Logo and vehicle
By setting light-transmitting and opaque areas on the emblem's faceplate, and combining a metal plating layer and a diffuser, the problem of existing emblems being unable to form three-dimensional patterns has been solved, improving the emblem's three-dimensionality and aesthetics, while also extending the emblem's lifespan and enhancing the vehicle's intelligent functions.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- DEEPAL AUTOMOBILE TECH CO LTD
- Filing Date
- 2025-06-12
- Publication Date
- 2026-05-12
AI Technical Summary
In existing technologies, luminescent logos can only form flat patterns through the film, making it difficult to apply to logos with three-dimensional structures, resulting in poor aesthetic appeal.
Design an logo comprising a base and a faceplate, wherein the faceplate has a light-transmitting area and an opaque area, the light-transmitting area being at least partially protruding from the opaque area, and a light-shielding layer is provided in the opaque area, a light-emitting component is located within a housing cavity, and a height difference is formed between the light-transmitting area and the opaque area, and a metal plating layer, a matte paint layer and a diffuser are combined to optimize the light effect.
Enhance the three-dimensionality and aesthetics of the logo, strengthen the contrast of light and dark in the design, extend the lifespan of the logo, and improve the vehicle's intelligence level through an intelligent control system.
Smart Images

Figure CN224225003U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of vehicle exterior technology, specifically to an emblem and vehicle... Background Technology
[0002] As a brand symbol and visual carrier, the vehicle's logo is a core identifier of the vehicle's appearance. To enhance the logo's aesthetics and its visibility at night or in low-light conditions, some vehicles feature illuminated logos.
[0003] In the prior art, a luminous logo includes a transparent mask, a light-emitting component, and a film. The film has a pattern formed on it according to the vehicle's brand. The film is attached to the outer surface of the transparent mask, and the light-emitting component shines light from inside the transparent mask, so that the luminous pattern can be observed from the outside of the logo.
[0004] However, since the membrane is a smooth, thin sheet, it can only form planar patterns, making it difficult to apply to logos with three-dimensional structures. This limits the shape of the logo and results in poor aesthetics. Utility Model Content
[0005] One objective of this utility model is to provide an emblem that solves the problem that existing emblems can only form planar patterns through films, making them unsuitable for emblems with three-dimensional structures, thus limiting the shape of the emblem and resulting in poor aesthetics; the second objective is to provide a vehicle.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0007] An emblem includes: a base; a face shield that, together with the base, defines a receiving cavity, the face shield including a light-transmitting area and an opaque area, the light-transmitting area at least partially protruding from the opaque area, the opaque area having a light-shielding layer on one side facing the base; and a light-emitting component disposed within the receiving cavity, the light-emitting component being used to emit light.
[0008] Based on the aforementioned technical means, the logo of this application directly sets a translucent area and an opaque area on the mask. The translucent area can be set with a desired pattern, or the opaque area can be set with a desired pattern, with the translucent area serving as the pattern background. Simultaneously, the translucent area is designed to protrude from the opaque area. When the light-emitting component emits light, the light exits from the translucent area. The protruding structure reduces light scattering loss at the edge of the translucent area, achieving a focusing effect and enhancing overall brightness. Furthermore, the height difference between the translucent and opaque areas makes the contrast between light and shadow on the mask more pronounced under light, thereby improving the three-dimensionality of the pattern on the logo, enhancing its three-dimensional layering, and improving its aesthetic appeal. In addition, since the light-shielding layer of the opaque area is located on the side of the mask facing the base, the mask also protects the light-shielding layer, preventing wear and tear and extending the lifespan of the logo.
[0009] Furthermore, a metal plating layer and a protective layer are sequentially disposed on the side of the light-transmitting area facing the base.
[0010] Based on the aforementioned technical methods, applying a metallic coating to the light-transmitting area helps reduce the reflectivity of the light-transmitting area, thereby optimizing the light transmission effect. It also enhances the light and shadow effects between the light-transmitting and opaque areas, further improving the logo's aesthetics. Additionally, a protective layer can be applied to the side of the metallic coating facing the mask. This enhances the effectiveness of the metallic coating and provides protection against peeling, extending the logo's lifespan.
