An anti-glare face shield, anti-glare sleeve, and anti-glare luminaire
Patent Information
- Application Number
- CN202521827525.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-26
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-08-26
AI Technical Summary
[0007]本实用新型的目的在于提供一种防眩光面罩,以解决现有技术中存在的遮光板容易脏污和容易被挤压形变的技术问题
Smart Images

Figure CN224730504U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of LED strip technology, and more specifically, it relates to an anti-glare mask, an anti-glare sleeve, and an anti-glare lamp. Background Technology
[0002] LED strips are very common in modern life. For existing LED strips, please refer to our company's patent: Chinese Utility Model Patent; Publication No.: CN 223049891U; Patent Title: An Anti-glare Structure and Flexible LED Strip; Publication Date: 2025.07.01. First, this patented technology provides a method for directly forming an anti-glare structure through an efficient extrusion process, greatly solving the problems of low production efficiency and high production costs associated with previous assembled anti-glare lighting fixtures. Second, this extrusion process can continuously produce LED strips of unlimited length, allowing the length of a single LED strip (with excellent anti-glare functionality) to be unlimited. In end-use applications, this greatly reduces the splicing between different LED strips, facilitating installation and making the lighting effect more aesthetically pleasing and compact. Third, the light emission efficiency of this anti-glare structure is significantly higher than other existing anti-glare structures. Previously, the anti-glare capability and light emission efficiency of a lighting fixture structure were always contradictory; while enhancing the anti-glare capability, the light emission efficiency of the fixture would be greatly reduced. The emergence of the structure described in the above patented technology provides the optimal solution to this contradiction.
[0003] However, existing LED strip technologies have the following problems:
[0004] First, the light-shielding plate is located on the periphery of the product, making it easy for dust and other dirt to accumulate in the light emission channel. Furthermore, it is difficult to clean, which affects the light emission efficiency.
[0005] Secondly, the light shield is also a flexible material. Since LED strips are often made into very long strips, they are usually rolled up for storage or transportation. As a result, the light shield is easily deformed by pressure, which changes the shape of the original light emission channel and causes it to lose the original light emission effect.
[0006] Third, to maximize the area of the light-emitting channel, the light-shielding plate is generally made as thin as possible while ensuring structural safety. However, this thin, flexible light-shielding plate will develop wavy wrinkles when the light strip needs to be bent for installation. This alters the original shape of the light-emitting channel and results in a loss of the original light-emitting effect. Utility Model Content
[0007] The purpose of this invention is to provide an anti-glare face shield to solve the technical problems of the existing light shield being easily soiled and easily deformed by squeezing.
[0008] To achieve the above objectives, the technical solution adopted by this utility model is as follows: an anti-glare mask is provided, comprising: a light-transmitting component and a light-shielding plate; one end of the light-shielding plate is partially embedded in the light-transmitting component, or the entire light-shielding plate is embedded in the light-transmitting component; one or both sides of the light-shielding plate have light emission channels, and the light emission channels pass through the light-transmitting component.
[0009] Furthermore, there are multiple light-shielding plates; the multiple light-shielding plates are arranged sequentially and at intervals on the light-transmitting element along a predetermined path; a light emission channel is formed between any two adjacent light-shielding plates; one end of each light-shielding plate is partially embedded in the light-transmitting element, or each light-shielding plate is entirely embedded in the light-transmitting element.
[0010] Furthermore, it also includes: a light diffusion layer; the light diffusion layer is laid on the surface of the light-transmitting element; or the light diffusion layer is located on the outside of the light-incident side of the light-transmitting element, and the light diffusion layer is spaced apart from the light-transmitting element.
[0011] Furthermore, the light diffusion layer is laid on the surface of the light-incident side of the light-transmitting element; and / or part of the light-shielding plate passes through the light diffusion layer.
[0012] Furthermore, the light diffusion layer is any one of a silicone layer, PVC layer, TPE layer, or TPU layer with embedded light diffusion particles.
[0013] Furthermore, the light-diffusing particles are light-diffusing powders.
[0014] Furthermore, the light-transmitting element is a first silicone element.
[0015] Furthermore, the light-shielding plate is a second silicone component with embedded light-shielding particles.
[0016] Furthermore, the light-shielding particles are black masterbatches.
[0017] Furthermore, the predetermined path extends in a straight line.
[0018] Furthermore, any adjacent light-shielding plates are arranged parallel to each other at intervals.
[0019] Furthermore, the light-transmitting element is flat; each of the light-shielding plates is respectively inclined or perpendicular to the flat surface of the light-transmitting element.
[0020] Furthermore, the light-transmitting element and the light-shielding plate are integrally formed continuous extrusion parts.
[0021] Furthermore, it also includes: a first support member and a first fastening mechanism; the first support member is fixedly connected to the light-transmitting member; the first fastening mechanism is disposed on the first support member; the first fastening mechanism is used to fasten to an external object.
