An infinite mirror

CN117502873BActive Publication Date: 2026-08-28WENZHOU OUDI MIRROR CO LTD
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Patent Information

Application Number
CN202311524580.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-15
Publication Date
2026-08-28
Estimated Expiration
2043-11-15

AI Technical Summary

Technical Problem

[0003]为了改善镜子装饰效果差的问题,本申请提供一种无限镜

Benefits of technology

1.形成灯带无限延伸的视觉错觉,大大提高装饰效果。

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the field of decorative mirrors, in particular to an infinite mirror which comprises a mirror frame, a mirror cavity is formed in the mirror frame, a reflector and a lens are arranged in the mirror cavity, a single transparent film is arranged on the lens, a reflection surface of the single transparent film faces the reflector, a lamp strip is arranged on the inner wall of the mirror cavity, and the lamp strip is located between the reflector and the single transparent film. The application has the effect of better decoration.
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Description

Technical Field

[0001] This application relates to the field of decorative mirrors, and more particularly to an infinity mirror. Background Technology

[0002] Mirrors are among the most common household items, often placed in bathrooms, bedrooms, and other places. However, existing mirrors are usually decorated by adding patterns to the mirror surface or making embellishments to the frame. The decorative effect is superficial and the overall effect is poor. Summary of the Invention

[0003] To improve the poor decorative effect of mirrors, this application provides an infinity mirror.

[0004] This application provides an infinite mirror, which adopts the following technical solution: An infinity mirror includes a frame with a mirror cavity formed through it. A reflector and a lens are disposed within the mirror cavity. A one-way vision film is disposed on the lens with the reflective surface of the one-way vision film facing the reflector. A light strip is disposed on the inner wall of the mirror cavity between the reflector and the one-way vision film.

[0005] By adopting the above technical solution, when the light strip is lit, the light shines on the one-way vision film. Some of the light passes through the one-way vision film and is received by the user's eyes to form an image. Some of the light is reflected by the one-way vision film to the reflector. The reflector reflects the light back to the one-way vision film. At this time, the light shines through the one-way vision film from different positions and is received by the user, thus creating the visual illusion that the light strip extends infinitely, which greatly improves the decorative effect.

[0006] Optionally, a mirror door frame is rotatably provided on the mirror frame, the lens is disposed inside the mirror door frame, and the mirror door frame is rotated to open the mirror cavity.

[0007] By adopting the above technical solution, the rotating mirror door frame allows users to store miscellaneous items inside the mirror cavity for easy access, such as sunscreen, face oil, hand cream, toothbrush, water cup, and other cosmetics or daily necessities used with the mirror. This makes it more convenient to use, improves the user experience, and enhances practicality.

[0008] Optionally, the reflector and the lens are provided with multiple limiting posts, and the inner wall of the mirror cavity and the inner wall of the mirror door frame are provided with track grooves for the limiting posts to slide in. Multiple through slots are provided through the mirror frame and the mirror door frame, and the through slots are connected to the track grooves. The through slots are used for the reflector or the lens to enter or exit the mirror cavity.

[0009] By adopting the above technical solution, when guests come to the home and the user does not want clutter to be seen by the guests, the reflector and lens can be removed and their positions swapped through the channel. When the reflector is in front, the mirror of this application will be used as an ordinary reflector, and the view of the mirror cavity will be blocked, protecting the user's privacy and further improving the user experience. Moreover, the horizontal sliding of the reflector or lens reduces the probability of the reflector or lens touching the clutter placed in the mirror cavity when sliding, thus protecting the items and also protecting the reflector or lens.

[0010] Optionally, the frame has multiple placement slots, and a track plate is rotatably disposed in each placement slot. After the track plate rotates out, it abuts against the inner wall of the placement slot. A guide slot is provided on the track plate, and the guide slot communicates with the track slot. The limiting post slides from the track slot into another track slot through the guide slot.

[0011] By adopting the above technical solution, after the track plate rotates out, the guide groove and the track groove are connected. At this time, the limiting post slides from the track groove to the guide groove, and then slides from the guide groove to another track groove, which makes the sliding of the reflector and lens smoother and limits the sliding direction of the reflector and lens, reducing the probability that the reflector or lens will be skewed and have difficulty entering the through groove, making the operation process more convenient and faster.

