Atmosphere lamp assembly and air outlet device
By designing a combination of translucent and reflective parts and using a concave-convex texture structure to adjust the light, a diversified pattern display of the ambient light is achieved, which solves the problem of monotonous display of existing ambient lights and enhances the richness and interest of the displayed content.
Patent Information
- Application Number
- CN202422662712.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-30
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2034-10-30
AI Technical Summary
Existing ambient lights can only display specific colors, resulting in relatively monotonous display content.
An ambient light assembly is designed, comprising a light-transmitting part and a reflective part. The light-transmitting part is used to adjust light to form a pattern, and the reflective part is used to reflect light to present a pattern on its surface. Concave-convex texture structures are provided on the light-transmitting part and the reflective part to enhance the light adjustment effect.
The richness of the display content of the ambient light has been improved, and the fun and visual effects of the driving experience have been enhanced through the presentation of various patterns.
Smart Images

Figure CN223331564U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of automobile decorative parts, and in particular to an atmosphere light assembly and an air outlet device. Background Art
[0002] In the automotive industry, ambient lighting is widely used in interior decoration, typically installed in locations such as the center console, door panels, roof, cup holders, and door sills. By adjusting the brightness and color of the light, ambient lighting can enhance sensory stimulation, elevate the overall vehicle quality, and provide a more comfortable and enjoyable driving experience for drivers and passengers. However, because existing ambient lighting can only display specific colors, the display content is relatively monotonous. Utility Model Content
[0003] The purpose of this application includes, for example, providing an ambient light assembly that can enhance the richness of displayed content.
[0004] The purpose of this application also includes providing an air outlet device, in which the ambient light component can enhance the richness of the displayed content.
[0005] The embodiments of the present application can be implemented as follows:
[0006] An embodiment of the present application provides an atmosphere light assembly, which includes a light-transmitting member and a reflective member. The light-transmitting member is used to adjust the light passing through itself to emit outgoing light for forming a pattern, and the reflective member is used to reflect the outgoing light passing through the light-transmitting member to present the pattern on the reflective member.
[0007] Optionally, the light-transmitting member includes a light-incoming surface and a light-outgoing surface arranged opposite to each other along a first direction, and at least one of the light-incoming surface and the light-outgoing surface or the interior of the light-transmitting member includes a concave-convex texture structure.
[0008] Optionally, the texture structure includes a plurality of unit faces, and the projection of each unit face on a plane perpendicular to the first direction is a polygon.
[0009] Optionally, each of the unit surfaces includes at least three endpoints, and at least two of the endpoints on at least one of the unit surfaces are staggered in the first direction.
[0010] Optionally, each of the unit faces includes three endpoints, and the projection of each of the unit faces on a plane perpendicular to the first direction is a triangle.
[0011] Optionally, each of the unit faces includes four endpoints, and the projection of each of the unit faces on a plane perpendicular to the first direction is a triangle or a quadrilateral.
[0012] Optionally, the texture structure includes multiple unit surfaces, each of the unit surfaces is concave, and the edge of each unit surface is at least partially curved or broken line in the second direction or the third direction, wherein the first direction, the second direction and the third direction are perpendicular to each other.
[0013] Optionally, the plurality of unit surfaces are arranged sequentially along the second direction or the third direction.
[0014] Optionally, the light-transmitting member is a light-transmitting cover or a light-transmitting film, wherein in the first direction, the thickness of the light-transmitting cover is greater than the thickness of the light-transmitting film;
[0015] Alternatively, the light-transmitting member includes a light-transmitting cover and a light-transmitting film, and the light-transmitting film is disposed on at least one surface of the light-transmitting cover along the first direction.
[0016] Optionally, the atmosphere light assembly further includes a light source, and the light source is used to emit light toward the light-transmitting member.
[0017] Optionally, the atmosphere light assembly further includes a printed circuit board, and the light source is arranged on a surface of the printed circuit board facing the light-transmitting component.
[0018] Optionally, the surface of the reflective element facing the light-transmitting element is a reflective surface, and the reflective surface has an imaging texture, and the imaging texture is superimposed on the outgoing light to form an image.
[0019] The present application also provides an air outlet device, including an environmental part and the atmosphere light assembly, wherein the light-transmitting part and the reflective part are both arranged on the environmental part, the environmental part is provided with an air outlet, and the reflective part is close to the air outlet.
