Method, device, equipment and storage medium for manufacturing anti-glare glass

By performing anti-glare treatment on the glass substrate, imprinting gratings and reflective layer patterns, and sealing them, the problem of poor reliability of the 3D light guide plate is solved, and a more uniform and reliable anti-glare glass is achieved.

CN115542663BActive Publication Date: 2025-05-06LEIA ELECTRONICS (SUZHOU) CO LTD +1
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Patent Information

Application Number
CN202110732989.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-06-30
Publication Date
2025-05-06
Estimated Expiration
2041-06-30

AI Technical Summary

Technical Problem

The existing 3D light guide plates have poor reliability due to uneven unit gaps and exposure to air, which are prone to scratches and oxidation.

Method used

The two glass substrates are partially or completely anti-glare treatment, and the grating pattern and reflective layer pattern are imprinted on the two glasses respectively, and then the two glasses are sealed to form the anti-glare glass.

Benefits of technology

Improves the uniformity of the glass, reduces the occurrence of scratches and gloss defects, and improves the reliability of the glass.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure relates to the field of display technology, and in particular to a method, device, apparatus and computer-readable storage medium for making anti-glare glass. The method comprises: imprinting a grating pattern on one side of a first glass substrate; performing an anti-glare treatment on one side of a second glass substrate; imprinting a reflective layer pattern on one side of the second glass substrate after the anti-glare treatment; and aligning the grating pattern on one side of the first glass substrate with the reflective layer pattern on one side of the second glass substrate and sealing them to form a target substrate.
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Description

Technical Field

[0001] The present disclosure relates to the field of display technology, and in particular to a method, a device, a equipment and a computer-readable storage medium for manufacturing anti-glare glass. Background Art

[0002] Anti-glare glass, referred to as AG glass (Anti-glare glass), is a kind of glass with a special surface treatment. The principle is to process high-quality glass on one or both sides to make it have a lower reflectivity than ordinary glass, thereby reducing the interference of ambient light, improving the clarity of the picture, reducing screen reflection, making the image clearer and more realistic, and allowing viewers to enjoy better visual effects.

[0003] At present, most naked-eye 3D technologies are designed based on certain optical principles through 3D light guide plates (LGPs), so that the left and right eyes can see images with certain displacement differences, thereby creating a sense of distance and stereoscopic perception, and achieving a 3D effect. However, the normal cell gap of the 3D light guide plate shows many defects caused by uneven cell gaps, and because the 3D light guide plate is exposed to the air, it is easy to be scratched and easily oxidized, resulting in poor reliability of the 3D light guide plate. Summary of the invention

[0004] In view of the above problems, the present disclosure provides a method, an apparatus, a device and a computer-readable storage medium for manufacturing anti-glare glass.

[0005] According to one aspect of the present disclosure, a method for manufacturing anti-glare glass is provided, comprising: imprinting a grating pattern on one side of a first glass substrate; performing an anti-glare treatment on one side of a second glass substrate; imprinting a reflective layer pattern on the side of the second glass substrate after the anti-glare treatment; and aligning the grating pattern on one side of the first glass substrate with the reflective layer pattern on one side of the second glass substrate and sealing them to form a target substrate.

[0006] According to an example of the present disclosure, anti-glare treatment is performed on part or all of one side of the second glass substrate.

[0007] According to an example of the present disclosure, when the anti-glare treatment is performed on the entire one side of the second glass substrate, the reflective layer pattern is directly embossed on the one side of the second glass substrate after the anti-glare treatment.

[0008] According to an example of the present disclosure, when anti-glare treatment is performed on a portion of one side of the second glass substrate, a reflective layer pattern is embossed on a position of the second glass substrate that is not subjected to anti-glare treatment.

[0009] According to an example of the present disclosure, on one side of the second glass substrate, the reflective layer pattern and the anti-glare treatment are arranged at a certain interval.

[0010] According to one aspect of the present disclosure, there is provided an apparatus for manufacturing anti-glare glass, comprising: a grating pattern imprinting module for imprinting a grating pattern on one side of a first glass substrate; an anti-glare processing module for performing anti-glare processing on one side of a second glass substrate; a reflective layer pattern imprinting module for imprinting a reflective layer pattern on one side of the second glass substrate after the anti-glare processing; and an alignment module for aligning the grating pattern on one side of the first glass substrate with the reflective layer pattern on one side of the second glass substrate and sealing them to form a target substrate.

