Mirror body and makeup mirror
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2026-08-14
AI Technical Summary
[0005]鉴于上述问题,本实用新型提出一种镜体,旨在解决传统的灯带与壳体的连接方式使得灯带的拆装效率低的技术问题
[0026]本实用新型通过在底板内壁面设置限位件,限位件包括相互连接的第一限位壁和第二限位壁,第一限位壁与安装环沿安装环的径向间隔形成安装位,硬质灯带嵌设在安装位上,利用硬质灯带预弯时的弹性恢复力使其贴合在安装环或第一限位壁上,以限制硬质灯带在安装环的径向上的移动。同时,硬质灯带可以便捷地嵌入壳体,无需胶水的粘接。当硬质灯带需要更换时,直接从安装位拿出即可,提高了拆装效率。
Smart Images

Figure CN224627755U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of cosmetic mirrors, and particularly to a mirror body and a cosmetic mirror. Background Technology
[0002] As people's demands for quality of life continue to rise, makeup mirrors have gradually become an indispensable personal care tool in daily life. Makeup mirrors mainly consist of a mirror body and a base. The mirror body typically includes a ring-shaped light strip and a housing. The light strip is located inside the housing, and the light source is diffused to the outside through a light guide to provide a uniform and bright light source, thereby providing better visibility.
[0003] In existing technologies, LED strips are typically made of flexible materials and are fixed to the housing using adhesive. However, when the LED strip is damaged or needs replacement, the adhesive method makes disassembly and assembly more difficult, thus reducing efficiency. For example, during installation, adhesive must first be applied to the surface of the LED strip before it is bonded to the housing; removing the adhesive during disassembly is difficult. Furthermore, after prolonged use, the adhesive may age or fail, causing the LED strip to detach or loosen, affecting the lighting effect.
[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 mirror body, which aims to solve the technical problem that the traditional connection method between the light strip and the housing results in low efficiency of light strip assembly and disassembly.
[0006] To achieve the above objectives, the mirror body proposed in this utility model includes a rigid light strip, a housing, and a limiting member: wherein,
[0007] The housing includes a base plate and a mounting ring. The mounting ring protrudes from the inner wall surface of the base plate. The limiting member is connected to the inner wall surface of the base plate. The limiting member includes a first limiting wall. The first limiting wall and the mounting ring are radially spaced to form a mounting position.
[0008] The rigid LED strip is wrapped around the periphery of the mounting ring and embedded in the mounting position to restrict the radial movement of the rigid LED strip along the mounting ring.
[0009] In one embodiment, the mirror body further includes an inner light guide, which is disposed on the base plate and corresponds to the light-emitting side of the rigid light strip;
[0010] The limiting member further includes a second limiting wall connected to the first limiting wall, the second limiting wall being embedded in the inner light guide to restrict the inner light guide from moving circumferentially along the mounting ring.
[0011] In one embodiment, the limiting member includes a plurality of limiting elements spaced circumferentially along the mounting ring, each of the limiting elements including a first limiting wall and a second limiting wall;
[0012] The rigid light strip includes a substrate and a plurality of spaced-apart LED beads. The plurality of LED beads protrude from the peripheral wall of the substrate. The substrate is located between the first limiting wall and the mounting ring. The plurality of LED beads are disposed between two adjacent first limiting walls. The first limiting wall is disposed between two adjacent LED beads to restrict the rigid light strip from moving circumferentially along the mounting ring.
[0013] In one embodiment, the distance between the first limiting wall and the adjacent lamp bead on the two opposite sides of the mounting ring in the circumferential direction is less than the length of the lamp bead along the circumferential direction of the mounting ring.
[0014] In one embodiment, the substrate surrounds the outer periphery of the mounting ring, and a plurality of lamp beads protrude from the outer periphery of the substrate. The inner light guide and the second limiting wall are both disposed on the outer periphery of the lamp beads. The first limiting wall extends circumferentially along the mounting ring, and the extension direction of the second limiting wall intersects with the outer periphery of the first limiting wall.