[0020] The beneficial effects of the atmosphere lamp assembly and the air outlet device provided in the embodiments of the present application include, for example: in order to enhance the richness of the displayed content, an atmosphere lamp assembly is designed, which includes a light-transmitting component and a reflective component. The light-transmitting component is used to adjust the light passing through itself to emit outgoing light for forming a pattern, and the reflective component is used to reflect the outgoing light passing through the light-transmitting component. When the outgoing light is projected onto the reflective component, the reflective component can reflect the outgoing light and present a pattern on the reflective component, which enhances the richness of the displayed content compared to an atmosphere lamp assembly that can only present a specific color. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only show certain embodiments of the present application and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without creative work.
[0022] Figure 1 This is a schematic diagram of an air outlet device in an embodiment of the present application;
[0023] Figure 2 This is an exploded view of the air outlet device in the embodiment of the present application;
[0024] Figure 3 This is a cross-sectional view of the air outlet device in the embodiment of the present application;
[0025] Figure 4 This is a first schematic diagram for illustrating the light propagation path in an embodiment of the present application;
[0026] Figure 5 This is a second schematic diagram used to illustrate the light propagation path in the embodiment of the present application;
[0027] Figure 6 This is a third schematic diagram used to illustrate the light propagation path in the embodiment of the present application;
[0028] Figure 7 Schematic diagram of the first light-transmitting member at a first viewing angle in an embodiment of the present application;
[0029] Figure 8 This is a schematic diagram of the second viewing angle of the first light-transmitting member in the embodiment of the present application;
[0030] Figure 9 for Figure 8 Enlarged view of part A;
[0031] Figure 10 Schematic diagram of the second light-transmitting member in the embodiment of the present application;
[0032] Figure 11 This is a schematic diagram for illustrating a unit surface on a second light-transmitting member in an embodiment of the present application;
[0033] Figure 12 This is a schematic diagram for illustrating the projection of a unit surface on the second light-transmitting member in an embodiment of the present application in a direction perpendicular to the first direction;
[0034] Figure 13 Schematic diagram of the third light-transmitting member in the embodiment of the present application;
[0035] Figure 14 This is a schematic diagram for illustrating a unit surface on a third type of light-transmitting member in an embodiment of the present application;
[0036] Figure 15 This is a schematic diagram of a fourth light-transmitting member at a first viewing angle in an embodiment of the present application;
[0037] Figure 16 This is a schematic diagram of a second viewing angle of the fourth light-transmitting member in an embodiment of the present application;
[0038] Figure 17 This is a schematic diagram of a third viewing angle of the fourth light-transmitting member in an embodiment of the present application;
[0039] Figure 18 This is a schematic diagram for illustrating the distribution of light sources in an embodiment of the present application;
[0040] Figure 19 This is a schematic diagram for illustrating the texture on the reflective surface in an embodiment of the present application;
[0041] Figure 20 The embodiment of the present application is used to show the pattern presented on the reflective surface when the shape of the unit surface is the first shape;
[0042] Figure 21 The embodiment of the present application is used to show the pattern presented on the reflective surface when the shape of the unit surface is the second shape;
[0043] Figure 22 This is a pattern displayed on the reflective surface when the shape of the unit surface is the third shape in the embodiment of the present application;
[0044] Figure 23 This is a pattern displayed on the reflective surface when the shape of the unit surface is the fourth shape in the embodiment of the present application;
[0045] Figure 24 This is a schematic diagram for illustrating the application of the air outlet device to a car in an embodiment of the present application.
[0046] Icons: 10-air outlet device; 100-ambient light assembly; 110-light-transmitting part; 111-light inlet surface; 112-light outlet surface; 113-unit surface; 1131-end point; 114-light-transmitting cover; 115-light-transmitting membrane; 120-reflecting part; 121-reflecting surface; 130-light source; 140-printed circuit board; 200-environmental part; 210-air outlet; 300-housing. DETAILED DESCRIPTION
[0047] To make the objectives, technical solutions, and advantages of the embodiments of the present application more clear, the technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Generally, the components of the embodiments of the present application described and shown in the drawings herein can be arranged and designed in various different configurations.
[0048] Therefore, the following detailed description of the embodiments of the present application provided in the accompanying drawings is not intended to limit the scope of the present application for protection, but merely represents selected embodiments of the present application. All other embodiments obtained by persons of ordinary skill in the art based on the embodiments in the present application without creative work are within the scope of protection of the present application.
