disclosed in this utility model is mainly used in glass pattern printing scenarios.

[0031] Example 1

[0032] Reference Figures 1-6 A glass pattern printing structure for printing on glass surfaces with minute irregularities includes a base plate 1 and a connecting frame 2. The connecting frame 2 is fixedly connected to the outside of the base plate 1. A sliding plate 3 is slidably connected inside the connecting frame 2 and above the base plate 1. Six high-precision digital printers 4 are equidistantly connected inside the sliding plate 3. A first fixing plate 5 is fixedly connected inside the connecting frame 2. Six first control switches 6 are equidistantly fixedly connected inside the first fixing plate 5. The input ends of the first control switches 6 are all fixedly connected to first connecting tubes 7. The output ends of the first control switches 6 are all fixedly connected to second connecting tubes 8. The end of the second connecting tube 8 away from the first control switch 6 is fixedly connected to the ink inlet of the corresponding high-precision digital printer 4.

[0033] In this embodiment: the base plate 1 and the connecting frame 2 provide stable support and outer shell protection for the entire device. The design of the sliding plate 3 allows the high-precision digital printer 4 to slide freely within the connecting frame 2, facilitating the adjustment of the printing position. The equidistant arrangement of the six high-precision digital printers 4 improves printing efficiency and accuracy. The design of the first fixed plate 5 and the first control switch 6 enables precise control and distribution of ink. The second connecting pipe 8 delivers ink to the ink inlet of each printer, ensuring the stability and reliability of ink supply, improving the printing quality and production efficiency of the device, and making it suitable for printing glass patterns that require high precision and high efficiency.

[0034] In a preferred embodiment, a second fixing plate 9 is fixedly connected inside the connecting frame 2 and above the first fixing plate 5. Six second control switches 10 are fixedly connected at equal intervals inside the second fixing plate 9. Ink inlet pipes 11 are fixedly connected between the input ends of the six second control switches 10. The end of the first connecting pipe 7 away from the first control switch 6 is fixedly connected to the output end of the corresponding second control switch 10.

[0035] In this embodiment, the second fixing plate 9 and the second control switch 10 further refine the control and distribution of ink. The ink inlet pipe 11 delivers ink to the six second control switches 10, and then distributes it to the six first control switches 6 through the first connecting pipe 7, and finally delivers it to the high-precision digital printer 4. This multi-level control and distribution system ensures a uniform supply of ink, improves print quality and ink utilization, and reduces ink waste.

[0036] In a preferred embodiment, two waste ink collectors 12 are fixedly connected inside the sliding plate 3. Each waste ink collector 12 has three ink discharge pipes 13 fixedly connected to its input end. The end of each ink discharge pipe 13 away from the waste ink collector 12 is fixedly connected to the ink discharge port of the high-precision digital printer 4. A third connecting pipe 14 is fixedly connected between the output ends of the two waste ink collectors 12.

[0037] In this embodiment, the waste ink collector 12 and the ink discharge pipe 13 effectively collect and manage the waste ink discharged by the high-precision digital printer 4, preventing waste ink from polluting the printing environment and equipment. The third connecting pipe 14 connects the two waste ink collectors 12 together, centrally processing the waste ink, simplifying the maintenance process, improving the environmental friendliness and ease of maintenance of the device, and ensuring the cleanliness of the printing environment and the long-term stable operation of the equipment.

[0038] In a preferred embodiment, each of the high-precision digital printers 4 has a power socket 15 fixedly connected to its top. Each power socket 15 has a power connector 16 movably connected inside it. A connecting wire 17 is fixedly connected between the tops of the six power connectors 16. The end of the connecting wire 17 away from the power connector 16 is connected to an external control device.

[0039] In this embodiment, the design of the power socket 15 and the power connector 16 enables the high-precision digital printer 4 to be powered quickly and conveniently. The connecting cable 17 connects all the power connectors 16 to external control devices, ensuring unified management and control, simplifying the power supply and control connection of the device, and improving the installation efficiency and ease of operation of the device.

[0040] In a preferred embodiment, cylinders 18 are fixedly connected to both ends of the bottom of the base plate 1, and the output ends of the cylinders 18 penetrate the base plate 1 and are fixedly connected to the bottom of the sliding plate 3.

[0041] In this embodiment, the cylinder 18 provides the power source for the sliding plate 3. Driven by the cylinder 18, the sliding plate 3 can be precisely adjusted within the connecting frame 2, which improves the motion accuracy and automation of the sliding plate 3, ensures the accuracy and efficiency of the printing position, and is suitable for multi-pattern printing tasks that require frequent adjustment of the printing position.

[0042] In a preferred embodiment, two side ears 19 are fixedly connected to both sides of the high-precision digital printer 4, and the side ears 19 are connected to the sliding plate 3 by screws 20.

[0043] In this embodiment, the side lug 19 and screw 20 securely fix the high-precision digital printer 4 to the sliding plate 3 to prevent shaking or displacement during sliding.

[0044] In a preferred embodiment, two fixed brackets 21 are fixedly connected to both sides of the bottom of the base plate 1.

[0045] In this embodiment, the fixed bracket 21 provides a stable support for the base plate 1, ensuring the stability and safety of the device during installation and use.