[0015] In one embodiment, the substrate is a circuit board, the substrate is pre-bent into a ring shape and embedded in the mounting position, so that the outer peripheral wall of the substrate is elastically attached to the first limiting wall.
[0016] In one embodiment, the substrate has a solder joint on the side opposite to the lamp bead, and the solder joint is connected to a power line to supply power to the lamp bead.
[0017] In one embodiment, the ratio of the distance between the first limiting wall and the mounting ring to the thickness of the substrate is greater than or equal to 1 and less than or equal to 1.5.
[0018] In one embodiment, the mirror body further includes a starting stop member, which includes a circumferential stop wall and a radial stop wall connected to each other. The radial stop wall and the mounting ring are spaced apart in the radial direction of the mounting ring to form a start and end mounting position. The start and end ends of the rigid light strip are respectively embedded in the start and end mounting positions to restrict the rigid light strip from moving radially along the mounting ring.
[0019] The circumferential stop wall is connected to the mounting ring, and the two ends of the rigid light strip are located on both sides of the circumferential stop wall to restrict the rigid light strip from moving circumferentially along the mounting ring.
[0020] In one embodiment, the inner wall surface of the base plate is further provided with a plurality of support plates for supporting the inner light guide;
[0021] The top of the support plate is lower than the top of the second limiting wall, and at least two of the support plates are connected to the second limiting wall.
[0022] The inner wall of the base plate is also provided with a support plate that is connected to the second limiting wall. The top of the support plate is lower than the top of the second limiting wall. The inner light guide overlaps the top of the support plate, and the second limiting wall is embedded in the inner light guide.
[0023] In one embodiment, the base plate has a first wall and a second wall facing each other. The middle of the second wall is recessed to form a light-emitting element mounting position. The first wall is recessed to form an inner mounting position, avoiding the position corresponding to the light-emitting element mounting position. The support plate and the inner light guide are both embedded in the inner mounting position. The mounting ring, the limiting member and the rigid light strip are all disposed on the first wall at the position corresponding to the light-emitting element mounting position.
[0024] In one embodiment, the inner mounting position is further provided with a buffer groove, the buffer groove is provided with a buffer member, the buffer member abuts against the inner light guide member to fix and buffer the inner light guide member.
[0025] This utility model also proposes a cosmetic mirror, including a base and a mirror body as described above, wherein the mirror body is connected to the base.
[0026] This invention utilizes a limiting component on the inner wall of the base plate. This limiting component includes a first limiting wall and a second limiting wall connected to each other. The first limiting wall and the mounting ring are radially spaced to form a mounting position. A rigid LED strip is embedded in this mounting position, and its elastic restoring force during pre-bending ensures it adheres to the mounting ring or the first limiting wall, thus restricting radial movement of the rigid LED strip within the mounting ring. Simultaneously, the rigid LED strip can be easily embedded into the housing without the need for adhesive. When the rigid LED strip needs replacement, it can be directly removed from the mounting position, improving assembly and disassembly efficiency. Attached Figure Description
[0027] 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.
[0028] Figure 1 A schematic diagram of the structure of one embodiment of the mirror body of this utility model is shown;
[0029] Figure 2 for Figure 1 Exploded view of the mid-scope body;
[0030] Figure 3 for Figure 1 A cross-sectional view of the medial endoscope;
[0031] Figure 4 for Figure 3 A magnified view of a section at point A in the middle;
[0032] Figure 5 for Figure 1 A schematic diagram of the structure for removing the lens and external light guide in the middle mirror body;
[0033] Figure 6 for Figure 5 A magnified view of a section at point B in the middle;
[0034] Figure 7 for Figure 2 Schematic diagram of the structure of the first wall of the middle shell;
[0035] Figure 8 for Figure 7 A magnified view of a portion of the image;
[0036] Figure 9 for Figure 2 Schematic diagram of the structure of the second wall of the middle shell;
[0037] Explanation of icon numbers:
[0038] 100 mirror body 132 Mounting ring 143 Limiting element 110 Rigid LED strip 133 Installation position 160 Starting stop 111 substrate 134 support plate 161 Circumferential stop wall 112 LED beads 135 Light-emitting component mounting position 162 radial stop wall 120 Internal light guide 136 Internal mounting location 163 End mounting positions 130 case 137 Buffer groove 131 base plate 140 Limiting component 1311 First wall surface 141 First limiting wall 1312 Second wall 142 Second limiting wall
[0039] 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
[0040] 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.