[0049] It should be noted that similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, it does not need to be further defined or explained in subsequent drawings.
[0050] In the description of this application, it should be noted that if the terms "upper", "lower", "inside", "outside", etc. appear, the orientation or position relationship indicated is based on the orientation or position relationship shown in the accompanying drawings, or is the orientation or position relationship in which the utility model product is usually placed when in use. It is only for the convenience of describing this application and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it cannot be understood as a limitation on this application.
[0051] In addition, the terms "first", "second", etc., if used, are merely used to distinguish and describe, and should not be understood as indicating or implying relative importance.
[0052] It should be noted that, in the absence of conflict, the features in the embodiments of this application can be combined with each other.
[0053] The inventors of the present application have found that existing ambient lights can only display specific colors, such as red, white, or blue, which results in relatively monotonous display content. The embodiments of the present application provide an ambient light assembly that can enhance the richness of displayed content.
[0054] Please refer to Figure 1-Figure 3 The atmosphere lamp assembly 100 provided in an embodiment of the present application includes a light-transmitting member 110 and a reflective member 120. The light-transmitting member 110 is used to adjust the light passing through itself to emit outgoing light for forming a pattern, and the reflective member 120 is used to reflect the outgoing light passing through the light-transmitting member 110 to present a pattern on the reflective member 120.
[0055] The light-transmitting element 110 is made of a translucent material capable of transmitting and modifying light. Translucent materials include, but are not limited to, inorganic glass, organic glass, PC, PET, transparent plastic, transparent ceramic, and transparent plastic film. The choice of translucent material depends on the actual light transmission requirements. The surface of the reflective element 120 facing the light-transmitting element 110 is a reflective surface 121. This surface has specific reflective properties and is capable of reflecting light emitted from the light-transmitting element 110 outward, thereby creating a pattern on the reflective surface 121.
[0056] When light passes through the translucent member 110 and is projected onto the reflective member 120, the reflective surface 121 can reflect the outgoing light passing through the translucent member 110 and present a pattern on the reflective surface 121. Compared with an ambient light that can only present a specific color, the ambient light assembly 100 improves the richness of the displayed content.
[0057] Please refer to Figure 4-Figure 9 In some embodiments, the light-transmitting member 110 includes a light-incoming surface 111 and a light-outgoing surface 112 that are oppositely arranged along the first direction z, and at least one of the light-incoming surface 111 and the light-outgoing surface 112 includes a concave-convex texture structure.
[0058] During the light transmission process of the light-transmitting element 110 , light is incident from the light-incident surface 111 and then emitted from the light-emitting surface 112 to the reflective surface 121 .
[0059] At least one of the light-entering surface 111 and the light-emitting surface 112 includes a concave-convex texture structure, that is, the light-entering surface 111 includes a concave-convex texture structure, or the light-emitting surface 112 includes a concave-convex texture structure, or both the light-entering surface 111 and the light-emitting surface 112 include a concave-convex texture structure. The concave-convex texture structure can adjust the light path, thereby presenting a pattern on the reflecting surface 121.
[0060] In some embodiments, the interior of the light-transmitting member 110 includes a concave-convex texture structure. In this case, the light-input surface 111 and the light-output surface 112 of the light-transmitting member 110 can be planes, and the concave-convex texture structure is formed inside the light-transmitting member 110. The concave-convex texture structure can be formed inside the light-transmitting member 110 in the form of packaging, or the light-transmitting member 110 includes two parts combined along a first direction z, and the inner surface of at least one of the parts is provided with a concave-convex texture structure.
[0061] In some embodiments, the concavo-convex texture structure includes a plurality of unit surfaces 113 , and the projections of the unit surfaces 113 on a plane perpendicular to the first direction z are polygonal.
[0062] It should be noted that the shape of the projection of the unit surface 113 on the plane perpendicular to the first direction z can be selected according to the pattern to be presented. For example, the projection of the unit surface 113 on the plane perpendicular to the first direction z is a triangle or a quadrilateral.
[0063] In some embodiments, each unit surface 113 includes at least three endpoints 1131. In the texture structure, any endpoint 1131 on all unit surfaces 113 is located at any position in at least one direction among the first direction z, the second direction x and the third direction y, wherein the first direction z, the second direction x and the third direction y are perpendicular to each other.