[0022] This utility model also provides an anti-glare sleeve, characterized in that it includes: the anti-glare mask and a base; the anti-glare mask is disposed on the base, and the base has a mounting position for placing the light source.
[0023] Furthermore, the base includes: a second support member; the second support member is fixedly connected to the light-transmitting member; the second support member and the light-transmitting member enclose a first chamber; and the first chamber is provided with a mounting position for placing a light source.
[0024] Furthermore, the light-transmitting component, the light-shielding plate, and the second support component are integrally formed continuous extrusions.
[0025] This utility model also provides an anti-glare lamp, characterized in that it includes: the anti-glare sleeve and a light source; the light source is disposed in the mounting position.
[0026] Furthermore, the base includes: a third support member; the third support member is fixedly connected to the light-transmitting member; the third support member and the light-transmitting member enclose a second chamber; and the light source is disposed within the second chamber.
[0027] Furthermore, the light-transmitting component, the light-shielding plate, the third support component, and the light source are integrally formed continuous extrusions.
[0028] Furthermore, the base includes: a fourth support member, a fifth support member, and a second snap-fit mechanism; the fourth support member is fixedly connected to the light-transmitting member; the fourth support member is snapped onto the fifth support member by the second snap-fit mechanism; the light source is disposed on the fifth support member; the fifth support member is a first U-shaped body with a first U-shaped groove, and the light-transmitting member is disposed in the first U-shaped groove.
[0029] Furthermore, the base includes: a sixth support member, a seventh support member, and a third snap-fit mechanism; the sixth support member is fixedly connected to the light-transmitting member; the sixth support member is snapped onto the seventh support member by the third snap-fit mechanism; the seventh support member is used to fix it to an external mounting surface.
[0030] Furthermore, the base includes: an eighth support member; the eighth support member is fixedly connected to the light-transmitting member; the light source is disposed on the eighth support member; the eighth support member is a second U-shaped body with a second U-shaped groove, and the light-transmitting member is disposed in the second U-shaped groove.
[0031] Furthermore, the eighth support member is a single piece made of aluminum.
[0032] The beneficial effects of the anti-glare mask provided by this utility model are as follows: Compared with the prior art, the anti-glare mask provided by this utility model has a light-transmitting component that allows light emitted from a light source to pass through; multiple light-shielding plates are provided on the light-transmitting component; the light-shielding plates can block part or all of the light that causes glare; multiple light-shielding plates are arranged sequentially and spaced apart on the light-transmitting component along a predetermined path, and there is a light emission channel between any two adjacent light-shielding plates, through which light emitted from the light source can pass through the light-transmitting component; for any light-shielding plate, one end of the light-shielding plate is partially embedded in the light-transmitting component, or the entire light-shielding plate is embedded in the light-transmitting component; the light-shielding plate embedded in the light-transmitting component is not easily contaminated by dust in the external environment, and the light-shielding plate embedded in the light-transmitting component is not easily deformed by external pressure. Attached Figure Description
[0033] Figure 1 This is a schematic diagram showing the cooperation between the light-transmitting component and the light-shielding plate provided in an embodiment of this utility model;
[0034] Figure 2 A schematic diagram showing the combination of the light-transmitting component, the light-shielding plate, and the light-diffusing layer provided in an embodiment of this utility model;
[0035] Figure 3 A schematic diagram showing the assembly of the light-transmitting component, the light-shielding plate, and the first support component provided in this embodiment of the utility model;
[0036] Figure 4 A schematic diagram showing the assembly of the light-transmitting component, the light-shielding plate, and the second support component provided in an embodiment of this utility model;
[0037] Figure 5 A schematic diagram showing the assembly of the light-transmitting component, light-shielding plate, light-diffusing layer, and second support component provided in an embodiment of this utility model;
[0038] Figure 6 A schematic diagram showing the assembly of the light-transmitting component, light-shielding plate, light source, and third support component provided in an embodiment of this utility model;
[0039] Figure 7 A schematic diagram showing the assembly of the light-transmitting component, light-shielding plate, light-diffusing layer, light source, and third support component provided in an embodiment of this utility model.
[0040] Figure 8 A schematic diagram showing the combination of a light-transmitting component, a light-shielding plate, a light-diffusing layer (the light-diffusing layer and the light-transmitting component are spaced apart) and a light source and a third support component provided in an embodiment of this utility model.
[0041] Figure 9 A schematic diagram showing the assembly of the light-transmitting component, light-shielding plate, light-diffusing layer, light source, and third support component provided in an embodiment of this utility model.
[0042] Figure 10A schematic diagram showing the combination of a light-transmitting component, a light-shielding plate, a light-diffusing layer (part of the light-shielding plate passes through the light-diffusing layer), a light source, and a third support component provided in an embodiment of this utility model.
