An AG particle surface anti-glare intelligent mirror and a manufacturing method thereof
By using a combination of AG particle surface anti-glare coating and optical reflective layer in the smart mirror, the problem of display ghosting in strong light environments is solved, clear display under high brightness and low energy consumption design are achieved, and the user experience is improved.
Patent Information
- Application Number
- CN202111182169.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-10-11
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2041-10-11
AI Technical Summary
Existing smart mirrors are prone to displaying ghosting images in strong light environments, affecting the user experience, and the high-brightness display screen leads to energy consumption and temperature rise problems.
It uses a combination of AG particle surface anti-glare coating and optical reflective layer. The anti-glare coating is located between the mirror glass cover and the touch display layer, and the optical reflective layer is located between the touch display layer and the back cover. By switching between diffuse reflection and mirror reflection, it reduces ambient light interference and improves picture clarity.
Prevent display ghosting in strong light environments, improve picture clarity and visibility, reduce energy consumption, provide better visual effects, and meet the basic functional requirements of the mirror.
Smart Images

Figure CN115524770B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of intelligent mirror display screens, and particularly relates to an AG particle surface anti-glare intelligent mirror and a manufacturing method thereof. BACKGROUND
[0002] With the progress of the times, the scientific and technological level of human beings is getting higher and higher, and as a result, more and more high-tech products enter the lives of ordinary people, bringing convenience and surprise to life. Among these high-tech products, the intelligent mirror is a new intelligent home. The intelligent mirror not only meets the basic requirements of people for mirrors, but also has a smart system of hardware + content + service + AI. The surface is a full-length mirror, and in fact, an embedded camera, a loudspeaker and a mirror display screen are used. Through TP touch screen or AI control technology, man-machine interaction can be realized, and the interaction mode and operation method are the closest to people's imagination of future intelligent control, and are the "net red" product loved by people. It is a mirror when it is dormant, and a screen when it is turned on. Not only does it continue your use habit of the mirror, but also it subverts your use function of the intelligent mirror display screen. When you just want to be vain, it will naturally play the role of the mirror. When you approach it, its display screen will automatically light up, and it has strong interactivity. You can touch the surface of the mirror with your fingers to select the content you are interested in. The content in the mirror surface will be triggered and form interaction, and can provide functions such as surfing the Internet, playing video and audio, video and voice, intelligent home control and the like.
[0003] The existing intelligent mirror is easy to display a ghost image on the display screen in a slightly strong light environment, and it is difficult to identify the text and images on the display screen, which greatly affects the user experience. In order to improve the brightness of the whole machine, a high-brightness display screen is needed, which increases the energy consumption of the display screen, and the high-brightness display screen will inevitably cause the temperature rise of the whole machine, affecting the performance of the equipment. Therefore, it is necessary to provide a new anti-glare intelligent mirror to prevent the intelligent mirror from displaying a ghost image in a strong light environment and provide user experience. SUMMARY
[0004] The present application solves the problem of providing a new anti-glare intelligent mirror to prevent the intelligent mirror from displaying a ghost image in a strong light environment and provide user experience.
[0005] In order to solve the above problems, the application provides an AG particle surface anti-glare intelligent mirror, which comprises a mirror glass cover plate, an anti-glare coating, a touch display screen layer, an optical reflection layer, a central controller unit, a frame structure and a rear cover, wherein the anti-glare coating is arranged on the surface of the light-emitting side of the touch display screen layer between the mirror glass cover plate and the touch display screen layer; the optical reflection layer is arranged on the surface of the back light side of the touch display screen layer between the touch display screen layer and the rear cover; and the mirror glass cover plate, the anti-glare coating, the touch display screen layer, the central controller unit, the optical reflection layer and the rear cover are all fixed in the frame structure.
[0006] Optionally, the raw material of the anti-glare coating comprises a curable resin, AG micro-nano particles, polyamide wax, a leveling agent and a wet dispersing agent; wherein the AG micro-nano particles are silicon oxide micro-nano particles with a particle diameter less than 1 micrometer.
[0007] Optionally, the anti-glare coating is prepared by an inkjet printing method.
[0008] Optionally, the optical reflection layer is alternatively arranged between the mirror glass cover plate and the anti-glare coating.
[0009] Optionally, the optical reflection layer is a liquid crystal layer, and the liquid crystal layer and the touch display screen layer are both connected with the central controller unit; when the touch display screen layer is on, the liquid crystal layer is in a conductive state; and when the touch display screen layer is off, the liquid crystal layer is in a closed state.