[0011] Furthermore, the side of the light-transmitting area facing the base also includes a matte primer layer and a matte intermediate paint layer, and the protective layer is formed as a matte topcoat layer; the matte primer layer is disposed between the mask and the metal plating layer, and the matte intermediate paint layer is disposed between the protective layer and the metal plating layer.
[0012] Based on the above technical means, when it is necessary to make the logo emit a softer light and achieve a matte effect, a matte base coat and a matte intermediate coat can be added. At this time, the light-transmitting area is arranged in sequence from the mask to the base, with a matte base coat, a metal plating layer, a matte intermediate coat, and a matte top coat.
[0013] Furthermore, the light-shielding layer is an ink layer.
[0014] Based on the above technical means, the ink has a high opacity, which can effectively block light transmission and prevent light leakage. At the same time, it has strong stability, is not easy to age and peel off, and has a low cost, which helps to reduce the production cost of logos.
[0015] Furthermore, the opaque area includes a marking area and a light-blocking area; the marking area is located within the light-transmitting area, and the light-blocking area surrounds the light-transmitting area.
[0016] Based on the aforementioned technical means, when the logo's pattern is set to be opaque, the identification area can be set to the shape of the desired logo pattern, with the translucent area serving as the background. When the light-emitting component is not emitting light, the identification area displays the corresponding color. Due to the matte effect of the metal plating, the translucent area clearly displays the pattern. When the light-emitting component emits light, the translucent area displays a uniform white light, thus highlighting the pattern protruding from the translucent area. Since the translucent area surrounds the identification area, a light-shielding area is needed to surround the translucent area to prevent some light from leaking out from its outer edge, thereby concentrating the light and ensuring the optical effect of the translucent area.
[0017] Furthermore, the mask is made of plastic, and a hardened layer is provided on the side of the mask facing away from the base.
[0018] Based on the above technical means, in order to improve the logo's resistance to modification and wear, a hardening layer can be set on the outer surface of the mask, which is beneficial to improving the structural strength of the mask and thus increasing the service life of the logo, while having little impact on the light transmittance of the mask.
[0019] Furthermore, it also includes a diffuser; in the light transmission path, the diffuser is located between the light-emitting component and the mask, and the light from the light-emitting component passes through the diffuser and is directed to the mask.
[0020] According to the above-mentioned technical means, setting a diffuser between the light-emitting component and the mask can transform the point light source or line light source emitted by the light-emitting component into a uniform surface light source, making the light softer, reducing glare and eye strain in the light-transmitting area, and improving the visual comfort when the logo is lit.
[0021] Furthermore, the light-emitting component includes a circuit board and multiple LED beads; the circuit board is connected to the base, and the LED beads are disposed on the circuit board.
[0022] Based on the aforementioned technical means, the circuit board can be connected to the vehicle's circuit control system, allowing the driver to control the logo to light up or turn off the light-emitting components from inside the vehicle. Alternatively, a light sensor can be installed outside the vehicle, and the circuit control system can automatically adjust whether the logo lights up, the brightness of the light, and the color of the light based on the ambient light intensity, further promoting the vehicle's intelligence.
[0023] Furthermore, the mask is sealed to the base, and the base has ventilation holes with a water-proof and breathable membrane at the ventilation holes.
[0024] According to the above technical means, the mask and the base are sealed to prevent dust and condensation from entering the housing cavity and affecting the light transmission effect of the light-transmitting area. However, since the light-emitting component may cause the temperature inside the housing cavity to rise when it emits light, resulting in high air pressure inside the housing cavity, it is necessary to set a vent to ensure air circulation and keep the air pressure inside and outside the housing cavity consistent. In order to prevent condensation from forming inside the housing cavity, a water-proof and breathable membrane needs to be set at the vent to prevent water vapor from entering the housing cavity.
[0025] A vehicle comprising: any of the aforementioned logos; a body having a mounting area where the logo is located.
[0026] The beneficial effects of this utility model are:
[0027] (1) In this invention, the light-transmitting area protrudes at least partially from the opaque area, and a height difference is formed between the light-transmitting area and the opaque area, so that the mask surface is more distinct under light, improving the three-dimensionality of the pattern and enhancing the aesthetics of the logo.
