Dual-sided lighted mirror and vanity mirror
By setting light-emitting components on the front and back side walls of the makeup mirror housing and utilizing light-transmitting and light-guiding components, the problems of uneven lighting and light leakage in the makeup mirror are solved, achieving a uniform double-sided lighting effect and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN SHUYE INNOVATION TECH CO LTD
- Filing Date
- 2024-12-30
- Publication Date
- 2026-06-02
AI Technical Summary
Existing makeup mirrors have uneven lighting effects, especially the single front-facing lighting design, which leads to uneven light distribution, affecting the user's visual experience and makeup efficiency. Some high-end mirrors also suffer from light leakage due to a lack of isolation measures.
A double-sided supplementary lighting mirror is designed. First and second light-emitting components are respectively set on the front and rear side walls of the housing. Light-transmitting and light-guiding components are used to achieve double-sided supplementary lighting. Isolation measures are used to avoid light leakage. A ring-shaped mounting structure is adopted to simplify assembly.
It achieves uniform illumination on both the front and back sides of the mirror, avoiding uneven light distribution and glare, thus improving the user's visual experience and makeup efficiency.
Smart Images

Figure CN224306958U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of mirror technology, and in particular to a double-sided supplementary lighting mirror and a cosmetic mirror. Background Technology
[0002] Currently, most makeup mirrors on the market, especially mid-to-low-end products, use a single front-facing fill light design. While this design can provide some fill light, the fixed and singular light source position and limited light dispersion angle often result in uneven lighting and an inability to fully illuminate all angles of the face, particularly when dealing with detailed makeup. Users often need to constantly adjust the mirror angle or use other light sources to compensate for this deficiency, significantly impacting makeup efficiency and effectiveness.
[0003] To improve lighting performance, some high-end makeup mirrors employ a dual-sided lighting design, both front and rear. However, in these designs, both the front and rear light rings are installed within the front groove of the housing without effective isolation measures, making it prone to light leakage during propagation. This leakage not only leads to uneven light distribution but can also cause glare, negatively impacting the user's visual experience.
[0004] The above content is only used to assist in understanding the technical solution of the utility model and does not represent an admission that the above content is prior art. Utility Model Content
[0005] In view of the above problems, this utility model proposes a double-sided supplementary lighting mirror, which aims to achieve supplementary lighting from both the front and rear sides while avoiding light leakage between the front and rear light sources.
[0006] To achieve the above objectives, the double-sided supplementary lighting mirror body proposed in this utility model includes a housing, a lens, a first light-emitting component, and a second light-emitting component; wherein,
[0007] The housing has opposing front and rear sidewalls. The lens is mounted on the front side of the housing. The front sidewall has a first recessed space, and the rear sidewall has a second recessed space. The first light-emitting component is mounted in the first recessed space for emitting light forward, and the second light-emitting component is mounted in the second recessed space for emitting light backward.
[0008] In one embodiment, the first recessed space has an annular mounting wall, and the first light-emitting component includes a first lamp ring and an annular first light guide. The first lamp ring is disposed around the outer periphery of the annular mounting wall, the first light guide surrounds the periphery of the first lamp ring, and the light-emitting body of the first lamp ring is disposed facing the inner peripheral surface of the first light guide.
[0009] In one embodiment, the double-sided supplementary lighting lens further includes a light-transmitting element that covers the front side of the housing, and the outer wall surface of the light-transmitting element smoothly transitions with the outer wall surface of the housing; the first light-emitting component is sandwiched between the light-transmitting element and the housing, and the lens is mounted on the front wall surface of the light-transmitting element.
[0010] In one embodiment, the light-transmitting element has an overlapping plane facing the first light guide element, the overlapping plane overlapping with the front side of the housing; the first light guide element has a light-emitting plane facing away from the overlapping plane and an outer reflective arc surface, the outer reflective arc surface being disposed around the light-emitting plane, and the outer reflective arc surface being coated with a reflective coating.
[0011] In one embodiment, the first recessed space is an annular groove, and the light-transmitting element further includes a positioning ring protruding from the overlapping plane, the positioning ring being adapted to fit against the peripheral sidewall of the first recessed space.
[0012] In one embodiment, the front sidewall of the housing has a plurality of mounting posts disposed on the inner periphery of the annular mounting wall;
[0013] The light-transmitting element includes a light-emitting ring and a plurality of mounting protrusions connected to the inner circumference of the light-emitting ring. The plurality of mounting protrusions are arranged circumferentially around the light-emitting ring, and the plurality of mounting protrusions are recessed relative to the front wall surface of the light-emitting ring to form a lens mounting space for mounting the lens.
[0014] Each of the aforementioned mounting protrusions corresponds to and is fixedly connected to one of the aforementioned mounting posts, and is pressed against the first lamp ring.
[0015] In one embodiment, the width of the first light guide is greater than the width of the light-emitting ring in the radial direction of the annular mounting wall, and the outer wall surface of the first light guide facing away from the light-transmitting element forms a light-reflecting surface corresponding to the light-emitting ring at least. The light-emitting ring and the mounting protrusion are pressed together to form the first light guide.
[0016] In one embodiment, the light-transmitting element further includes a sealing ring connecting the plurality of mounting protrusions and the light-emitting ring, the sealing ring having an adhesive-containing groove extending circumferentially around it; the front sidewall of the housing is exposed to the light-transmitting element and located inside the first light guide element, and has a plurality of adhesive-retaining grooves, the adhesive-containing grooves and the adhesive-retaining grooves being used to fill with sealant to bond the lens.
[0017] In one embodiment, a plurality of adhesive-containing grooves are provided, and the plurality of adhesive-containing grooves are spaced apart along the circumference of the sealing ring, and at least one adhesive storage groove is provided between two adjacent adhesive-containing grooves.
[0018] In one embodiment, the first recessed space is provided with a plurality of buffer grooves spaced apart around the outer periphery of the annular mounting wall, the buffer grooves are filled with buffer members, and the back side of the first light guide abuts against the buffer members.