[0043] Figure 11 A schematic diagram showing the assembly of the light-transmitting component, light-shielding plate, light-diffusing layer, light source, fourth support component, and fifth support component provided in the embodiments of this utility model;
[0044] Figure 12 A schematic diagram showing the assembly of the light-transmitting component, light-shielding plate, light-diffusing layer, light source, sixth support component, and seventh support component provided in the embodiments of this utility model;
[0045] Figure 13 A schematic diagram showing the combination of the light-transmitting component, light-shielding plate, light-diffusing layer, light source, and eighth support component provided in the embodiments of this utility model.
[0046] The following are the labeling elements in the figure:
[0047] 11-Light-transmitting component; 12-Light-shielding plate; 13-Light emission channel; 141-First support component; 142-Second support component; 143-Third support component; 144-Fourth support component; 145-Fifth support component; 146-Sixth support component; 147-Seventh support component; 148-Eighth support component; 16-First chamber; 161-Mounting position; 2-Light diffusion layer; 3-Light source; 41-First snap-fit mechanism; 42-Second snap-fit mechanism; 421-Protrusion; 422-Recess; 43-Third snap-fit mechanism; S-Predetermined path; Q-External mounting surface. Detailed Implementation
[0048] It should be noted that the specific embodiments are only used to explain the present invention and are not intended to limit the present invention.
[0049] It should be noted that, in the description of the embodiments of this application, unless otherwise stated, " / " means "or". For example, A / B can mean A or B. The "and / or" in this document is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, and B existing alone. Here, A and B can be singular or plural, respectively.
[0050] It should be noted that when a component is referred to as "fixed to" or "set on" another component, it can be directly on or indirectly on that other component. When a component is referred to as "connected to" or "attached to" another component, it can be directly connected to or indirectly connected to that other component. When a component is referred to as "fixed to" or "set on" another component, it can be directly on or indirectly on that other component.
[0051] It should be noted that the terms "length", "width", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They 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. Therefore, they should not be construed as limitations on this utility model.
[0052] It should be noted that the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include one or more of that feature.
[0053] It should be noted that the term "multiple" means two or more, unless otherwise explicitly specified.
[0054] Please refer to the following: Figures 1 to 3 The anti-glare mask provided by this utility model will now be described. The anti-glare mask includes: a light-transmitting element 11 and a light-shielding plate 12; one end of the light-shielding plate 12 is partially embedded in the light-transmitting element 11, or the entire light-shielding plate 12 is embedded in the light-transmitting element 11; one or both sides of the light-shielding plate 12 have light emission channels 13, which pass through (or through) the light-transmitting element 11.
[0055] Thus, the light-transmitting element 11 allows light emitted from the light source 3 to pass through; a light-shielding plate 12 is provided on the light-transmitting element 11; the light-shielding plate 12 can block part or all of the light that causes glare; one side of the light-shielding plate 12 has a light emission channel 13, or both sides of the light-shielding plate 12 have light emission channels 13; the light emitted from the light source 3 can pass through the light emission channel 13 and pass through the light-transmitting element 11; one end of the light-shielding plate 12 is partially embedded in the light-transmitting element 11, or the entire light-shielding plate 12 is embedded in the light-transmitting element 11; the light-shielding plate 12 embedded in the light-transmitting element 11 is not easily contaminated by dust in the external environment, and the light-shielding plate 12 embedded in the light-transmitting element 11 is not easily deformed by external pressure.
[0056] Please refer to the following: Figures 1 to 3 The anti-glare face shield provided by this utility model will now be described. The anti-glare face shield includes: a light-transmitting element 11 and a light-shielding plate 12; there are multiple light-shielding plates 12; multiple light-shielding plates 12 are arranged sequentially and spaced apart on the light-transmitting element 11 along a predetermined path S; a light emission channel 13 is formed between any two adjacent light-shielding plates 12; one end of each light-shielding plate 12 is partially embedded in the light-transmitting element 11, or each light-shielding plate 12 is entirely embedded in the light-transmitting element 11.
[0057] Thus, the light-transmitting element 11 allows light emitted from the light source 3 to pass through; multiple light-shielding plates 12 are provided on the light-transmitting element 11; the light-shielding plates 12 can block part or all of the light that causes glare; multiple light-shielding plates 12 are arranged sequentially and spaced apart on the light-transmitting element 11 along a predetermined path S, and there is a light emission channel 13 between any two adjacent light-shielding plates 12, so that the light emitted from the light source 3 can pass through the light emission channel 13 and pass through the light-transmitting element 11; for any one light-shielding plate 12, one end of the light-shielding plate 12 is partially embedded in the light-transmitting element 11, or the entire light-shielding plate 12 is embedded in the light-transmitting element 11; the light-shielding plate 12 embedded in the light-transmitting element 11 is not easily contaminated by dust in the external environment, and the light-shielding plate 12 embedded in the light-transmitting element 11 is not easily deformed by external pressure.
