A high-precision 3D texture printing with a backing plate
Patent Information
- Application Number
- CN202522051980.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-24
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-09-24
AI Technical Summary
[0004]为解决上述问题,本实用新型提出了一种高精度3D纹理印刷用垫板,有效解决了现有技术中3D纹理印刷操作繁琐、费时费力和缺乏定位的问题,大大提高了生产效率
[0012]与现有技术相比,本实用新型的增益效果为:
Smart Images

Figure CN224781574U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of texture printing technology, specifically a high-precision 3D texture printing pad. Background Technology
[0002] In today's diversified market environment that pursues high quality, 3D texture printing technology has become one of the most prominent key technologies in the printing industry due to its unique advantages. This technology breaks the limitation of traditional flat printing, which can only present patterns on a two-dimensional level. Through special processes, it creates realistic and tactile textures on the surface of printed materials, bringing a brand-new visual and tactile experience to products and greatly enriching the appearance of products. In terms of application breadth, 3D texture printing technology has demonstrated immense value across numerous industries. In the packaging industry, its impact on high-end gift boxes and cosmetic packaging is particularly significant. Taking high-end gift boxes as an example, 3D texture printing can create effects such as delicate leather textures and exquisite brushed metal finishes on the surface, not only enhancing the box's quality but also creating a strong visual impact, making the product stand out from the competition and significantly increasing its perceived value and added worth. In cosmetic packaging, 3D texture printing can simulate the soft texture of flower petals and the brilliance of gemstones, precisely matching the brand positioning and product characteristics of cosmetics, thus enhancing consumer goodwill and trust.
[0003] In the field of decorative materials, 3D texture printing technology has breathed new life into products such as wallpaper and flooring. For wallpaper, it can realistically simulate the textures of various natural materials, such as rustic wood grain, elegant stone grain, and mysterious fabric texture, allowing consumers to easily create a natural, warm, and personalized interior space atmosphere without high costs or complicated installation. For flooring, the simulated wood grain, stone grain, and other three-dimensional textures achieved through 3D texture printing not only enhance the decorative effect of the flooring, making it more aesthetically pleasing and artistic, but also improve its practical properties such as slip resistance and wear resistance, extending its service life. In the field of industrial manufacturing, 3D texture printing technology also plays an indispensable role. For components requiring specific textures for anti-slip properties, such as mechanical handles and car pedals, 3D texture printing creates suitable raised and recessed textures, effectively increasing friction, reducing the risk of errors during operation, and ensuring the safety of personnel and equipment. For components used in harsh environments that require wear resistance, such as internal engine parts and mining machinery parts, the special texture structure formed by 3D texture printing can alter the stress distribution on the surface of the part, reducing wear, improving the durability and reliability of the part, and lowering equipment maintenance costs and downtime. Despite the promising prospects of 3D texture printing technology, existing technologies still face numerous unresolved issues. Currently, methods such as placing the item to be printed in the correct position and then adjusting its position and angle after printing, or adjusting the print head position, all have significant drawbacks. These processes are not only cumbersome and complex, requiring substantial time and manpower, but frequent position adjustments also easily lead to printing interruptions, severely impacting printing efficiency and failing to meet the market demands for large-scale, high-efficiency production. Furthermore, the common method of placing the item on a printing pad in existing technologies generally lacks effective measures to secure the item. During printing, factors such as the ink jet impact from the print head and vibrations during equipment operation can easily cause the item to slide on the pad. Once the item slides, the printed pattern deviates from the preset position, resulting in a significant reduction in printing quality and even substantial waste of raw materials and increased production costs, severely limiting the widespread application and promotion of 3D texture printing technology in actual production. Utility Model Content
[0004] To address the aforementioned issues, this invention proposes a high-precision 3D texture printing pad, which effectively solves the problems of cumbersome, time-consuming, and labor-intensive 3D texture printing operations and lack of positioning in the prior art, thus greatly improving production efficiency.
[0005] To achieve the above objectives, the present invention proposes the following technical solution: A high-precision 3D texture printing pad, comprising a base, a pad disposed on top of the base, and a universal adjustment mechanism connected to the pad disposed on the base; a pair of clamping blocks are slidably connected to the pad, a stable clamping mechanism cooperating with the clamping blocks is disposed inside the pad, and a sliding groove cooperating with the clamping blocks is disposed on the pad; under the action of the stable clamping mechanism, the sliding directions of the clamping blocks are opposite, and each clamping block is provided with a handle.