[0064] When the projection of the unit surface 113 on the plane perpendicular to the first direction z is a polygon, each unit surface 113 is formed by at least three edges, wherein the intersection of two adjacent edges is an endpoint 1131, and the unit surface 113 is formed between multiple endpoints 1131.
[0065] Multiple unit surfaces 113 in the texture structure are arranged continuously, and two adjacent unit surfaces 113 share at least one endpoint 1131; for multiple continuously arranged unit surfaces 113, any endpoint 1131 on all unit surfaces 113 is located at any position in at least one direction among the first direction z, the second direction x and the third direction y, so that the endpoints 1131 located on all unit surfaces 113 are randomly distributed in at least one direction among the first direction z, the second direction x and the third direction y.
[0066] Any endpoint 1131 on all unit surfaces 113 is located at any position in at least one direction among the first direction z, the second direction x and the third direction y, including: any endpoint 1131 on all unit surfaces 113 is located at any position in one of the first direction z, the second direction x and the third direction y, so that the endpoints 1131 on all unit surfaces 113 are randomly distributed in one of the first direction z, the second direction x and the third direction y; or, any endpoint 1131 on all unit surfaces 113 is located at any position in two of the first direction z, the second direction x and the third direction y, so that the endpoints 1131 on all unit surfaces 113 are randomly distributed in two of the first direction z, the second direction x and the third direction y; or, any endpoint 1131 on all unit surfaces 113 is located at any position in the first direction z, the second direction x and the third direction y, so that the endpoints 1131 on all unit surfaces 113 are randomly distributed in the first direction z, the second direction x and the third direction y.
[0067] In some embodiments, in the texture structure, at least two endpoints 1131 on at least one unit surface 113 are staggered in the first direction z, so that there is a step between the at least two endpoints 1131 along the first direction z to form a concave-convex texture structure.
[0068] At least two endpoints 1131 on at least one unit surface 113 are staggered in the first direction z, including: at least two endpoints 1131 on at least one unit surface 113 are staggered in the first direction z and the second direction x, and at least two endpoints 1131 on at least one unit surface 113 are staggered in the first direction z and the third direction y, and at least two endpoints 1131 on at least one unit surface 113 are staggered in the first direction z, the second direction x and the third direction y.
[0069] like Figure 7-Figure 9 As shown, in some embodiments, each unit surface 113 includes three endpoints 1131, and the projection of each unit surface 113 on the plane perpendicular to the first direction z is a triangle. The triangle formed by the projection of each unit surface 113 on the plane perpendicular to the first direction z includes but is not limited to an acute triangle, a right triangle, and an obtuse triangle, wherein the shape of the unit surface 113 whose projection on the plane perpendicular to the first direction z is a triangle is the first shape.
[0070] When each unit surface 113 includes three endpoints 1131, two adjacent unit surfaces 113 share one endpoint 1131, and any endpoint 1131 on all unit surfaces 113 is located at an arbitrary position only in the first direction z, so that the endpoints 1131 on all unit surfaces 113 are randomly distributed in the first direction z; or, any endpoint 1131 on all unit surfaces 113 is located at an arbitrary position in two of the first direction z, the second direction x, and the third direction y, so that the endpoints 1131 on all unit surfaces 113 are randomly distributed in two of the first direction z, the second direction x, and the third direction y; or, any endpoint 1131 on all unit surfaces 113 is located at an arbitrary position in the first direction z, the second direction x, and the third direction y, so that the endpoints 1131 on all unit surfaces 113 are randomly distributed in the first direction z, the second direction x, and the third direction y.
[0071] Exemplarily, the texture structure includes five unit faces 113, the projections of the five unit faces 113 on a plane perpendicular to the first direction z are all triangular, and the projections of the five unit faces 113 on the plane perpendicular to the first direction z share an endpoint 1131. It is understood that a single texture structure may also include three unit faces 113, four unit faces 113, or more than six unit faces 113, without limitation.
[0072] like Figure 10-12 As shown, in some embodiments, each unit surface 113 includes four endpoints 1131 , and the projection of each unit surface 113 on a plane perpendicular to the first direction z is a quadrilateral.