[0010] A manufacturing method of an AG particle surface anti-glare intelligent mirror comprises a mirror glass cover plate, an anti-glare coating, a touch display screen layer, an optical reflection layer, a central controller unit, a frame structure and a rear cover, wherein the anti-glare coating is formed between the mirror glass cover plate and the touch display screen layer and arranged on the surface of the light-emitting side of the touch display screen layer; the optical reflection layer is formed between the touch display screen layer and the rear cover and arranged on the surface of the back light side of the touch display screen layer; and the mirror glass cover plate, the anti-glare coating, the touch display screen layer, the central controller unit, the optical reflection layer and the rear cover are all fixed in the frame structure.
[0011] Optionally, the raw material of the anti-glare coating comprises a curable resin, AG micro-nano particles, polyamide wax, a leveling agent and a wet dispersing agent; wherein the AG micro-nano particles are silicon oxide micro-nano particles with a particle diameter less than 1 micrometer.
[0012] Optionally, the anti-glare coating is prepared by an inkjet printing method.
[0013] Optionally, the optical reflection layer is alternatively formed between the mirror glass cover plate and the anti-glare coating.
[0014] Optionally, the optical reflection layer is a liquid crystal layer, and the liquid crystal layer and the touch display screen layer are connected with the central controller unit; when the touch display screen layer is on, the liquid crystal layer is in an on state; and when the touch display screen layer is off, the liquid crystal layer is in an off state.
[0015] The present application has the following beneficial effects:
[0016] 1. The anti-glare coating is formed between the mirror glass cover plate and the touch display screen layer, and is arranged on the surface of the light-emitting side of the touch display screen layer; in the on state, the original mirror reflection is changed into diffuse reflection, the interference of ambient light is reduced, the clarity and visibility of the picture are improved, and the viewer enjoys better visual effects.
[0017] 2. Further, the optical reflection layer is alternatively formed between the mirror glass cover plate and the anti-glare coating, the optical reflection layer is a liquid crystal layer, when the touch display screen layer is on, the liquid crystal layer is in an on state, and when the touch display screen layer is off, the liquid crystal layer is in an off state; therefore, when the mirror is used in the off state, the diffuse reflection of the anti-glare coating is changed into mirror reflection, the clarity of the mirror imaging is improved, and the basic requirements of people for the mirror are met. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 is a structural schematic diagram of an AG particle surface anti-glare intelligent mirror in Example 1.
[0019] Figure 2 is a structural schematic diagram of an AG particle surface anti-glare intelligent mirror in Example 2. DETAILED DESCRIPTION
[0020] Various exemplary embodiments of the present disclosure will now be described in detail with reference to the accompanying drawings. The description of the exemplary embodiments is merely illustrative in nature and is in no way intended to limit the disclosure, its application or uses, except as described by the appended claims. The present disclosure can be implemented in numerous different forms, as is required, and is not limited to the embodiments described herein. These embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the present disclosure to those skilled in the art. It should be noted that the relative arrangement of components and steps set forth in these embodiments, the components of materials and numerical values should be interpreted as merely exemplary, rather than as a limitation, unless otherwise specifically stated.
[0021] The terms "first", "second", and similar terms used in the present disclosure do not denote any order, quantity, or importance, but are used to distinguish different parts. The terms "include" or "contain" and similar terms mean that the elements before the terms encompass the elements listed after the terms, and do not exclude the possibility of also encompassing other elements.
[0022] All terms used in the present disclosure, including technical terms or scientific terms, have the same meaning as understood by a person of ordinary skill in the art to which the present disclosure belongs, unless otherwise specifically defined. It should also be understood that terms defined in a general dictionary should be interpreted to have meanings consistent with their meanings in the context of the relevant art, and should not be interpreted in an idealized or extremely formalized sense, unless specifically defined herein.
[0023] Techniques, methods, and devices known to those of ordinary skill in the relevant art can not be discussed in detail, but should be considered part of the specification where appropriate.
[0024] Embodiments of the present disclosure will be described with reference to the accompanying drawings. Hereinafter, the same reference numerals will be used to denote corresponding parts in the drawings.
[0025] Embodiment 1 discloses an AG particle surface anti-glare smart mirror, the structure diagram of which is shown in Figure 1 The anti-glare coating 200 is located between the mirror glass cover plate 100 and the touch display screen layer 300, and is arranged on the surface of the light-emitting side of the touch display screen layer 300. The optical reflection layer 400 is located between the touch display screen layer 300 and the back cover 700, and is arranged on the surface of the back light side of the touch display screen layer 300. The mirror glass cover plate, the anti-glare coating, the touch display screen layer, the central controller unit, the optical reflection layer, and the back cover are all fixed in the frame structure.