[0006] Furthermore: the universal adjustment mechanism includes multiple driven gears rotatably connected within the base, the driven gears being arranged in a coaxial array, and multiple driving gears rotatably connected within the base, each driving gear meshing with a corresponding driven gear; each driven gear is coaxially fixed with a right-angle connecting rod, the other end of each right-angle connecting rod being rotatably connected to a curved connecting rod, and a connecting frustum coaxially fixed below the pad, the curved connecting rods being rotatably connected to the connecting frustum.
[0007] Furthermore: the stabilizing clamping mechanism includes a connecting gear rotatably connected inside the pad, a pair of multiple connecting racks slidably connected inside the pad, the multiple connecting racks being arranged in an array on both sides of the connecting gear, and all the multiple connecting racks meshing with the connecting gear; each of the multiple connecting racks is fixedly connected to a corresponding clamping block; each of the multiple connecting racks is fixedly connected to a sliding inner sleeve, and a fixed outer sleeve is fixedly connected inside the pad and slidably connected to the sliding inner sleeve; a tension spring is sleeved inside the sliding inner sleeve, one end of the tension spring is fixedly connected to the sliding inner sleeve, and the other end of the tension spring is fixedly connected to the fixed outer sleeve.
[0008] Furthermore: all handles are located on the outside of the clamping block.
[0009] Furthermore, all drive gears are coaxially fixed to a motor.
[0010] Furthermore: the rotation axes of the right-angle connecting rods are the same.
[0011] Furthermore, the rotating connection points of the curved connecting rod and the connecting frustum are arranged in an array on the side of the connecting frustum.
[0012] Compared with the prior art, the gain effect of this utility model is as follows: The stable clamping mechanism ensures stable clamping of printed materials, effectively preventing slippage and other problems during the printing process.
[0013] The universal adjustment mechanism allows for all-around adjustment of the angle of the item, as well as its height, thus solving the problem of cumbersome manual adjustment and greatly improving printing efficiency. Attached Figure Description
[0014] Figure 1 This is a perspective view of the present utility model.
[0015] Figure 2 This is a perspective view of the universal adjustment mechanism of this utility model.
[0016] Figure 3 This is a perspective view of the stable clamping mechanism of this utility model.
[0017] In the diagram: 1. Base, 2. Pad, 3. Clamping block, 4. Connecting frustum, 5. Driving gear, 6. Driven gear, 7. Curved connecting rod, 8. Right-angle connecting rod, 9. Multi-connecting rack, 10. Connecting gear, 11. Sliding inner sleeve, 12. Tension spring, 13. Fixed outer sleeve. Detailed Implementation
[0018] The technical solution of this utility model will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0019] A high-precision 3D texture printing pad includes a base 1, a pad 2 disposed above the base 1, and a universal adjustment mechanism connected to the pad 2 disposed on the base 1; a pair of clamping blocks 3 are slidably connected to the pad 2, a stable clamping mechanism that cooperates with the clamping blocks 3 is disposed inside the pad 2, and a sliding groove that cooperates with the clamping blocks 3 is disposed on the pad 2; under the action of the stable clamping mechanism, the sliding directions of the clamping blocks 3 are opposite, and each clamping block 3 is provided with a handle.
[0020] The universal adjustment mechanism includes multiple driven gears 6 rotatably connected within a base 1, which are arranged in a coaxial array. Multiple driving gears 5 are rotatably connected within the base 1, and each driving gear 5 meshes with a corresponding driven gear 6. Each driven gear 6 is coaxially fixed with a right-angle connecting rod 8, and the other end of each right-angle connecting rod 8 is rotatably connected with a curved connecting rod 7. A connecting frustum 4 is coaxially fixed below the pad 2, and the curved connecting rods 7 are rotatably connected to the connecting frustum 4.
[0021] The stabilizing clamping mechanism includes a connecting gear 10 rotatably connected inside the pad 2, a pair of multiple connecting racks 9 slidably connected inside the pad 2, the multiple connecting racks 9 being arranged in an array on both sides of the connecting gear 10, and all multiple connecting racks 9 meshing with the connecting gear 10; the multiple connecting racks 9 are respectively fixedly connected to the corresponding clamping blocks 3; each of the multiple connecting racks 9 is fixedly connected to a sliding inner sleeve 11, and a fixed outer sleeve 13 is fixedly connected inside the pad 2 and slidably connected to the sliding inner sleeve 11; a tension spring 12 is sleeved inside the sliding inner sleeve 11, one end of the tension spring 12 is fixedly connected to the sliding inner sleeve 11, and the other end of the tension spring 12 is fixedly connected to the fixed outer sleeve 13.
[0022] All handles are located on the outside of clamping block 3.
[0023] Each of the five drive gears is coaxially fixed to a motor.
[0024] The rotation axis of the right-angle link 8 is the same.
