Mirror lamp of automobile sun shield

By designing a combination of a primary light source plate and a light guide plate in the car sun visor mirror light, the problem of uneven light distribution in the mirror is solved, achieving uniform light distribution in the center of the mirror and multiple beauty modes, thus improving the lighting effect and skin care function.

CN121650554APending Publication Date: 2026-03-13FOSHAN ELECTRICAL & LIGHTING
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-27
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

The existing car sun visor mirrors have uneven light distribution at the center and edges, resulting in poor lighting effects.

Method used

A car sun visor mirror light was designed, which uses a combination of a first light source plate and a first light guide plate. The light is deflected towards the center of the mirror by the inclined surface, and the light utilization rate is improved by combining reflective paper and light guide gap. At the same time, the second light source plate provides a variety of beauty modes, which use different wavelengths of light to achieve skin care functions.

Benefits of technology

It achieves a more even distribution of light in front of the mirror, improves the lighting effect, and provides professional makeup and beauty solutions to meet the needs of different makeup looks and skin problems.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an automobile sun shield mirror lamp, and belongs to the technical field of mirror lamps. The frame body is provided with a containing groove, and a mirror is installed at the bottom of the containing groove; the baffle is installed in the containing groove, and an installation groove is formed between the baffle and the side wall of the containing groove; the first light source plate is mounted in the mounting groove; the first light guide plate is arranged at the opening of the mounting groove, and an inclined plane for refracting light rays emitted by the first light source plate towards the center direction of the accommodating groove is arranged on one side, deviating from the first light source plate, of the first light guide plate. Light emitted by the first light source plate is deflected towards the center of the containing groove after penetrating through the first light guide plate, so that the light emitted by the first light source plate can be gathered towards the middle of the mirror, the light on the front side of the mirror is more uniform, and the lighting effect is improved.
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Description

Technical Field

[0001] This invention relates to the field of mirror light technology, and in particular to a car sun visor mirror light. Background Technology

[0002] Because interior lighting in cars is generally insufficient, lighting is often incorporated into the mirrors of car sun visors to ensure a clear view of the reflection. Current technology often involves mounting a light panel around the outer perimeter of the sun visor mirror to provide more light to the face when facing it. However, because the light is positioned on the outer edge of the mirror, the light distribution is uneven between the center and the edges, resulting in poor lighting performance. Summary of the Invention

[0003] The purpose of this invention is to provide an automotive sun visor mirror light to solve one or more technical problems existing in the prior art, and at least provide a beneficial option or create conditions.

[0004] The technical solution adopted to solve the above-mentioned technical problems is as follows: a car sun visor mirror light, comprising: a frame having a receiving groove, wherein a mirror is installed at the bottom of the receiving groove; a baffle installed in the receiving groove, wherein a mounting groove is formed between the baffle and the side wall of the receiving groove; a first light source plate installed in the mounting groove; and a first light guide plate disposed at the opening of the mounting groove, wherein the side of the first light guide plate opposite to the first light source plate has an inclined surface that refracts the light emitted by the first light source plate toward the center of the receiving groove.

[0005] The technical solution has at least the following beneficial effects: the light emitted by the first light source plate is deflected towards the center of the receiving groove after passing through the first light guide plate, so that the light emitted by the first light source plate can be concentrated towards the center of the mirror, making the light on the front side of the mirror more uniform and improving the lighting effect.

[0006] As a further improvement to the above technical solution, a reflective paper is provided on the side of the first light guide plate near the first light source plate, a light guide gap is provided between the first light guide plate and the side wall of the receiving groove, and a light-transmitting mask covering the first light guide plate is provided on the edge of the receiving groove.

[0007] As a further improvement to the above technical solution, a second light source plate is installed on the side of the baffle away from the mounting groove.

[0008] As a further improvement to the above technical solution, a second light guide plate is provided on the side of the mirror away from the bottom of the receiving groove, and a surface glass is provided on the side of the second light guide plate away from the mirror.

[0009] As a further improvement to the above technical solution, the baffle, the first light source plate and the first light guide plate are all arranged in a ring, and the second light source plate is also arranged in a ring.

[0010] As a further improvement to the above technical solution, the second light source board includes spliced ​​tri-color LED beads and bi-color LED beads. The tri-color LED beads include red LED beads, green LED beads and blue LED beads, and the bi-color LED beads include yellow LED beads and infrared LED beads.

[0011] A control method for a car sun visor mirror light, applied to the aforementioned car sun visor mirror light, wherein the first light source panel includes a white mode, a rosy mode, and a natural mode with different light color temperatures, and the control method includes: adjusting the first light source panel to the white mode in response to a first input operation from a user; adjusting the first light source panel to the rosy mode in response to a second input operation from a user; and adjusting the first light source panel to the natural mode in response to a third input operation from a user.

[0012] As a further improvement to the above technical solution, the method includes: acquiring the makeup mode of the irradiated target, wherein the makeup mode includes fair makeup, rosy makeup, and natural makeup; when the makeup mode is fair makeup, adjusting the first light source plate to fair mode; when the makeup mode is rosy makeup, adjusting the first light source plate to rosy mode; and when the makeup mode is natural makeup, adjusting the first light source plate to natural mode.