[0058] Furthermore, by sequentially and spaced along a predetermined path S on the light-transmitting element 11, multiple light-shielding plates 12 form multiple light emission channels 13 on the light-transmitting element 11. This allows light to reach the external space through these light emission channels 13 as it travels through the light-transmitting element 11 and is emitted outward. Additionally, because the light-shielding plates 12 block light from specific directions, they prevent this light from reaching the designated anti-glare area, thus achieving an anti-glare effect. Furthermore, the structure allows one end of each light-shielding plate 12 to be partially embedded in the light-transmitting element 11, or the entire light-shielding plate 12 to be embedded within the light-transmitting element 11. This structure ensures a fixed connection between the light-shielding plates 12 and the light-transmitting element 11, preventing loosening or displacement and ensuring the stability of the light emission channels 13. The embedded method of the light-shielding plates 12 also improves the overall structural strength of the anti-glare mask, making them less prone to deformation or detachment due to external forces or vibrations.
[0059] In one embodiment, some light can pass through the light-shielding plate 12. In another embodiment, all light cannot pass through the light-shielding plate 12.
[0060] In one embodiment, the light-transmitting element 11 is a flat plate, the predetermined path S is a straight line, and the predetermined path S is parallel to the light-transmitting element 11.
[0061] In one embodiment, the light-transmitting element 11 is any one of transparent material, translucent material, or hazy material.
[0062] In one embodiment, the light-transmitting element 11 can be configured in any shape as needed.
[0063] In one embodiment, light source 3 is an LED. In another embodiment, light source 3 is a COB (Chip On Board) LED strip.
[0064] In one embodiment, the light-transmitting element 11 is any one of silicone, PVC, TPU, or TPE.
[0065] In one embodiment, the light-shielding plate 12 is made of any one of silicone, PVC, TPU, or TPE.
[0066] In one embodiment, the light-shielding plate 12 is made of an opaque or semi-transparent material.
[0067] In one embodiment, the light-shielding plate 12 can be any shape as needed.
[0068] In one embodiment, the light-shielding plate 12 is positioned at any desired location. In another embodiment, the relative position between the light-shielding plate 12 and the second support member 142 is positioned at any desired location.
[0069] Further, please refer to Figures 1 to 3 As a specific embodiment of the anti-glare mask provided by this utility model, it further includes: a light diffusion layer 2; the light diffusion layer 2 is laid on the surface of the light-transmitting component 11. In this way, when light passes through the light diffusion layer 2, it expands the light-emitting area of the light source 3, making the light emitted by the light source 3 more evenly distributed, and then enters the light emission channel 13.
[0070] In one embodiment, see Figure 8 The light diffusion layer 2 is located on the outer side of the light-incident side of the light-transmitting element 11, and the light diffusion layer 2 is spaced apart from the light-transmitting element 11.
[0071] Further, please refer to Figures 1 to 3 In one specific embodiment of the anti-glare mask provided by this utility model, the light diffusion layer 2 is laid on the surface of the light-incident side of the light-transmitting component 11. Thus, after the light from the light source 3 enters the light diffusion layer 2, it undergoes countless refractions and scatterings under the action of the scattering particles. Consequently, when all the light reaches the light-emitting surface of the light diffusion layer 2, it is more evenly distributed on the light-emitting surface of the light diffusion layer 2, and all the light rays have various random possible emission directions. This is equivalent to more evenly expanding the emitting surface of the light source 3 into the emitting area of the light diffusion layer 2. Furthermore, it assigns random emission directions to all the light rays, allowing light to enter the light emission channel 13 from various directions.
[0072] Please see Figure 10 In one embodiment, a portion of the light-shielding plate 12 passes through the light-diffusing layer 2.
[0073] Further, please refer to Figures 1 to 3 As a specific embodiment of the anti-glare face mask provided by this utility model, the light diffusion layer 2 is any one of a silicone layer, PVC layer, TPE layer, or TPU layer with embedded light diffusion particles. Thus, using silicone, PVC, TPE, or TPU for the light diffusion layer 2 facilitates extrusion molding.
[0074] In one embodiment, the light diffusion layer 2 being a silicone layer means that this layer not only possesses flexibility, weather resistance, and temperature resistance, but also forms a strong bond with the surface of the light-transmitting element 11. Simultaneously, embedding light diffusion particles within the silicone layer creates uniformly distributed scattering centers within the light diffusion layer 2, causing light passing through the light diffusion layer 2 to undergo multi-point and multi-angle scattering under the influence of multiple particles, thereby significantly improving the light diffusion effect. Furthermore, the uniform distribution of light diffusion particles within the light diffusion layer 2 ensures that light encounters multiple scattering events as it passes through, resulting in a wider and more balanced angular distribution of the emitted light, reducing the generation of localized strong light spots, and enhancing the softness of the light and visual comfort. Additionally, embedding the light diffusion particles within the light diffusion layer 2 prevents the particles from being directly exposed to the external environment, reducing the risk of particle detachment, contamination, or moisture absorption, thus ensuring that the light diffusion effect remains stable during long-term use.