[0041] 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.
[0042] 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.
[0043] This utility model proposes a mirror body 100 for use as a cosmetic mirror.
[0044] In this embodiment of the utility model, please refer to Figures 1 to 9 The mirror body 100 includes a rigid light strip 110, an inner light guide 120, a housing 130, and a limiting member 140. The housing 130 includes a base plate 131 and a mounting ring 132. The mounting ring 132 protrudes from the inner wall of the base plate 131. The limiting member 140 is connected to the inner wall of the base plate 131. The limiting member 140 includes a first limiting wall 141 and a second limiting wall 142 that are connected to each other. The first limiting wall 141 and the mounting ring 132 are radially spaced to form a mounting position 133. The rigid light strip 110 surrounds the periphery of the mounting ring 132 and is embedded in the mounting position 133 to restrict the radial movement of the rigid light strip 110 along the mounting ring 132.
[0045] In this embodiment, the housing 130 can be square, circular, or other shapes; the shape and material of the housing 130 are not limited. The base plate 131 is the bottom part of the housing 130 and provides support for the mirror body 100 structure. The mounting ring 132 is a ring-shaped structure protruding from the inner wall of the base plate 131, used to fix the rigid light strip 110. It is understood that "ring-shaped" refers to a closed curve, and its shape can be circular, square, or other shapes; there are no limitations here. Preferably, it is the same shape as the housing 130. For example, if the housing 130 is circular, the mounting ring 132 is also circular, which makes the product appearance more harmonious. Secondly, when the mounting ring 132 is circular, its radial direction is the direction of the diameter of the ring, and its circumferential direction is the circumferential direction of the ring; when the mounting ring 132 is square, its radial direction is the width and length direction of the square ring, and its circumferential direction is the square circumferential direction of the ring.
[0046] The rigid LED strip 110 typically consists of multiple LEDs and is arranged around the periphery of the mounting ring 132 to provide illumination. The term "rigid LED strip" in this embodiment refers to a strip material with a certain degree of rigidity compared to a flexible strip, but its rigidity remains within a bendable range, allowing the strip to have elastic restoring force when pre-bent.
[0047] The limiting member 140 is used to limit the rigid light strip 110 to ensure its stability during use. The limiting member 140 includes a first limiting wall 141, which restricts the radial movement of the rigid light strip 110 along the mounting ring 132. For example, the first limiting wall 141 and the mounting ring 132 are spaced apart to form a mounting position 133. The rigid light strip 110 is embedded in the mounting position 133. The elastic restoring force of the rigid light strip 110 when pre-bent is used to adhere the rigid light strip 110 to the first limiting wall 141 or the mounting ring 132, thereby preventing the rigid light strip 110 from opening too much without glue. The shape of the first limiting wall 141 can be adapted to the shape of the mounting ring 132. For example, the mounting ring 132 is circular, and the first limiting wall 141 is also circular. It can also be composed of multiple limiting elements 143. The multiple limiting elements 143 are arranged at intervals along the circumference of the mounting ring 132 to cooperate with the mounting ring 132 to limit the rigid light strip 110.