[0019] In one embodiment, the first recessed space is further provided with a plurality of stop members arranged at intervals around the outer periphery of the annular mounting wall, the first lamp ring is sandwiched between the annular mounting wall and the plurality of stop members, and the first lamp ring has a plurality of light-emitting elements located between two adjacent stop members; the inner peripheral surface of the first light guide is disposed in the radial direction of the first lamp ring corresponding to the plurality of light-emitting elements to form a light-incident surface.
[0020] In one embodiment, the stop member has a positioning protrusion on the side opposite to the annular mounting wall, and the inner peripheral wall of the first light guide member has a plurality of positioning grooves corresponding to the plurality of positioning protrusions. The plurality of positioning protrusions are fitted into the plurality of positioning grooves one by one.
[0021] In one embodiment, the second light-emitting component includes a second lamp ring and an annular second light guide. The second recessed space has an annular fixed wall. The second lamp ring surrounds the outer periphery of the annular fixed wall. The second light guide is disposed around the outer periphery of the second lamp ring and fixedly connected to the housing. The light-emitting body of the second lamp ring is disposed facing the inner peripheral surface of the second light guide.
[0022] In one embodiment, the second recessed space is arranged in a ring shape, and a mounting groove is formed at the connection between the inner peripheral surface of the second light guide and the outer wall surface opposite to the first light guide. The double-sided supplementary light lens body also includes a cover plate, which is adapted to be embedded in the mounting groove.
[0023] In one embodiment, the housing is provided with a through-hole in the inner area enclosed by the second lamp ring; the double-sided filler lens also includes a control board, which is electrically connected to the first light-emitting component and the second lamp ring via wires.
[0024] The control board is mounted on the front side wall of the housing, and the connecting wire between the control board and the second lamp ring passes through the wire hole; or
[0025] The control board is mounted on the rear side wall of the housing, and the connecting wires between the control board and the first light-emitting component pass through the wire hole.
[0026] This utility model also proposes a cosmetic mirror, including a bracket and a double-sided fill light mirror body as described in any of the above embodiments, wherein the double-sided fill light mirror body is rotatably mounted on the bracket.
[0027] This utility model relates to a double-sided supplementary lighting mirror. By providing a first recessed space on the front sidewall of the housing to accommodate a first light-emitting component, and a second recessed space on the rear sidewall to accommodate a second light-emitting component, the light-emitting components are prevented from protruding from the outer surface of the housing, improving the overall uniformity of the mirror's appearance. Furthermore, by mounting both the first and second light-emitting components on the housing, the installation structure is simplified, and the assembly efficiency of the mirror is improved. By installing the first and second light-emitting components respectively in the recessed spaces on the front and rear sidewalls of the housing, while achieving double-sided supplementary lighting, the first and second light-emitting components are isolated from each other, effectively preventing light leakage between them. This avoids uneven light distribution and glare in the double-sided supplementary lighting mirror, thereby improving the user's visual experience. Attached Figure Description
[0028] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0029] Figure 1 A schematic diagram of the structure of one embodiment of the double-sided supplementary lighting mirror body of this utility model is shown;
[0030] Figure 2 for Figure 1 A schematic diagram of the back structure of the double-sided filler mirror;
[0031] Figure 3 for Figure 1 Exploded view of the double-sided fill light mirror body;
[0032] Figure 4 This is a schematic diagram of the assembly of the housing and the first light-emitting component of this utility model;
[0033] Figure 5 for Figure 4 A magnified view of a section at point A in the middle;
[0034] Figure 6 for Figure 4 A schematic diagram of the structure after the first light guide component is removed;
[0035] Figure 7 This is a schematic diagram of the structure of one embodiment of the housing of the double-sided supplementary lighting mirror of this utility model;
[0036] Figure 8 for Figure 2 Exploded view of the double-sided fill light mirror body;
[0037] Figure 9This is a schematic diagram of the assembly of the housing and the second lamp ring of this utility model;
[0038] Figure 10 This is a front view of the double-sided supplementary lighting mirror body of this utility model;
[0039] Figure 11 for Figure 10 A sectional view along line XI-XI;
[0040] Figure 12 for Figure 11 A magnified view of a section at point B in the middle;
[0041] Figure 13 for Figure 10 A sectional view along line XIII-XIII;
[0042] Figure 14 for Figure 13 A magnified view of a section at point C;
[0043] Figure 15 This is a schematic diagram of the structure of a light-transmitting component of the double-sided supplementary lighting mirror body of this utility model;
[0044] Figure 16 for Figure 15 A schematic diagram of the back structure of the light-transmitting component;
[0045] Figure 17 This is a schematic diagram of the structure of an embodiment of the cosmetic mirror of this utility model;
[0046] Figure 18 for Figure 17 A schematic diagram of the back structure of a makeup mirror;
[0047] Figure 19 This is a schematic diagram of the cosmetic mirror of this utility model in table lamp mode.
[0048] Explanation of icon numbers:
[0049] label name label name label name 100 Double-sided fill light mirror body 110 case 111 First recessed space 112 Annular mounting wall 113 Mounting column 114 Buffer groove 115 glue storage tank 116 Stop 117 Positioning convex part 118 Second recessed space 119 Annular fixed wall 1101 Threading hole 120 lens 130 First light-emitting component 131 First Light Ring 132 Luminous body 133 First light guide component 134 light plane 135 External reflective arc surface 136 Positioning slot 137 Light-receiving surface 140 Second light-emitting component 141 Second light ring 142 Second light guide 143 Mounting slot 150 Light-transmitting components 151 Overlapping plane 152 Positioning ring 153 Out of the halo 154 Mounting protrusion 155 Lens placement space 156 sealing ring 157 Glue tank 160 Buffer 170 cover plate 180 control board 200 support
[0050] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0051] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application. In addition, the technical solutions of various embodiments can be combined with each other, but this must be based on the ability of those of ordinary skill in the art to implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be considered that such combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0052] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.
[0053] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the meaning of "and / or" throughout the text is to include three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution that simultaneously satisfies both A and B.
[0054] This invention proposes a double-sided supplementary lighting mirror body for use in cosmetic mirrors.