[0075] In one embodiment, the light-transmitting element 11 is made of silicone.
[0076] Further, please refer to Figures 1 to 3 In one specific embodiment of the anti-glare face mask provided by this utility model, the light-diffusing particles are light-diffusing powder. Thus, the light-diffusing powder is easily mixed within the silicone layer.
[0077] Furthermore, the light-diffusing powder is characterized by its fine particle size and uniform dispersion. When it is evenly distributed within the light-diffusing layer 2, light passing through the light-diffusing layer 2 undergoes multi-point scattering on these fine particles, resulting in a more uniform and wider angular distribution of the emitted light and reducing the formation of high-intensity light spots. Because the particle size of the light-diffusing powder is typically small, its dispersion within the silicone layer can effectively control the degree of light scattering, thus ensuring that the light diffusion effect effectively reduces glare without significantly reducing light transmittance.
[0078] In one embodiment, the light-diffusing powder is any one of the following materials: silicone resin microspheres, organosilicon hollow microcapsules, acrylic or styrene cross-linked microspheres, silicon dioxide, barium sulfate, and titanium dioxide.
[0079] Further, please refer to Figures 1 to 3 In one specific embodiment of the anti-glare face mask provided by this utility model, the light-transmitting element 11 is a first silicone element. This facilitates the extrusion molding of the light-transmitting element 11.
[0080] Furthermore, the transparent silicone material possesses excellent light transmittance, which, while maintaining high light transmittance, reduces light absorption and scattering losses within the material, thereby ensuring that the light emitted by the light source 3 can efficiently pass through the light-transmitting component 11. Additionally, the flexibility of silicone makes the light-transmitting component 11 less prone to breakage when subjected to external impact or bending, thus improving the durability of the anti-glare mask. Moreover, silicone also exhibits strong resistance to high and low temperatures and ultraviolet radiation, ensuring the anti-glare mask maintains stable optical and mechanical properties under various environments. Designating the light-transmitting component 11 as the first silicone component also facilitates a secure bond with components such as the light-shielding plate 12 through molding, extrusion, etc., especially in structures where the light-transmitting component 11 is embedded at the end of the light-shielding plate 12; the elasticity of the silicone helps form a stable embedded connection, preventing loosening or detachment.
[0081] Further, please refer to Figures 1 to 3 In one specific embodiment of the anti-glare face mask provided by this utility model, the light-shielding plate 12 is a second silicone part with embedded light-shielding particles. This facilitates the extrusion molding of the light-transmitting part 11 and the light-shielding plate 12 together.
[0082] Furthermore, the light-blocking particles embedded within the second silicone component significantly enhance the light-blocking capability of the light-shielding plate 12, making it difficult for light to penetrate and thus ensuring an effective anti-glare effect. Additionally, since the light-blocking particles are encapsulated in silicone, they are protected from shedding, contamination, or corrosion by the external environment, while also preventing optical performance instability caused by direct particle exposure. Moreover, the light-blocking particles are evenly distributed within the second silicone component, ensuring consistent light-blocking effects at different locations on the light-shielding plate 12 and maintaining the overall performance balance of the anti-glare mask.
[0083] Further, please refer to Figures 1 to 3 As a specific embodiment of the anti-glare face mask provided by this utility model, the light-shielding particles are black masterbatch.
[0084] Furthermore, the black masterbatch is typically made of high-concentration carbon black or other high-absorbency materials, possessing extremely strong light absorption capabilities. When the black masterbatch is uniformly distributed within the second silicone component, the light-shielding plate 12 significantly enhances its absorption of visible light and some other wavelengths, effectively preventing light from passing through and maximizing the anti-glare effect. Additionally, due to the stable coloring and light absorption properties of the black masterbatch itself, it is not prone to fading or performance degradation even during long-term use, thus ensuring that the anti-glare mask maintains its initial light-shielding effect even after extended use. Moreover, the dispersion state of the black masterbatch within the second silicone component significantly impacts its light-shielding performance; its fine and uniform distribution prevents localized light transmission points, ensuring overall light-shielding uniformity.
[0085] In one embodiment, the black masterbatch is a concentrate prepared by uniformly dispersing a high concentration of black pigment in a carrier resin. In one embodiment, the carrier resin is vinyl silicone rubber or methyl vinyl silicone oil. In one embodiment, the black pigment is any one of carbon black, graphene powder, iron(III) oxide, CoCr2O4, CuCr2O4, MnFe2O4, CuCr2O4, MnCr2O4, aniline black, and carbazole black.
[0086] Further, please refer to Figures 1 to 3 As a specific embodiment of the anti-glare mask provided by this utility model, the predetermined path S extends along a straight line. In this way, the arrangement of multiple light-shielding plates 12 extending along a straight line ensures that the light emission channels 13 formed between any two adjacent light-shielding plates 12 are consistent in geometry and size, thereby making the direction and intensity distribution of light passing through each channel more uniform.