[0048] This invention features a limiting member 140 on the inner wall of the base plate 131. The limiting member 140 includes a first limiting wall 141 and a second limiting wall 142 connected to each other. The first limiting wall 141 and the mounting ring 132 are radially spaced to form a mounting position 133. A rigid LED strip 110 is embedded in the mounting position 133. The elastic restoring force of the rigid LED strip 110 during pre-bending allows it to adhere to the mounting ring 132 or the first limiting wall 141, thus limiting the radial movement of the rigid LED strip 110 within the mounting ring 132. Simultaneously, the rigid LED strip 110 can be easily inserted into the housing 130. When the rigid LED strip 110 needs replacement, it can be directly removed from the mounting position 133, improving disassembly and assembly efficiency.
[0049] In one embodiment, the mirror body 100 further includes an inner light guide 120, which is disposed on the base plate 131 and corresponds to the light-emitting side of the rigid light strip 110; the limiting member 140 further includes a second limiting wall 142 connected to the first limiting wall 141, which is embedded in the inner light guide 120 to restrict the inner light guide 120 from moving circumferentially along the mounting ring 132.
[0050] The inner light guide 120 can be annular in shape and is disposed on the light-emitting side of the rigid light strip 110 to uniformly scatter the light emitted by the rigid light strip 110, thereby providing a softer lighting effect. It can be understood that the rigid light strip 110 can be disposed on the inner or outer circumference of the mounting ring 132. If the rigid light strip 110 is disposed on the inner circumference of the mounting ring 132, the light-emitting side of the rigid light strip 110 can face inwards, and the inner light guide 120 is disposed on the inner side of the rigid light strip 110; if the rigid light strip 110 is disposed on the outer circumference of the mounting ring 132, the light-emitting side of the rigid light strip 110 faces outwards, and the inner light guide 120 is disposed on the outer side of the rigid light strip 110.
[0051] The limiting member 140 is used to simultaneously limit the rigid light strip 110 and the inner light guide 120, ensuring the stability of the rigid light strip 110 and the inner light guide 120 during use. The second limiting wall 142 is used to restrict the circumferential movement of the inner light guide 120 along the mounting ring 132. For example, the inner light guide 120 is usually annular and easily moves along the circumferential direction of the mounting ring 132. Therefore, the second limiting wall 142 is embedded in the inner light guide 120 to restrict the circumferential movement of the inner light guide 120 along the mounting ring 132. The first limiting wall 141 and the second limiting wall 142 are integrally formed. The extension directions of the first limiting wall 141 and the second limiting wall 142 can be the same or intersecting. For example, the first limiting wall 141 and the second limiting wall 142 can both extend radially along the mounting ring 132, or the first limiting wall 141 can extend circumferentially along the mounting ring 132 and the second limiting wall 142 can extend radially along the mounting ring 132.
[0052] In this embodiment, the second limiting wall 142 is embedded in the inner light guide 120, thereby restricting the movement of the inner light guide 120 in the circumferential direction of the mounting ring 132. The limiting wall 140 can effectively fix the rigid light strip 110 and the light guide, ensuring the lighting effect, and at the same time preventing the light guide from colliding with other components due to displacement, thus avoiding damage to other components. Furthermore, one limiting wall 140 can simultaneously limit the rigid light strip 110 and the inner light guide 120, resulting in fewer components and a simpler structure.
[0053] In one embodiment, the limiting member 140 includes a plurality of limiting elements 143 arranged circumferentially spaced along the mounting ring 132, and each limiting element 143 includes a first limiting wall 141 and a second limiting wall 142.
[0054] The rigid light strip 110 includes a substrate 111 and a plurality of spaced-apart LED beads 112. The plurality of LED beads 112 protrude from the peripheral wall of the substrate 111. The substrate 111 is located between a first limiting wall 141 and a mounting ring 132. A plurality of LED beads 112 are disposed between two adjacent first limiting walls 141. The first limiting wall 141 is disposed between two adjacent LED beads 112 to restrict the rigid light strip 110 from moving circumferentially along the mounting ring 132.