[0011] According to an example of the present disclosure, the anti-glare processing module performs anti-glare processing on part or all of one side of the second glass substrate.

[0012] According to an example of the present disclosure, when the anti-glare processing module performs anti-glare processing on the entire side of the second glass substrate, the reflective layer pattern imprinting module directly imprints the reflective layer pattern on the side of the second glass substrate after the anti-glare processing.

[0013] According to an example of the present disclosure, when the anti-glare processing module performs anti-glare processing on a portion of one side of the second glass substrate, the reflective layer pattern imprinting module imprints the reflective layer pattern on a position on the second glass substrate that has not been anti-glare processed.

[0014] According to an example of the present disclosure, on one side of the second glass substrate, the reflective layer pattern and the anti-glare treatment are arranged at a certain interval.

[0015] According to one aspect of the present disclosure, there is provided an apparatus for manufacturing anti-glare glass, comprising: a processor; and a memory storing computer-readable program instructions, wherein when the computer-readable program instructions are executed by the processor, a method for manufacturing anti-glare glass is executed, the method comprising: imprinting a grating pattern on one side of a first glass substrate; performing an anti-glare treatment on one side of a second glass substrate; imprinting a reflective layer pattern on one side of the second glass substrate after the anti-glare treatment; and aligning the grating pattern on one side of the first glass substrate with the reflective layer pattern on one side of the second glass substrate and sealing them to form a target substrate.

[0016] According to one aspect of the present disclosure, a computer-readable storage medium for storing computer-readable instructions is provided, wherein the instructions enable a computer to execute a method for manufacturing an anti-glare glass, wherein the method comprises: imprinting a grating pattern on one side of a first glass substrate; performing an anti-glare treatment on one side of a second glass substrate; imprinting a reflective layer pattern on one side of the second glass substrate after the anti-glare treatment; and aligning the grating pattern on one side of the first glass substrate with the reflective layer pattern on one side of the second glass substrate and sealing them to form a target substrate.

[0017] In the above aspects of the present disclosure, by partially or fully anti-glare-treating the surface of one of the two glasses, and respectively embossing a grating pattern and a grating pattern on the two glasses, and then sealing the two glasses, the uniformity of the glass can be improved and the occurrence of scratches and gloss defects can be reduced. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The above and other purposes, features and advantages of the present disclosure will become more apparent by describing the embodiments of the present disclosure in more detail in conjunction with the accompanying drawings. The accompanying drawings are used to provide a further understanding of the embodiments of the present disclosure and constitute a part of the specification. Together with the embodiments of the present disclosure, they are used to explain the present disclosure and do not constitute a limitation of the present disclosure. In the accompanying drawings, the same reference numerals generally represent the same components or steps.

[0019] Figure 1 It is a structural diagram of an existing 3D light guide plate;

[0020] Figure 2 is a flow chart outlining a method for making anti-glare glass according to an embodiment of the present disclosure;

[0021] Figure 3 is a schematic diagram of performing anti-glare treatment on the entire side of the second glass substrate according to an embodiment of the present disclosure;

[0022] Figure 4 is a schematic diagram of performing anti-glare treatment on a portion of one side of a second glass substrate according to an embodiment of the present disclosure;

[0023] Figure 5 is a functional block diagram of a device for manufacturing anti-glare glass according to an embodiment of the present disclosure;

[0024] Figure 6 is a functional block diagram illustrating a device for manufacturing anti-glare glass according to an embodiment of the present disclosure;

[0025] Figure 7 is a schematic diagram illustrating a computer-readable storage medium according to an embodiment of the present disclosure. DETAILED DESCRIPTION

[0026] The following will be combined with the drawings in the embodiments of the present disclosure to clearly and completely describe the technical solutions in the embodiments of the present disclosure. Obviously, the described embodiments are only part of the embodiments of the present disclosure, not all of the embodiments. Based on the embodiments in the present disclosure, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present disclosure.

[0027] Flowcharts are used in the present application to illustrate the steps of the method according to the embodiments of the present application. It should be understood that the preceding or following steps are not necessarily performed accurately in order. On the contrary, various steps may be processed in reverse order or simultaneously. At the same time, other operations may also be added to these processes, or a certain step or several steps may be removed from these processes.

