Millimeter wave induction cosmetic mirror

CN224761463UActive Publication Date: 2026-09-18GUANGDONG YAYUEJIA HOME FURNISHING TECH CO LTD
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Patent Information

Application Number
CN202522137362.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-09
Publication Date
2026-09-18
Estimated Expiration
2035-10-09

AI Technical Summary

Technical Problem

现有技术中的化妆镜产品,虽已逐步从基础的单一成像功能,向集成照明、角度调节等方向发展,但在智能化、功能协同性及结构稳定性方面,仍存在明显不足,难以满足用户对便捷化、场景化使用的需求,具体问题如下:

Benefits of technology

[0023] The millimeter-wave probe provided by this utility model has an effective detection distance of 0.1-1 meters. It is unaffected by ambient light (such as strong light or weak light) or obstructions (such as thin cosmetics). It can stably identify human approach movements, effectively avoiding false triggering (such as interference from distant objects) or sensor failure. It ensures that the function can be accurately triggered when the user approaches the cosmetics (detection distance of 0.1-1 meters, suitable for close-range use scenarios with makeup mirrors), greatly improving ease of use. At the same time, the light-emitting component and ambient lighting component are only triggered when a human body approaches at close range, and automatically turn off when not in use, which can avoid unnecessary energy consumption.

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Abstract

The utility model discloses a millimeter wave induction cosmetic mirror, including support seat, mirror body, light emitting component, millimeter wave induction assembly and support structure. Support seat inside is equipped with installation space and is equipped with support structure, and mirror body is rotatively connected with support seat. Millimeter wave induction assembly contains main control board and millimeter wave probe, and main control board is electrically connected with light emitting component, and the effective detection distance of probe is 0.1-1 meters, can be integrated or split mounting in mirror body or in support seat. The millimeter wave probe of the cosmetic mirror is not affected by ambient light, light and thin shelter, can stably identify human body close, avoids false triggering or sensing failure, and accurately adapts to dressing close -range scene. Automatically close assembly when not using, reduce invalid energy consumption. Support structure is stable and prevents toppling, and the spare parts are convenient to disassemble, maintain, and the connecting seat has the installation function of multiple components, simplifies the layout, and improves assembly efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of cosmetic mirror technology, specifically to a millimeter-wave sensing cosmetic mirror. Background Technology

[0002] As a common tool for daily makeup and grooming, the functional requirements of makeup mirrors are constantly evolving with the refinement of user scenarios. While existing makeup mirror products have gradually moved beyond basic single imaging functions towards integrated lighting and angle adjustment, they still have significant shortcomings in terms of intelligence, functional synergy, and structural stability. These shortcomings make it difficult to meet users' demands for convenient and scenario-specific use. Specific problems are as follows:

[0003] Currently, most makeup mirrors with sensor functions use infrared sensor modules, which are greatly affected by ambient light (such as strong light and weak light) and obstructions, making them prone to false triggering or sensor failure. Furthermore, the detection range of most sensor modules is not optimized for close-range use scenarios (typically exceeding 1 meter), resulting in the function not being triggered in time when the user is close to the mirror, or being falsely activated due to interference from distant objects when not in use. This affects the user experience and wastes energy. In addition, existing makeup mirrors integrate lighting, audio, and other functions, requiring multiple components to be installed inside the mirror body. However, existing makeup mirrors suffer from structural instability or poorly designed stabilizing structures, which has become a key issue restricting the improvement of user experience. There is an urgent need to design a makeup mirror that integrates precise millimeter-wave sensing and stable support to solve these technical pain points. Utility Model Content

[0004] To achieve the above objectives, this utility model adopts the following technical solution: a millimeter-wave sensing makeup mirror, comprising:

[0005] Support base, wherein the support base has an installation space inside;

[0006] A support structure, wherein the support structure is disposed within the installation space inside the support base;

[0007] The mirror body is rotatably connected to the support base, and the mirror body has an internal cavity.