[0055] In this embodiment, the limiting member 140 is composed of multiple limiting elements 143. Each limiting element 143 includes a first limiting wall 141 and a second limiting wall 142. The substrate 111 is located between the first limiting wall 141 and the mounting ring 132 to restrict the radial movement of the rigid light strip 110 along the mounting ring 132. Multiple LED beads 112 protrude from the peripheral wall of the substrate 111. The first limiting wall 141 is located between two adjacent LED beads 112. By utilizing the limiting cooperation between the LED beads 112 and the first limiting wall 141, the circumferential movement of the rigid light strip 110 along the mounting ring 132 is restricted. In this way, the position of the rigid light strip 110 can be effectively fixed, preventing the rigid light strip 110 from moving circumferentially or radially along the mounting ring 132. Compared to the limiting member 140 being a ring structure, the limiting member 140, composed of multiple limiting elements 143, can also optimize the lighting effect, making the light scattered to the user's eyes bright and soft. For example, if the mounting ring 132 is a closed structure, and the limiting member 140 is also a closed ring structure, and the light emission direction of the rigid light strip 110 is radial to the mounting ring 132, it will be blocked by the limiting member 140 and the mounting ring 132, resulting in dim light that cannot meet the user's lighting needs. If the light emission direction of the rigid light strip 110 is axial to the mounting ring 132, it will directly enter the user's eyes, causing glare and reducing the user experience.
[0056] Furthermore, the distance between the first limiting wall 141 and the adjacent LED beads 112 on opposite sides of the mounting ring 132 in the circumferential direction is less than the length of the LED beads 112 along the circumferential direction of the mounting ring 132. This further restricts the movement of the rigid LED strip 110 in the circumferential direction of the mounting ring 132, ensuring that the rigid LED strip 110 is fixed in the correct position. This prevents the LED beads 112 from changing position and causing inconsistent lighting effects, thus improving the user experience, especially in scenarios requiring precise lighting, such as makeup application.
[0057] In one embodiment, a substrate 111 surrounds the outer periphery of a mounting ring 132, and a plurality of lamp beads 112 protrude from the outer periphery of the substrate 111. An inner light guide 120 and a second limiting wall 142 are both disposed on the outer periphery of the lamp beads 112. The first limiting wall 141 extends circumferentially along the mounting ring 132, and the extension direction of the second limiting wall 142 intersects with the outer periphery of the first limiting wall 141.
[0058] In this embodiment, the outer periphery of the mounting ring 132 refers to the area of the mounting ring 132 away from the center of the housing 130, the outer periphery of the substrate 111 refers to the wall surface of the substrate 111 away from the mounting ring 132, and the outer periphery of the lamp bead 112 refers to the side of the lamp bead 112 away from the substrate 111, which is usually the area where light diffuses. Compared to setting the rigid light strip 110 on the inner periphery of the mounting ring 132, where the center of the mirror body 100 emits light, in this embodiment, the rigid light strip 110 is set on the outer periphery of the mounting ring 132, and the light from the lamp bead 112 diffuses outward to the inner light guide 120, so that the outer ring of the mirror body 100 emits light. This allows the mirror body 100 to ensure sufficient and soft light without affecting the function of the mirror. Secondly, the outer peripheral wall of the first limiting wall 141 refers to the wall surface opposite to the outer peripheral wall of the mounting ring 132. The first limiting wall 141 extends circumferentially along the mounting ring 132. The extension direction of the second limiting wall 142 intersects with the outer peripheral wall of the first limiting wall 141, which can enhance the structural strength of the limiting member 140. For example, if the extension directions of the first limiting wall 141 and the second limiting wall 142 are the same, then if one of them is damaged or broken, it will easily affect the structural strength of the other.
[0059] In one embodiment, the substrate 111 is a circuit board. The substrate 111 is pre-bent into an annular shape and is embedded in the mounting position 133 so that the outer peripheral wall of the substrate 111 is elastically attached to the first limiting wall 141.