[0028] like Figure 1 The figure shows the structure of the existing 3D light guide plate. Figure 1 As shown, a 3D light guide plate is usually constructed by sequentially laying corresponding grating patterns 10 and APC patterns 11 on a single-layer glass substrate. Since both the grating patterns 10 and the APC patterns 11 are exposed to the air, scratches and oxidation are easily generated in this structure, resulting in reduced reliability of the 3D light guide plate.

[0029] The present disclosure proposes a method for manufacturing anti-glare glass, which improves the uniformity of the glass and reduces the occurrence of scratches and gloss defects by performing anti-glare treatment on the glass and sealing the reflective layer and the grating layer.

[0030] Refer to the following Figure 2-4 A method for manufacturing anti-glare glass according to an embodiment of the present disclosure is described.

[0031] like Figure 2 The flowchart of the method for manufacturing anti-glare glass according to the embodiment of the present disclosure is shown. The method can be automatically completed by a computer, etc. For example, the method can be implemented in the form of software, hardware, firmware or any combination thereof, and loaded and executed by a processor in a device such as a tablet computer, a laptop computer, a desktop computer, a network server, etc.

[0032] like Figure 2 As shown, the training method includes the following steps S101-S104.

[0033] In step S101 , a grating pattern is printed on one side of a first glass substrate.

[0034] In step S102, an anti-glare treatment is performed on one side of the second glass substrate.

[0035] In step S103, a reflective layer pattern is printed on one side of the second glass substrate after the anti-glare treatment.

[0036] In step S104 , the grating pattern on one side of the first glass substrate and the reflective layer pattern on one side of the second glass substrate are aligned and sealed to form a target substrate.

[0037] For example, in step S101, a layer of gratings may be printed on the first glass substrate, and then the layer of gratings may be mask aligned using a mask to form a grating pattern.

[0038] For example, for steps S102 and S103, the present disclosure processes two layers of glass separately. Since assembling two layers of glass substrates together easily generates glare, and the solution of the present disclosure requires assembling two layers of glass substrates together, it is necessary to perform anti-glare treatment on the glass substrates in advance. For example, the anti-glare treatment may include: increasing the haze on one side of the second glass substrate so that the total reflection between the glass and the glass becomes diffuse reflection, thereby eliminating the glare. It should be recognized that other anti-glare treatment methods may also be used, which are not limited here.

[0039] For example, the anti-glare treatment may be performed on the entire side of the second glass substrate. Alternatively, the anti-glare treatment may be performed on a portion of the side of the second glass substrate.

[0040] Figure 3 FIG. 1 is a schematic diagram of performing anti-glare treatment on the entire side of a second glass substrate according to an embodiment of the present disclosure. Figure 4 FIG. 1 is a schematic diagram of performing an anti-glare treatment on a portion of one side of a second glass substrate according to an embodiment of the present disclosure.

[0041] For example, Figure 3 As shown, when the anti-glare treatment is performed on the entire side of the second glass substrate (such as Figure 3 The shadow layer 21 is shown, and the reflective layer pattern 22 is directly printed on one side of the second glass substrate after the anti-glare treatment.

[0042] Alternatively, for example, Figure 4 As shown, when the anti-glare treatment is performed on a portion of one side of the second glass substrate (such as Figure 4 As shown in the figure, the reflective layer pattern 32 can be printed on the position of one side of the second glass substrate that has not been treated with anti-glare.

[0043] For example, Figure 4 As shown, on one side of the second glass substrate, the reflective layer pattern and the anti-glare treatment are arranged at a certain interval.

[0044] For example, a reflective layer may be printed on the second glass substrate, and then a mask may be used to align the reflective layer to form a reflective layer pattern.

[0045] For example, the reflective layer may be an APC (an alloy consisting of 99% silver, a small amount of metal palladium and copper) reflective layer.

[0046] Next, in step S104, the grating pattern on one side of the first glass substrate and the reflective layer pattern on one side of the second glass substrate may be aligned and sealed to form a target substrate.