[0012] Optionally, the limiting post includes a sliding post and a positioning post. The length of the positioning post is shorter than the length of the sliding post. The length of the sliding post is adapted to the depth of the track groove. The bottom wall of the guide groove is flush with the bottom wall of the corresponding track groove. The positioning post is inserted and slides in the track groove, and the positioning post also slides outside the guide groove.

[0013] By adopting the above technical solution, when the positioning post slides out of the track groove, the shallow depth of the guide groove releases the restriction on the positioning post, facilitating the sliding of the reflector and lens, further simplifying the operation and making it more convenient and faster.

[0014] Optionally, the mirror door frame is provided with a slot, and the track plate is provided with a locking block, which is used to rotate into the slot and engage with the track plate as it rotates.

[0015] By adopting the above technical solution, when the track plate rotates out to allow the reflector and lens to slide, the locking block is inserted into the slot, thereby locking the mirror door frame on the mirror frame. This reduces the probability of the reflector or lens falling off due to the mirror door frame rotating and opening during the sliding process, improves the stability during sliding, and also protects the user.

[0016] Optionally, a first contact and a second contact are embedded in the inner wall of the placement groove, and the first contact and the second contact are electrically connected. The track plate is provided with a third contact for contacting and electrically connecting with the first contact and a fourth contact for contacting and electrically connecting with the second contact. The third contact releases contact with the first contact and disconnects the electrical connection as the track plate rotates. The third contact and the fourth contact are electrically connected to the light strip to control the on / off state of the light strip's circuit.

[0017] By adopting the above technical solution, when the track plate is opened for operation, the first contact and the third contact disconnect, and the second contact and the fourth contact disconnect, thereby breaking the circuit of the light strip, improving safety, reducing the probability of electric shock to users, and playing a protective role.

[0018] Optionally, a first sealing strip is provided on the inner wall of the through groove, and a second sealing strip is provided on the edge of the reflector and the lens for sealing against the first sealing strip. A sealing block is provided on the reflector and the lens for sealing against the inner wall of the through groove.

[0019] By adopting the above technical solution, the first sealing strip, the second sealing strip, and the sealing block achieve a sealing effect, reducing the probability of water vapor entering the mirror cavity through the gap between the inner wall of the channel and the side wall of the reflector, or through the gap between the inner wall of the channel and the side wall of the lens, thus affecting the light strip. This improves stability and safety, allowing it to be used normally in humid environments such as bathrooms, and expanding its application range.

[0020] Optionally, a first sealing ring is provided on the mirror door frame, and a second sealing ring is provided on the mirror frame. When the mirror door frame rotates and the mirror frame closes, the first sealing ring and the second sealing ring abut against each other to seal. A locking block is provided on the track plate, and the locking block is used to insert into the slot to achieve locking.

[0021] By adopting the above technical solution, the first and second sealing rings achieve a sealing effect, reducing the probability of moisture entering the mirror cavity through the gap between the mirror door frame and the mirror frame, thus affecting the normal operation of the light strip. This improves stability and safety, allowing it to be used normally even in humid environments such as bathrooms, and expanding its application range.

[0022] Optionally, a guide slope is formed on the locking block, which is used to abut against the inner wall of the slot to pull the mirror door frame closer to abut against the mirror frame; a transmission rod is rotatably arranged inside the mirror frame, and a plurality of first reversing gears are arranged on the transmission rod, and a second reversing gear is arranged on the rotating shaft of the track plate for meshing with the corresponding first reversing gear.

[0023] By adopting the above technical solution, the first reversing gear, the second reversing gear, and the transmission rod allow the user to rotate one track plate, which in turn drives multiple other track plates to rotate together, thus facilitating operation and improving synchronization. Furthermore, the contact guidance between the guide slope and the inner wall of the slot reduces the probability of the lock block being difficult to insert into the slot when it is not aligned with the slot, further facilitating operation and making it smoother, more convenient, and faster.

[0024] In summary, this application includes at least one of the following beneficial technical effects: 1. It creates the visual illusion of an infinitely extending light strip, greatly enhancing the decorative effect.

[0025] 2. It protects user privacy and further improves the user experience.

[0026] 3. It expands the range of applicable environments and improves sealing and safety. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the overall structure of an infinite mirror in Embodiment 1 of this application.

[0028] Figure 2 yes Figure 1 A schematic diagram of the explosion structure.

[0029] Figure 3 This is a schematic diagram of the overall structure of an infinite mirror in Embodiment 2 of this application.

[0030] Figure 4 This is a schematic diagram highlighting the placement slot.