[0008] A light-emitting component, wherein the light-emitting component is assembled inside the cavity of the mirror body;

[0009] A millimeter-wave sensing component, comprising a main control board and a millimeter-wave probe;

[0010] The main control board is electrically connected to the light-emitting component, and the millimeter-wave probe is electrically connected to the main control board. The effective detection distance of the millimeter-wave probe is 0.1-1 meters.

[0011] The main control board and the millimeter-wave probe are either an integrated structure or separate structures, and the millimeter-wave probe is installed inside the mirror body or in the support base.

[0012] Preferably, when the main control board and the millimeter-wave probe are separate structures, the millimeter-wave sensing component further includes a probe mounting bracket, and the millimeter-wave probe is embedded in the probe mounting bracket.

[0013] Preferably, the support base has a connecting structure at its top, and the mirror body is detachably connected to the support base through the connecting structure; the support base includes a cylindrical body and a base disposed at the bottom of the cylindrical body;

[0014] The support structure includes a cylindrical bottom support, several connecting screws, a counterweight, a square rod fixing frame, and a connecting seat. The square rod fixing frame is vertically arranged inside the cylinder. The connecting seat is fixed to the bottom of the square rod fixing frame. The cylindrical bottom support is located at the bottom of the cylinder. The connecting screws pass through the cylindrical bottom support, the counterweight, and the connecting seat.

[0015] The counterweight is placed on the upper surface of the bottom support of the cylinder, and the connecting screw passes through the counterweight.

[0016] The connecting structure is a connecting square rod, one end of which is connected to the mirror body, and the other end passes through the side wall of the cylinder and is clamped or screwed to the square rod fixing frame.

[0017] Preferably, it also includes a horn, the connecting seat is a horn mounting seat, the horn is fixedly installed in the horn mounting seat, and the cylinder at the horn position is provided with several through holes.

[0018] Preferably, the lens body further includes a back cover and a rotating assembly; the back cover has a concave structure with its concave surface facing outward, forming a mounting base for the lens body, and the lens of the lens body is fixed to the outer edge of the concave surface of the back cover; the rotating assembly includes a damping shaft, one end of which is fixed to the outer end of the connecting square rod, and the other end is fixedly connected to the side of the back cover; the damping shaft can rotate around its own axis, driving the back cover and the lens to rotate synchronously to adjust the lens body angle.

[0019] Preferably, the mirror body further includes a power supply unit, which includes a battery and a battery clamp; the battery is fixed to the inner side of the concave surface of the back cover by the battery clamp, and the pins of the battery clamp are electrically connected to the main control board to provide working power for the millimeter wave sensing component and the light-emitting component.

[0020] Preferably, the light-emitting component includes a light-emitting ring and an LED light; the light-emitting ring is fixed to the outer side of the concave surface of the back cover along the circumferential direction of the lens body cavity, and the light-emitting ring is located below the lens; the LED light is assembled on the inner side of the concave surface of the back cover, and the LED light is electrically connected to the main control board, and the light-emitting ring and the LED light work together to provide surround illumination for the lens.

[0021] Preferably, it also includes an ambient lighting component, which includes a Bluetooth ambient light panel and an ambient light ring; the Bluetooth ambient light panel is fixed to the lower surface of the bottom support of the cylinder and is electrically connected to the main control board; the ambient light ring is a ring structure, sleeved on the outside of the Bluetooth ambient light panel, and the ambient light ring is adapted to the base at the bottom of the cylinder, and can switch between multiple colors of light under the control of the Bluetooth ambient light panel.

[0022] This utility model has the following beneficial effects:

[0023] The millimeter-wave probe provided by this utility model has an effective detection distance of 0.1-1 meters. It is unaffected by ambient light (such as strong light or weak light) or obstructions (such as thin cosmetics). It can stably identify human approach movements, effectively avoiding false triggering (such as interference from distant objects) or sensor failure. It ensures that the function can be accurately triggered when the user approaches the cosmetics (detection distance of 0.1-1 meters, suitable for close-range use scenarios with makeup mirrors), greatly improving ease of use. At the same time, the light-emitting component and ambient lighting component are only triggered when a human body approaches at close range, and automatically turn off when not in use, which can avoid unnecessary energy consumption.

