Impressing roller device of glass surface anti-reflection microstructure
The quick-disassembly design with hexagonal shafts and screw columns simplifies the disassembly and modularization of glass surface imprinting rollers, addressing complex assembly and non-modular issues, enhancing maintenance efficiency.
Patent Information
- Application Number
- CN202510395743.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2025-07-15
AI Technical Summary
In the existing imprint roller device, the roller shaft is installed through the bearing, causing cumbersome disassembly and assembly, and the roller is a cylindrical structure that cannot be disassembled separately, which affects the efficiency of rapid replacement and maintenance.
The quick-removal roller shaft and roller bearing cylinder design is adopted, including structures such as hexagonal rods, threaded columns, fitting grooves, dovetail grooves, etc., to realize the rapid disassembly and assembly of roller shafts and rollers and to simplify the disassembly process through thread and bearing installation.
It realizes rapid disassembly and separate replacement of roller shafts and rollers, improves maintenance efficiency and convenience, and adapts to assembly and disassembly of different needs.
Smart Images

Figure CN120309198A_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the technical field of imprinting rollers, and particularly relates to an imprinting roller device for anti-reflection microstructures on the glass surface. Background Art
[0002] The imprinting roller imprints anti-reflection microstructures on the glass surface, which can refract and scatter incident light multiple times, disrupting the law of specular reflection. At the same time, it can be combined with thermochromism. By the anti-reflection microstructures, the basic light transmittance can be improved, and by the thermochromic layer, infrared light can be selectively blocked. It can achieve high-efficiency heat insulation while ensuring the lighting requirements. Moreover, the anti-reflection microstructures have weather resistance and can protect the thermochromic layer from environmental erosion.
[0003] Based on the above, the inventor of the present application found that the existing imprinting roller devices have the following deficiencies:
[0004] 1. The roller shaft is directly installed through bearings, resulting in a rather cumbersome disassembly and assembly process of the roller shaft, and it is inconvenient to add connection measures at both ends of the roller shaft to enable quick disassembly and replacement of the roller shaft.
[0005] 2. The roller is of a cylindrical structure and cannot be disassembled and replaced individually as needed. It is inconvenient to set the roller as a split type to enable the roller to be separately removed from the roller shaft for replacement. Summary of the Invention
[0006] In order to solve the above technical problems, this application provides an imprinting roller device for anti-reflection microstructures on the glass surface, so as to solve the problems that the existing roller shaft is directly installed through bearings, resulting in a rather cumbersome disassembly and assembly process of the roller shaft, and it is inconvenient to add connection measures at both ends of the roller shaft to enable quick disassembly and replacement of the roller shaft; the roller is of a cylindrical structure and cannot be disassembled and replaced individually as needed, and it is inconvenient to set the roller as a split type to enable the roller to be separately removed from the roller shaft for replacement.
[0007] The objectives and effects of the imprinting roller device for anti-reflection microstructures on the glass surface in this application are achieved by the following specific technical means:
[0008] An imprinting roller device for an anti-reflection microstructure on the glass surface, comprising a device body; a quick-release roller shaft in the left-right direction is arranged on the device body, a regular hexagonal rod is arranged in the middle of the quick-release roller shaft, threaded columns are arranged at both the left and right end faces of the regular hexagonal rod of the quick-release roller shaft, a fitting groove is opened at the bottom of the outer end of the threaded column of the quick-release roller shaft, a left-right direction roller bearing carrier column is placed inside the fitting groove of the quick-release roller shaft, a fixing column is arranged at the outer end of the roller bearing carrier column, a limiting ring plate is arranged on the outer circumference of the inner end of the fixing column of the roller bearing carrier column, a threaded column is arranged at the inner end face of the fixing column of the roller bearing carrier column, a fitting groove is opened at the top of the threaded column of the roller bearing carrier column, a left-right direction roller shaft assembly cylinder is installed on the outer circumference between the quick-release roller shaft and the roller bearing carrier column by means of threads, internal threads are opened on the inner circumference of the roller shaft assembly cylinder, and a regular hexagonal structure is arranged on the outer circumference of the roller shaft assembly cylinder.