[0031] Figure 5 This is a structural diagram showing the hidden frame that highlights the transmission rod.

[0032] Figure 6 yes Figure 5 A magnified structural diagram of point A in the middle.

[0033] Figure 7 yes Figure 5 A magnified structural diagram at point B in the middle.

[0034] Figure 8 This is a structural diagram of the mirror frame that highlights the track groove.

[0035] Figure 9 yes Figure 4 A magnified structural diagram at point C.

[0036] Figure 10 yes Figure 4 A magnified structural diagram at point D.

[0037] Figure 11This is a circuit diagram showing the first and third contacts, and the second and fourth contacts.

[0038] Explanation of reference numerals in the attached drawings: 1. Mirror frame; 11. Mirror cavity; 12. Reflector; 13. Lens; 14. One-way vision film; 15. Light strip; 2. Mirror door frame; 21. Limiting post; 211. Sliding post; 212. Positioning post; 22. Track groove; 23. Through groove; 3. Placement groove; 31. Track plate; 32. Guide groove; 4. Slot; 41. Locking block; 42. First contact; 43. Second contact; 44. Third contact; 45. Fourth contact; 5. First sealing strip; 51. Second sealing strip; 52. Sealing block; 53. First sealing ring; 54. Second sealing ring; 6. Locking block; 61. Guide slope; 62. Transmission rod; 63. First reversing gear; 64. Second reversing gear. Detailed Implementation

[0039] The following is in conjunction with the appendix Figure 1-11 This application will be described in further detail.

[0040] Embodiment 1 of this application discloses an infinite mirror. (Refer to...) Figure 1 and Figure 2 The infinity mirror includes a frame 1, within which a mirror cavity 11 is formed. The frame 1 circumferentially encloses the mirror cavity 11. In this embodiment, the sidewalls of the frame 1 are square frames. A reflector 12 and a lens 13 are fixedly connected within the mirror cavity 11. The mirror cavity 11 has two openings formed within the frame 1, and the reflector 12 and lens 13 are respectively installed at the two openings of the mirror cavity 11. A one-way mirror 14 covers the lens 13. In this embodiment, the one-way mirror 14 is made of a material with certain light transmission and reflection properties, such as an 80% reflectivity film. This means that after light enters the one-way mirror 14, 80% of the light intensity is reflected, while 20% passes through the film. The one-way mirror 14 can cover the sidewall of the lens 13 away from the reflector 12, or it can cover the sidewall of the lens 13 closer to the reflector 12. The reflective surface of the one-way mirror 14 faces the reflector 12. A light strip 15 is fixedly connected to the inner wall of the mirror cavity 11. The light strip 15 extends circumferentially on the inner side wall of the mirror frame 1. The light strip 15 is located between the reflector 12 and the one-way vision film 14.

[0041] The implementation principle of an infinite mirror in this application embodiment is as follows: When the light strip 15 is lit, the light shines on the one-way vision film 14. Part of the light passes through the one-way vision film 14 and is received by the user's eyes to form an image. Another part of the light is reflected by the one-way vision film 14 to the reflector 12. The reflector 12 reflects the light and shines it on the one-way vision film 14 again. At this time, the light shines through the one-way vision film 14 at different positions and is received by the user, thereby forming the visual illusion that the light strip 15 extends infinitely.

[0042] Example 2: Unlike Example 1, referring to Figure 3 and Figure 4 In this embodiment, the direction of gravity is downward, and the opposite direction is upward. A mirror frame 2 is rotatably connected to the side wall of the mirror frame 1 outside the mirror cavity 11. The mirror frame 2 has the same shape as the mirror frame 1. The side wall of the mirror frame 1 extending along the direction of gravity is its length side, and the side wall extending perpendicular to the direction of gravity is its width side. The mirror cavity 11 also passes through the center of the mirror frame 2, meaning the four side walls of the mirror frame 2 form a square frame. The four side walls of the mirror frame 2 enclose the mirror cavity 11, and the side walls of the mirror frame 2 abut against the side wall of the mirror frame 1. One of the lenses 13 or the reflector 12 is installed inside the mirror frame 2, and the other is installed inside the mirror frame 1. The mirror frame 2 rotates to open the mirror cavity 11.