[0087] Further, please refer to Figures 1 to 3 In one specific embodiment of the anti-glare mask provided by this utility model, any adjacent light-shielding plates 12 are arranged parallel to each other. This ensures that the light emission angle of each light emission channel 13 is consistent, thereby obtaining a stable anti-glare area.
[0088] Further, please refer to Figures 1 to 3 In one specific embodiment of the anti-glare mask provided by this utility model, the light-transmitting element 11 is flat; each light-shielding plate 12 is respectively inclined or perpendicular to the flat surface of the light-transmitting element 11. Thus, the flat shape of the light-transmitting element 11 means that its incident and exit surfaces are basically flat, and this structure allows the transmission direction of light at different positions inside the light-transmitting element 11 to easily remain consistent. The inclined or perpendicular arrangement of the light-shielding plates 12 relative to the light-transmitting element 11 directly determines the shape of the light exit channel 13 and the distribution of the light exit direction. When the light-shielding plate 12 is perpendicular to the light-transmitting element 11, the direction of the light exit channel 13 is consistent with the normal direction of the surface of the light-transmitting element 11, and the light-shielding plate 12 restricts the propagation direction of the light, thereby reducing glare. When the light-shielding plate 12 is inclined to the light-transmitting element 11, the light exit angle can be adjusted within a certain range to guide and control the beam direction, thereby changing the desired anti-glare area and achieving the anti-glare effect of the target area, thus providing an anti-glare effect.
[0089] Further, please refer to Figures 1 to 3 In one specific embodiment of the anti-glare mask provided by this utility model, the light-transmitting component 11 and the light-shielding plate 12 are integrally formed continuous extrusion parts. This makes the connection between the light-transmitting component 11 and the light-shielding plate 12 more secure.
[0090] Further, please refer to Figures 1 to 3As a specific embodiment of the anti-glare face mask provided by this utility model, it further includes: a first support member 141 and a first fastening mechanism 41; the first support member 141 is fixedly connected to the light-transmitting member 11; the first fastening mechanism 41 is disposed on the first support member 141; the first fastening mechanism 41 is used to fasten onto an external object. Thus, the light-transmitting member 11 is connected to the external object through the first support member 141 and the first fastening mechanism 41.
[0091] Please see Figures 4 to 5 The present invention also provides an anti-glare sleeve, characterized in that it includes: an anti-glare mask and a base; the anti-glare mask is disposed on the base, and the base has a mounting position 161 for placing a light source 3. Thus, the base has a mounting position 161, and the light source 3 can be placed in the mounting position 161; thus, due to the use of the above-mentioned anti-glare mask, the light-transmitting element 11 allows the light emitted by the light source 3 to pass through; multiple light-shielding plates 12 are provided on the light-transmitting element 11; the light-shielding plates 12 can block part or all of the light that causes glare; multiple light-shielding plates 12 are arranged sequentially and spaced apart along a predetermined path S on the light-transmitting element 11, and there is a light emission channel 13 between any two adjacent light-shielding plates 12, so that the light emitted by the light source 3 can pass through the light emission channel 13 and pass through the light-transmitting element 11; for any light-shielding plate 12, one end of the light-shielding plate 12 is partially embedded in the light-transmitting element 11, or the entire light-shielding plate 12 is embedded in the light-transmitting element 11; the light-shielding plate 12 embedded in the light-transmitting element 11 is not easily contaminated by dust in the external environment, and the light-shielding plate 12 embedded in the light-transmitting element 11 is not easily deformed by external pressure.
[0092] Further, please refer to Figures 4 to 5 As a specific embodiment of the anti-glare sleeve provided by this utility model, the base includes: a second support member 142; the second support member 142 is fixedly connected to the light-transmitting member 11; the second support member 142 and the light-transmitting member 11 enclose a first chamber 16; the first chamber 16 is provided with a mounting position 161 for placing the light source 3. Thus, the fixed connection between the second support member 142 and the light-transmitting member 11 ensures the stability of their relative positions during use, thereby ensuring that the optical performance of the anti-glare mask is not easily affected by vibration or displacement. The structure of the second support member 142 and the light-transmitting member 11 enclosing the first chamber 16 effectively protects the light source 3 from external dust, moisture, or mechanical impact, extending the service life of the light source 3.
[0093] In one embodiment, mounting position 161 is a space within the first chamber 16 for mounting the light source 3.
[0094] In one embodiment, the second support 142 is made of opaque or translucent material.
[0095] Further, please refer to Figures 4 to 5As a specific embodiment of the anti-glare sleeve provided by this utility model, the light-transmitting component 11, the light-shielding plate 12, and the third support component 143 are integrally formed continuous extrusions. Thus, the integrally formed structure eliminates assembly seams between components, ensuring that there are no gaps or misalignments between the light-transmitting component 11, the light-shielding plate 12, and the second support component 142 that could affect optical performance, thereby guaranteeing the geometric accuracy and stability of the light emission channel 13.