[0026] Optionally, the raw materials of the anti-glare coating include: curable resin, AG micro-nano particles, polyamide wax, leveling agent, wet dispersing agent; wherein the AG micro-nano particles are silicon oxide micro-nano particles with a particle diameter less than 1 micrometer.
[0027] The curing resin is at least one of polyurethane acrylate copolymer and nano-modified polyurethane acrylate copolymer, which can be cured into a film by ultraviolet light at 50-60℃ for 5 minutes or so, higher production efficiency and lower energy consumption. The polyamide wax is a thixotropic additive that forms a network structure in the raw materials of the anti-glare coating, has excellent thixotropy, anti-sagging and anti-settling properties, effectively prevents the agglomeration and settling of AG micro-nano particles, and ensures uniformity and stability. The AG micro-nano particles can effectively scatter incident light into diffuse reflection, so in addition to using silica micro-nano particles, other alternative ceramic micro-nano particles can also be used.
[0028] Optionally, the touch display screen layer 300 can be an OLED display screen, an LCD display screen, a TFT display screen, etc.
[0029] Optionally, the anti-glare coating is prepared by inkjet printing. After the raw materials of the anti-glare coating are uniformly mixed, they are sprayed onto the surface of the light-emitting side of the touch display screen layer 300. In the screen bright state, the light emitted by the touch display screen layer 300 is changed into diffuse reflection by the anti-glare coating, reducing the interference of ambient light and improving the clarity and visibility of the picture. Even in a slightly strong light environment, the display screen of the smart mirror will not display a ghost image, allowing the viewer to enjoy a better visual experience.
[0030] As shown in the structure of Example 1, Figure 1 The optical reflection layer 400 is located between the touch display screen layer 300 and the back cover 700 and is arranged on the surface of the back light side of the touch display screen layer 300. The optical reflection layer 400 can use a silver-coated film, which has high reflectivity. When the screen is off, the touch display screen layer 300 is transparent or partially transparent, and the smart mirror is imaged only by the optical reflection layer 400 arranged on the surface of the back light side of the touch display screen layer 300, just like an ordinary glass mirror. But when the reflected light passes through the anti-glare coating 200, it will be changed into diffuse reflection by the anti-glare coating, resulting in blurred and unclear reflection imaging, affecting the visual effect when the mirror is used.
[0031] Therefore, further improvements are made in Example 2, and the structure is shown in Figure 2 The structure of Example 2 is similar to that of Example 1, and the only improvement is that the optical reflection layer can also be alternatively arranged between the mirror glass cover plate and the anti-glare coating.
[0032] Optionally, the optical reflection layer at this time is a liquid crystal layer, and the liquid crystal layer and the touch display screen layer are both connected with the central controller unit and controlled by the central controller unit; when the touch display screen layer is on, the liquid crystal layer is in a conductive state; and when the touch display screen layer is off, the liquid crystal layer is in a closed state. In the on state, the light emitted by the touch display screen layer 300 becomes diffuse reflection through the anti-glare coating, and the liquid crystal layer is in a conductive state so that the light emitted by the touch display screen layer 300 passes through, reducing the interference of ambient light and improving the clarity and visibility of the picture. Even in a slightly strong light environment, the display screen of the smart mirror will not display a ghost image, allowing the viewer to enjoy a better visual effect. In the off state, the liquid crystal layer is in a closed state, and the smart mirror is only reflected by the mirror surface of the liquid crystal layer arranged in front of the anti-glare coating, and the reflected light does not reach the anti-glare coating, preventing the reflected light from becoming diffuse reflection, like the visual effect of an ordinary glass mirror.
[0033] Optionally, when the touch display screen layer is off, the liquid crystal layer is in a closed state, i.e., the liquid crystal layer is in an opaque state, but the scattering effect of liquid crystal molecules on light will produce stripe domains, which cannot produce a good mirror reflection effect. In order to further increase the mirror imaging effect, the liquid crystal layer uses dye liquid crystal. Dye is a substance that absorbs specific wavelengths of light and can reflect or transmit light through it. If the light is polarized along one axis of the molecule, some dye molecules can better absorb a specific wavelength of light. Such dyes are called dichroic dyes. After adding dichroic dyes to the liquid crystal, a mixed dye liquid crystal material is formed. In the on state, the dichroic dye molecules dissolved in the liquid crystal are aligned with the liquid crystal under the action of the electric field; in the off state, the dichroic dye molecules dissolved in the liquid crystal are randomly arranged with the liquid crystal. And the material selected for the dichroic dye has good light reflection properties, preferably methyl-3-[(4'-cyano(1,1'-biphenyl)-4-yl)oxy]propanoate. When the liquid crystal layer is in a closed state, it produces a good mirror reflection and suppresses the generation of stripe domains, further increasing the mirror imaging effect.