[0073] When each unit surface 113 includes four endpoints 1131, two adjacent unit surfaces 113 share two endpoints 1131, and any endpoint 1131 on all unit surfaces 113 is located at an arbitrary position only in the first direction z, so that the endpoints 1131 on all unit surfaces 113 are randomly distributed in the first direction z, and the projection of each unit surface 113 on the plane perpendicular to the first direction z is a rectangle or a square, so that the projections of the endpoints 1131 on all unit surfaces 113 on the plane perpendicular to the first direction z are arranged in a matrix, wherein the shape of the unit surface 113 whose projection on the plane perpendicular to the first direction z is a rectangle or a square is the second shape.
[0074] like Figure 13 、 Figure 14 As shown, any endpoint 1131 on all unit surfaces 113 is located at any position in the first direction z, the second direction x, and the third direction y, so that the endpoints 1131 on all unit surfaces 113 are randomly distributed in the first direction z, the second direction x, and the third direction y. The projection of each unit surface 113 on the plane perpendicular to the first direction z is an irregular trapezoid, so that the projections of the endpoints 1131 on all unit surfaces 113 on the plane perpendicular to the first direction z are arranged in a non-matrix manner, that is, in Figure 12 On the basis of the display, any endpoint 1131 on all unit surfaces 113 is offset along the second direction x and the third direction y, wherein the shape of the unit surface 113 whose projection on the plane perpendicular to the first direction z is an irregular trapezoid is the third shape.
[0075] In some embodiments, each unit surface 113 includes four endpoints 1131, and the projection of each unit surface 113 on the plane perpendicular to the first direction z is a triangle. At this time, the projections of three of the endpoints 1131 on the plane perpendicular to the first direction z are collinear, so that the projection of the unit surface 113 on the plane perpendicular to the first direction z is a triangle.
[0076] In other embodiments, when each unit surface 113 includes four endpoints 1131 , the projection of each unit surface 113 on a plane perpendicular to the first direction z is a parallelogram.
[0077] Of course, it can be understood that when the projection of the unit surface 113 on the plane perpendicular to the first direction z is a polygon, each unit surface 113 may also include more than five endpoints 1131.
[0078] In some embodiments, see Figure 15-17The texture structure includes multiple unit surfaces 113, each unit surface 113 is a concave surface, and the edge of each unit surface 113 is at least partially curved or broken line in the second direction x or the third direction y, wherein the shape of the unit surface 113 whose edge is at least partially curved or broken line in the second direction x or the third direction y is the fourth shape.
[0079] When light passes through the light-transmitting element 110 and is projected onto the reflective element 120, the light passes through the unit surface 113 on the light-transmitting element 110. The unit surface 113 is a concave surface, and the edge of the unit surface 113 is at least partially curved or broken line in the second direction x or the third direction y. At this time, the pattern presented by the reflective surface 121 extends along the curved direction of the edge of the unit surface 113.
[0080] When the texture structure includes multiple unit surfaces 113, each unit surface 113 is a concave surface, and the edge of the unit surface 113 is at least partially curved or broken line in the second direction x or the third direction y, the multiple unit surfaces 113 can be arranged in sequence along the second direction x or the third direction y.
[0081] Exemplarily, the edge of the unit surface 113 at least partially presents an S-shape or a C-shape in the second direction x or the third direction y.
[0082] In some embodiments, please refer to Figure 4-Figure 6 The ambient light assembly 100 further includes a light source 130, which is used to emit light toward the light-transmitting member 110. Figure 4-Figure 6 The direction of the arrow is the direction of light propagation.
[0083] Light source 130 may be an LED light source. LEDs are light-emitting diodes (LEDs), which have the advantages of being compact, long-lasting, and highly efficient. Light emitted by the LED light source enters through light-incoming surface 111 of light-transmitting element 110, then exits through light-emitting surface 112 of light-transmitting element 110 and reaches the surface of reflective element 120 facing light-transmitting element 110, thereby creating a specific pattern on the surface of reflective element 120 facing light-transmitting element 110.
[0084] In some embodiments, the light source 130 may be an RGB multi-color light source, which can not only adjust the brightness but also present a variety of colors according to the changes in the three color channels of red, green, and blue and their superposition.
[0085] In addition, the air outlet device 10 further includes a printed circuit board 140 , and the light source 130 is disposed on a surface of the printed circuit board 140 facing the light-transmitting element 110 .