[0047] For example, Figure 3 and Figure 4 As shown, the grating pattern 50 on one side of the first glass substrate and the reflective layer patterns 22, 32 on one side of the second glass substrate can be aligned and sealed (as shown in FIG. Figure 3 and Figure 4 A shaded portion 40 is shown to form a target substrate.

[0048] It can be seen from the method for making anti-glare glass disclosed in the present invention that by partially or fully anti-glare-treating the surface of one of the two glasses, and respectively imprinting a grating pattern and a grating pattern on the two glasses, and then sealing the two glasses, the uniformity of the glass can be improved and the occurrence of scratches and gloss defects can be reduced.

[0049] References Figure 2-4 A method for manufacturing an anti-glare glass according to an embodiment of the present disclosure is described. Hereinafter, an apparatus for manufacturing an anti-glare glass according to an embodiment of the present disclosure will be described.

[0050] like Figure 5 The functional block diagram of the device 1000 for making anti-glare glass according to an embodiment of the present disclosure is shown. The device 1000 for making anti-glare glass according to an embodiment of the present disclosure includes a grating pattern imprinting module 1001, an anti-glare processing module 1002, a reflective layer pattern imprinting module 1003 and an alignment module 1004. Those skilled in the art understand that these unit modules can be implemented in various ways by hardware alone, software alone or by a combination thereof, and the present disclosure is not limited to any of them. For example, these units can be implemented by a central processing unit (CPU), a text processing unit (GPU), a tensor processing unit (TPU), a field programmable gate array (FPGA) or other forms of processing units with data processing capabilities and / or instruction execution capabilities and corresponding computer instructions.

[0051] For example, the grating pattern imprinting module 1001 may be used to imprint a grating pattern on one side of the first glass substrate.

[0052] For example, the grating pattern imprinting module 1001 may imprint a layer of gratings on the first glass substrate, and then perform mask alignment on the layer of gratings using a mask to form a grating pattern.

[0053] For example, the anti-glare processing module 1002 can be used to perform an anti-glare process on one side of the second glass substrate.

[0054] For example, the reflective layer pattern imprinting module 1003 may be used to imprint the reflective layer pattern on one side of the second glass substrate after anti-glare treatment.

[0055] For example, the anti-glare treatment may include: increasing the haze on one side of the second glass substrate so that the total reflection between glass and glass becomes diffuse reflection, thereby eliminating glare.

[0056] For example, the anti-glare processing module 1002 may perform anti-glare processing on a portion of one side of the second glass substrate. Alternatively, the anti-glare processing module 1002 may also perform anti-glare processing on the entire one side of the second glass substrate.

[0057] Figure 3 FIG. 1 is a schematic diagram of the anti-glare processing module 1002 performing anti-glare processing on the entire side of the second glass substrate according to an embodiment of the present disclosure. Figure 4 FIG. 1 is a schematic diagram of the anti-glare processing module 1002 performing anti-glare processing on a portion of one side of the second glass substrate according to an embodiment of the present disclosure.

[0058] For example, Figure 3 As shown, when the anti-glare processing module 1002 performs anti-glare processing on the entire side of the second glass substrate (such as Figure 3 As shown in the figure, the reflective layer pattern imprinting module 1003 can directly imprint the reflective layer pattern 22 on one side of the second glass substrate after the anti-glare treatment.

[0059] Alternatively, for example, Figure 4 As shown, when the anti-glare processing module 1002 performs anti-glare processing on a portion of one side of the second glass substrate (such as Figure 4 As shown in the figure, the reflective layer pattern imprinting module 1003 can imprint the reflective layer pattern 32 on the position of one side of the second glass substrate that has not been treated with anti-glare.

[0060] For example, Figure 4 As shown, on one side of the second glass substrate, the reflective layer pattern and the anti-glare treatment are arranged at a certain interval.

[0061] For example, the reflective layer pattern imprinting module 1003 may imprint a reflective layer on the second glass substrate, and then perform mask alignment on the reflective layer using a mask to form a reflective layer pattern.

[0062] For example, the reflective layer may be an APC (an alloy consisting of 99% silver, a small amount of metal palladium and copper) reflective layer.

[0063] Next, the alignment module 1004 may align the grating pattern on one side of the first glass substrate and the reflective layer pattern on one side of the second glass substrate and perform sealing to form a target substrate.