[0060] In this embodiment, the rigidity of the circuit board is between that of a flexible material and an inflexible rigid material. In other words, the circuit board has a certain rigidity relative to a flexible material, but its rigidity is still within the range of flexibility, allowing it to be pre-bent into a ring shape and embedded in the mounting position 133. This allows the outer peripheral wall of the substrate 111 to adhere to the first limiting wall 141 through the elasticity of the substrate 111 when it is stretched outward. In this way, the rigid light strip 110 can be installed in the housing 130 without the use of glue, facilitating assembly and disassembly.
[0061] Furthermore, the substrate 111 has a solder joint on the side opposite to the lamp bead 112, and the solder joint is connected to the power line to supply power to the lamp bead 112.
[0062] In this embodiment, the solder joint is located on the side of the substrate 111 away from the LED bead 112, separating the electrical connection portion from the light-emitting portion and avoiding any obstruction or interference of the solder joint with the light-emitting effect of the LED bead 112. Secondly, the solder joint and power line being located on the side of the substrate 111 closer to the LED bead 112 could potentially interfere with the inner light guide 120, affecting the tight fit between the inner light guide 120 and the LED strip. Moving the solder joint to the back side ensures the uniformity of the light guiding effect.
[0063] Furthermore, the ratio of the distance between the first limiting wall 141 and the mounting ring 132 to the thickness of the substrate 111 is greater than or equal to 1 and less than or equal to 1.5.
[0064] In some embodiments, the ratio of the distance between the first limiting wall 141 and the mounting ring 132 to the thickness of the substrate 111 can be 1, 1.1, 1.2, 1.3, 1.4, or 1.5. This ratio range ensures that the substrate 111 has sufficient space for positioning and fixation when it is inserted into the mounting position 133, avoiding excessive tightness or looseness. A ratio greater than or equal to 1 ensures that the substrate 111 can be smoothly installed in place, preventing installation difficulties or damage to the substrate 111 due to insufficient gap; a ratio less than or equal to 1.5 allows the outer peripheral wall of the substrate 111 to maintain appropriate elasticity with the first limiting wall 141, effectively limiting the radial and circumferential displacement of the substrate 111, preventing excessive gap between the first limiting wall 141 and the mounting ring 132, excessive outward expansion of the substrate 111, and reduced elasticity.
[0065] In one embodiment, please refer to Figure 7 and Figure 8 The mirror body 100 also includes a starting stop 160, which includes a circumferential stop wall 161 and a radial stop wall 162 connected to each other. The radial stop wall 162 and the mounting ring 132 are spaced apart in the radial direction of the mounting ring 132 to form start and end mounting positions 163. The start and end ends of the rigid light strip 110 are respectively embedded in the start and end mounting positions 163 to restrict the rigid light strip 110 from moving radially along the mounting ring 132. The circumferential stop wall 161 is connected to the mounting ring 132, and the start and end ends of the rigid light strip 110 are respectively located on both sides of the circumferential stop wall 161 to restrict the rigid light strip 110 from moving circumferentially along the mounting ring 132.
[0066] In this embodiment, the radial stop wall 162 functions as the first limiting wall 141, forming end mounting positions 163 with the mounting ring 132 at intervals, thus restricting the radial movement of the rigid light strip 110 along the mounting ring 132. The circumferential stop wall 161 is connected to the mounting ring 132, and the rigid light strip 110 wraps around from one side of the circumferential stop wall 161 to the other side, providing a clear path for the installation of the rigid light strip 110 and restricting its circumferential movement along the mounting ring 132. This invention has only one circumferential limiting wall, so after the rigid light strip 110 wraps around the mounting ring 132, the distance between its two ends is closer, resulting in a more concentrated and uniform light source without obvious gaps.
[0067] In one embodiment, the inner wall surface of the base plate 131 is further provided with a plurality of support plates 134 for supporting the inner light guide 120; the top of the support plate 134 is lower than the top of the second limiting wall 142, and at least two of the support plates 134 are respectively connected to the second limiting wall 142.