[0086] The light source 130 is electrically connected to the printed circuit board 140. Under the control of the printed circuit board 140, the light source 130 can realize dynamic lighting effects, simulate the sweeping effect of wind at the air outlet 210 and the wind outlet effect. The color of the light can be adjusted according to different scene definitions. For example, the warm wind scene can adjust the light output of the light source 130 to red, and the cold wind scene can adjust the light output of the light source 130 to blue or green, which enhances the fun of the air outlet device 10 and can interact with the people in the car to increase the emotional value.
[0087] When the light source 130 is disposed on the surface of the printed circuit board 140 facing the light transmissive member 110 , the light emitting angle of the light source 130 is 0-180°, that is, the light emitted by the light source 130 covers the area below the surface of the printed circuit board 140 facing the light transmissive member 110 .
[0088] like Figure 18 As shown, in some optional embodiments, multiple light sources 130 may be provided on the printed circuit board 140. The multiple light sources 130 may be arranged along the length or width of the printed circuit board 140. The printed circuit board 140 can control not only the brightness of the light sources 130 but also the variation in the light effect of the light emitted by the light sources 130 on the reflective surface 121. When the light sources 130 are RGB multi-color light sources, the printed circuit board 140 can also control different light sources 130 to emit light of the same or different colors.
[0089] In some embodiments, as Figure 4 As shown, the light-transmitting member 110 is a light-transmitting cover 114, or as Figure 5 As shown, the light-transmitting member 110 includes a light-transmitting cover 114 and a light-transmitting film 115. The light-transmitting film 115 is provided on at least one surface of the light-transmitting cover 114 along the first direction z. The surface of the light-transmitting film 115 facing away from the light-transmitting cover 114 is the light-incoming surface 111 or the light-emitting surface 112. Alternatively, Figure 6 As shown, the light-transmitting member 110 is a light-transmitting film 115 , and the two opposite surfaces of the light-transmitting film 115 along the first direction z are a light-incoming surface 111 and a light-outgoing surface 112 . In the first direction z, the thickness of the light-transmitting cover 114 is greater than that of the light-transmitting film 115 .
[0090] The light-transmitting cover 114 is substantially plate-shaped. When the light-transmitting element 110 is the light-transmitting cover 114 , two opposite surfaces of the light-transmitting cover 114 along the first direction z are the light-incoming surface 111 and the light-emitting surface 112 .
[0091] In the case where the light-transmitting member 110 includes a light-transmitting cover 114 and a light-transmitting film 115, if the light-transmitting film 115 is provided only on the surface of the light-transmitting cover 114 facing away from the reflective member 120 along the first direction z, the surface of the light-transmitting film 115 facing away from the light-transmitting cover 114 is the light-incoming surface 111, and the surface of the light-transmitting cover 114 facing the reflective member 120 is the light-emitting surface 112; if the light-transmitting film 115 is provided only on the surface of the light-transmitting cover 114 facing the reflective member 120 along the first direction z, the surface of the light-transmitting film 115 facing away from the light-transmitting cover 114 is the light-emitting surface 112, and the surface of the light-transmitting cover 114 facing away from the reflective member 120 is the light-incoming surface 111; if the light-transmitting films 115 are provided on both opposite surfaces of the light-transmitting cover 114 along the first direction z, the surfaces of the two light-transmitting films 115 facing away from the light-transmitting cover 114 are the light-incoming surface 111 and the light-emitting surface 112, respectively.
[0092] When the light-transmitting component 110 is a light-transmitting film 115, the light-transmitting film 115 needs to be supported by a support member such as a bracket, wherein the support member supports and fixes the light-transmitting film 115. The light emitted by the light source 130 is directly incident from the light-incoming surface 111 of the light-transmitting film 115, and then emitted from the light-emitting surface 112 of the light-transmitting film 115 to the reflective component 120. Since the concave and convex texture structure on the surface or inside of the light-transmitting film 115 is a microscopic structure, the distance between the light-transmitting film 115 and the light source 130 can be reduced, and the size of the light source 130 can also be reduced, thereby reducing the spatial size of the atmosphere light assembly 100.
[0093] For example, when the light-transmitting element 110 is a light-transmitting cover 114 , the distance between the light source 130 and the light-transmitting cover 114 is greater than 8 mm. After the light-transmitting cover 114 is replaced with a light-transmitting film 115 , the distance between the light source 130 and the light-transmitting film 115 can be reduced to less than 3 mm.