[0009] Further, semi-cylindrical rollers in the left-right direction are arranged above and below between the roller bearing cylinders, dovetail grooves are arranged at the front and back of both the left and right end faces of the semi-cylindrical rollers, and an imprinting structure is arranged on the outer circumferential surface of the semi-cylindrical rollers.
[0010] Further, four support plates are arranged in an annular array on the outer circumference of the inner end of the roller bearing cylinder, a dovetail block is arranged at the outer end of the support plate of the roller bearing cylinder, and a triangular plate is arranged on the support plate of the roller bearing cylinder.
[0011] Further, a left-right direction roller bearing cylinder is installed in the bearing ring groove of the roller disassembly and assembly cylinder by means of a bearing, a regular hexagonal hole penetrating left and right is opened inside the roller bearing cylinder, and a bearing ring groove is opened on the outer circumference of the outer end of the roller bearing cylinder.
[0012] Further, a vertically oriented rotary locking post is installed in the threaded hole of the roller disassembly and assembly cylinder, a threaded post is arranged at the lower part of the rotary locking post, and a regular hexagonal prism is arranged at the top end face of the threaded post of the rotary locking post.
[0013] Further, internal threads are opened on the inner circumference of the outer end of the roller disassembly and assembly cylinder, a regular hexagonal structure is arranged on the outer circumference of the outer end of the roller disassembly and assembly cylinder, and a threaded hole penetrating up and down is opened on the top wall of the outer end of the roller disassembly and assembly cylinder.
[0014] Further, a left-right direction roller disassembly and assembly cylinder is installed on the outer circumference of the threaded column of the quick-release roller shaft by means of threads, and a bearing ring groove is opened on the inner circumference of the inner end of the roller disassembly and assembly cylinder.
[0015] Compared with the prior art, the present application has the following beneficial effects:
[0016] The fitting grooves of the convenient quick-release roller shaft and the roller bearing column are mutually engaged, which facilitates the fixation of the assembled quick-release roller shaft and the roller bearing column through the roller shaft assembly cylinder, solving the problem that the roller shaft is directly installed through the bearing, resulting in a cumbersome disassembly and assembly process of the roller shaft and being inconvenient to install connection measures at both ends of the roller shaft to enable quick disassembly and replacement of the roller shaft.
[0017] It is convenient to split the cylindrical roller into semi-cylindrical shapes, and it is convenient for the semi-cylindrical rollers to be located between the roller bearing cylinders and form a cylinder by means of a dovetail structure, solving the problem that the roller is of a cylindrical structure and cannot be individually disassembled and replaced as needed, and it is inconvenient to set the roller as a split type to enable the roller to be individually removed and replaced from the roller shaft. Brief Description of the Drawings
[0018] Figure 1 It is the front view structural schematic diagram of the present application.
[0019] Figure 2 It is the sectional view structural schematic diagram of the present application.
[0020] Figure 3 It is the disassembled structural schematic diagram of the present application.
[0021] Figure 4 It is the schematic diagram of the disassembled state of the quick-release roller shaft of the present application.
[0022] Figure 5 It is the schematic diagram of the disassembled state of the semi-cylindrical roller of the present application.
[0023] Figure 6 It is the assembly schematic diagram of the roller disassembly and assembly cylinder and the roller bearing cylinder of the present application.
[0024] In the figure: 1, device body; 2, quick-release roller shaft; 3, roller bearing column; 4, roller shaft assembly cylinder; 5, roller disassembly and assembly cylinder; 6, rotary locking column; 7, roller bearing cylinder; 8, semi-cylindrical roller. Detailed Description of the Embodiments
[0025] The following further describes the embodiments of the present invention in detail with reference to the drawings and embodiments.