[0028] (2) The light-shielding layer of the present invention is set on the side of the opaque area facing the base, which can prevent the light-shielding layer from being worn and improve the service life of the logo. Attached Figure Description
[0029] Figure 1 A schematic diagram of the structure of the logo provided in the embodiments of this application;
[0030] Figure 2 A schematic diagram of the internal structure of the logo provided in an embodiment of this application;
[0031] Figure 3 An exploded view of the face mask with the logo provided in an embodiment of this application.
[0032] Explanation of reference numerals in the attached figures:
[0033] 100 - Logo;
[0034] 110 - Base;
[0035] 111 - Receiving cavity;
[0036] 112 - Vent hole;
[0037] 1121 - Waterproof and breathable membrane;
[0038] 120-face mask;
[0039] 121 - Translucent area;
[0040] 122 - Opaque area;
[0041] 1221 - Identification Area;
[0042] 1222 - Shading area;
[0043] 123 - Light-shielding layer;
[0044] 124 - Metallic coating;
[0045] 125 - Matte primer layer;
[0046] 126 - Matte intermediate coat;
[0047] 127 - Protective layer;
[0048] 130 - Light-emitting component;
[0049] 131 - Circuit board;
[0050] 132-LED beads;
[0051] 140 - Diffuser component. Detailed Implementation
[0052] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the appended claims.
[0053] As the background art demonstrates, in existing technologies, luminous logos include a transparent mask, a light-emitting component, and a film. The film has a pattern formed on it according to the vehicle's brand. The film is attached to the outer surface of the transparent mask, and the light-emitting component illuminates it from inside the transparent mask, allowing the luminous pattern to be observed from the outside of the logo. However, because the film is a smooth, thin sheet, only planar patterns can be formed through it, making it unsuitable for logos with three-dimensional structures. This limits the shape of the logo and results in poor aesthetics.
[0054] To address the aforementioned technical problems, this application provides an emblem and vehicle. The emblem includes a base, a mask, and a light-emitting component. The base and mask form a receiving cavity, and the light-emitting component is disposed within the receiving cavity. The mask has a light-transmitting area and an opaque area, with the light-transmitting area at least partially protruding from the opaque area. A light-shielding layer of the opaque area is disposed on the side of the mask facing the base. The emblem of this application directly sets the light-transmitting and opaque areas on the mask. The light-transmitting area can be set with a desired pattern, or the opaque area can be set with a desired pattern. The light-transmitting area serves as the pattern background. Simultaneously, the light-transmitting area protrudes from the opaque area. When the light-emitting component emits light, the light exits from the light-transmitting area. The protruding structure reduces light scattering loss at the edge of the light-transmitting area, achieving a focusing effect and improving overall brightness. Furthermore, the height difference between the light-transmitting and opaque areas makes the contrast between light and shadow on the mask more pronounced under illumination, thereby enhancing the three-dimensionality of the pattern on the emblem, strengthening the three-dimensional layer of the emblem, and improving its aesthetic appeal. In addition, since the light-blocking layer of the opaque area is set on the side of the mask facing the base, the mask can also protect the light-blocking layer and prevent it from being worn, which helps to improve the lifespan of the logo.
[0055] The technical solution of this application and how the technical solution of this application solves the above-mentioned technical problems are described in detail below with specific embodiments. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments. The embodiments of this application will now be described with reference to the accompanying drawings:
[0056] It should be noted that the logo provided in this application embodiment can be applied to various different vehicles.
[0057] See Figure 1 As shown, the logo 100 of this application embodiment includes: a base 110, a mask 120, and a light-emitting component 130; the mask 120 and the base 110 together define a receiving cavity 111, the mask 120 includes a light-transmitting area 121 and an opaque area 122, the light-transmitting area 121 at least partially protrudes from the opaque area 122, and the opaque area 122 is provided with a light-shielding layer 123 on the side facing the base 110; the light-emitting component 130 is disposed in the receiving cavity 111, and the light-emitting component 130 is used to emit light.