[0096] Please see Figures 1 to 7 This utility model also provides an anti-glare lamp, including: an anti-glare sleeve and a light source 3; the light source 3 is disposed in the mounting position 161. Thus, due to the use of the above-mentioned anti-glare sleeve, the light-transmitting element 11 allows light emitted by the light source 3 to pass through; multiple light-shielding plates 12 are provided on the light-transmitting element 11; the light-shielding plates 12 can block part or all of the light that causes glare; multiple light-shielding plates 12 are arranged sequentially and spaced apart along a predetermined path S on the light-transmitting element 11, and there is a light emission channel 13 between any two adjacent light-shielding plates 12, so that the light emitted by the light source 3 can pass through the light emission channel 13 and pass through the light-transmitting element 11; for any one light-shielding plate 12, one end of the light-shielding plate 12 is partially embedded in the light-transmitting element 11, or the entire light-shielding plate 12 is embedded in the light-transmitting element 11; the light-shielding plate 12 embedded in the light-transmitting element 11 is not easily contaminated by dust in the external environment, and the light-shielding plate 12 embedded in the light-transmitting element 11 is not easily deformed by external pressure.
[0097] Further, please refer to Figures 6 to 13 As a specific embodiment of the anti-glare lamp provided by this utility model, the base includes: a third support member 143; the third support member 143 is fixedly connected to the light-transmitting member 11; the third support member 143 and the light-transmitting member 11 enclose a second chamber; the light source 3 is disposed in the second chamber. Thus, the installation is completed by placing the light source 3 in the second chamber.
[0098] Further, please refer to Figures 6 to 13 In one specific embodiment of the anti-glare lamp provided by this utility model, the light-transmitting component 11, the light-shielding plate 12, the second support component 142, and the light source 3 are integrally formed continuous extrusion parts. Thus, the connection between the light-transmitting component 11, the light-shielding plate 12, the second support component 142, and the light source 3 is more robust.
[0099] Further, please refer to Figures 6 to 13As a specific embodiment of the anti-glare lamp provided by this utility model, the base includes: a fourth support member 144, a fifth support member 145, and a second snap-fit mechanism 42; the fourth support member 144 is fixedly connected to the light-transmitting member 11; the fourth support member 144 is snapped onto the fifth support member 145 by the second snap-fit mechanism 42; the light source 3 is disposed on the fifth support member 145; the fifth support member 145 is a first U-shaped body with a first U-shaped groove, and the light-transmitting member 11 is disposed in the first U-shaped groove. Thus, the installation and disassembly of the fourth support member 144 and the fifth support member 145 are very convenient; the light-transmitting member 11 can be protected within the first U-shaped groove.
[0100] In one embodiment, the second latching mechanism 42 includes a protrusion 421 and a recess 422; the protrusion 421 is disposed on the fourth support member 144, and the recess 422 is disposed on the fifth support member 145.
[0101] Further, please refer to Figures 6 to 13 As a specific embodiment of the anti-glare lamp provided by this utility model, the base includes: a sixth support member 146, a seventh support member 147, and a third snap-fit mechanism 43; the sixth support member 146 is fixedly connected to the light-transmitting member 11; the sixth support member 146 is snapped onto the seventh support member 147 by the third snap-fit mechanism 43; the seventh support member 147 is used to fix it to the external mounting surface Q. Thus, the installation and disassembly of the sixth support member 146 and the seventh support member 147 are very convenient, and the seventh support member 147 can be fixed to the external mounting surface Q, facilitating the installation of the seventh support member 147.
[0102] In one embodiment, the light source 3 is disposed on the external mounting surface Q.
[0103] In one embodiment, the seventh support 147 is made of wood.
[0104] Further, please refer to Figures 6 to 13 As a specific embodiment of the anti-glare lamp provided by this utility model, the base includes: an eighth support member 148; the eighth support member 148 is fixedly connected to the light-transmitting member 11; the light source 3 is disposed on the eighth support member 148; the eighth support member 148 is a second U-shaped body with a second U-shaped groove, and the light-transmitting member 11 is disposed in the second U-shaped groove. In this way, the light-transmitting member 11 can be protected within the second U-shaped groove.
[0105] Further, please refer to Figures 6 to 13 As a specific embodiment of the anti-glare lamp provided by this utility model, the eighth support member 148 is a one-piece aluminum component. This makes aluminum lightweight, less prone to corrosion, and also helps with heat dissipation.
[0106] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and substitutions can be made without departing from the technical principles of the present utility model, and these improvements and substitutions should also be considered within the protection scope of the present utility model.