[0055] In this embodiment of the utility model, please refer to Figures 1 to 11 The double-sided supplementary lighting lens 100 includes a housing 110, a lens 120, a first light-emitting component 130, and a second light-emitting component 140. The housing 110 has opposing front and rear side walls. The lens 120 is mounted on the front side of the housing 110. The front side wall has a first recessed space 111, and the rear side wall has a second recessed space 118. The first light-emitting component 130 is mounted in the first recessed space 111 for emitting light forward, and the second light-emitting component 140 is mounted in the second recessed space 118 for emitting light backward.
[0056] In this embodiment, the housing 110 provides mounting and protection for structures such as the light-emitting component, lens 120, and circuit board. To reduce space occupation, the housing 110 is typically designed to be flat; therefore, the front and rear sidewalls of the housing 110 refer to the front and rear flat surfaces of the flat housing 110. The outer contour shape of the housing 110 can be varied, such as circular, elliptical, rectangular, or rounded rectangle, and can be selected and designed according to actual needs, without specific limitations here. For aesthetics and portability, the outer contour shape of the housing 110 may optionally be circular. Typically, the shape of the lens 120 is contoured to the outer contour shape of the housing 110 to make the overall double-sided supplementary light lens 100 more aesthetically pleasing.
[0057] The structures of the first light-emitting component 130 and the second light-emitting component 140 can vary, as long as they can emit light. The specific structures of the first light-emitting component 130 and the second light-emitting component 140 are not limited here. The shapes of the first light-emitting component 130, the second light-emitting component 140, and the lens 120 can also vary, such as petal-shaped, circular, or square-ring-shaped. Typically, the first light-emitting component 130 is arranged around the outer contour of the lens 120. The shape and arrangement of the first light-emitting component 130 can be selected and designed according to the shape of the lens 120 and actual requirements. The first recessed space 111 and the second recessed space 118 can correspond to each other, partially correspond to each other, or be staggered in the front-back direction. The shapes of the first recessed space 111 and the second recessed space 118 can be set according to the shapes of the first light-emitting component 130 and the second light-emitting component 140, and are not specifically limited here.
[0058] The lens 120 can be fixed to the front sidewall of the housing 110 by adhesive bonding. There are many ways to fix the first light-emitting component 130 and the second light-emitting component 140 to the housing 110, such as bonding, embedding, or screw connection. Since both the first light-emitting component 130 and the lens 120 are mounted on the front sidewall of the housing 110, the first light-emitting component 130 can surround the outer periphery of the lens 120, or the lens 120 can cover the first light-emitting component 130. In this case, a light-transmitting area needs to be provided on the lens 120 so that the light from the light-emitting component can be emitted through the light-transmitting area of the lens 120.
[0059] By setting a second light-emitting component 140 on the rear side wall of the housing 110, supplementary lighting can be provided on the back of the lens 120, which can avoid visual fatigue, create an independent makeup space, and make the light softer and less irritating. Combined with the first light-emitting component 130 on the front side wall of the housing 110, the entire makeup mirror can be evenly illuminated over a larger area, achieving 360° surround illumination of the entire field of vision.
[0060] This utility model's double-sided supplementary lighting mirror 100, by providing a first recessed space 111 on the front sidewall of the housing 110 to accommodate a first light-emitting component 130, and a second recessed space 118 on the rear sidewall of the housing 110 to accommodate a second light-emitting component 140, avoids the light-emitting components protruding from the outer surface of the housing 110, improving the overall uniformity of the mirror's appearance. Furthermore, by mounting both the first light-emitting component 130 and the second light-emitting component 140 on the housing 110, the installation structure is simplified, and the assembly efficiency of the mirror is improved. By installing the first light-emitting component 130 and the second light-emitting component 140 respectively in the recessed spaces located on the front and rear sidewalls of the housing 110, while achieving double-sided supplementary lighting, the first light-emitting component 130 and the second light-emitting component 140 are isolated from each other, effectively preventing light leakage between the first light-emitting component 130 and the second light-emitting component 140. This avoids uneven light distribution and glare in the double-sided supplementary lighting mirror 100, thereby improving the user's visual experience.
[0061] In one embodiment, such as Figures 1 to 4 , Figures 11 to 14 As shown, the first recessed space 111 has an annular mounting wall 112, and the first light-emitting component 130 includes a first lamp ring 131 and an annular first light guide 133. The first lamp ring 131 is disposed around the outer periphery of the annular mounting wall 112, and the first light guide 133 surrounds the periphery of the first lamp ring 131, and the light-emitting body 132 of the first lamp ring 131 is disposed facing the inner peripheral surface of the first light guide 133.
[0062] In this embodiment, both the first lamp ring 131 and the first light guide 133 are installed within the first recessed space 111. The first lamp ring 131 is sandwiched between the annular mounting wall 112 and the first light guide 133. It is understood that the first lamp ring 131 includes a substrate extending in a ring shape and multiple light-emitting elements 132 (LED beads) mounted on the substrate. The light-emitting element 132 can be a cold light-emitting element or a warm light-emitting element. Therefore, the first lamp ring 131 can include only multiple cold light-emitting elements, only multiple warm light-emitting elements, or both. Optionally, the first lamp ring 131 includes multiple cold light-emitting elements and multiple warm light-emitting elements. Thus, the color and brightness of the light transmitted through the light-transmitting element 150 can be controlled by controlling the switching of the cold light-emitting elements and the warm light-emitting elements. That is, the double-sided supplementary light mirror can emit cool-colored light, warm-colored light, or natural light. In this way, the user can adjust the color and brightness of the light emitted by the double-sided supplementary light mirror to meet different user needs.
[0063] The first light guide 133 is made of a transparent or light-transmitting material to uniformly guide and direct the light emitted from the first light ring 131. By making the first light guide 133 ring-shaped and surrounding the outer perimeter of the first light body, a uniform light ring can be formed, which can illuminate the outer ring of the mirror body, thereby effectively increasing the intensity and range of the fill light and improving the fill light effect of the makeup mirror.