[0058] In this embodiment, the mask 120 can be a plastic part, integrally molded by injection molding, or other materials can be selected. This embodiment does not limit this, as long as the mask 120 is transparent and can transmit light. After the mask 120 is integrally molded, a light-shielding layer 123 can be set in the opaque area 122 to prevent the light from the light-emitting component 130 from being exposed from the opaque area 122.
[0059] In specific implementation, the light-transmitting area 121 can be set as a specific pattern, and the opaque area 122 can be set as the background of the pattern. Alternatively, the opaque area 122 can be set as the pattern, and the light-transmitting area 121 can be set as the background of the pattern. As long as the background and the pattern are set as two independent areas, the light-transmitting area 121 can protrude from the opaque area 122. This can include the light-transmitting area 121 protruding towards the base 110, or the light-transmitting area 121 protruding away from the base 110. This application embodiment does not limit this and can make reasonable choices according to the actual pattern situation. It is only necessary to ensure that there is a certain height difference between the light-transmitting area 121 and the opaque area 122. As a result, the light emitted by the light-emitting component 130 shines through the light-transmitting area 121. The height difference between the light-transmitting area 121 and the opaque area 122 makes the contrast between light and dark on the outer surface of the mask 120 more distinct, thus highlighting the pattern on the logo 100. This helps to enhance the three-dimensional layer of the logo 100 and improve its aesthetics. At the same time, the height difference can also reduce the heat loss of light at the edge of the light-transmitting area 121, achieving a light-focusing effect and increasing the overall brightness of the light-transmitting area 121, thereby further highlighting the pattern on the logo 100.
[0060] Furthermore, since the light-shielding layer 123 is located on the side of the opaque area 122 facing the base 110, the mask 120 can protect the light-shielding layer 123, preventing the light-shielding layer 123 from being worn or falling off due to its location on the outer surface of the mask 120. This is beneficial to improving the service life of the logo 100. The light-shielding layer 123 can be an ink layer. The ink has a high light-shielding rate, which can effectively block light penetration and prevent light leakage. At the same time, it has strong stability and is not easy to age and fall off. It has a low cost, which is beneficial to reducing the production cost of the logo 100. Alternatively, the light-shielding layer 123 can also be a coating with added titanium dioxide, carbon black or pigment lamp light-shielding agent. This application embodiment does not limit this, as long as it can block light.
[0061] In actual production, in order to improve the production efficiency of the logo 100, the entire side of the mask 120 facing the base 110 can be coated with a light-shielding layer 123. Since the light-transmitting area 121 protrudes from the opaque area 122, laser engraving can be performed according to the protruding marks to remove the light-shielding layer 123 at the light-transmitting area 121. After laser engraving, the light-transmitting area 121 can also be polished to avoid residual debris affecting the light transmittance of the light-transmitting area 121.
[0062] See also some of the possible implementation methods. Figure 1 As shown, in this embodiment of the application, a metal plating layer 124 and a protective layer 127 are sequentially disposed on the side of the light-transmitting area 121 facing the base 110.
[0063] In some embodiments, the metal plating 124 on the light-transmitting area 121 helps reduce the reflectivity of the light-transmitting area 121, thereby optimizing the light transmission effect of the light-transmitting area 121. It also enhances the light and shadow effect between the light-transmitting area 121 and the opaque area 122, further improving the aesthetics of the emblem 100. The metal plating 124 can be an aluminum plating layer, a silver plating layer, etc., which is not limited in this embodiment. Additionally, a protective layer 127 can be provided on the side of the metal plating 124 facing the mask 120. The protective layer 127 can be a matte finish, etc., which enhances the effect of the metal plating 124 and provides protection against peeling, thus extending the service life of the emblem 100.
[0064] See also some of the possible implementation methods. Figure 2-3 As shown, the light-transmitting area 121 of this application embodiment also includes a matte primer layer 125 and a matte intermediate paint layer 126 on the side facing the base 110, and the protective layer 127 is formed as a matte topcoat layer; the matte primer layer 125 is disposed between the mask 120 and the metal plating layer 124, and the matte intermediate paint layer 126 is disposed between the protective layer 127 and the metal plating layer 124.
