Byuin mirror and vehicle lamp using same
By using the consistent end surface design of reflectors and semi-inverted semi-lens in the headlights, the problems of poor imaging effects and difficult production of existing headlight megalayer mirrors are solved, and the effect of optimizing imaging effects and reducing production difficulty is achieved.
Patent Information
- Application Number
- CN202422472488.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-14
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-10-14
AI Technical Summary
The existing design of the megala mirror of the car light has problems such as poor imaging effect and difficult production, especially the difficulty of controlling the curvature accuracy of the convex lens, and the poor coordination between the plane mirror and the convex lens leads to the imaging effect not meeting expectations.
The end surfaces of the reflector and the semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting semi-reflecting
The optimization of imaging effects is achieved, reducing production difficulty, ensuring that light can enter the reflector smoothly, improving imaging accuracy and consistency, and reducing production costs.
Smart Images

Figure CN223153375U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of vehicle lamps, in particular to an abyss mirror and a vehicle lamp using the same. Background Art
[0002] An abyss mirror is a decorative mirror lamp that can create an infinitely stacked mirror image effect, also known as a thousand-layer mirror. The working principle of the thousand-layer mirror is as follows: after the light source projects an image on the surface of the reflecting mirror and then reflects it to the semi-transparent mirror on the opposite side, part of the light is transmitted through the semi-transparent mirror, and part of the light is reflected back to the reflecting mirror. In this way, continuous reflection and transmission can form an image with an endless extension in the reflecting mirror. When the light source is not lit, the thousand-layer mirror is a mirror.
[0003] In the conventional design of the thousand-layer mirror of vehicle lamps, multiple components are often used, and there are many steps required for design, installation and fixation. Moreover, it can only achieve a gradually decreasing abyss effect from the outside to the inside layer by layer. The design of the lighting abyss mirror lamp is simple, but the abyss effect cannot be seen on the entire mirror surface. Only on the side close to the LED light strip can layers of virtual images be seen, and the range is very limited.
[0004] In this regard, for example, the publication number CN220891985U discloses a thousand-layer mirror and a lamp, which form a reflection sandwich through a first lens and a second lens, and a ring-shaped lamp body is arranged in the reflection sandwich. The thousand-layer mirror disclosed in this patent uses a convex mirror for reflection, and the ring-shaped lamp body can form a gradually shrinking abyss effect on the convex mirror to enhance the three-dimensional sense of the abyss of the light-emitting effect.
[0005] For the thousand-layer mirror disclosed in this technology, the convex lens used for its reflecting mirror makes the imaging have a magnifying effect, and the curvature of the reflecting mirror affects the width of the imaging. Therefore, in order to control the width of the imaging, it is necessary to adjust the curvature of the reflecting mirror. However, for the curved surface of the convex lens, the accuracy control of the curvature in the actual production process is relatively difficult. Moreover, for the semi-transparent mirror used, it is a plane mirror. Through the cooperation of the plane mirror and the convex lens, it is difficult to ensure that the light after semi-reflection by the plane mirror can be refracted back to the reflecting mirror, which may also cause the light-emitting effect of the imaging effect not to meet the expected design requirements.
[0006] Therefore, for the thousand-layer mirror used in the prior art, it is still necessary to further improve its overall structure to optimize its imaging effect and reduce its production difficulty. Summary of the Utility Model
[0007] The first object of the utility model is to provide an abyss mirror to solve the technical problem of optimizing its imaging effect and reducing its production difficulty.
[0008] The second object of the utility model is to provide a vehicle lamp to solve the technical problem of optimizing the imaging effect of the abyss mirror used therein and reducing its production difficulty.