Claims
1. An anti-glare visor, characterized in that, include: A light-transmitting element and a light-shielding plate; one end of the light-shielding plate is partially embedded in the light-transmitting element, or the entire light-shielding plate is embedded in the light-transmitting element; one or both sides of the light-shielding plate have light emission channels, and the light emission channels pass through the light-transmitting element.
2. The anti-glare visor of claim 1, wherein, The number of light-shielding plates is multiple; the multiple light-shielding plates are arranged sequentially and at intervals along a predetermined path on the light-transmitting element; a light emission channel is formed between any two adjacent light-shielding plates; one end of each light-shielding plate is partially embedded in the light-transmitting element, or each light-shielding plate is entirely embedded in the light-transmitting element.
3. The anti-glare face mask as described in claim 2, characterized in that, Also includes: Light diffusion layer; The light diffusion layer is laid on the surface of the light-transmitting element; or the light diffusion layer is located on the outside of the light-incident side of the light-transmitting element, and the light diffusion layer is spaced apart from the light-transmitting element.
4. The anti-glare visor of claim 3, wherein, The light diffusion layer is laid on the surface of the light-incident side of the light-transmitting element; and / or part of the light-shielding plate passes through the light diffusion layer.
5. The anti-glare visor of claim 3, wherein, The light diffusion layer is any one of a silicone layer, PVC layer, TPE layer, or TPU layer with embedded light diffusion particles.
6. The anti-glare visor of claim 5, wherein, The light-diffusing particles are light-diffusing powders.
7. The anti-glare visor of claim 2, wherein, The light-transmitting component is the first silicone component.
8. The anti-glare visor of claim 7, wherein, The light-shielding plate is a second silicone component with embedded light-shielding particles.
9. The anti-glare visor of claim 8, wherein, The light-shielding particles are black masterbatches.
10. The anti-glare visor of claim 2, wherein, The predetermined path extends in a straight line.
11. The anti-glare visor of claim 2, wherein, The light-shielding plates are arranged parallel to each other at intervals.
12. The anti-glare visor of claim 2, wherein, The light-transmitting component is flat; each of the light-shielding plates is inclined or perpendicular to the flat surface of the light-transmitting component.
13. The anti-glare face shield of claim 12, wherein, The light-transmitting component and the light-shielding plate are integrally formed continuous extrusion parts.
14. The anti-glare visor of claim 2, wherein, Also includes: A first support member and a first fastening mechanism; the first support member is fixedly connected to the light-transmitting member; the first fastening mechanism is disposed on the first support member; the first fastening mechanism is used to fasten onto an external object.
15. Anti-glare sleeve, characterized in that include: The anti-glare mask and base as described in any one of claims 1 to 14; the anti-glare mask is disposed on the base, the base having a mounting position for placing a light source.
16. The anti-glare sleeve of claim 15, wherein, The base includes: a second support member; the second support member is fixedly connected to the light-transmitting member; the second support member and the light-transmitting member enclose a first chamber; the first chamber is provided with a mounting position for placing the light source.
17. The anti-glare sleeve of claim 16, wherein, The light-transmitting component, the light-shielding plate, and the second support component are integrally formed continuous extrusion parts.
18. An anti-glare luminaire, characterized by include: The anti-glare sleeve and light source as described in any one of claims 15 to 17; the light source is disposed within the mounting position.
19. The anti-glare luminaire of claim 18, wherein, The base includes: a third support member; the third support member is fixedly connected to the light-transmitting member; the third support member and the light-transmitting member enclose a second chamber; the light source is disposed in the second chamber.
20. The anti-glare luminaire of claim 19, wherein, The light-transmitting component, the light-shielding plate, the third support component, and the light source are integrally formed continuous extrusion parts.
21. The anti-glare luminaire of claim 18, wherein, The base includes: a fourth support member, a fifth support member, and a second snap-fit mechanism; the fourth support member is fixedly connected to the light-transmitting member; the fourth support member is snapped onto the fifth support member by the second snap-fit mechanism; the light source is disposed on the fifth support member; the fifth support member is a first U-shaped body with a first U-shaped groove, and the light-transmitting member is disposed in the first U-shaped groove.
22. The anti-glare luminaire of claim 18, wherein, The base includes a sixth support member, a seventh support member, and a third snap-fit mechanism; the sixth support member is fixedly connected to the light-transmitting member; the sixth support member is snapped onto the seventh support member by the third snap-fit mechanism; the seventh support member is used to fix it to an external mounting surface.
23. The anti-glare luminaire of claim 18, wherein, The base includes: an eighth support member; the eighth support member is fixedly connected to the light-transmitting member; the light source is disposed on the eighth support member; the eighth support member is a second U-shaped body with a second U-shaped groove, and the light-transmitting member is disposed in the second U-shaped groove.
24. The anti-glare lamp as described in claim 23, characterized in that, The eighth support component is a single piece made of aluminum.
Citation Information
Patent Citations
Anti-dazzle structure and flexible lamp strip
CN223049891U