[0065] In practical implementation, the coating of the light-transmitting area 121 can be flexibly adjusted according to the light and shadow effect that the logo 100 wants to achieve. For example, when the light-transmitting area 121 of the logo 100 needs to achieve a high-brightness effect, the light-transmitting area 121 only needs to be provided with a metal plating layer 124 and a protective layer 127. When the logo 100 needs to emit a softer light and achieve a matte effect, a matte primer layer 125 and a matte intermediate paint layer 126 can be added. At this time, the light-transmitting area 121 is provided with a matte primer layer 125, a metal plating layer 124, a matte intermediate paint layer 126 and a matte topcoat layer in sequence from the mask 120 to the base 110.
[0066] To improve the production efficiency of logo 100, after the light-shielding layer 123 in the opaque area 122 is processed, a matte primer layer 125, a metal plating layer 124, a matte intermediate paint layer 126, and a matte topcoat layer can be applied to the entire side of the mask 120 facing the base 110. Only the light-transmitting area 121 will exhibit the corresponding optical effect, without affecting the light-shielding efficiency of the light-shielding layer 123. This can save time and cost in planning the coating path or setting up the masking mold.
[0067] See also some of the possible implementation methods. Figure 2 As shown, the opaque area 122 in this embodiment includes an identification area 1221 and a light-shielding area 1222; the identification area 1221 is located within the light-transmitting area 121, and the light-shielding area 1222 surrounds the light-transmitting area 121.
[0068] Understandably, when the pattern of logo 100 is set to be opaque, the identification area 1221 can be set to the shape of the pattern required by logo 100, and the light-transmitting area 121 serves as the background of the pattern. When the light-emitting component 130 does not emit light, the identification area 1221 presents the corresponding color. Due to the matte effect of the metal plating layer 124, the pattern of the identification area 1221 can be clearly displayed. When the light-emitting component 130 emits light, the light-transmitting area 121 presents a uniform white light, thereby highlighting the pattern of the identification area 1221 that protrudes from the light-transmitting area 121.
[0069] Since the light-transmitting area 121 surrounds the marking area 1221, in order to prevent some light from leaking out from the outer edge of the light-transmitting area 121, a light-shielding area 1222 needs to be set to surround the light-transmitting area 121, so that the light is more concentrated and the optical effect of the light-transmitting area 121 is guaranteed.
[0070] When the emblem 100 is applied to a vehicle, the vehicle body has an installation area, and the emblem 100 is set in the installation area. At this time, the installation area can be formed as a cavity, which defines a receiving cavity. When installing the emblem 100, the base 110 and the light-shielding area 1222 of the mask 120 can be fixed in the receiving cavity, and only the light-transmitting area 121 and the marking area 1221 are exposed, so as to highlight the pattern on the emblem 100 more clearly. At the same time, the light-shielding area 1222 blocks the light and prevents the light from passing through the gap at the connection between the mask 120 and the cavity, ensuring the light clarity of the exposed part of the emblem 100.
[0071] See also some of the possible implementation methods. Figure 3 As shown, the face mask 120 in this embodiment is a plastic part, and a hardened layer is provided on the side of the face mask 120 away from the base 110.
[0072] In some embodiments, to improve the modification resistance and wear resistance of the logo 100, a hardening layer can be provided on the outer surface of the mask 120. The specific material of the hardening layer is not limited in this application embodiment. For example, a UV (Ultra-Violet Ray) curable coating can be applied to the surface of the mask 120 and then hardened by UV treatment to form a hardening layer. In this way, the thickness and shape of the hardening layer can be flexibly adjusted according to the shape and structure of the mask 120. It has strong corrosion resistance, which is conducive to improving the structural strength of the mask 120 and thus improving the service life of the logo 100, while having little impact on the light transmittance of the mask 120.
[0073] It should be noted that since the processing technology of UV-curable coating is incompatible with that of the light-shielding layer 123 and the light-transmitting area 121, the hardening layer and the light-shielding layer 123 need to be placed on both sides of the mask 120 for isolation in order to ensure that each layer performs its proper function.
[0074] See also some of the possible implementation methods. Figure 1 As shown, the embodiments of this application also include a diffuser 140; in the light transmission path, the diffuser 140 is located between the light-emitting component 130 and the mask 120, and the light from the light-emitting component 130 passes through the diffuser 140 and is directed toward the mask 120.