[0009] The abyss mirror of the present utility model is realized as follows:
[0010] An abyss mirror includes: a reflecting mirror and a semi-transparent and semi-reflecting lens that are oppositely arranged to form a reflection sandwich layer, and a light-emitting member disposed in the reflection sandwich layer; wherein
[0011] The end face of the reflecting mirror facing the light-emitting member is formed into a convex surface, and the end face of the semi-transparent and semi-reflecting lens facing away from the light-emitting member is formed into a convex surface, and the convexity degrees of the convex surface of the reflecting mirror and the convex surface of the semi-transparent and semi-reflecting lens are the same; or
[0012] The end face of the reflecting mirror facing the light-emitting member is formed into a concave surface, and the end face of the semi-transparent and semi-reflecting lens facing away from the light-emitting member is formed into a concave surface, and the concavity degrees of the concave surface of the reflecting mirror and the concave surface of the semi-transparent and semi-reflecting lens are the same.
[0013] In an optional implementation case of the present utility model, the distance between the light-emitting member and the semi-transparent and semi-reflecting lens is greater than the distance between the light-emitting member and the reflecting mirror.
[0014] In an optional implementation case of the present utility model, the end face of the reflecting mirror facing the light-emitting member is formed into a convex surface, and the end face of the semi-transparent and semi-reflecting lens facing away from the light-emitting member is formed into a convex surface;
[0015] The light-emitting member is a rectangular ring light-emitting body; the rectangular ring light-emitting body includes a rectangular hollow opening and a ring-shaped body located around the rectangular hollow opening.
[0016] In an optional implementation case of the present utility model, the reflecting mirror is directly opposite to the rectangular hollow opening; and
[0017] The reflecting mirror includes a first reflecting mirror body and a second reflecting mirror body that are arranged along the width direction of the rectangular hollow opening to form a V shape; wherein
[0018] Both the first reflecting mirror body and the second reflecting mirror body include an upper reflecting lens and a lower reflecting lens that are arranged along the length direction of the rectangular hollow opening to form a V shape;
[0019] The range of the V-shaped angle formed by the first reflecting mirror body and the second reflecting mirror body and the V-shaped angle formed by the upper reflecting lens and the lower reflecting lens is 80° to 120°;
[0020] The V-shaped angle formed by the first reflecting mirror body and the second reflecting mirror body is less than the V-shaped angle formed by the upper reflecting lens and the lower reflecting lens.
[0021] In an optional implementation case of the present utility model, the semi-transparent and semi-reflecting lens is directly opposite to the ring-shaped body; and
[0022] The semi-transparent and semi-reflecting lens includes a first semi-reflecting mirror body and a second semi-reflecting mirror body that are arranged along the width direction of the ring-shaped body to form a V shape;
[0023] Both the first semi-reflecting mirror body and the second semi-reflecting mirror body include an upper semi-reflecting lens and a lower semi-reflecting lens arranged along the length direction of the annular body for forming a V shape;
[0024] The range of the V-shaped angle formed by the first semi-reflecting mirror body and the second semi-reflecting mirror body and the V-shaped angle formed by the upper semi-reflecting lens and the lower semi-reflecting lens is 80° to 120°;
[0025] The V-shaped angle formed by the first semi-reflecting mirror body and the second semi-reflecting mirror body is smaller than the V-shaped angle formed by the upper semi-reflecting lens and the lower semi-reflecting lens.
[0026] In an optional implementation case of the present utility model, the V-shaped angle formed by the first reflecting mirror body and the second reflecting mirror body is the same as the V-shaped angle formed by the first semi-reflecting mirror body and the second semi-reflecting mirror body; and
[0027] The V-shaped angle formed by the upper reflecting lens and the lower reflecting lens is the same as the V-shaped angle formed by the upper semi-reflecting lens and the lower semi-reflecting lens.
[0028] In an optional implementation case of the present utility model, the end face of the reflecting mirror facing the light-emitting element is formed into a concave surface, and the end face of the semi-reflecting and semi-transmitting lens facing away from the light-emitting element is formed into a concave surface;
[0029] The structures and dimensions of the reflecting mirror and the semi-reflecting and semi-transmitting lens are the same; and
[0030] Both the reflecting mirror and the semi-reflecting and semi-transmitting lens are rectangular frustum structures with a hollow concave cavity.