[0094] In some embodiments, as Figure 19 As shown, the surface of the reflective member 120 facing the translucent member 110, i.e., the reflective surface 121, has an imaging texture. The imaging texture is superimposed on the outgoing light adjusted by the translucent member 110 and presents a pattern on the reflective surface 121. The imaging texture can enhance the brightness, contrast, clarity, and sharpness of the pattern presented on the reflective surface 121. The imaging texture of the reflective surface 121 can be optionally irregular stripes. For example, the stripes presented on the reflective surface 121 are linear stripes with a certain curvature. Of course, in other embodiments, the reflective surface 121 can also be provided with other textures, as long as the brightness, contrast, clarity, and sharpness of the pattern on the reflective surface 121 can be enhanced.
[0095] The pattern finally presented on the reflective surface 121 corresponds to the shape of the unit surface 113. For example, Figure 201 shows a pattern displayed on the reflective surface 121 when the shape of the unit surface 113 is the first shape. Figure 21 shows the pattern presented on the reflective surface 121 when the shape of the unit surface 113 is the second shape, Figure 22 1 shows the pattern presented on the reflective surface 121 when the shape of the unit surface 113 is the third shape. Figure 23 FIG. 1 shows a pattern that appears on the reflective surface 121 when the shape of the unit surface 113 is the fourth shape.
[0096] Reflective surface 121 can be a rough surface. When light from light source 130 passes through light-transmitting element 110 and is projected onto reflective surface 121, the reflected light is scattered in all directions. This type of reflection is known as diffuse reflection. In diffuse reflection, light from light source 130 is dispersed in different directions, allowing passengers or drivers to see the pattern displayed on reflective surface 121 from different angles, thereby increasing the range of the pattern displayed.
[0097] Please continue reading Figure 1-Figure 3 An embodiment of the present application also provides an air outlet device 10, including an environmental part 200 and the above-mentioned atmosphere lamp assembly 100, the light-transmitting part 110, the reflective part 120 and the printed circuit board 140 are all arranged on the environmental part 200, the environmental part 200 is provided with an air outlet 210, and the reflective part 120 is close to the air outlet 210.
[0098] The environmental part 200 may be optionally a shell, the printed circuit board 140 is located on the inner side of the shell and close to the top of the shell, the printed circuit board 140 is fixedly connected to the shell, and the fixed connection method of the printed circuit board 140 and the shell includes but is not limited to bonding, clamping and connection by bolts; the light-transmitting part 110 is located inside the shell, the light-transmitting part 110 is a light-transmitting cover 114, or a combination of the light-transmitting cover 114 and the light-transmitting film 115, or a combination of the support part and the light-transmitting film 115; the reflective part 120 may be optionally a wind guide block or an air outlet decorative strip, the wind guide block or the air outlet decorative strip is fixedly connected to the shell, and the fixed connection method includes but is not limited to bonding, clamping and connection by bolts. Since the air guide block or the air outlet decorative strip is close to the air outlet 210, the pattern on the surface of the air guide block or the air outlet decorative strip can be observed through the air outlet 210.
[0099] In some embodiments, the air outlet device 10 also includes a shell 300, which is located on the inner side of the outer shell and is fixedly connected to the outer shell. The fixed connection method between the shell 300 and the outer shell includes but is not limited to bonding, clamping and connection by bolts; when the light-transmitting member 110 is a light-transmitting cover 114 or a combination of the light-transmitting cover 114 and the light-transmitting film 115, the light-transmitting cover 114 can be integrally formed with the shell 300, thereby improving the stability of the light-transmitting cover 114; when the light-transmitting member 110 is a light-transmitting film 115, the light-transmitting member 110 can be fixedly connected to the shell 300 through a support member, and the fixed connection method between the support member and the shell 300 includes but is not limited to bonding, clamping and connection by bolts; wherein, the shell 300 can be made of opaque material to fix the light-transmitting cover 114. The opaque material can be a plastic sheet, resin glass, mica glass, frosted glass, ABS shading material, opaque PET sheet, opaque PP plastic sheet, etc.
[0100] In other embodiments, the above-mentioned ambient light assembly 100 is not limited to being used in the air outlet device 10, but can also be applied to other components on the car, such as the center console, door panels, roof, cup holders, welcome pedals and other components, without limitation.