[0064] For example, Figure 3 and Figure 4 As shown, the alignment module 1004 can align and seal the grating pattern 50 on one side of the first glass substrate with the reflective layer patterns 22 and 32 on one side of the second glass substrate (eg, Figure 3 and Figure 4 A shaded portion 40 is shown to form a target substrate.

[0065] It can be seen from the device for making anti-glare glass disclosed in the present invention that by partially or fully anti-glare-treating the surface of one of the two glasses, and respectively imprinting a grating pattern and a grating pattern on the two glasses, and then sealing the two glasses, the uniformity of the glass can be improved and the occurrence of scratches and gloss defects can be reduced.

[0066] Below, refer to Figure 6 An apparatus 1100 for manufacturing anti-glare glass according to an embodiment of the present disclosure is described. Figure 6 Schematic diagram of an apparatus for making anti-glare glass according to an embodiment of the present disclosure. Figure 2 The details of the described methods are the same, so for the sake of simplicity, a detailed description of the same contents is omitted here.

[0067] The device for making anti-glare glass disclosed in the present invention includes a processor 1102; and a memory 1101, in which computer-readable instructions are stored, wherein when the computer-readable instructions are executed by the processor, a method for making anti-glare glass is executed, the method comprising: imprinting a grating pattern on one side of a first glass substrate; performing an anti-glare treatment on one side of a second glass substrate; imprinting a reflective layer pattern on one side of the second glass substrate after the anti-glare treatment; and aligning the grating pattern on one side of the first glass substrate with the reflective layer pattern on one side of the second glass substrate and sealing them to form a target substrate.

[0068] Regarding the technical effects of the apparatus 1000 for making anti-glare glass and the device 1100 for making anti-glare glass in different embodiments, reference may be made to the technical effects of the method for making anti-glare glass provided in the embodiments of the present disclosure, which will not be repeated here.

[0069] The apparatus 1000 for manufacturing anti-glare glass and the device 1100 for manufacturing anti-glare glass can be used in various appropriate electronic devices.

[0070] Figure 7 is a schematic diagram of a computer-readable storage medium 1200 according to an embodiment of the present disclosure.

[0071] like Figure 7 As shown, the present disclosure also includes a computer-readable storage medium 1200 for storing computer-readable instructions 1201. When the computer-readable instructions are executed by a computer, the computer executes a training method, including: imprinting a grating pattern on one side of a first glass substrate; performing an anti-glare treatment on one side of a second glass substrate; imprinting a reflective layer pattern on one side of the second glass substrate after the anti-glare treatment; and aligning the grating pattern on one side of the first glass substrate and the reflective layer pattern on one side of the second glass substrate and sealing them to form a target substrate.

[0072] A computer-readable storage medium may have many forms, including tangible storage media, carrier media or physical transmission media. Stable storage media may include: optical or magnetic disks, and other storage systems used in computers or similar devices that can implement the system components described in the figure. Unstable storage media may include dynamic memory, such as the main memory of a computer platform. Tangible transmission media may include coaxial cables, copper cables, and optical fibers, such as the lines that form a bus inside a computer system. Carrier transmission media can transmit electrical signals, electromagnetic signals, acoustic signals, or light wave signals. These signals can be generated by radio frequency or infrared data communication methods. Common computer-readable media include hard disks, floppy disks, magnetic tapes, any other magnetic media; CD-ROMs, DVDs, DVD-ROMs, any other optical media; punch cards, any other physical storage media containing a pattern of small holes; RAM, PROM, EPROM, FLASH-EPROM, any other memory chip or tape; carriers that transmit data or instructions, cables or connecting devices that transmit carriers, and any other program code and / or data that can be read by a computer. There are many forms of these computer-readable media that appear in the process of the processor executing instructions and delivering one or more results.