[0031] In an optional implementation case of the present utility model, both the reflecting mirror and the semi-reflecting and semi-transmitting lens include a top plate in a rectangular shape and side rib plates in isosceles trapezoid shapes respectively arranged around the four sides of the top plate of the frustum;
[0032] The bottom end face of the hollow concave cavity away from the top plate is a rectangular structure, and the dimension of the length direction of this rectangular structure is much larger than the dimension of its width direction; and
[0033] The light-emitting element is arranged in the hollow concave cavity of the reflecting mirror and is exactly corresponding to the top plate of the reflecting mirror.
[0034] In an optional implementation case of the present utility model, the range of the angle formed by each side rib plate and the top plate is 130° to 150°.
[0035] The vehicle lamp of the present utility model is realized as follows:
[0036] A vehicle lamp, comprising: the deep mirror described above.
[0037] Adopting the above technical solution, the utility model has the following beneficial effects: For the abyss mirror of the utility model and the vehicle lamp using the same, the degree of convexity of the reflecting mirror and the semi-transparent and semi-reflecting lens adopted is easy to be accurately controlled, so that the width and narrowness of the imaging can be accurately adjusted. Therefore, from the perspective of design, the difficulty is low, and the production cost can be reduced. Moreover, when the degree of convexity of the convex surface of the reflecting mirror is the same as that of the convex surface of the semi-transparent and semi-reflecting lens, it can ensure that the light reflected by the semi-transparent and semi-reflecting lens can smoothly enter the reflecting mirror, thereby ensuring the imaging effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0038] Figure 1 It is a schematic structural diagram of the first perspective of the abyss mirror of Embodiment 2;
[0039] Figure 2 It is a schematic structural diagram of the second perspective of the abyss mirror of Embodiment 2;
[0040] Figure 3 It is a schematic cross-sectional structural diagram of the abyss mirror of Embodiment 2;
[0041] Figure 4 It is a schematic diagram of the abyss effect from outside to inside formed by the abyss mirror of Embodiment 2;
[0042] Figure 5 It is a schematic structural diagram of the abyss mirror of Embodiment 3;
[0043] Figure 6 It is a schematic cross-sectional structural diagram of the abyss mirror of Embodiment 3;
[0044] Figure 7 It is a schematic diagram of the abyss effect from inside to outside formed by the abyss mirror of Embodiment 3.
[0045] In the figure: light-emitting member 1, annular body 11, rectangular hollow opening 12, first reflecting mirror body 21, second reflecting mirror body 22, upper reflecting lens 231, lower reflecting lens 232, first semi-transparent and semi-reflecting mirror body 31, second semi-transparent and semi-reflecting mirror body 32, upper semi-transparent and semi-reflecting lens 331, lower semi-transparent and semi-reflecting lens 332, reflecting mirror 2, semi-transparent and semi-reflecting lens 3, top plate 41, side rib plate 42. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0046] In order to make the content of the utility model be more clearly understood, the following further detailed description of the utility model is given according to specific embodiments in conjunction with the accompanying drawings.
[0047] Embodiment 1:
[0048] Please refer to Figures 1 to 7 As shown, this embodiment provides an abyss mirror, including: a reflecting mirror 2 and a semi-transparent and semi-reflecting lens 3 that are oppositely arranged to form a reflection sandwich, and a light-emitting member 1 disposed in the reflection sandwich.
[0049] On the basis of the above structure, it should be noted that the distance between the light-emitting component 1 and the semi-transmissive semi-reflective lens 3 is greater than the distance between the light-emitting component 1 and the reflector 2.