[0064] Since the entire double-sided supplementary lighting mirror body 100 is basically flat, the thickness of the first light guide 133 is smaller than its width. By aligning the light-emitting element 132 of the first lamp ring 131 towards the inner circumferential surface of the first light guide 133, compared to aligning the light-emitting element 132 of the first lamp ring 131 towards the side of the first light guide 133 in the thickness direction, the path of light within the first light guide 133 can be extended, resulting in more uniform and softer light. Furthermore, the thickness requirement for the first light guide 133 is smaller, allowing for a thinner first light guide 133, thus making the entire double-sided supplementary lighting mirror body 100 thinner.
[0065] Further, please refer to Figures 11 to 14 The double-sided supplementary light mirror body 100 also includes a light-transmitting element 150, which covers the front side of the housing 110 and the outer wall of the light-transmitting element 150 smoothly transitions with the outer wall of the housing 110. The first light-emitting component 130 is sandwiched between the light-transmitting element 150 and the housing 110. The lens 120 is installed on the front wall of the light-transmitting element 150.
[0066] In this embodiment, the light-transmitting element 150 and the housing 110 can be fixedly connected by means of snap-fit, screw connection, etc. By fixing the light-transmitting element 150 to the housing 110, the first light guide 133 can be sandwiched between the light-transmitting element 150 and the inner wall surface of the first recessed space 111. In this way, the first light guide 133 does not need to be fixed to the housing 110 by an additional connecting structure, which simplifies the assembly steps of the mirror and improves assembly efficiency. The light-transmitting element 150 can be made of transparent or light-transmitting material, which has the function of fixing and protecting the first light guide 133, and can increase the light divergence angle, making the light soft and not dazzling. Moreover, by setting separate light-transmitting element 150 and first light guide 133, the light flexibility effect is improved while facilitating molding and mass production. Specifically, a groove adapted to the lens 120 can be provided on the front wall surface of the light-transmitting element 150 for the lens 120 to be fitted. The lens 120 can be fixedly connected to the front side of the light-transmitting mirror by adhesive.
[0067] The light-transmitting element 150 covers the front side of the housing 110, and the outer wall surface of the light-transmitting element 150 smoothly transitions with the outer wall surface of the housing 110. That is, the entire light-transmitting element 150 covers the front side of the housing 110, making the front and peripheral sides of the light-transmitting element 150 form the appearance of the double-sided supplementary lighting mirror 100, without obstruction from the frame of the housing 110, effectively increasing the light-emitting area and light-emitting angle. Thus, after the first light guide 133 effectively homogenizes and guides the light to the first lamp ring 131, light can pass through the peripheral and front sides of the light-transmitting element 150 without obstruction from the frame of the housing 110, resulting in a large light divergence angle and the ability to uniformly illuminate a larger area, further improving the supplementary lighting effect. Optionally, the outer wall surface of the light-transmitting element 150 and the outer wall surface of the housing 110 are joined in an arc shape, thus forming a 3D light-transmitting curved surface, further improving the light-emitting effect. Combined with the second light-emitting component 140, 360° surround supplementary lighting of the mirror body can be achieved.
[0068] Specifically, the extension direction of the overlapping surface of the light-transmitting element 150 and the housing 110 is consistent with the extension direction of the mirror surface of the lens 120. In practice, the rear side of the light-transmitting element 150 overlaps the front side of the housing 110, and the extension direction of the overlapping surface of the light-transmitting element 150 and the housing 110 is the extension direction of the rear side of the light-transmitting element 150 and the front side of the housing 110.
[0069] Furthermore, such as Figure 12 As shown, the light-transmitting element 150 has an overlapping plane 151 facing the first light guide 133, and the overlapping plane 151 overlaps with the front side of the housing 110; the first light guide 133 has a light-emitting plane 134 facing away from the overlapping plane 151 and an outer reflective arc surface 135, the outer reflective arc surface 135 is arranged around the light-emitting plane 134, and the outer reflective arc surface 135 is coated with a reflective coating.
[0070] In this embodiment, the outer reflective arc surface 135 is arranged in a ring around the circumference of the first light guide 133, and the outer reflective arc surface 135 surrounds and connects to the outer periphery of the overlapping plane 151. The outer wall surface of the outer reflective arc surface 135 is coated with a high-reflectivity ink high-reflectivity paint to form the reflective coating. In this way, the point light source of the first lamp ring 131 can be transformed into a surface light source through the reflective coating, improving the light output brightness and light uniformity of the first light-emitting component 130. The wall surface of the first light guide 133 facing away from the overlapping plane 151 is not the entire arc surface, but includes the light-emitting plane 134 and the outer reflective arc surface 135. In this way, the entire first light guide 133 is flatter, which can reduce the space occupied by the first light guide 133 and make the overall structure more compact. It is understandable that, since the lens 120 is mounted on the front wall of the light-transmitting element 150, the light-transmitting element 150 only transmits light around the outer periphery of the lens 120. This portion corresponds precisely to the outer reflective arc surface 135 of the first light guide 133. Therefore, by simply setting the outer reflective arc surface 135 on the outer edge of the first light guide 133 and coating it with a light-emitting coating, a good reflective effect can be achieved. After the light-transmitting element 150 is fixed to the housing 110, the overlapping plane 151 of the light-transmitting element 150 can abut against and adhere to the first light guide 133, which can improve the pressing effect of the light-transmitting element 150 on the first light guide 133.
[0071] In one embodiment, such as Figures 14 to 16 As shown, the first recessed space 111 is an annular groove, and the light-transmitting element 150 also includes a positioning ring 152 protruding from the overlapping plane 151. The positioning ring 152 is adapted to fit against the peripheral sidewall of the first recessed space 111.