[0073] "Module" in this application refers to logic or a set of software instructions stored in hardware or firmware. The "module" referred to here can be executed by software and / or hardware modules, or stored in any computer-readable non-temporary medium or other storage device. In some embodiments, a software module can be compiled and connected to an executable program. Obviously, the software module here can respond to information transmitted by itself or other modules, and / or can respond when certain events or interrupts are detected. The software module can be provided on a computer-readable medium, and the software module can be configured to perform operations on a computing device (such as processor 220). The computer-readable medium here can be a CD, a digital CD, a flash drive, a disk, or any other type of tangible medium. The software module can also be obtained through a digital download mode (the digital download here also includes data stored in a compressed package or installation package, which needs to be decompressed or decoded before execution). The code of the software module here can be partially or completely stored in the storage device of the computing device that performs the operation and applied to the operation of the computing device. Software instructions can be embedded in firmware, such as an erasable programmable read-only memory (EPROM). Obviously, hardware modules can include logical units connected together, such as gates, triggers, and / or programmable units, such as programmable gate arrays or processors. The functions of the modules or computing devices described herein are preferably implemented as software modules, but can also be represented in hardware or firmware. Generally, the modules described herein are logical modules, which are not limited by their specific physical form or memory. A module can be combined with other modules, or separated into a series of submodules.

[0074] In addition, the block diagram used in the description of the above-mentioned embodiment shows a block in a function unit. These function blocks (structural units) are implemented by any combination of hardware and / or software. In addition, the implementation means of each function block is not particularly limited. That is, each function block can be implemented by a device that is physically and / or logically combined, or two or more devices that are physically and / or logically separated can be directly and / or indirectly (for example, by wired and / or wireless) connected to be implemented by the above-mentioned multiple devices.

[0075] The various methods / implementations described in this specification may be used alone or in combination, and may be switched during execution. In addition, the processing steps, sequences, flow charts, etc. of the various methods / implementations described in this specification may be changed in order as long as there is no contradiction. For example, with respect to the methods described in this specification, various step units are given in an exemplary order, and are not limited to the specific order given.

[0076] The phrase "based on" used in this specification does not mean "only based on" unless otherwise specified in other paragraphs. In other words, the phrase "based on" means both "only based on" and "at least based on".

[0077] Any reference to a unit using the names "first", "second", etc. used in this specification does not fully limit the number or order of these units. These names may be used in this specification as a convenient method to distinguish between two or more units. Therefore, a reference to a first unit and a second unit does not mean that only two units can be used or that the first unit must precede the second unit in some form.

[0078] When the terms "including", "comprising", and their variations are used in this specification or claims, these terms are open ended like the term "having". Furthermore, the term "or" used in this specification or claims is not an exclusive or.

[0079] Those skilled in the art will appreciate that various aspects of the present application may be illustrated and described by a number of patentable categories or situations, including any new and useful process, machine, product or combination of substances, or any new and useful improvements thereto. Accordingly, various aspects of the present application may be performed entirely by hardware, entirely by software (including firmware, resident software, microcode, etc.), or by a combination of hardware and software. The above hardware or software may all be referred to as "data blocks", "modules", "engines", "units", "components" or "systems". In addition, various aspects of the present application may be represented as a computer product located in one or more computer-readable media, which includes computer-readable program code.

[0080] The present application uses specific words to describe the embodiments of the present application. For example, "one embodiment", "an embodiment", and / or "some embodiments" refer to a certain feature, structure or characteristic related to at least one embodiment of the present application. Therefore, it should be emphasized and noted that "one embodiment" or "an embodiment" or "an alternative embodiment" mentioned twice or multiple times in different positions in this specification does not necessarily refer to the same embodiment. In addition, some features, structures or characteristics in one or more embodiments of the present application can be appropriately combined.

[0081] Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the present disclosure belongs. It should also be understood that terms such as those defined in common dictionaries should be interpreted as having a meaning consistent with their meaning in the context of the relevant technology and should not be interpreted in an idealized or highly formal sense, unless explicitly defined as such herein.

[0082] The present disclosure is described in detail above, but it is obvious to those skilled in the art that the present disclosure is not limited to the embodiments described in this specification. The present disclosure can be implemented as a modification and alteration without departing from the purpose and scope of the present disclosure as determined by the claims. Therefore, the description in this specification is for the purpose of illustration and does not have any restrictive meaning for the present disclosure.

Claims

1. A method for making anti-glare glass, comprising: Imprinting a plurality of grating patterns of a 3D light guide plate on one side of the first glass substrate, wherein the 3D light guide plate is used for naked-eye 3D display; performing anti-glare treatment on one side of the second glass substrate; Printing a plurality of reflective layer patterns of the 3D light guide plate on one side of the second glass substrate after anti-glare treatment; aligning the plurality of grating patterns on one side of the first glass substrate with the corresponding plurality of reflective layer patterns on one side of the second glass substrate; as well as The first glass substrate and the second glass substrate are sealed to seal the plurality of grating patterns and the plurality of reflective layer patterns to form a target substrate of the 3D light guide plate.