[0050] The end face of the reflector 2 facing the light-emitting component 1 is formed into a convex surface, and the end face of the semi-transmissive semi-reflective lens 3 facing away from the light-emitting component 1 is formed into a convex surface, and the convexity degrees of the convex surface of the reflector 2 and the convex surface of the semi-transmissive semi-reflective lens 3 are the same. Or the end face of the reflector 2 facing the light-emitting component 1 is formed into a concave surface, and the end face of the semi-transmissive semi-reflective lens 3 facing away from the light-emitting component 1 is formed into a concave surface, and the concavity degrees of the concave surface of the reflector 2 and the concave surface of the semi-transmissive semi-reflective lens 3 are the same.
[0051] The light-emitting component 1 adopted in this embodiment can have characteristics such as customizable display information and variable color. Optionally, the form of the light-emitting component 1 can be Fightlight, Surface led, OLED, Led, etc., and this embodiment does not make an absolute limitation on this. The reflector 2 can be made of an aluminized part, and of course, coated glass with reflection characteristics can also be used.
[0052] Embodiment 2:
[0053] Please refer to Figures 1 to 4 As shown, on the basis of the abyss mirror in Embodiment 1, the end face of the reflector 2 of the abyss mirror provided in this embodiment facing the light-emitting component 1 is formed into a convex surface, and the end face of the semi-transmissive semi-reflective lens 3 facing away from the light-emitting component 1 is formed into a convex surface, and the convexity degrees of the convex surface of the reflector 2 and the convex surface of the semi-transmissive semi-reflective lens 3 are the same.
[0054] Next, a specific case of the reflector 2 and the semi-transmissive semi-reflective lens 3 will be exemplified with reference to the accompanying drawings:
[0055] First, the light-emitting component 1 is a rectangular ring light-emitting body; the rectangular ring light-emitting body includes a rectangular hollow opening 12 and an annular body 11 located around the rectangular hollow opening 12.
[0056] Secondly, the reflector 2 is directly opposite to the rectangular hollow opening 12; and the reflector 2 includes a first reflector body 21 and a second reflector body 22 arranged along the width direction of the rectangular hollow opening 12 for forming a V shape; wherein both the first reflector body 21 and the second reflector body 22 include an upper reflecting lens 231 and a lower reflecting lens 232 arranged along the length direction of the rectangular hollow opening 12 for forming a V shape.
[0057] Based on the above situation, it should be noted that the range of the V-shaped angles formed by the first reflector body 21 and the second reflector body 22 and the V-shaped angles formed by the upper reflecting lens 231 and the lower reflecting lens 232 is 80° to 120°; the V-shaped angle formed by the first reflector body 21 and the second reflector body 22 is smaller than the V-shaped angle formed by the upper reflecting lens 231 and the lower reflecting lens 232.
[0058] Furthermore, the semi-transparent and semi-reflective lens 3 faces the annular body 11; and the semi-transparent and semi-reflective lens 3 includes a first semi-transparent and semi-reflective lens body 31 and a second semi-transparent and semi-reflective lens body 32 arranged along the width direction of the annular body 11 for forming a V shape; wherein both the first semi-transparent and semi-reflective lens body 31 and the second semi-transparent and semi-reflective lens body 32 include an upper semi-transparent and semi-reflective lens piece 331 and a lower semi-transparent and semi-reflective lens piece 332 arranged along the length direction of the annular body 11 for forming a V shape.
[0059] Based on the above structure, the range of the V-shaped angle formed by the first semi-transparent and semi-reflective lens body 31 and the second semi-transparent and semi-reflective lens body 32 and the V-shaped angle formed by the upper semi-transparent and semi-reflective lens piece 331 and the lower semi-transparent and semi-reflective lens piece 332 is 80° to 120°; the V-shaped angle formed by the first semi-transparent and semi-reflective lens body 31 and the second semi-transparent and semi-reflective lens body 32 is smaller than the V-shaped angle formed by the upper semi-transparent and semi-reflective lens piece 331 and the lower semi-transparent and semi-reflective lens piece 332.