[0072] Understandably, since the extension direction of the splicing surface between the light-transmitting element 150 and the housing 110 is consistent with the extension direction of the mirror surface of the lens 120, the alignment difficulty of the light-transmitting element 150 on the housing 110 will be increased. By providing a positioning ring 152 on the light-transmitting element 150, which fits and conforms to the peripheral sidewall of the first recessed space 111, the light-transmitting element 150 can be pre-positioned and assembled on the housing 110 through the positioning ring 152, effectively reducing the alignment difficulty of the light-transmitting element 150 on the housing 110 and improving the assembly efficiency of the lens body. Optionally, one of the positioning ring 152 and the peripheral sidewall of the first recessed space 111 is provided with a plurality of buckles spaced apart in its circumferential direction, and the other is provided with a plurality of slots that fit and engage with the buckles one by one. In this way, the positioning ring 152 is snapped and fixed to the housing 110, preventing the outer periphery of the light-transmitting element 150 from tilting relative to the housing 110, thus improving the connection reliability between the light-transmitting element 150 and the housing 110.
[0073] In one embodiment, such as Figure 3 , Figure 4 , Figure 6 , Figure 7 , Figure 12 , Figure 15 As shown, the front sidewall of the housing 110 has a plurality of mounting posts 113 disposed on the inner periphery of the annular mounting wall 112;
[0074] The light-transmitting element 150 includes a light-emitting ring 153 and a plurality of mounting protrusions 154 connected to the inner periphery of the light-emitting ring 153. The plurality of mounting protrusions 154 are circumferentially spaced around the light-emitting ring 153, and the plurality of mounting protrusions 154 are recessed relative to the front wall surface of the light-emitting ring 153 to form a lens mounting space 155 for mounting the lens 120.
[0075] Multiple mounting protrusions 154 correspond one-to-one with multiple mounting posts 113 and are fixedly connected, and the first lamp ring 131 is pressed together.
[0076] In this embodiment, multiple mounting posts 113 are spaced apart around the inner circumference of the annular mounting wall 112. The light-transmitting element 150 is provided with multiple mounting protrusions 154, which are fixedly connected to the multiple mounting posts 113 on the housing 110. Thus, the entire circumference of the light-transmitting element 150 can be fixed to the housing 110, thereby improving the connection stability between the light-transmitting element 150 and the housing 110. The multiple mounting protrusions 154 are recessed relative to the front wall surface of the light ring 153 to form a lens mounting space 155 for mounting the lens 120. This allows the mounting protrusions 154 to effectively support the lens 120, improving the installation reliability of the lens 120. In a specific embodiment, the mounting post 113 is a threaded post, and the mounting protrusion 154 has a through hole. The double-sided supplementary light lens body 100 also includes multiple screws, each screw passing through a through hole in a mounting protrusion 154 and threadedly connected to a mounting post 113 to fix the light-transmitting element 150 and the housing 110.
[0077] In one embodiment, please refer to Figures 11 to 14 In the radial direction of the annular mounting wall 112, the width of the first light guide 133 is greater than the width of the light output ring 153. The outer wall surface of the first light guide 133 facing away from the light-transmitting element 150 forms a light reflecting surface corresponding to the light output ring 153. The light output ring 153 and the mounting protrusion 154 are pressed together to form the first light guide 133.
[0078] In this embodiment, by making the width of the first light guide 133 in the radial direction of the annular mounting wall 112 greater than the width of the light-emitting ring 153, the light from the first lamp ring 131, after entering the first light guide 133 radially from the annular mounting wall 112, has a sufficiently long reflection and emission path, resulting in more uniform and softer light emitted from the first light guide 133. Since the double-sided supplementary lighting mirror 100 requires a sufficiently large mirror surface, the width of the light-emitting ring 153 is made smaller than the width of the first light guide 133, ensuring sufficient light-emitting area and supplementary lighting brightness without affecting the size of the mirror surface. The arrangement of the light-emitting ring 153 and the mounting protrusion 154 together pressing against the first light guide 133 further enhances the pressing and limiting effect of the light-transmitting element 150 on the first light guide 133.
[0079] In one embodiment, such as Figures 3 to 7 , Figure 15 As shown, the light-transmitting element 150 also includes a sealing ring 156 connecting multiple mounting protrusions 154 and a light-emitting ring 153. The sealing ring 156 is provided with an adhesive-containing groove 157 extending around its circumference. The front sidewall of the housing 110 is exposed in the light-transmitting element 150 and is provided with multiple adhesive-retaining grooves 115 located inside the first light guide element 133. The adhesive-containing grooves 157 and adhesive-retaining grooves 115 are used to fill sealant to bond the lens 120.
[0080] In this embodiment, the width of the sealing ring 156 can be selected and designed according to actual needs. Typically, the width of the sealing ring 156 is smaller than the width of the mounting protrusion 154 and the light-emitting ring 153 to avoid material waste. The adhesive groove 157 can be an annular groove or an arc-shaped groove. By providing the adhesive groove 157 on the sealing ring 156, the lens 120 can be bonded to the light-transmitting element 150 through the sealant in the adhesive groove 157. And through the adhesive storage groove 115 on the housing 110, the lens 120 can be bonded to the housing 110 through the sealant in the adhesive storage groove 115. In this way, the lens 120 can be bonded to both the light-transmitting element 150 and the housing 110 simultaneously, thereby improving the connection stability of the lens 120.
[0081] Furthermore, such as Figure 3 As shown, multiple adhesive reservoirs 157 are provided, spaced apart circumferentially along the sealing ring 156, with at least one adhesive storage tank 115 corresponding to each adjacent adhesive reservoir 157. That is, the adhesive reservoirs 157 are arc-shaped, and the number of adhesive reservoirs 157 and the spacing between adjacent reservoirs 157 can be designed according to the actual dimensions of the light-transmitting element 150, and are not specifically limited here. This arrangement ensures that at least one adhesive storage tank 115 is correspondingly provided between adjacent adhesive reservoirs 157, meaning that the bonding positions of the lens 120 and the light-transmitting element 150 and the bonding positions of the lens 120 and the housing 110 are sequentially arranged circumferentially. This ensures that the entire circumference of the lens 120 has bonding positions, effectively improving the bonding reliability of the lens 120.