[0026] Embodiment 1:
[0027] As shown in Figure 1 to Figure 6 shown:
[0028] The present application provides an embossing roller device for an anti-reflection microstructure on the glass surface, including a device body 1; the device body 1 is provided with a quick-release roller shaft 2 in the left-right direction to facilitate the loading of each component. A regular hexagonal rod is arranged in the middle of the quick-release roller shaft 2 to facilitate the anti-rotation fitting of the roller bearing cylinder 7. Threaded columns are arranged on both the left and right end faces of the regular hexagonal rod of the quick-release roller shaft 2 to facilitate the threaded installation of the roller shaft assembly cylinder 4 and the roller disassembly and assembly cylinder 5. A fitting groove is opened at the bottom of the outer end of the threaded column of the quick-release roller shaft 2 to facilitate the combination with the roller bearing column 3. A left-right direction roller bearing column 3 is placed inside the fitting groove of the quick-release roller shaft 2 to facilitate the roller bearing column 3 to be mounted on the device through a bearing to carry the quick-release roller shaft 2. A fixing column is arranged at the outer end of the roller bearing column 3 to facilitate the installation of the roller bearing column 3 through a bearing. A limiting ring plate is arranged on the outer circumference of the inner end of the fixing column of the roller bearing column 3 to facilitate the locking and limiting of the roller shaft assembly cylinder 4. A threaded column is arranged on the inner end face of the fixing column of the roller bearing column 3 to facilitate the threaded installation of the roller shaft assembly cylinder 4. A fitting groove is opened at the top of the threaded column of the roller bearing column 3 to facilitate the combination with the quick-release roller shaft 2 to form a cylinder. A left-right direction roller shaft assembly cylinder 4 is threadedly installed on the outer circumference between the quick-release roller shaft 2 and the roller bearing column 3 to facilitate the quick disassembly and assembly of the quick-release roller shaft 2 and the roller bearing column 3. Threads are opened on the inner circumference of the roller shaft assembly cylinder 4 to facilitate the threaded installation and meshing movement of the roller shaft assembly cylinder 4. A regular hexagonal structure is arranged on the outer circumference of the roller shaft assembly cylinder 4 to facilitate the rotation of the roller shaft assembly cylinder 4 through a tool. A left-right direction roller disassembly and assembly cylinder 5 is threadedly installed on the outer circumference of the threaded column of the quick-release roller shaft 2 to facilitate the loading of the roller bearing cylinder 7. A bearing ring groove is opened on the inner circumference of the inner end of the roller disassembly and assembly cylinder 5 to facilitate the installation of the roller bearing cylinder 7 through a bearing.
[0029] Among them, an internal circumference of an outer end of the roller disassembly and assembly cylinder 5 is provided with threads, which is convenient for installation on an outer circumference of a threaded column of the quick-release roller shaft 2. An outer circumference of an outer end of the roller disassembly and assembly cylinder 5 is provided with a regular hexagon structure, which is convenient for the roller disassembly and assembly cylinder 5 to be rotated by a tool. A threaded hole penetrating up and down is opened on a top wall of an outer end of the roller disassembly and assembly cylinder 5, which is convenient for the rotary locking column 6 to be installed by threads. A rotary locking column 6 in an up-and-down direction is installed inside the threaded hole of the roller disassembly and assembly cylinder 5, which is convenient for stopping the rotation of the roller disassembly and assembly cylinder 5. A threaded column is provided at a lower part of the rotary locking column 6, which is convenient for installation by threads. A regular hexagonal prism is provided on a top end face of the threaded column of the rotary locking column 6, which is convenient for rotation by a tool. A left-and-right direction roller bearing cylinder 7 is installed inside a bearing ring groove of the roller