[0043] Reference Figure 5 and Figure 6 and Figure 7 Four limiting posts 21 are fixedly connected to both the reflector 12 and the lens 13. Each limiting post 21 includes a sliding post 211 and a positioning post 212. The four limiting posts 21 fixedly connected to the reflector 12 and the lens 13 are two sliding posts 211 and two positioning posts 212. The length of the positioning post 212 is shorter than the length of the sliding post 211. One positioning post 212 and one sliding post 211 are taken as a group, and there are two groups on one reflector 12 or lens 13.

[0044] Reference Figure 4 and Figure 8 The inner wall of the mirror cavity 11 is provided with a track groove 22, that is, the inner walls of the two width sides of the mirror frame 1 and the inner walls of the two width sides of the mirror door frame 2 are provided with a track groove 22 for the sliding of the limiting post 21. The track groove 22 extends along the extension direction of the inner wall of the mirror frame 1 or the inner wall of the mirror door frame 2 and passes through the corresponding inner wall of the mirror frame 1 or the side wall of the mirror door frame 2 to the outside. The reflector 12 and the lens 13 slide in the track groove 22. Multiple through grooves 23 are provided through the long side of the mirror frame 1 and the long side of the mirror door frame 2. The two ends of the through groove 23 are connected to two track grooves 22 at the same time. The through grooves 23 are used to allow the reflector 12 or the lens 13 to enter or exit the mirror cavity 11.

[0045] Reference Figure 6 and Figure 7 and Figure 8The reflector 12 and lens 13 are the same size. Two sets of positioning posts 212 and sliding posts 211 are located on the upper and lower sides of lens 13 or reflector 12, respectively, and the two sets of positioning posts 212 and sliding posts 211 are symmetrically distributed. The ends of the two sliding posts 211 are inserted into the two track grooves 22, and the side walls of the ends of the sliding posts 211 abut against the bottom wall of the track groove 22. The two positioning posts 212 are also inserted into the two track grooves 22, and cooperate with the sliding posts 211 to fix the position of reflector 12 or lens 13. However, because the positioning posts 212 are short, their ends do not abut against the bottom wall of the track groove 22. Instead, the inner wall of the track groove 22 clamps the side wall of the positioning posts 212.

[0046] Reference Figure 4 and Figure 9 Four placement slots 3 are provided on the outer wall of the long side of the mirror frame 1. The four placement slots 3 are divided into two groups, and the two groups of placement slots 3 are located on the two long sides of the mirror frame 1, respectively. The placement slots 3 in the same group are located at the two ends of the same long side. Placement slots 3 are also provided on the outer wall of the mirror door frame 2, and the placement slots 3 on the mirror door frame 2 correspond one-to-one with the placement slots 3 on the mirror frame 1. Each placement slot 3 of the mirror frame 1 is rotatably connected to a track plate 31. The track plate 31 extends outward from the placement slot 3 of the mirror frame 1. When the mirror door frame 2 is closed, the track plate 31 extends into the placement slot 3 of the mirror door frame 2. The through groove 23 communicates with the placement slot 3. When the track plate 31 rotates into the placement slot 3, it covers and closes the opening of the through groove 23.

[0047] Reference Figure 4 and Figure 8 After the track plate 31 rotates outward toward the placement groove 3, the side wall of the track plate 31 abuts against the inner wall of the placement groove 3 to limit the rotation angle. The rotation directions of the track plates 31 in the same group of placement grooves 3 are opposite. The two track plates 31 after opening are provided with guide grooves 32 on their side walls facing each other. The guide grooves 32 are connected to the track grooves 22 and the through grooves 23. The guide grooves 32 are used to allow the sliding column 211 to slide inside, so that the reflector 12 or lens 13 can be slid from one track groove 22 into another track groove 22 through the guide grooves 32.

[0048] Reference Figure 4 and Figure 6 and Figure 7 The length of the sliding post 211 is adapted to the depth of the track groove 22, and the bottom wall of the guide groove 32 is flush with the bottom wall of the corresponding track groove 22, so that the sliding post 211 is also clamped by the inner wall of the guide groove 32, and the sliding post 211 slides in the guide groove 32. The depth of the guide groove 32 is equal to the length of the sliding post 211 minus the length of the positioning post 212. The positioning post 212 is inserted and slides in the track groove 22, and after the positioning post 212 slides out of the track groove 22, it is suspended on the track plate 31, rather than sliding into the guide groove 32. The positioning post 212 also slides outside the guide groove 32.