[0082] In conjunction with the above embodiment of the double-sided supplementary lighting mirror, which also includes a light-transmitting element 150, please refer again to... Figures 3 to 7 The first recessed space 111 is provided with multiple buffer grooves 114 spaced apart around the outer periphery of the annular mounting wall 112. The buffer grooves 114 are filled with buffer members 160, and the back side of the first light guide 133 abuts against the buffer member 160. The buffer member 160 can be made of elastic buffering materials such as foam or rubber. The buffer grooves 114 are used to accommodate and limit the buffer member 160. Since the lens 120 is mounted on the light-transmitting member 150, and the light-transmitting member 150 is pressed against the first light guide 133, the back side of the first light guide 133 abuts against the buffer member 160, which indirectly buffers and absorbs shocks to the lens 120, thereby enhancing the impact resistance of the lens 120.
[0083] In one embodiment, such as Figure 4 and Figure 5 As shown, the first recessed space 111 is also provided with a plurality of stop members 116 arranged at intervals around the outer periphery of the annular mounting wall 112. The first lamp ring 131 is sandwiched between the annular mounting wall 112 and the plurality of stop members 116. The first lamp ring 131 has a plurality of light-emitting bodies 132 located between two adjacent stop members 116. The inner peripheral surface of the first light guide member 133 is arranged in the radial direction of the first lamp ring 131 corresponding to the plurality of light-emitting bodies 132 to form a light-incident surface 137.
[0084] In this embodiment, by having the inner circumferential surface of the first light guide 133 arranged in relation to a plurality of light emitters 132 in the radial direction of the first lamp ring 131, that is, by having the first lamp ring 131 emit light to the periphery of the first light guide 133, compared to having the light emitters 132 of the first lamp ring 131 face the wall surface of the first light guide 133 in the thickness direction, the path of light within the first light guide 133 can be extended, making the emitted light of the entire double-sided supplementary light mirror body 100 more uniform and softer.
[0085] By sandwiching the first lamp ring 131 between the annular mounting wall 112 and the multiple stop members 116, the first lamp ring 131 can be radially limited, preventing radial displacement of the first lamp ring 131. Furthermore, the multiple circumferentially spaced stop members 116 prevent the first lamp ring 131 from radially shifting outwards while not obstructing the light-emitting elements 132, allowing all the light-emitting elements 132 to directly enter the first light guide 133 through the light-incident surface 137, reducing light loss and improving light uniformity. Moreover, by positioning the light-emitting elements 132 between adjacent stop members 116, and with the inner circumferential surface of the first light guide 133 corresponding to the multiple light-emitting elements 132 radially from the first lamp ring 131, the multiple light-emitting elements 132 are positioned closer to the light-incident surface 137 of the first light guide 133, thereby improving the light emission effect.
[0086] Optionally, the first lamp ring 131 also includes a rigid substrate, which is pre-bent into a ring shape. Multiple light-emitting elements 132 protrude from the outer peripheral wall of the rigid substrate. The rigid substrate is sandwiched between the annular mounting wall 112 and multiple stop members 116, and can be tightly adhered to the multiple stop members 116 by its elasticity. Specifically, the rigid substrate can be made of rigid plastic. It is understood that when the rigid substrate is pre-bent into a ring shape, internal stress is generated. This stress is due to the internal resistance generated when the material changes shape after being subjected to external force. When the rigid substrate is embedded between the annular mounting wall 112 and the multiple stop members 116, and the external force is removed, the rigid substrate will automatically open due to the internal stress, thereby causing the outer peripheral wall of the rigid substrate to tightly adhere to the multiple stop members 116. Thus, there is no need to glue the substrate of the first lamp ring 131, simplifying the assembly steps of the first lamp ring 131 and improving the assembly efficiency of the mirror body.
[0087] Furthermore, the stop member 116 has a positioning protrusion 117 on the side away from the annular mounting wall 112, and the inner peripheral wall of the first light guide member 133 has a plurality of positioning grooves 136 corresponding to the plurality of positioning protrusions 117. The plurality of positioning protrusions 117 are fitted into the plurality of positioning grooves 136 one by one.
[0088] In this embodiment, a positioning protrusion 117 is provided on the side of the stop member 116 facing away from the annular mounting wall 112 to cooperate with the positioning groove 136 on the first light guide member 133, thereby limiting the circumferential displacement of the first light guide member 133. Simultaneously, since the stop member 116 and the positioning protrusion 117 are set as a single unit, the limiting structure is simplified, while ensuring the structural strength of both the stop member 116 and the positioning protrusion 117. Specifically, the stop member 116 extends circumferentially around the annular mounting wall 112, and the positioning protrusion 117 extends radially along the annular mounting portion.
[0089] In one embodiment, please refer to Figure 2 , Figures 8 to 14 The second light-emitting component 140 includes a second lamp ring 141 and an annular second light guide 142. The second recessed space 118 has an annular fixed wall 119. The second lamp ring 141 surrounds the outer periphery of the annular fixed wall 119. The second light guide 142 is arranged around the outer periphery of the second lamp ring 141 and fixedly connected to the housing 110. The light-emitting body of the second lamp ring 141 is arranged facing the inner peripheral surface of the second light guide 142.
[0090] In this embodiment, both the second lamp ring 141 and the second light guide 142 are installed within the second recessed space 118. The second light guide 142 is fixedly connected to the housing 110 by screws, snap-fits, or other means. The second lamp ring 141 is sandwiched between the annular fixed wall 119 and the second light guide 142. It is understood that the second lamp ring 141 includes a substrate extending in a ring shape and multiple light-emitting elements (LED beads) mounted on the substrate. The light-emitting element can be a cold light-emitting element or a warm light-emitting element; therefore, the second lamp ring 141 may include only multiple cold light-emitting elements, only multiple warm light-emitting elements, or both. Optionally, the second lamp ring 141 includes multiple cold light-emitting elements and multiple warm light-emitting elements. In this way, the color and brightness of the light emitted by the second light guide 142 can be controlled by controlling the switching of the cold light emitting element and the warm light emitting element. That is, the second light emitting component 140 of the double-sided fill light mirror can emit cold light, warm light or natural light. In this way, the user can adjust the color and brightness of the light emitted by the double-sided fill light mirror to meet the user's different usage needs.