disassembly and assembly cylinder 5 through a bearing, which is convenient for the roller disassembly and assembly cylinder 5 to rotate through the bearing. A regular hexagonal hole penetrating left and right is opened inside the roller bearing cylinder 7, which is convenient for a regular hexagonal rod of the quick-release roller shaft 2 to pass through. An outer circumference of an outer end of the roller bearing cylinder 7 is provided with a bearing ring groove, which is convenient for the roller disassembly and assembly cylinder 5 to be installed through a bearing. Four support plates are annularly arranged on an outer circumference of an inner end of the roller bearing cylinder 7, which is convenient for supporting a semi-cylindrical roller 8. A dovetail block is provided at an outer end of a support plate of the roller bearing cylinder 7, which is convenient for limiting and fixing the semi-cylindrical roller 8. A triangular plate is provided on the support plate of the roller bearing cylinder 7, which is convenient for strengthening the stress capacity. Semi-cylindrical rollers 8 in a left-and-right direction are provided above and below between the roller bearing cylinders 7, which is convenient for the semi-cylindrical rollers 8 to be combined to form a cylinder. Dovetail grooves are provided at the front and back of left and right end faces of the semi-cylindrical roller 8, which is convenient for mutually fitting with the dovetail blocks of the roller bearing cylinder 7. An embossing structure is provided on an outer circumference surface of the semi-cylindrical roller 8, which is convenient for embossing an anti-reflection microstructure on the glass surface.
[0030] Specific usage mode and function of this embodiment:
[0031] In this application, as Figure 1 shown, the device body 1 is in an assembled state. When the device body 1 is installed, the fixing column of the roller bearing column 3 is installed on an external device through a bearing, so that the device body 1 can rotate through the bearing. When as Figure 1 shown, when the quick-release roller shaft 2 and the roller bearing column 3 are disassembled, the roller shaft assembly cylinder 4 is rotated by a tool to be thread-engaged with the quick-release roller shaft 2 and the roller bearing column 3, so that the roller shaft assembly cylinder 4 moves inwards through thread engagement to leave the fitting position of the quick-release roller shaft 2 and the roller bearing column 3, and the state is as Figure 4 shown. Then, the quick-release roller shaft 2 can be picked up and separated from the roller bearing column 3, thereby completing the quick disassembly of the quick-release roller shaft 2. On the contrary, the operation is the installation operation of the quick-release roller shaft 2. When as Figure 1As shown, when the semi-cylindrical roller 8 is disassembled, the rotary locking column 6 is rotated by a tool to be threadedly engaged with the roller disassembly and assembly cylinder 5, so that the rotary locking column 6 rises through threaded engagement to loosen the pressing on the quick-release roller shaft 2, thereby releasing the rotary locking of the roller disassembly and assembly cylinder 5 by the rotary locking column 6. The roller disassembly and assembly cylinder 5 is rotated by a tool to be threadedly engaged with the quick-release roller shaft 2, so that the roller disassembly and assembly cylinder 5 moves outward through threaded engagement, and the roller disassembly and assembly cylinder 5 drives the roller bearing cylinder 7 to move outward synchronously through the bearing, so that the roller bearing cylinder 7 moves outward to disengage from the inside of the dovetail groove of the semi-cylindrical roller 8, and the state is as Figure 5 shown, thereby realizing the disassembly of the semi-cylindrical roller 8. On the contrary, the operation is the installation operation of the semi-cylindrical roller 8.
[0032] Embodiment 2:
[0033] The difference from Embodiment 1 is that the regular hexagon structure of the roller disassembly and assembly cylinder 5 can also be set as a regular heptagon structure, so that the roller disassembly and assembly cylinder 5 needs to be rotated by a special tool that matches the regular heptagon structure, preventing non-staff from rotating and adjusting the roller disassembly and assembly cylinder 5.