[0025] The rotatable connection points between the curved connecting rod 7 and the connecting frustum 4 are arranged in an array on the side of the connecting frustum 4.
[0026] like Figure 1 , 2As shown in Figure 3: When using this utility model, first place the base 1 in a suitable position, and then pull the clamping block 3 by the handle. When one clamping block 3 is pulled, under the action of the stabilizing clamping mechanism, the other clamping block 3 slides in the opposite direction. After the clamping block 3 is pulled to a suitable position, the item to be printed can be placed on the pad 2, and then the clamping block 3 is released. At this time, the clamping block 3 will clamp the item. During this process, one clamping block 3 slides, and the sliding of the clamping block 3 will drive the multi-connecting rack 9 to slide. The sliding of the multi-connecting rack 9 will drive the multi-connecting rack 9 fixed to the other clamping block 3 to slide through the connecting gear 10, thereby realizing that the clamping block 3 slides in the opposite direction. At the same time, the sliding inner sleeve 11 slides relative to the fixed outer sleeve 13, and the tension spring 12 is stretched. When the handle is released, the clamping block 3 can be reset under the action of the tension spring 12, thereby realizing the clamping of the item.
[0027] During the 3D texture printing process, when the angle of the item on the pad 2 needs to be adjusted, it can be adjusted through the universal adjustment mechanism. When part of the motor fixed to the drive gear 5 rotates, the rotation of the drive gear 5 can drive the right-angle connecting rod 8 to rotate through the driven gear 6. The rotation of the right-angle connecting rod 8 will drive the connecting frustum 4 and the pad 2 to adjust their angle through the curved connecting rod 7. When all the motors rotate, the height of the connecting frustum 4 and the pad 2 can be adjusted. This effectively solves the problems of cumbersome operation, time-consuming and labor-intensive operation and lack of positioning in the existing 3D texture printing technology, and greatly improves production efficiency.
[0028] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0029] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation", "connection", and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.
Claims
1. A high-precision 3D texture printing pad, characterized in that: Includes a base (1), a pad (2) is provided above the base (1), and a universal adjustment mechanism connected to the pad (2) is provided on the base (1); a pair of clamping blocks (3) are slidably connected on the pad (2), and a stable clamping mechanism that cooperates with the clamping blocks (3) is provided inside the pad (2), and a sliding groove that cooperates with the clamping blocks (3) is provided on the pad (2); under the action of the stable clamping mechanism, the sliding directions of the clamping blocks (3) are opposite, and each clamping block (3) is provided with a handle.
2. The high-precision 3D texture printing pad according to claim 1, characterized in that: The universal adjustment mechanism includes multiple driven gears (6) rotatably connected inside the base (1), the driven gears (6) are arranged in a coaxial array, multiple driving gears (5) are rotatably connected inside the base (1), the driving gears (5) mesh with the corresponding driven gears (6); each driven gear (6) is coaxially fixed with a right-angle connecting rod (8), the other end of each right-angle connecting rod (8) is rotatably connected with a curved connecting rod (7), a connecting frustum (4) is coaxially fixed below the pad (2), and the curved connecting rod (7) is rotatably connected to the connecting frustum (4).
3. The high-precision 3D texture printing pad according to claim 1, characterized in that: The stabilizing clamping mechanism includes a connecting gear (10) rotatably connected inside the pad (2), a pair of multiple connecting racks (9) slidably connected inside the pad (2), the multiple connecting racks (9) are arranged in an array on both sides of the connecting gear (10), and the multiple connecting racks (9) mesh with the connecting gear (10); the multiple connecting racks (9) are respectively fixedly connected to the corresponding clamping blocks (3); each of the multiple connecting racks (9) is fixedly connected to a sliding inner sleeve (11), the pad (2) is fixedly connected to a fixed outer sleeve (13) slidably connected to the sliding inner sleeve (11), the sliding inner sleeve (11) is fitted with a tension spring (12), one end of the tension spring (12) is fixedly connected to the sliding inner sleeve (11), and the other end of the tension spring (12) is fixedly connected to the fixed outer sleeve (13).
4. The high-precision 3D texture printing pad according to claim 1, characterized in that: All handles are located on the outside of the clamping block (3).
5. The high-precision 3D texture printing pad according to claim 2, characterized in that: The driving gear (5) is coaxially fixed to the motor.
6. The high-precision 3D texture printing pad according to claim 2, characterized in that: The rotation axis of the right-angle connecting rod (8) is the same.
7. The high-precision 3D texture printing pad according to claim 2, characterized in that: The rotating connection positions of the curved connecting rod (7) and the connecting frustum (4) are arranged in an array on the side of the connecting frustum (4).