[0049] Reference Figure 9 and Figure 10 A slot 4 is provided on the bottom wall of the placement groove 3 of the mirror door frame 2. A locking block 41 is fixedly connected to the track plate 31. When the track plate 31 is rotated outward to the maximum angle of the placement groove 3, the locking block 41 rotates into the slot 4 and engages with the track plate 31. A locking block 6 is also fixedly connected to the track plate 31. The locking block 6 and the guide groove 32 are located on the same side wall of the track plate 31. When the track plate 31 rotates inward to the placement groove 3 to block the opening of the through groove 23, the locking block 6 is inserted into the slot 4 to achieve engagement.

[0050] Reference Figure 10 Guide slopes 61 are formed on the end side wall of the locking block 6 away from the track plate 31 and the end side wall of the locking block 41 away from the track plate 31. The guide slopes 61 are inclined in the direction that the cross-sectional diameter of the locking block 41 or the locking block 6 is smaller the further away from the track plate 31, and the guide slopes 61 face away from the mirror frame 1. The guide slopes 61 are used to abut against the inner wall of the slot 4 to pull the mirror door frame 2 closer to abut against the mirror frame 1.

[0051] Reference Figure 4 and Figure 6 Four transmission rods 62 are rotatably connected inside the frame 1. The four transmission rods 62 are located between the rotation axes of the four track plates 31 respectively. A first reversing gear 63 is fixedly connected to both ends of the length direction of the four transmission rods 62. The length direction of the transmission rod 62 points from the rotation axis of one track plate 31 to the rotation axis of the adjacent track plate 31. The rotation direction of the first reversing gear 63 is perpendicular to the length direction of the transmission rod 62. A second reversing gear 64 for meshing with the corresponding first reversing gear 63 is fixedly connected to the rotation axis of the track plate 31.

[0052] Reference Figure 6 and Figure 7 and Figure 8 Multiple first sealing strips 5 are fixedly connected to the inner walls of the through grooves 23 facing each other. Multiple second sealing strips 51 for contacting and sealing with the first sealing strips 5 are fixedly connected to the side walls of the reflector 12 and the lens 13. Four sealing blocks 52 are also fixedly connected to the reflector 12 and the lens 13. The four sealing blocks 52 are located on the width side of the reflector 12 or the lens 13, and the sealing blocks 52 are located at both ends of the length direction of the width side. The position of the sealing blocks 52 corresponds to the inner wall of the through groove 23 through which the sliding column 211 slides. The sealing blocks 52 are used to contact and seal against the inner wall of the through groove 23.

[0053] Reference Figure 4A first sealing ring 53 is fixedly connected to the side wall of the mirror door frame 2 facing the mirror frame 1. The first sealing ring 53 is circumferentially surrounding the outer ring of the mirror cavity 11 corresponding to the mirror door frame 2. A second sealing ring 54 is fixedly connected to the side wall of the mirror frame 1 facing the mirror door frame 2. The second sealing ring 54 is circumferentially surrounding the outer ring of the mirror cavity 11 corresponding to the mirror frame 1. When the mirror door frame 2 rotates and closes with the mirror frame 1, the first sealing ring 53 and the second sealing ring 54 come into contact and seal.

[0054] Reference Figure 4 and Figure 6 and Figure 8 In this embodiment, the first sealing ring 53, the second sealing ring 54, the first sealing strip 5, the second sealing strip 51, and the sealing block 52 are all made of high-temperature resistant flexible materials, such as high-temperature resistant rubber and high-temperature resistant resin.

[0055] Reference Figure 4 The inner wall of the placement groove 3 is embedded with a first contact 42 and a second contact 43, which are electrically connected. The track plate 31 is provided with a third contact 44 for contacting and electrically connecting with the first contact 42 and a fourth contact 45 for contacting and electrically connecting with the second contact 43. The third contact 44 releases contact with the first contact 42 and disconnects the electrical connection as the track plate 31 rotates. The third contact 44 and the fourth contact 45 are electrically connected to the light strip 15 to control the on / off state of the circuit of the light strip 15.

[0056] Reference Figure 4 The first contact 42 and the third contact 44 are two contacts of the same switch, and the second contact 43 and the fourth contact 45 are two contacts of the same switch. A simplified circuit example is provided below. Reference Figure 11 Let there be two switches on one track plate 31, namely S1 and S2. There are four track plates 31 in total. The switches on the other three track plates 31 are S3, S4, S5, S6, S7, and S8, respectively. The power supply is VCC, and the light strip 15 is L1. The positive terminal of the power supply VCC is connected to one end of the light strip L1. The other end of the light strip L1 is connected to one end of S1. The other end of S1 is connected to one end of S2. The other end of S2 is connected to one end of S3. The other end of S3 is connected to one end of S4. The other end of S4 is connected to one end of S5. The other end of S5 is connected to one end of S6. The other end of S6 is connected to one end of S7. The other end of S7 is connected to one end of S8. The other end of S8 is connected to the negative terminal of the power supply VCC.