[0068] In this embodiment, the support plate 134 is a protruding structure on the inner wall of the base plate 131. Part of the support plate 134 is connected to the second limiting wall 142, providing support for the inner light guide 120. The top of the support plate 134 is lower than the top of the second limiting wall 142, so that when the inner light guide 120 overlaps the support plate 134, it can be aligned with the light-emitting side of the rigid light strip 110 to scatter the light source of the rigid light strip 110, making the light softer. Secondly, the connection of the support plate 134 to the second limiting wall 142 can increase the structural strength of the second limiting wall 142, making the second limiting wall 142 less prone to breakage.
[0069] In one embodiment, please refer to Figures 7 to 9 The base plate 131 has a first wall 1311 and a second wall 1312. The middle of the second wall 1312 is recessed to form a light-emitting element mounting position 135. The first wall 1311 is recessed to form an inner mounting position 136, avoiding the position corresponding to the light-emitting element mounting position 135. The support plate 134 and the inner light guide 120 are both embedded in the inner mounting position 136. The mounting ring 132, the limiting member 140 and the rigid light strip 110 are all located on the first wall 131 at the position corresponding to the light-emitting element mounting position 135.
[0070] In this embodiment, the base plate 131 has a first wall surface 1311 and a second wall surface 1312, wherein the center of the second wall surface 1312 is recessed to form a light-emitting element mounting position 135 for mounting other light-emitting components. The first wall surface 1311 avoids the recess at the position corresponding to the light-emitting element mounting position 135, forming an inner mounting position 136 for accommodating the support plate 134 and the inner light guide 120. In other words, the cross-section of the base plate 131 is equivalent to a "U" shape, and the inner wall surface of the base plate 131 is equivalent to the second wall surface 1312. The light-emitting element mounting position 135 of the second wall surface 1312 can be used to mount other light-emitting elements, so that both sides of the mirror body 100 can emit light. This arrangement makes the layout between the components more compact, avoids space waste, and ensures aesthetics. Secondly, the portion of the first wall surface 1311 corresponding to the light-emitting element mounting position 135 protrudes relative to the inner mounting position 136, where the mounting ring 132, the limiting member 140, and the rigid light strip 110 are all located. The inner light guide 120 and the support plate 134 are located on the inner mounting position 136, so that the inner light guide 120 can be aligned with the light-emitting side of the rigid light strip 110.
[0071] In one embodiment, the inner mounting position 136 is further provided with a buffer groove 137, the buffer groove 137 is provided with a buffer member, and the inner light guide 120 overlaps with the buffer member 137 so that the buffer member fixes and buffers the inner light guide 120.
[0072] Furthermore, the mirror body 100 also includes an outer light guide 170, which is fixedly connected to the base plate 131. An inner light guide 120 is sandwiched between the buffer and the outer light guide 170, and the inner light guide 120 is attached to the outer light guide 170.
[0073] In this embodiment, the buffer can be made of materials with cushioning properties such as foam or rubber. The buffer can absorb impacts and vibrations, reduce bumps to the inner light guide 120, and improve its service life. Furthermore, the buffer abuts against the inner light guide 120, causing it to fit snugly against the outer light guide 170, reducing light loss during transmission and ensuring more light energy is effectively guided and diffused, thereby improving the lighting effect. Secondly, the limiting effect of the buffer and the outer light guide 170, as well as the limiting effect of the second limiting wall 142, eliminates the need for a separate fixing structure for the inner light guide 120, thus saving space and improving assembly and disassembly efficiency.
[0074] This utility model also proposes a makeup mirror, which includes a base and a mirror body 100. The specific structure of the mirror body 100 is as described in the above embodiments. Since this makeup mirror adopts all the technical solutions of all the above embodiments, it has at least all the beneficial effects brought about by the technical solutions of the above embodiments, which will not be described in detail here. The mirror body 100 is connected to the base.
[0075] 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 mirror body, characterized in that, Includes rigid LED strip, housing, and limiting components; among which, The housing includes a base plate and a mounting ring. The mounting ring protrudes from the inner wall surface of the base plate. The limiting member is connected to the inner wall surface of the base plate. The limiting member includes a first limiting wall. The first limiting wall and the mounting ring are radially spaced to form a mounting position. The rigid LED strip is wrapped around the periphery of the mounting ring and embedded in the mounting position to restrict the radial movement of the rigid LED strip along the mounting ring.