[0024] In the support structure of this utility model, the counterweight is placed on the bottom support of the cylinder, and several connecting screws pass through the bottom support of the cylinder, the counterweight, and the connecting seat. The connecting seat is fixedly connected to the square rod fixing frame. The connecting screws pass through the bottom support of the cylinder, the counterweight, and the connecting seat. This through-type fixing can avoid relative displacement between components due to vibration and external force collision, which significantly improves the overall anti-shaking ability of the support structure and provides a stable vertical support foundation for the entire device. Attached Figure Description

[0025] Figure 1 This utility model provides an exploded view of the structure of a millimeter-wave sensing makeup mirror (including a multimedia component and a split-structure millimeter-wave sensing component).

[0026] Figure 2 : An exploded view of the structure of the millimeter-wave sensing makeup mirror (including an integrated millimeter-wave sensing component) provided by this utility model;

[0027] Figure 3 : A schematic diagram of the overall structure of this utility model;

[0028] Figure 4 Side view of the millimeter-wave sensing makeup mirror with a sloping mounting base of this utility model;

[0029] Figure 5 : Front view of the millimeter-wave sensing makeup mirror with a sloping mounting base of this utility model;

[0030] Legend: 1. Lens body; 10. Lens; 11. Illuminating ring; 12. Battery clamp; 13. Battery; 14. LED light; 15. Damping pivot; 16. Back cover; 17. Connecting square rod; 2. Support base; 20. Base; 211. Ambient light ring; 212. Bluetooth ambient light panel; 213. Bluetooth switch; 22. Connecting screw; 23. Cylindrical bottom bracket; 24. Counterweight; 25. Cylinder body; 26. Connecting base; 260. Speaker mounting bracket; 261. Speaker; 27. Square rod fixing bracket; 28. Cylindrical cover; 3. Millimeter wave sensing component; 31. Main control board; 32. Millimeter wave probe; 33. Probe fixing bracket. Detailed Implementation

[0031] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.

[0032] Reference Figure 1-5 The embodiments provided by this utility model are as follows:

[0033] A millimeter-wave sensing cosmetic mirror includes: a support base 2, a support structure, a mirror body 1, a light-emitting component, and a millimeter-wave sensing component 3; the support base 2 has an internal installation space; the support structure is located within the installation space inside the support base 2; the mirror body 1 is rotatably connected to the support base 2, and the mirror body 1 has an internal cavity; the light-emitting component includes an LED light 14 and a light-emitting ring 11, which are assembled inside the internal cavity of the mirror body 1; the millimeter-wave sensing component 3 includes a main control board 31 and a millimeter-wave probe 32; the main control board 31 is electrically connected to the light-emitting component, the millimeter-wave probe 32 is electrically connected to the main control board 31, and the effective detection distance of the millimeter-wave probe 32 is 0.1-1 meter;

[0034] The main control board 31 and the millimeter-wave probe 32 are either an integrated structure or separate structures. The millimeter-wave probe 32 is installed inside the mirror body 1 or the support base 2. When the main control board 31 and the millimeter-wave probe 32 are separate structures, the millimeter-wave sensing component 3 also includes a probe fixing bracket 33. The millimeter-wave probe 32 is embedded in the probe fixing bracket 33. The top of the support base 2 is provided with a connecting structure. The mirror body 1 is detachably connected to the support base 2 through the connecting structure. The probe fixing bracket 33 can be fixed inside the mirror body 1 or the support base 2.

[0035] The support base 2 includes a cylindrical body 25 and a base 20 located at the bottom of the cylindrical body 25, and a cylindrical cap 28 is provided at the top of the cylindrical body 25.