[0075] It is understood that placing a diffuser 140 between the light-emitting component 130 and the mask 120 can transform the point or line light source emitted by the light-emitting component 130 into a uniform surface light source, making the light softer and reducing glare and eye strain in the light-transmitting area 121, thus improving visual comfort when the logo 100 is emitting light. The specific material of the diffuser 140 is not limited in this embodiment, as long as it has strong light transmittance and light diffusion properties. For example, the diffuser 140 can be acrylic, polycarbonate, polystyrene, polyvinyl chloride, etc.
[0076] See also some of the possible implementation methods. Figure 1 As shown, the light-emitting component 130 of this application embodiment includes a circuit board 131 and a plurality of lamp beads 132; the circuit board 131 is connected to the base 110, and the lamp beads 132 are disposed on the circuit board 131.
[0077] In some embodiments, the circuit board 131 is fixed to the base 110 by means of welding, bolting or other methods. The lamp bead 132 can be a light-emitting diode. This application embodiment does not limit this. The circuit board 131 can be connected to the vehicle's circuit control system so that the driver can control the logo 100 to light up or turn off the light-emitting component 130 from inside the vehicle. Alternatively, a light sensor can be installed outside the vehicle. The circuit control system can automatically adjust whether the logo 100 lights up, the brightness of the light, and the color of the light according to the light intensity of the vehicle's environment, further promoting the vehicle's intelligence.
[0078] See also some of the possible implementation methods. Figure 1 As shown, in this embodiment of the application, the mask 120 is sealed to the base 110, and the base 110 has a vent hole 112, and a water-proof and breathable membrane 1121 is provided at the vent hole 112.
[0079] In some embodiments, the mask 120 and the base 110 are sealed together to prevent dust and condensation from entering the receiving cavity 111 and affecting the light transmission effect of the light-transmitting area 121. However, since the light-emitting component 130 may cause the temperature inside the receiving cavity 111 to rise when it emits light, resulting in a higher air pressure inside the receiving cavity 111, it is necessary to provide a vent 112 to ensure air circulation and keep the air pressure inside and outside the receiving cavity 111 consistent. In order to prevent condensation from forming inside the receiving cavity 111, a water-proof and breathable membrane 1121 needs to be provided at the vent 112 to prevent water vapor from entering the receiving cavity 111.
[0080] Alternatively, wiring harness through holes can be made on the base 110 so that the connection harness between the circuit board 131 and the circuit control system can pass through. This application embodiment does not limit this.
[0081] This application embodiment also provides a vehicle, including: a logo 100 and a body, the body having a mounting area, and the logo 100 being disposed in the mounting area.
[0082] The structure and working principle of logo 100 have been described in detail in the above embodiments, and will not be repeated here.
[0083] In this embodiment of the application, installing the aforementioned emblem 100 on the vehicle body helps to improve the overall aesthetics of the vehicle and enhance the user experience.
[0084] In summary, the logo 100 provided in this application embodiment can be manufactured through the following steps in actual production: First, a face mask 120 is made by injection molding. A corresponding groove, i.e., the identification area 1221, is formed on the face mask 120 according to the pattern required by the logo 100. The identification area 1221 is surrounded by a light-transmitting area 121, and the light-transmitting area 121 is surrounded by a light-shielding area 1222. The identification area 1221 and the light-shielding area 1222 together form an opaque area 122. Then, ink paint is sprayed onto the side of the face mask 120 facing the base 110. The light-transmitting area 121 is laser-engraved to remove any remaining ink or paint, and then polished to ensure no ink or paint residue remains. Next, a matte primer is sprayed onto the side of the mask 120, followed by electroplating, then matte intermediate coat and matte topcoat. Finally, a UV-curable coating is applied to the side of the mask 120 facing away from the base 110, and UV curing is performed to complete the processing of the mask 120. The mask 120, base 110, diffuser 140, and light-emitting component 130 are then assembled together. This process is simple and efficient. Furthermore, the height difference between the light-transmitting area 121 and the opaque area 122 effectively enhances the contrast between light and shadow, thereby improving the recognizability and three-dimensionality of the marking area 1221, and ultimately enhancing the aesthetics of the emblem 100 and the vehicle.