[0057] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. An infinity mirror, characterized in that: The system includes a frame (1), a mirror cavity (11) extending through the frame (1), a reflector (12) and a lens (13) disposed within the mirror cavity (11), a one-way mirror (14) disposed on the lens (13), the reflective surface of the one-way mirror (14) facing the reflector (12), a light strip (15) disposed on the inner wall of the mirror cavity (11), the light strip (15) being located between the reflector (12) and the one-way mirror (14); a mirror door frame (2) is rotatably disposed on the frame (1), the lens (13) is disposed within the mirror door frame (2), and the mirror door frame (2) is rotated to open the mirror cavity. (11); The reflector (12) and the lens (13) are provided with multiple limiting posts (21), and the inner wall of the mirror cavity (11) and the inner wall of the mirror door frame (2) are provided with track grooves (22) for the limiting posts (21) to slide in. Multiple through grooves (23) are provided through the mirror frame (1) and the mirror door frame (2), and the through grooves (23) are connected to the track grooves (22). The through grooves (23) are used for the reflector (12) or the lens (13) to enter or exit the mirror cavity (11); Multiple placement grooves (3) are provided on the mirror frame (1). A track plate (31) is rotatably installed inside the placement groove (3). After the track plate (31) rotates out, it abuts against the inner wall of the placement groove (3). A guide groove (32) is provided on the track plate (31). The guide groove (32) is connected to the track groove (22). The limiting post (21) slides from the track groove (22) into another track groove (22) through the guide groove (32). A slot (4) is provided on the mirror door frame (2). A locking block (41) is provided on the track plate (31). The locking block (41) is used to rotate into the slot (4) as the track plate (31) rotates. The track plate (31) is provided with a locking block (6), which is used to insert into the slot (4) to achieve locking; a guide slope (61) is formed on the locking block (6), which is used to abut against the inner wall of the slot (4) to pull the mirror door frame (2) closer to abut against the mirror frame (1); a transmission rod (62) is rotatably provided inside the mirror frame (1); a plurality of first reversing gears (63) are provided on the transmission rod (62); a second reversing gear (64) is provided on the rotating shaft of the track plate (31) for meshing with the corresponding first reversing gear (63).

2. An infinity mirror according to claim 1, characterized in that: The limiting post (21) includes a sliding post (211) and a positioning post (212). The length of the positioning post (212) is shorter than the length of the sliding post (211). The length of the sliding post (211) is adapted to the depth of the track groove (22). The bottom wall of the guide groove (32) is flush with the bottom wall of the corresponding track groove (22). The positioning post (212) is inserted and slides in the track groove (22). The positioning post (212) also slides outside the guide groove (32).

3. An infinity mirror according to claim 1, characterized in that: The inner wall of the placement groove (3) is provided with a first contact (42) and a second contact (43), which are electrically connected. The track plate (31) is provided with a third contact (44) for contacting and electrically connecting with the first contact (42) and a fourth contact (45) for contacting and electrically connecting with the second contact (43). The third contact (44) is released from contact with the first contact (42) and disconnected from the electrical connection as the track plate (31) rotates. The third contact (44) and the fourth contact (45) are electrically connected to the light strip (15) to control the on / off state of the circuit of the light strip (15).

4. An infinity mirror according to claim 1, characterized in that: A first sealing strip (5) is provided on the inner wall of the through groove (23). A second sealing strip (51) is provided on the edge of the reflector (12) and the lens (13) for sealing against the first sealing strip (5). A sealing block (52) is provided on the reflector (12) and the lens (13). The sealing block (52) is used to seal against the inner wall of the through groove (23).

5. An infinity mirror according to claim 1, characterized in that: A first sealing ring (53) is provided on the mirror door frame (2), and a second sealing ring (54) is provided on the mirror frame (1). When the mirror door frame (2) rotates and closes with the mirror frame (1), the first sealing ring (53) and the second sealing ring (54) abut and seal.

Citation Information

Patent Citations

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