[0036] The support structure includes a cylindrical bottom bracket 23, four connecting screws 22, a square rod fixing frame 27, a counterweight 24, and a connecting seat 26. The square rod fixing frame 27 is vertically installed inside the cylinder 25, the connecting seat 26 is located at the bottom of the square rod fixing frame 27, the cylindrical bottom bracket 23 is located at the bottom of the cylinder 25, the counterweight 24 is placed on the upper surface of the cylindrical bottom bracket 23, and the four connecting screws 22 pass through the cylindrical bottom bracket 23, the counterweight 24, and the connecting seat 26 in sequence. The outer walls of the connecting seat 26 and the square rod fixing frame 27 are also provided with bolt mounting holes, which can be used to lock the two together by passing bolts through the bolt mounting holes to form a stable support system. The connecting seat 26 or the base 20 (the surface of the base 20 is provided with an inclined surface) can serve as the mounting base for the millimeter-wave sensing component 3. The millimeter-wave probe 32 can be installed here. When the millimeter-wave sensing component 3 is an integral structure (i.e. the millimeter-wave probe 32 is embedded on the main control board 31), the millimeter-wave sensing component 3 can be installed on the outer wall of the connecting seat 26 or on the inclined surface of the base 20. The connecting structure is a connecting square rod 17. One end of the connecting square rod 17 is connected to the mirror body 1, and the other end passes through the side wall of the cylinder 25 and is snapped or screwed to the square rod fixing bracket 27 to achieve a reliable connection between the mirror body 1 and the cylinder 25.

[0037] The makeup mirror also includes multimedia components to create diverse atmospheres for grooming, including ambient lighting and audio components. The ambient lighting components include a Bluetooth ambient light panel 212, an ambient light ring 211, and a Bluetooth switch 213. The Bluetooth ambient light panel 212 is fixed to the lower surface of the cylindrical bottom support 23 and is electrically connected to the main control board 31. The ambient light ring 211 has a ring structure and is fitted around the outside of the Bluetooth ambient light panel 212. The ambient light ring 211 is adapted to the base 20 at the bottom of the cylindrical body 25 and is synchronized with the Bluetooth ambient light. The control of board 212 enables multi-color light switching; the audio component includes a speaker 261 and a speaker mounting base 260. The speaker 261 is located inside the speaker mounting base 260. The speaker mounting base 260 replaces the connector 26 and is installed in the original position of the connector 26. The outer wall of the speaker mounting base 260 can serve as the mounting base for the millimeter-wave probe 32 or the main control board 31. The speaker mounting base 260 not only provides a mounting carrier for the speaker 261, but can also serve as the mounting base for the millimeter-wave sensing component 3, realizing "one structure for multiple purposes", which simplifies the internal layout and improves assembly efficiency.

[0038] The mirror body 1 also includes a rear cover 16 and a rotating assembly: the rear cover 16 has a concave structure with its concave surface facing outward, forming a mounting base for the mirror body 1, and the lens 10 of the mirror body 1 is fixed to the outer edge of the concave surface of the rear cover 16. The concave edge of the rear cover 16 can serve as the mounting base for the millimeter-wave sensing component 3. When the millimeter-wave sensing component 3 is an integral structure (i.e., the millimeter-wave probe 32 is embedded on the main control board 31), the millimeter-wave sensing component 3 can be installed here.

[0039] When the millimeter-wave sensing component 3 is a split structure, the probe holder 33, which is embedded with the millimeter-wave probe 32, can be installed at one of the three locations: the concave edge of the rear cover 16, the aforementioned connecting seat 26, or the aforementioned base 20. The main control board 31 can also be installed at one of the three locations: the concave edge of the rear cover 16, the aforementioned connecting seat 26, or the aforementioned base 20.

[0040] The rotating assembly includes a damping shaft 15. One end of the damping shaft 15 is fixed to the outer end of the connecting square rod 17, and the other end is fixedly connected to the side of the rear cover 16. The damping shaft 15 can rotate around its own axis, driving the rear cover 16 and the lens 10 to rotate synchronously.