[0091] The second light guide 142 is made of a transparent or light-transmitting material to uniformly guide and direct the light emitted from the second light ring 141. By making the second light guide 142 ring-shaped and surrounding the second light body, a uniform light ring can be formed, thereby effectively increasing the intensity and range of the fill light and improving the fill light effect of the makeup mirror.
[0092] Since the entire double-sided supplementary lighting mirror body 100 is basically flat, the thickness of the second light guide 142 is smaller than its width. By aligning the light emitter of the second lamp ring 141 towards the inner circumferential surface of the second light guide 142, compared to aligning the light emitter of the second lamp ring 141 towards the side of the second light guide 142 in the thickness direction, the path of light within the second light guide 142 can be extended, resulting in more uniform and softer light. Furthermore, the thickness requirement for the second light guide 142 is smaller, allowing for a thinner second light guide 142, thus making the entire double-sided supplementary lighting mirror body 100 thinner.
[0093] In practice, the second light guide 142 forms an outer reflective arc surface 135 on the outer wall surface facing the first light guide 133. Specifically, a high-reflectivity paint using high-reflectivity ink can be sprayed onto the outer wall surface of the second light guide 142 facing the first light guide 133 to form the outer reflective arc surface 135. In this way, the second light guide 142 can transform the point light source of the second lamp ring 141 into a surface light source through this outer reflective arc surface, thereby improving the light output brightness and light uniformity of the second light-emitting component 140.
[0094] Furthermore, the second recessed space 118 is annularly arranged, and a mounting groove 143 is formed at the connection between the inner circumferential surface of the second light guide 142 and the outer wall surface opposite to the first light guide 133. The double-sided supplementary lighting mirror body 100 also includes a cover plate 170, which is fitted into the mounting groove 143. The cover plate 170 can be fixed in the mounting groove 143 by means of adhesive, magnetic attraction, etc. By setting the cover plate 170, the area of the second light emitter 132, the housing 110 located in the annular fixed wall 119, and the connecting screws of the second light guide 142 can be blocked, making the back of the double-sided supplementary lighting mirror body 100 flatter and simpler, thereby improving the consistency of the product appearance.
[0095] In one embodiment, such as Figures 6 to 9 As shown, the housing 110 has a through-hole 1101 in the inner area enclosed by the second lamp ring 141; the double-sided supplementary light mirror body 100 also includes a control board 180, which is electrically connected to the first light-emitting component 130 and the second lamp ring 141 via wires; the control board 180 is installed on the front side wall of the housing 110, and the connecting wires of the control board 180 and the second lamp ring 141 pass through the connecting wires of the second lamp ring 141.
[0096] In this embodiment, the control board 180 is electrically connected to the first light-emitting component 130 and the second lamp ring 141 to control the switching, brightness, and mode adjustment of the first light-emitting component 130 and the second light-emitting component 140. By providing the through-hole 1101, the connecting wire of the second lamp ring 141 can pass through the through-hole 1101 and be electrically connected to the control board 180, thereby ensuring the circuit continuity of the first lamp ring 131 and the second lamp ring 141. It is understood that since the through-hole 1101 is located in the inner area of the housing 110 corresponding to the second lamp ring 141, and is located on the light-emitting body 132 facing away from the second lamp ring 141, it effectively prevents light leakage between the first light-emitting component 130 and the second light-emitting component 140 while ensuring the electrical connection of the second lamp ring 141.
[0097] In another embodiment, the housing 110 is provided with a through hole 1101 that runs from front to back in the inner area enclosed by the second lamp ring 141; the double-sided supplementary light mirror body 100 also includes a control board 180, which is electrically connected to the first light-emitting component 130 and the second lamp ring 141 via wires; the control board 180 is installed on the rear side wall of the housing 110, and the connecting wires between the control board 180 and the first light-emitting component 130 pass through the through hole 1101.
[0098] In this embodiment, the control board 180 is electrically connected to the first light-emitting component 130 and the second lamp ring 141 to control the switching, brightness, and mode adjustment of the first light-emitting component 130 and the second light-emitting component 140. By providing the through-hole 1101, the connecting wire of the first light-emitting component 130 can pass through the through-hole 1101 and be electrically connected to the control board 180, thereby ensuring the circuit continuity of the first light-emitting component 130 and the second lamp ring 141. It can be understood that since the through-hole 1101 is located in the inner area of the housing 110 corresponding to the second lamp ring 141, and is located on the light-emitting body 132 facing away from the second lamp ring 141, it effectively prevents light leakage between the first light-emitting component 130 and the second light-emitting component 140 while ensuring the electrical connection of the first light-emitting component 130.
[0099] This utility model also proposes a cosmetic mirror, please refer to... Figures 17 to 19 The makeup mirror includes a support 200 and a double-sided fill light mirror 100. The specific structure of the double-sided fill light mirror 100 is as described in the above embodiments. The double-sided fill light mirror 100 is rotatably mounted on the support 200. Since this makeup mirror adopts all the technical solutions of all the above embodiments, it possesses at least all the beneficial effects brought about by the technical solutions of the above embodiments, which will not be elaborated further here. The structure and type of the support 200 can be varied and can be selected and designed according to actual needs; no specific limitations are made here. By rotatably mounting the double-sided fill light mirror 100 on the support 200, it can be rotated to the desired angle according to usage requirements.
[0100] In one embodiment, the double-sided supplementary lighting mirror 100 can be rotated to a makeup position and a desk lamp position. In the makeup position, the mirror surface of the lens 120 extends vertically or is angled upwards. In the desk lamp position, the mirror surface of the lens 120 is positioned upwards, and the second light-emitting component 140 is positioned downwards. This allows the makeup mirror to also be used as a desk lamp, achieving multiple uses and improving product versatility.
[0101] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application.
Claims
1. A double-sided supplementary lighting mirror, characterized in that, It includes a housing, a lens, a first light-emitting component, and a second light-emitting component; wherein, The housing has opposing front and rear sidewalls. The lens is mounted on the front side of the housing. The front sidewall has a first recessed space, and the rear sidewall has a second recessed space. The first light-emitting component is mounted in the first recessed space for emitting light forward, and the second light-emitting component is mounted in the second recessed space for emitting light backward.