[0060] Next, it should be noted that the V-shaped angle formed by the first reflector body 21 and the second reflector body 22 in this embodiment is the same as the V-shaped angle formed by the first semi-transparent and semi-reflective lens body 31 and the second semi-transparent and semi-reflective lens body 32; and the V-shaped angle formed by the upper reflector lens piece 231 and the lower reflector lens piece 232 is the same as the V-shaped angle formed by the upper semi-transparent and semi-reflective lens piece 331 and the lower semi-transparent and semi-reflective lens piece 332.
[0061] In summary, for the abyss mirror of this embodiment, the light-emitting member 1 emits light towards the semi-transparent and semi-reflective lens 3. After passing through the semi-transparent and semi-reflective lens 3, a part of the light passes through the semi-transparent and semi-reflective lens 3 and is emitted to form a first-layer real image; another part of the light is reflected back by the semi-transparent and semi-reflective lens 3 and reaches the reflector 2 behind the light-emitting member 1. The light reaching the rear reflector 2 is then emitted to the front semi-transparent and semi-reflective lens 3. A part of the light passes through the semi-transparent and semi-reflective lens 3 and is emitted to form a second-layer real image, and another part of the light is reflected back by the semi-transparent and semi-reflective lens 3 and reaches the reflector 2 behind the light-emitting member 1. Obviously, the energy of the light emitted through the semi-transparent and semi-reflective lens 3 this time is much weaker than that of the light emitted through the semi-transparent and semi-reflective lens 3 for the first time; in this way, it is reflected and transmitted back and forth in sequence, forming layers of dimmed virtual images until the brightness is indistinguishable to the naked eye, which can form an abyss effect from the outside to the inside. Using the principle of specular reflection, to make the overall image from the outside to the inside, it is necessary to control the narrowing degree of the semi-transparent and semi-reflective lens 3 on the side facing the light-emitting member 1 to make more light reflect inward. During this process, the higher the light transmittance of the semi-transparent and semi-reflective lens 3, the more light passes through, the higher the energy of the light after being continuously reflected back, and the more layers of the image that can be seen by the human eye.
[0062] Embodiment 3:
[0063] Please refer to Figures 5 to 7As shown, on the basis of the abyss mirror in Embodiment 1, the end face of the reflector 2 of the abyss mirror provided in this embodiment is formed into a concave surface facing the light-emitting element 1, and the end face of the semi-transmissive and semi-reflective lens 3 facing away from the light-emitting element 1 is formed into a concave surface. The concavity of the reflector 2 is consistent with that of the semi-transmissive and semi-reflective lens 3.
[0064] Next, in detail with reference to the drawings, the structures and dimensions of the reflector 2 and the semi-transmissive and semi-reflective lens 3 are the same; and both the reflector 2 and the semi-transmissive and semi-reflective lens 3 are rectangular frustum structures with a hollow cavity.
[0065] More specifically, taking an example with reference to the drawings, both the reflector 2 and the semi-transmissive and semi-reflective lens 3 include a top plate 41 in a rectangular shape and side prism plates 42 in an isosceles trapezoidal shape respectively arranged around the four sides of the top plate 41 of the frustum.
[0066] Furthermore, the bottom end face of the hollow cavity away from the top plate 41 is a rectangular structure, and the dimension in the length direction of this rectangular structure is much larger than the dimension in the width direction; and the light-emitting element 1 is arranged in the hollow cavity of the reflector 2 and is exactly corresponding to the top plate 41 of the reflector 2.
[0067] On the basis of the above structure, it should be noted that the range of the angle formed by each side prism plate 42 and the top plate 41 is 130° to 150°.