[0046] Working Principle: During use, the entire device is activated via an external control device. Connector 17 transmits power and control signals to the power connector 16 of the high-precision digital printer 4. The second control switch 10 is activated, receiving ink from the ink inlet tube 11 and delivering it to the corresponding first control switch 6 via the second connecting tube 8. The first control switch 6 controls the ink flow according to printing requirements, delivering ink to the ink inlet of the high-precision digital printer 4 via the first connecting tube 7 and the second connecting tube 8. The high-precision digital printer 4 begins operation, printing the glass pattern. Cylinder 18 drives the sliding plate 3 to move up and down, adjusting the distance between the high-precision digital printer 4 and the glass. The sliding plate 3 slides inside the connecting frame 2, ensuring accurate movement of the high-precision digital printer 4. After receiving ink and control signals, the high-precision digital printer 4 begins printing the pattern on the glass. The up and down movement of the sliding plate 3... The horizontal movement of the mobile and high-precision digital printer 4 ensures that the printing area covers the entire glass surface. During printing, the power connector 16 receives power and control signals from external control devices through the connecting cable 17 to ensure the normal operation of the printer. Waste ink generated during printing is discharged from the ink outlet of the high-precision digital printer 4 through the ink discharge pipe 13 and enters the waste ink collector 12. After the waste ink is collected by the waste ink collector 12, it is discharged through the third connecting pipe 14 to ensure the efficiency and safety of waste ink treatment. The device can print natural texture and rock patterns on the flat glass surface to improve the decorative properties of the glass and form a rock-like glass. During the printing process, multi-layer and multi-angle printing methods can be realized to enhance the three-dimensionality and realism of the pattern, making it realistically simulate the texture of natural texture and rock slab. Compared with traditional devices, it greatly improves the work quality and usage efficiency.

[0047] Example 2

[0048] The glass printing process using the above-described apparatus is as follows:

[0049] 1. Glass substrate treatment

[0050] First, the glass substrate to be processed undergoes cutting, fine edge grinding, high-level cleaning, and drying.

[0051] 2. Design and Formation of Texture

[0052] Based on customer needs and design requirements, we design textured patterns with a natural textural effect.

[0053] Pre-defined textures are created on glass surfaces using laser etching, high-temperature roller coating, or sandblasting. Laser etching can achieve intricate patterns and create tiny bumps and depressions on the glass surface, increasing the realism and tactile feel of the texture.

[0054] Screen printing is used to print the base color and pattern of glass ink onto the surface of a pretreated glass substrate. Different screens can be used to overlay screen printing on the same piece of glass to enhance the visual effect of the texture.

[0055] 3. Implementation of textured patterns and slab printing technology

[0056] The inkjet printing technology of the above-mentioned printing device is used to print rock slab patterns on the glass surface.

[0057] During the printing process, multi-layered and multi-angle printing enhances the three-dimensionality and realism of the pattern, making it realistically simulate the texture of the rock slab.

[0058] 4. Tempering and sintering

[0059] Next, the printed glass substrate is placed in a tempering furnace and heated to sinter at 700°C. Then it is cooled to room temperature to obtain glass with textured patterns or a combination of rock slab printing processes.

[0060] The final glass surface has a highly realistic, three-dimensional feel, and a textured or rock-slab pattern that provides a tactile experience.

[0061] The above description is merely a preferred embodiment of this utility model, but the protection scope of this utility model is not limited thereto. The substitutions may be replacements of some structures, devices, or method steps, or they may be complete technical solutions. Equivalent substitutions or modifications made based on the technical solution and inventive concept of this utility model should all be covered within the protection scope of this utility model.

Claims

1. A glass pattern printing structure, characterized in that, The system includes a base plate (1) and a connecting frame (2). The connecting frame (2) is fixedly connected to the outside of the base plate (1). A sliding plate (3) is slidably connected inside the connecting frame (2) and above the base plate (1). Six high-precision digital printers (4) are equidistantly connected inside the sliding plate (3). A first fixing plate (5) is fixedly connected inside the connecting frame (2). Six first control switches (6) are equidistantly fixedly connected inside the first fixing plate (5). A first connecting tube (7) is fixedly connected to the input end of each of the first control switches (6). A second connecting tube (8) is fixedly connected to the output end of each of the first control switches (6). The end of the second connecting tube (8) away from the first control switch (6) is fixedly connected to the ink inlet of the corresponding high-precision digital printer (4).

2. The glass pattern printing structure according to claim 1, characterized in that, A second fixing plate (9) is fixedly connected inside the connecting frame (2) and above the first fixing plate (5). Six second control switches (10) are fixedly connected at equal intervals inside the second fixing plate (9). An ink inlet tube (11) is fixedly connected between the input ends of the six second control switches (10). The end of the first connecting tube (7) away from the first control switch (6) is fixedly connected to the output end of the corresponding second control switch (10).

3. The glass pattern printing structure according to claim 1, characterized in that, The sliding plate (3) has two waste ink collectors (12) fixedly connected inside. Each of the waste ink collectors (12) has three ink discharge pipes (13) fixedly connected to its input end. The end of each ink discharge pipe (13) away from the waste ink collector (12) is fixedly connected to the ink discharge port of the high-precision digital printer (4). A third connecting pipe (14) is fixedly connected between the output ends of the two waste ink collectors (12).

4. The glass pattern printing structure according to claim 1, characterized in that, Each of the high-precision digital printers (4) has a power socket (15) fixedly connected to its top. Each power socket (15) has a power connector (16) movably connected inside it. A connecting wire (17) is fixedly connected between the tops of the six power connectors (16). The end of the connecting wire (17) away from the power connector (16) is connected to an external control device.

5. The glass pattern printing structure according to claim 1, characterized in that, Both ends of the bottom of the base plate (1) are fixedly connected to cylinders (18), and the output ends of the cylinders (18) pass through the base plate (1) and are fixedly connected to the bottom of the sliding plate (3).

6. The glass pattern printing structure according to claim 1, characterized in that, The high-precision digital printer (4) has two side ears (19) fixedly connected to both sides, and the side ears (19) are connected to the sliding plate (3) by screws (20).

7. The glass pattern printing structure according to claim 1, characterized in that, Two fixed brackets (21) are fixedly connected to both sides of the bottom of the base plate (1).