[0085] In the description of the embodiments of this application, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, an indirect connection through an intermediate medium, or the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this application according to the specific circumstances.
[0086] The devices or elements referred to in the embodiments of this application or implied herein must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as limiting the embodiments of this application. In the description of the embodiments of this application, "a plurality of" means two or more, unless otherwise precisely specified.
[0087] The terms "first," "second," "third," "fourth," etc. (if present) in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented, for example, in orders other than those illustrated or described herein.
[0088] Furthermore, the terms “comprising” and “having”, and any variations thereof, are intended to cover non-exclusive inclusion, such that a process, method, system, product, or apparatus that includes a series of steps or units is not necessarily limited to those steps or units that are explicitly listed, but may include other steps or units that are not explicitly listed or that are inherent to such process, method, product, or apparatus.
[0089] The term "multiple" in this article refers to two or more. The term "and / or" in this article is merely a description of the relationship between related objects, indicating that there can be three relationships. For example, A and / or B can represent three cases: A exists alone, A and B exist simultaneously, and B exists alone.
[0090] It is understood that the various numerical designations used in the embodiments of this application are merely for descriptive convenience and are not intended to limit the scope of the embodiments of this application.
[0091] It is understood that, in the embodiments of this application, the order of the above-mentioned process numbers does not imply the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application.
[0092] Other embodiments of this application will readily occur to those skilled in the art upon consideration of the specification and practice of the utility models disclosed herein. This application is intended to cover any variations, uses, or adaptations of this application that follow the general principles of this application and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this application are indicated by the following claims.
[0093] It should be understood that this application is not limited to the precise structure described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of this application is limited only by the appended claims.
Claims
1. A logo (100), characterized in that, include: Base (110); A face mask (120) and a base (110) together define a receiving cavity (111). The face mask (120) includes a light-transmitting area (121) and an opaque area (122). The light-transmitting area (121) protrudes at least partially from the opaque area (122). The opaque area (122) has a light-shielding layer (123) on the side facing the base (110). A light-emitting component (130) is disposed in the receiving cavity (111) and is used to emit light.
2. The logo (100) according to claim 1, characterized in that, A metal plating layer (124) and a protective layer (127) are sequentially provided on the side of the light-transmitting area (121) facing the base (110).
3. The logo (100) according to claim 2, characterized in that, The light-transmitting area (121) facing the base (110) also includes a matte primer layer (125) and a matte intermediate paint layer (126), and the protective layer (127) is formed as a matte topcoat layer; The matte primer layer (125) is disposed between the mask (120) and the metal plating layer (124), and the matte intermediate paint layer (126) is disposed between the protective layer (127) and the metal plating layer (124).
4. The logo (100) according to claim 1, characterized in that, The light-shielding layer (123) is an ink layer.
5. The logo (100) according to claim 1, characterized in that, The opaque area (122) includes a marking area (1221) and a light-blocking area (1222); The marking area (1221) is located within the light-transmitting area (121), and the light-blocking area (1222) surrounds the light-transmitting area (121).
6. The logo (100) according to any one of claims 1-5, characterized in that, The face mask (120) is made of plastic and has a hardened layer on the side of the face mask (120) away from the base (110).
7. The logo (100) according to any one of claims 1-5, characterized in that, It also includes a diffuser (140); In the light transmission path, the diffuser (140) is located between the light-emitting component (130) and the mask (120). The light from the light-emitting component (130) passes through the diffuser (140) and shines onto the mask (120).
8. The logo (100) according to any one of claims 1-5, characterized in that, The light-emitting component (130) includes a circuit board (131) and multiple LED beads (132). The circuit board (131) is connected to the base (110), and the lamp bead (132) is disposed on the circuit board (131).
9. The logo (100) according to any one of claims 1-5, characterized in that, The mask (120) is sealed to the base (110), and the base (110) has a vent hole (112) and a water-proof and breathable membrane (1121) is provided at the vent hole (112).
10. A vehicle, characterized in that, include: The logo (100) as described in any one of claims 1-9; The vehicle body has an installation area, and the emblem (100) is located in the installation area.