2. The mirror of claim 1, wherein, The mirror body also includes an inner light guide, which is disposed on the base plate and corresponds to the light-emitting side of the rigid light strip; The limiting member further includes a second limiting wall connected to the first limiting wall, the second limiting wall being embedded in the inner light guide to restrict the inner light guide from moving circumferentially along the mounting ring.
3. The mirror of claim 2, wherein, The limiting member includes a plurality of limiting elements spaced apart circumferentially along the mounting ring, and each of the limiting elements includes a first limiting wall and a second limiting wall; The rigid light strip includes a substrate and a plurality of spaced-apart LED beads. The plurality of LED beads protrude from the peripheral wall of the substrate. The substrate is located between the first limiting wall and the mounting ring. The plurality of LED beads are disposed between two adjacent first limiting walls. The first limiting wall is disposed between two adjacent LED beads to restrict the rigid light strip from moving circumferentially along the mounting ring.
4. The mirror of claim 3, wherein, The distance between the first limiting wall and the adjacent lamp bead on the two opposite sides of the mounting ring in the circumferential direction is less than the length of the lamp bead along the circumferential direction of the mounting ring.
5. The mirror of claim 3, wherein, The substrate surrounds the outer periphery of the mounting ring, and a plurality of lamp beads protrude from the outer periphery of the substrate. The inner light guide and the second limiting wall are both disposed on the outer periphery of the lamp beads. The first limiting wall extends circumferentially along the mounting ring, and the extension direction of the second limiting wall intersects with the outer periphery of the first limiting wall.
6. The mirror body of any one of claims 3 to 5, wherein, The substrate is a circuit board, which is pre-bent into a ring shape and embedded in the mounting position so that the outer peripheral wall of the substrate is elastically attached to the first limiting wall.
7. The mirror of claim 6, wherein, The substrate has a solder joint on the side opposite to the LED bead, and the solder joint is connected to a power line to supply power to the LED bead.
8. The mirror of claim 6, wherein, The ratio of the distance between the first limiting wall and the mounting ring to the thickness of the substrate is greater than or equal to 1 and less than or equal to 1.
5.
9. The mirror of claim 1, wherein, The mirror body also includes a starting stop, which includes a circumferential stop wall and a radial stop wall connected to each other. The radial stop wall and the mounting ring are spaced apart in the radial direction of the mounting ring to form a start and end mounting position. The start and end ends of the rigid light strip are respectively embedded in the start and end mounting positions to restrict the movement of the rigid light strip along the radial direction of the mounting ring. The circumferential stop wall is connected to the mounting ring, and the two ends of the rigid light strip are located on both sides of the circumferential stop wall to restrict the rigid light strip from moving circumferentially along the mounting ring.
10. The mirror of claim 2, wherein, The inner wall of the base plate is also provided with multiple support plates for supporting the inner light guide; The top of the support plate is lower than the top of the second limiting wall, and at least two of the support plates are respectively connected to the second limiting wall.
11. The mirror body as described in claim 10, characterized in that, The base plate has a first wall and a second wall facing each other. The middle part of the second wall is recessed to form a light-emitting element mounting position. The first wall is recessed to form an inner mounting position, avoiding the position corresponding to the light-emitting element mounting position. The support plate and the inner light guide are both embedded in the inner mounting position. The mounting ring, the limiting member and the rigid light strip are all located on the first wall at the position corresponding to the light-emitting element mounting position.
12. The mirror of claim 11, wherein, The inner mounting position is also provided with a buffer groove, and the buffer groove is provided with a buffer component. The inner light guide component overlaps with the buffer component so that the buffer component fixes and buffers the inner light guide component.
13. A cosmetic mirror, characterized by It includes a base and a lens body as described in any one of claims 1 to 12, the lens body being connected to the base.