[0101] Figure 24 What is shown is a schematic diagram of applying the above-mentioned air outlet device 10 to a car. Of course, it can be understood that in other embodiments, the air outlet device 10 is not limited to being used in cars, for example, it can also be applied to other transportation vehicles such as airplanes and ships. In summary, the embodiment of the present application provides an atmosphere lamp assembly 100 and an air outlet device 10. When the light source 130 emits light, the light emitted by the light source 130 is adjusted by the light-transmitting member 110 and projected onto the surface of the reflective member 120 facing the light-transmitting member 110. In this process, since the light passes through the concave and convex texture structure on the light-transmitting member 110, a specific pattern will be presented on the surface of the reflective member 120 facing the light-transmitting member 110, that is, the reflective surface 121. Compared with the atmosphere lamp that can only present a specific color, the richness of the displayed content is improved.
[0102] The above description is merely a specific embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this application should be included in the scope of protection of the present application. Therefore, the scope of protection of the present application should be based on the scope of protection of the claims.
Claims
1. An atmosphere light assembly, characterized in that: The invention comprises a light-transmitting member (110) and a reflecting member (120), wherein the light-transmitting member (110) is used to adjust the light passing through the light-transmitting member to emit light for forming a pattern, and the reflecting member (120) is used to reflect the light passing through the light-transmitting member (110) to present the pattern on the reflecting member (120).
2. The atmosphere light assembly according to claim 1, characterized in that: The light-transmitting member (110) comprises a light-incoming surface (111) and a light-emitting surface (112) arranged opposite to each other along a first direction, and at least one of the light-incoming surface (111) and the light-emitting surface (112) or the interior of the light-transmitting member comprises a concave-convex texture structure.
3. The atmosphere light assembly according to claim 2, characterized in that: The texture structure comprises a plurality of unit surfaces (113), and the projection of each unit surface (113) on a plane perpendicular to the first direction is a polygon.
4. The atmosphere light assembly according to claim 3, characterized in that: Each of the unit surfaces (113) includes at least three endpoints (1131), and at least two of the endpoints on at least one of the unit surfaces are staggered in the first direction.
5. The atmosphere light assembly according to claim 4, characterized in that: Each of the unit surfaces (113) includes three endpoints (1131), and the projection of each of the unit surfaces (113) on a plane perpendicular to the first direction is a triangle.
6. The atmosphere light assembly according to claim 4, characterized in that: Each of the unit surfaces (113) includes four endpoints (1131), and the projection of each of the unit surfaces (113) on a plane perpendicular to the first direction is a triangle or a quadrilateral.
7. The atmosphere light assembly according to claim 2, characterized in that: The texture structure comprises a plurality of unit surfaces (113), each of the unit surfaces (113) is a concave surface, and the edge of each unit surface (113) is at least partially curved or broken line-shaped in a second direction or a third direction, wherein the first direction, the second direction and the third direction are perpendicular to each other.
8. The atmosphere light assembly according to claim 7, characterized in that: The plurality of unit surfaces (113) are arranged in sequence along the second direction or the third direction.
9. The atmosphere light assembly according to claim 2, characterized in that: The light-transmitting element (110) is a light-transmitting cover (114) or a light-transmitting film (115), wherein, in the first direction, the thickness of the light-transmitting cover (114) is greater than the thickness of the light-transmitting film (115); Alternatively, the light-transmitting member (110) comprises a light-transmitting cover (114) and a light-transmitting film (115), and the light-transmitting film (115) is provided on at least one surface of the light-transmitting cover (114) along the first direction.
10. The ambient light assembly according to claim 1, wherein: The ambient light assembly (100) further comprises a light source (130), wherein the light source (130) is used to emit light toward the light-transmitting member (110).
11. The ambient light assembly according to claim 10, characterized in that: The atmosphere lamp assembly (100) further comprises a printed circuit board (140), and the light source (130) is arranged on a surface of the printed circuit board (140) facing the light-transmitting member (110).
12. The ambient light assembly according to claim 1, wherein: The surface of the reflective member (120) facing the light-transmitting member (110) is a reflective surface (121), and the reflective surface (121) has an imaging texture, and the imaging texture is superimposed with the outgoing light to form an image.
13. An air outlet device, characterized in that: The invention comprises an ambient light component (200) and the ambient light assembly (100) according to any one of claims 1 to 12, wherein the light-transmitting component (110) and the reflective component (120) are both arranged on the ambient light component (200), the ambient light component (200) is provided with an air outlet (210), and the reflective component (120) is close to the air outlet (210).