2. The double-sided supplementary lighting mirror body as described in claim 1, characterized in that, The first recessed space has an annular mounting wall. The first light-emitting component includes a first lamp ring and an annular first light guide. The first lamp ring is disposed around the outer periphery of the annular mounting wall. The first light guide surrounds the outer periphery of the first lamp ring, and the light-emitting body of the first lamp ring is disposed facing the inner peripheral surface of the first light guide.
3. The double-sided supplementary lighting mirror body as described in claim 2, characterized in that, The double-sided supplementary lighting lens also includes a light-transmitting element, which covers the front side of the housing, and the outer wall surface of the light-transmitting element smoothly transitions with the outer wall surface of the housing; the first light-emitting component is sandwiched between the light-transmitting element and the housing, and the lens is mounted on the front wall surface of the light-transmitting element.
4. The double-sided supplementary lighting mirror body as described in claim 3, characterized in that, The light-transmitting component has an overlapping plane facing the first light guide component, and the overlapping plane overlaps with the front side of the housing; the first light guide component has a light-emitting plane facing away from the overlapping plane and an outer reflective arc surface, the outer reflective arc surface is arranged around the light-emitting plane, and the outer reflective arc surface is coated with a reflective coating.
5. The double-sided supplementary lighting mirror body as described in claim 4, characterized in that, The first recessed space is an annular groove, and the light-transmitting element also includes a positioning ring protruding from the overlapping plane, the positioning ring being adapted to fit against the peripheral sidewall of the first recessed space.
6. The double-sided supplementary lighting mirror body as described in any one of claims 3 to 5, characterized in that, The front sidewall of the housing has a plurality of mounting posts disposed on the inner circumference of the annular mounting wall; The light-transmitting element includes a light-emitting ring and a plurality of mounting protrusions connected to the inner circumference of the light-emitting ring. The plurality of mounting protrusions are arranged circumferentially around the light-emitting ring, and the plurality of mounting protrusions are recessed relative to the front wall surface of the light-emitting ring to form a lens mounting space for mounting the lens. The plurality of mounting protrusions correspond one-to-one with the plurality of mounting posts and are fixedly connected, and are pressed together with the first lamp ring.
7. The double-sided supplementary lighting mirror body as described in claim 6, characterized in that, In the radial direction of the annular mounting wall, the width of the first light guide is greater than the width of the light-emitting ring. The outer wall surface of the first light guide facing away from the light-transmitting element forms a light-reflecting surface corresponding to the light-emitting ring at least. The light-emitting ring and the mounting protrusion are pressed together to form the first light guide.
8. The double-sided supplementary lighting mirror body as described in claim 6, characterized in that, The light-transmitting component also includes a sealing ring connecting the plurality of mounting protrusions and the light-emitting ring, and the sealing ring is provided with an adhesive-containing groove extending around its circumference; the front sidewall of the housing is exposed to the light-transmitting component and is provided with a plurality of adhesive-retaining grooves located inside the first light guide component, and the adhesive-containing grooves and the adhesive-retaining grooves are used to fill the adhesive to bond the lens.
9. The double-sided supplementary lighting mirror body as described in claim 8, characterized in that, The adhesive receiving tank is provided in multiple ways, and the multiple adhesive receiving tanks are arranged at intervals along the circumference of the sealing ring, and at least one adhesive storage tank is provided between two adjacent adhesive receiving tanks.
10. The double-sided supplementary lighting mirror body as described in any one of claims 2 to 5, characterized in that, The first recessed space is provided with a plurality of buffer grooves spaced apart around the outer periphery of the annular mounting wall, and the buffer grooves are filled with buffer members, and the back of the first light guide abuts against the buffer members.
11. The double-sided supplementary lighting mirror body as described in any one of claims 2 to 5, characterized in that, The first recessed space is also provided with a plurality of stop members arranged at intervals around the outer periphery of the annular mounting wall. The first lamp ring is sandwiched between the annular mounting wall and the plurality of stop members. The first lamp ring has a plurality of light-emitting elements located between two adjacent stop members. The inner peripheral surface of the first light guide is arranged in the radial direction of the first lamp ring corresponding to the plurality of light-emitting elements to form a light-incident surface.
12. The double-sided supplementary lighting mirror body as described in claim 11, characterized in that, The stop member has a positioning protrusion on the side away from the annular mounting wall. The inner peripheral wall of the first light guide member has multiple positioning grooves corresponding to the multiple positioning protrusions. The multiple positioning protrusions are one-to-one corresponding to and adapted to be embedded in the multiple positioning grooves.
13. The double-sided supplementary lighting mirror body as described in any one of claims 1 to 5, characterized in that, The second light-emitting component includes a second lamp ring and an annular second light guide. The second recessed space has an annular fixed wall. The second lamp ring surrounds the outer periphery of the annular fixed wall. The second light guide is arranged around the outer periphery of the second lamp ring and fixedly connected to the housing. The light-emitting body of the second lamp ring is arranged facing the inner peripheral surface of the second light guide.
14. The double-sided supplementary lighting mirror body as described in claim 13, characterized in that, The second recessed space is arranged in a ring shape. The inner peripheral surface of the second light guide and the connection between it and the outer wall surface opposite to the lens are recessed to form a mounting groove. The double-sided supplementary light lens body also includes a cover plate, which is adapted to be embedded in the mounting groove.
15. The double-sided supplementary lighting mirror body as described in claim 13, characterized in that, The housing is provided with a through hole that runs from front to back in the inner area enclosed by the second lamp ring; the double-sided fill light mirror also includes a control board, which is electrically connected to the first light-emitting component and the second lamp ring via wires. The control board is mounted on the front side wall of the housing, and the connecting wire between the control board and the second lamp ring passes through the wire hole; or The control board is mounted on the rear side wall of the housing, and the connecting wires between the control board and the first light-emitting component pass through the wire hole.
16. A makeup mirror, characterized in that, It includes a bracket and a double-sided fill light lens body as described in any one of claims 1 to 15, wherein the double-sided fill light lens body is rotatably mounted on the bracket.