[0068] In summary, for the abyss mirror of this embodiment, the light-emitting element 1 emits light towards the semi-transmissive and semi-reflective lens 3. After passing through the semi-transmissive and semi-reflective lens 3, a part of the light passes through the semi-transmissive and semi-reflective lens 3 and is emitted to form the first real image; another part of the light is reflected back by the semi-transmissive and semi-reflective lens 3 and reaches the reflector 2 behind the light-emitting element 1. The light reaching the rear reflector 2 is then emitted to the front semi-transmissive and semi-reflective lens 3. A part of the light passes through the semi-transmissive and semi-reflective lens 3 and is emitted to form the second real image, and another part of the light is reflected back by the semi-transmissive and semi-reflective lens 3 and reaches the reflector 2 behind the light-emitting element 1. Obviously, the energy of the light emitted through the semi-transmissive and semi-reflective lens 3 this time is much weaker than that of the light emitted through the semi-transmissive and semi-reflective lens 3 for the first time; in this way, it is reflected and transmitted back and forth continuously, forming layers of gradually dimmed virtual images until the brightness is indistinguishable to the naked eye, which can form an abyss effect from the inside out. Using the principle of specular reflection, to make the overall image from the inside out, it is necessary to control the degree of expansion of the semi-transmissive and semi-reflective lens 3 on the side facing away from the light-emitting element 1 to reflect more light outward. In this process, the lower the light transmittance of the semi-transmissive and semi-reflective lens 3, the more times of reflection, and the stronger the abyss effect. In this process, the higher the light transmittance of the semi-transmissive and semi-reflective lens 3, the more light passes through, the higher the energy of the light after being continuously reflected back, and the more layers of the image that can be seen by the human eye.
[0069] Embodiment 4:
[0070] Based on the abyss mirror of Embodiment 1, Embodiment 2, or Embodiment 3, this embodiment provides a vehicle lamp, including: the abyss mirror of Embodiment 1, Embodiment 2, or Embodiment 3.
[0071] In the above specific embodiments, the purpose, technical solution, and beneficial effects of the present utility model have been further described in detail. It should be understood that the above are only specific embodiments of the present utility model and are not used to limit the present utility model. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.
[0072] In the description of the present utility model, it should be understood that the terms indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation of the present utility model.
[0073] In the present utility model, unless otherwise clearly defined and limited, the terms "installation", "connection", "connection", "fixation", etc. should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.
[0074] In the description of the present utility model, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship when the product of the present utility model is usually placed. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation of the present utility model. In addition, the terms "first", "second", "third", etc. are only used for distinguishing descriptions and cannot be understood as indicating or implying relative importance.
[0075] In addition, the terms "horizontal", "vertical", "hanging", etc. do not mean that the components are required to be absolutely horizontal or hanging, but can be slightly inclined. For example, "horizontal" only means that its direction is more horizontal relative to "vertical", and does not mean that the structure must be completely horizontal, but can be slightly inclined.
[0076] In the present utility model, unless otherwise clearly defined and limited, the first feature being above or below the second feature may include direct contact between the first and second features, or may include contact between the first and second features not being direct but through additional features therebetween. Moreover, the first feature being above, over and on the second feature includes the first feature being directly above and obliquely above the second feature, or merely indicating that the horizontal height of the first feature is higher than that of the second feature. The first feature being below, under and beneath the second feature includes the first feature being directly below and obliquely below the second feature, or merely indicating that the horizontal height of the first feature is less than that of the second feature.
Claims
1. An abyss mirror, characterized in that, Including: A mirror and a semi-reflective and semi-transmissive lens that are oppositely arranged to form a reflective interlayer, and a light-emitting component disposed in the reflective interlayer; Wherein The end face of the mirror facing the light-emitting component is formed into a convex surface, and the end face of the semi-reflective and semi-transmissive lens facing away from the light-emitting component is formed into a convex surface, and the convexity degrees of the convex surface of the mirror and the convex surface of the semi-reflective and semi-transmissive lens are the same; or The end face of the mirror facing the light-emitting component is formed into a concave surface, and the end face of the semi-reflective and semi-transmissive lens facing away from the light-emitting component is formed into a concave surface, and the concavity degrees of the concave surface of the mirror and the concave surface of the semi-reflective and semi-transmissive lens are the same.