[0034] The application further discloses a manufacturing method of the AG particle surface anti-glare smart mirror, and provides a mirror glass cover plate, an anti-glare coating, a touch display screen layer, an optical reflection layer, a central controller unit, a frame structure and a back cover.
[0035] Optionally, the raw material of the anti-glare coating comprises: a solidifiable resin, AG micro-nano particles, polyamide wax, a leveling agent and a wet dispersing agent; wherein the AG micro-nano particles are silicon oxide micro-nano particles with a particle diameter less than 1 micrometer.
[0036] Optionally, the anti-glare coating is prepared by using an inkjet printing method.
[0037] Optionally, the optical reflection layer is alternatively formed between the mirror glass cover plate and the anti-glare coating.
[0038] Optionally, the optical reflection layer is a liquid crystal layer, and the liquid crystal layer and the touch display screen layer are connected with the central controller unit; when the touch display screen layer is on, the liquid crystal layer is in a conducting state; and when the touch display screen layer is off, the liquid crystal layer is in a closed state.
[0039] So far, the embodiments of the present application have been described in detail. In order to avoid obscuring the concept of the present application, some details known in the art are not described. Those skilled in the art can fully understand how to implement the technical solutions disclosed herein according to the above description.
[0040] Although the present application has been described with reference to the embodiments thereof, it is to be understood that the present application is not limited to the embodiments and constructions. The present application is intended to cover various modifications and equivalent arrangements. In addition, combinations and configurations other than those specifically described herein, including more, less, or only a single element, are also within the spirit and scope of the present application.
Claims
1. An anti-glare smart mirror, comprising: Mirror glass cover plate; anti-glare coating; Touch display screen layer; Optical reflection layer; central controller unit; frame structure and back cover; characterized in that the anti-glare coating is located between the mirror glass cover plate and the touch display screen layer, and is arranged on the surface of the light-emitting side of the touch display screen layer; the mirror glass cover plate, the anti-glare coating, the touch display screen layer, the central controller unit, the optical reflection layer, and the back cover are all fixed in the frame structure; the optical reflection layer is arranged between the mirror glass cover plate and the anti-glare coating; at this time, the optical reflection layer is a liquid crystal layer, and the liquid crystal layer and the touch display screen layer are both connected with the central controller unit; when the touch display screen layer is on, the liquid crystal layer is in a conductive state; when the touch display screen layer is off, the liquid crystal layer is in a closed state, showing good mirror reflection; the liquid crystal layer uses dye liquid crystal, the dye is dichroic dye, and the dichroic dye is selected from methyl-3-[(4'-cyano(1,1'-biphenyl)-4-yl)oxy]propanoic acid.
2. The smart mirror of claim 1, wherein, The raw materials of the anti-glare coating include: curable resin, AG micro-nano particles, polyamide wax, leveling agent, and wet dispersant; wherein the AG micro-nano particles are silicon oxide micro-nano particles with a particle diameter less than 1 micron.
3. The intelligent mirror of claim 2, wherein, The anti-glare coating is prepared by inkjet printing.
4. A method of making an anti-glare smart mirror, comprising: providing a mirror glass cover plate; an anti-glare coating; a touch display screen layer; an optical reflective layer; a central controller unit; a frame structure; and a back cover; wherein, The anti-glare coating is formed between the mirror glass cover plate and the touch display screen layer, and is arranged on the surface of the light-emitting side of the touch display screen layer; the mirror glass cover plate, the anti-glare coating, the touch display screen layer, the central controller unit, the optical reflection layer, and the back cover are all fixed in the frame structure; the optical reflection layer is arranged between the mirror glass cover plate and the anti-glare coating; at this time, the optical reflection layer is a liquid crystal layer, and the liquid crystal layer and the touch display screen layer are both connected with the central controller unit; when the touch display screen layer is on, the liquid crystal layer is in a conductive state; when the touch display screen layer is off, the liquid crystal layer is in a closed state, showing good mirror reflection; the liquid crystal layer uses dye liquid crystal, the dye is dichroic dye, and the dichroic dye is selected from methyl-3-[(4'-cyano(1,1'-biphenyl)-4-yl)oxy]propanoic acid.
5. The method of manufacturing according to claim 4, wherein, The raw materials of the anti-glare coating include: curable resin, AG micro-nano particles, polyamide wax, leveling agent, and wet dispersant; wherein the AG micro-nano particles are silicon oxide micro-nano particles with a particle diameter less than 1 micron.
6. The method of manufacturing according to claim 5, wherein, The anti-glare coating is prepared by inkjet printing.
Citation Information
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