[0041] The mirror body 1 also includes a power supply unit, which includes a battery 13 and a battery clamping plate 12. The battery 13 is fixed to the inner side of the concave surface of the rear cover 16 by the battery clamping plate 12. The pins of the battery clamping plate 12 are electrically connected to the main control board 31 to provide working power for the millimeter wave sensing component 3 and the light-emitting component.

[0042] The light-emitting component includes a light-emitting ring 11 and an LED light 14; the light-emitting ring 11 is fixed to the outer side of the concave surface of the back cover 16 along the circumferential direction of the inner cavity of the lens body 1, and the light-emitting ring 11 is located below the lens 10; the LED light 14 is mounted on the inner side of the concave surface of the back cover 16, and the LED light 14 is electrically connected to the main control board 31. The light-emitting ring 11 and the LED light 14 work together to provide surround lighting for the lens 10.

[0043] Finally, it should be noted that the above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A millimeter wave induction cosmetic mirror, characterized by, include: Support base, wherein the support base has an installation space inside; A support structure, wherein the support structure is disposed within the installation space inside the support base; The mirror body is rotatably connected to the support base, and the mirror body has an internal cavity. A light-emitting component, wherein the light-emitting component is assembled inside the cavity of the mirror body; A millimeter-wave sensing component, comprising a main control board and a millimeter-wave probe; The main control board is electrically connected to the light-emitting component, and the millimeter-wave probe is electrically connected to the main control board. The effective detection distance of the millimeter-wave probe is 0.1-1 meters. The main control board and the millimeter-wave probe are either an integrated structure or separate structures, and the millimeter-wave probe is installed inside the mirror body or in the support base.

2. The millimeter wave induction cosmetic mirror of claim 1, wherein: When the main control board and the millimeter-wave probe are separate structures, the millimeter-wave sensing component also includes a probe mounting bracket, and the millimeter-wave probe is embedded in the probe mounting bracket.

3. The millimeter wave induction cosmetic mirror of claim 1, wherein: The support base has a connecting structure at its top, and the mirror body is detachably connected to the support base through the connecting structure; the support base includes a cylindrical body and a base located at the bottom of the cylindrical body. The support structure includes a cylindrical bottom support, several connecting screws, a counterweight, a square rod fixing frame, and a connecting seat. The square rod fixing frame is vertically arranged inside the cylinder. The connecting seat is fixed to the bottom of the square rod fixing frame. The cylindrical bottom support is located at the bottom of the cylinder. The connecting screws pass through the cylindrical bottom support, the counterweight, and the connecting seat. The counterweight is placed on the upper surface of the bottom support of the cylinder, and the connecting screw passes through the counterweight. The connecting structure is a connecting square rod, one end of which is connected to the mirror body, and the other end passes through the side wall of the cylinder and is clamped or screwed to the square rod fixing frame.

4. The millimeter wave induction cosmetic mirror of claim 3, wherein: It also includes a horn, the connecting seat is a horn mounting seat, the horn is fixedly installed in the horn mounting seat, and the cylinder located at the horn position is provided with several through holes.

5. The millimeter-wave sensing makeup mirror according to claim 1, characterized in that: The mirror body also includes a rear cover and a rotating assembly; The back cover has a concave structure with its concave surface facing outward, forming a mounting base for the mirror body, and the lens of the mirror body is fixed to the outer edge of the concave surface of the back cover. The rotating assembly includes a damping shaft. One end of the damping shaft is fixed to the outer end of the connecting square rod, and the other end is fixedly connected to the side of the back cover. The damping shaft can rotate around its own axis, driving the back cover and the lens to rotate synchronously to adjust the lens angle.

6. The millimeter wave induction cosmetic mirror of claim 1, wherein: The light-emitting components include a light-emitting ring and LED lights.

7. The millimeter wave induction cosmetic mirror of claim 1, wherein: It also includes an ambient lighting component, which includes a Bluetooth ambient light panel and an ambient light ring; the Bluetooth ambient light panel is fixed to the lower surface of the bottom support of the cylinder; the ambient light ring is a ring structure and is adapted to the base at the bottom of the cylinder.