2. The abyss mirror according to claim 1, characterized in that, The distance between the light-emitting component and the semi-reflective and semi-transmissive lens is greater than the distance between the light-emitting component and the mirror.
3. The abyss mirror according to claim 1 or 2, characterized in that, The end face of the mirror facing the light-emitting component is formed into a convex surface, and the end face of the semi-reflective and semi-transmissive lens facing away from the light-emitting component is formed into a convex surface; The light-emitting component is a rectangular ring light-emitting body; the rectangular ring light-emitting body includes a rectangular hollow opening and a ring-shaped body located around the rectangular hollow opening.
4. The abyssal mirror according to claim 3, characterized in that, The mirror is directly opposite to the rectangular hollow opening; and The mirror includes a first mirror body and a second mirror body that are arranged along the width direction of the rectangular hollow opening and are used to form a V shape; Wherein Both the first mirror body and the second mirror body include an upper mirror lens and a lower mirror lens that are arranged along the length direction of the rectangular hollow opening and are used to form a V shape; The range of the V-shaped angle formed by the first mirror body and the second mirror body and the V-shaped angle formed by the upper mirror lens and the lower mirror lens is 80° to 120°; The V-shaped angle formed by the first mirror body and the second mirror body is less than the V-shaped angle formed by the upper mirror lens and the lower mirror lens.
5. The abyss mirror according to claim 4, characterized in that, The semi-reflective and semi-transmissive lens is directly opposite to the ring-shaped body; and The semi-reflective and semi-transmissive lens includes a first semi-reflective mirror body and a second semi-reflective mirror body that are arranged along the width direction of the ring-shaped body and are used to form a V shape; wherein Both the first semi-reflective mirror body and the second semi-reflective mirror body include an upper semi-reflective lens and a lower semi-reflective lens that are arranged along the length direction of the ring-shaped body and are used to form a V shape; The range of the V-shaped angle formed by the first semi-reflective mirror body and the second semi-reflective mirror body and the V-shaped angle formed by the upper semi-reflective lens and the lower semi-reflective lens is 80° to 120°; The V-shaped angle formed by the first semi-reflective mirror body and the second semi-reflective mirror body is less than the V-shaped angle formed by the upper semi-reflective lens and the lower semi-reflective lens.
6. The abyss mirror according to claim 5, characterized in that, The V-shaped angle formed by the first mirror body and the second mirror body is the same as the V-shaped angle formed by the first semi-reflective mirror body and the second semi-reflective mirror body; and The V-shaped angle formed by the upper mirror lens and the lower mirror lens is the same as the V-shaped angle formed by the upper semi-reflective lens and the lower semi-reflective lens.
7. The abyss mirror according to claim 1 or 2, characterized in that, The end face of the mirror facing the light-emitting component is formed into a concave surface, and the end face of the semi-reflective and semi-transmissive lens facing away from the light-emitting component is formed into a concave surface; The structures and sizes of the mirror and the semi-reflective and semi-transmissive lens are the same; and Both the mirror and the semi-reflective and semi-transmissive lens are rectangular frustum structures with a hollow concave cavity.
8. The abyssal mirror according to claim 7, characterized in that, Both the mirror and the semi-reflective and semi-transmissive lens include a rectangular top plate and side prism plates that are respectively in an isosceles trapezoid shape and are sequentially arranged around the four sides of the top plate of the frustum; The bottom end face of the hollow concave cavity away from the top plate is a rectangular structure, and the dimension of the length direction of the rectangular structure is much larger than the dimension of the width direction; and The light-emitting element is disposed in the hollow recessed cavity of the reflector and is directly opposite to the top plate of the reflector.
9. The abyss mirror according to claim 8, characterized in that The range of the angle formed by each of the side rib plates and the top plate is 130° to 150°.
10. A vehicle lamp, characterized in that, Comprising: The abyss mirror according to any one of claims 1 to 9.
Citation Information
Patent Citations
Multi-layer mirror and lamp
CN220891985U