2. The method of claim 1, wherein: An anti-glare treatment is performed on part or all of one side of the second glass substrate.

3. The method of claim 2, wherein: When the entire one side of the second glass substrate is subjected to the anti-glare treatment, the plurality of reflective layer patterns are directly printed on the one side of the second glass substrate subjected to the anti-glare treatment.

4. The method of claim 2, wherein: When the anti-glare treatment is performed on a portion of one side of the second glass substrate, the plurality of reflective layer patterns are printed on a position of the second glass substrate that is not subjected to the anti-glare treatment.

5. The method of claim 4, wherein: On one side of the second glass substrate, the plurality of reflective layer patterns and the anti-glare treatment are arranged at a certain interval.

6. A device for making anti-glare glass, comprising: A grating pattern imprinting module, used for imprinting a plurality of grating patterns of a 3D light guide plate on one side of the first glass substrate, wherein the 3D light guide plate is used for naked-eye 3D display; An anti-glare processing module, used for performing an anti-glare processing on one side of the second glass substrate; A reflective layer pattern imprinting module, used for imprinting a plurality of reflective layer patterns of the 3D light guide plate on one side of the second glass substrate after anti-glare treatment; as well as Alignment module for: aligning the plurality of grating patterns on one side of the first glass substrate with the corresponding plurality of reflective layer patterns on one side of the second glass substrate; as well as The first glass substrate and the second glass substrate are sealed to seal the plurality of grating patterns and the plurality of reflective layer patterns to form a target substrate of the 3D light guide plate.

7. The device according to claim 6, wherein: The anti-glare processing module performs anti-glare processing on part or all of one side of the second glass substrate.

8. The device according to claim 7, wherein: When the anti-glare processing module performs anti-glare processing on the entire side of the second glass substrate, the plurality of reflective layer pattern imprinting modules directly imprint the reflective layer pattern on the side of the second glass substrate after the anti-glare processing.

9. The device according to claim 7, wherein: When the anti-glare processing module performs anti-glare processing on a portion of one side of the second glass substrate, the plurality of reflective layer pattern imprinting modules imprint reflective layer patterns on a position on one side of the second glass substrate that has not been anti-glare processed.

10. The device of claim 9, wherein: On one side of the second glass substrate, the plurality of reflective layer patterns and the anti-glare treatment are arranged at a certain interval.

11. A device for making anti-glare glass, comprising: processor; as well as a memory storing computer readable program instructions, Wherein, when the computer-readable program instructions are executed by the processor, a method for manufacturing anti-glare glass is executed, the method comprising: Imprinting a plurality of grating patterns of a 3D light guide plate on one side of the first glass substrate, wherein the 3D light guide plate is used for naked-eye 3D display; performing anti-glare treatment on one side of the second glass substrate; Printing a plurality of reflective layer patterns of the 3D light guide plate on one side of the second glass substrate after anti-glare treatment; and aligning the plurality of grating patterns on one side of the first glass substrate with the corresponding plurality of reflective layer patterns on one side of the second glass substrate; and The first glass substrate and the second glass substrate are sealed to seal the plurality of grating patterns and the plurality of reflective layer patterns to form a target substrate of the 3D light guide plate.

12. A computer-readable storage medium for storing computer-readable instructions, wherein the instructions enable a computer to execute a method for manufacturing anti-glare glass, the method comprising: Imprinting a plurality of grating patterns of a 3D light guide plate on one side of the first glass substrate, wherein the 3D light guide plate is used for naked-eye 3D display; performing anti-glare treatment on one side of the second glass substrate; Printing a plurality of reflective layer patterns of the 3D light guide plate on one side of the second glass substrate after anti-glare treatment; as well as aligning the plurality of grating patterns on one side of the first glass substrate with the corresponding plurality of reflective layer patterns on one side of the second glass substrate; as well as The first glass substrate and the second glass substrate are sealed to seal the plurality of grating patterns and the plurality of reflective layer patterns to form a target substrate of the 3D light guide plate.

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