[0034] Embodiment 3:
[0035] The difference from Embodiment 1 is that the regular hexagonal prism of the rotary locking column 6 can also be set as a regular heptagonal prism, so that the rotary locking column 6 needs to be rotated by a special tool that matches the regular heptagonal prism, preventing non-staff from rotating and disassembling the rotary locking column 6.
Claims
1. An imprinting roller device for an anti-reflection microstructure on a glass surface, characterized in that: Comprising a device body (1); the device body (1) is provided with a quick-release roller shaft (2), a regular hexagonal rod is arranged in the middle of the quick-release roller shaft (2), threaded columns are arranged on the left and right end faces of the regular hexagonal rod of the quick-release roller shaft (2), a fitting groove is opened at the bottom of the outer end of the threaded column of the quick-release roller shaft (2), a roller bearing carrier column (3) is placed inside the fitting groove of the quick-release roller shaft (2), a fixing column is arranged at the outer end of the roller bearing carrier column (3), a limiting ring plate is arranged on the outer circumference of the inner end of the fixing column of the roller bearing carrier column (3), a threaded column is arranged on the inner end face of the fixing column of the roller bearing carrier column (3), a fitting groove is opened at the top of the threaded column of the roller bearing carrier column (3), a roller shaft assembly cylinder (4) is installed on the outer circumference between the quick-release roller shaft (2) and the roller bearing carrier column (3) by means of threads, threads are opened on the inner circumference of the roller shaft assembly cylinder (4), and a regular hexagonal structure is arranged on the outer circumference of the roller shaft assembly cylinder (4).
2. The imprinting roller device for an anti-reflection microstructure on the glass surface according to claim 1, characterized in that: A roller wheel disassembly and assembly cylinder (5) is installed on the outer circumference of the threaded column of the quick-release roller shaft (2) by means of threads, and a bearing ring groove is opened on the inner circumference of the inner end of the roller wheel disassembly and assembly cylinder (5).
3. The imprinting roller device for an anti-reflection microstructure on a glass surface according to claim 2, characterized in that: Threads are opened on the inner circumference of the outer end of the roller wheel disassembly and assembly cylinder (5), a regular hexagonal structure is arranged on the outer circumference of the outer end of the roller wheel disassembly and assembly cylinder (5), and a threaded hole penetrating up and down is opened on the top wall of the outer end of the roller wheel disassembly and assembly cylinder (5).
4. The imprinting roller device for an anti-reflection microstructure on a glass surface according to claim 3, characterized in that: A rotary locking column (6) is installed inside the threaded hole of the roller wheel disassembly and assembly cylinder (5), a threaded column is arranged at the lower part of the rotary locking column (6), and a regular hexagonal prism is arranged on the top end face of the threaded column of the rotary locking column (6).
5. The imprinting roller device for the anti-reflection microstructure on the glass surface according to claim 4, characterized in that: A roller wheel carrier cylinder (7) is installed inside the bearing ring groove of the roller wheel disassembly and assembly cylinder (5) by means of a bearing, a regular hexagonal hole penetrating left and right is opened inside the roller wheel carrier cylinder (7), and a bearing ring groove is opened on the outer circumference of the outer end of the roller wheel carrier cylinder (7).
6. The imprinting roller device for an anti-reflection microstructure on the glass surface according to claim 5, characterized in that: Four support plates are arranged in an annular array on the outer circumference of the inner end of the roller wheel carrier cylinder (7), a dovetail block is arranged at the outer end of the support plate of the roller wheel carrier cylinder (7), and a triangular plate is arranged on the support plate of the roller wheel carrier cylinder (7).
7. The imprinting roller device for an anti-reflection microstructure on the glass surface according to claim 6, characterized in that: Semi-cylindrical roller wheels (8) are arranged both above and below between the roller wheel carrier cylinders (7), dovetail grooves are arranged at the front and rear of the left and right end faces of the semi-cylindrical roller wheels (8), and an embossing structure is arranged on the outer circumferential surface of the semi-cylindrical roller wheels (8).