[0013] As a further improvement to the above technical solution, the second light source panel includes a skin brightening mode, an acne clearing mode, and a soothing mode. The skin brightening mode combines red light and yellow light, the acne clearing mode combines blue light and infrared light, and the soothing mode combines red light, yellow light, green light, and infrared light. The control method includes: adjusting the second light source panel to the skin brightening mode in response to a fourth user input operation; adjusting the second light source panel to the acne clearing mode in response to a fifth user input operation; and adjusting the second light source panel to the soothing mode in response to a sixth user input operation.

[0014] As a further improvement to the above technical solution, the method includes: acquiring the facial condition of the irradiated target, wherein the facial condition includes dullness, acne, and sensitivity; when the facial condition is dullness, adjusting the second light source panel to a brightening mode; when the facial condition is acne, adjusting the second light source panel to an acne-clearing mode; and when the facial condition is sensitivity, adjusting the second light source panel to a soothing mode. Attached Figure Description

[0015] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which: Figure 1 This is a schematic diagram of the overall structure of the mirror lamp according to an embodiment of the present invention; Figure 2This is a cross-sectional structural diagram of the mirror lamp according to an embodiment of the present invention; Figure 3 for Figure 2 Enlarged structural diagram at point A in the middle; Figure 4 This is an exploded structural diagram of the mirror lamp according to an embodiment of the present invention; Figure 5 This is a relative spectral diagram of the fair skin mode in an embodiment of the present invention; Figure 6 This is a relative spectral diagram of the rosy mode in an embodiment of the present invention; Figure 7 This is a relative spectral diagram of the natural mode in an embodiment of the present invention; Figure 8 This is a spectral parameter diagram of the skin brightening mode in an embodiment of the present invention; Figure 9 This is a spectral parameter diagram of the acne-clearing mode in an embodiment of the present invention; Figure 10 This is a spectral parameter diagram of the soothing mode in an embodiment of the present invention.

[0016] 100, Frame; 110, Receiving slot; 120, Mirror; 200, Baffle; 210, Mounting slot; 300, First light source board; 400, First light guide plate; 410, Reflective paper; 420, Light-transmitting mask; 500, Second light source board; 510, Second light guide plate; 520, Surface glass. Detailed Implementation

[0017] Embodiments of the present invention are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.

[0018] In the description of this invention, it should be understood that the orientation descriptions, such as up, down, front, back, left, right, etc., are based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting this invention.

[0019] In the description of this invention, "several" means one or more, "more than" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.

[0020] In the description of this invention, unless otherwise explicitly defined, terms such as "set up," "install," and "connect" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this invention in conjunction with the specific content of the technical solution.

[0021] Reference Figure 1-10 A car sun visor mirror light includes a frame 100, a baffle 200, a first light source plate 300, and a first light guide plate 400.

[0022] The frame 100 is generally rectangular, with a receiving groove 110 on its top surface. The receiving groove 110 extends through the bottom of the frame 100, forming a frame structure. A mirror 120 is installed at the bottom of the receiving groove 110, and the edge of the mirror 120 is fixed to the side wall of the receiving groove 110, thus fixing the mirror 120 to the frame 100. The mirror 120 can be mounted on the sun visor by attaching the back of the frame 100 to it.

[0023] The Mirror 120 uses high-definition optical glass, featuring high light transmittance and low reflectivity, which clearly displays facial details, providing users with a realistic and clear view for makeup and beauty observation. The glass surface is treated with an anti-fog coating, ensuring the mirror remains clear even in environments with significant temperature fluctuations inside the car, preventing fogging from affecting its use.

[0024] The frame 100, serving as the external frame of the entire mirror light, functions to fix and protect the internal components. It is made of high-strength PC plastic, a material with excellent impact resistance, wear resistance, and weather resistance, capable of adapting to the complex and changing environment inside a car and resistant to deformation and cracking over long-term use. The surface of the frame 100 undergoes a fine frosted finish, which not only enhances its texture but also effectively prevents fingerprint residue, maintaining a clean and aesthetically pleasing appearance.

[0025] A baffle 200 is installed in the receiving groove 110. The baffle 200 is adapted to the shape of the frame 100 in an annular configuration, and the length and width dimensions of the baffle 200 are both smaller than the length and width dimensions of the receiving groove 110, so that a mounting groove 210 is formed between the baffle 200 and the side wall of the receiving groove 110. The mounting groove 210 is also adapted to the shape of the frame 100 in an annular configuration.

[0026] The first light source plate 300 is arranged in a ring shape with the frame 100, and the first light source plate 300 can be installed in the mounting groove 210. It can be understood that the side wall of the mirror 120 can be fixed to the inside of the baffle 200, the outside of the baffle 200 is connected to the inside of the first light source plate 300, and the outside of the first light source plate 300 is connected to the inner side wall of the receiving groove 110, thereby fixing the baffle 200 and the mirror 120.

[0027] The first light source board 300 is responsible for providing the makeup lighting function. The LED beads in the first light source board 300 have a power of 1W and a voltage of 6V, ensuring stable and reliable light quality. The first light source board 300 uses a flexible printed circuit board (FPC) for circuit connection, which is thin, light and flexible, and can fit closely to the edge of the mirror to achieve uniform light distribution.

[0028] The first light guide plate 400 is disposed at the side edge of the receiving groove 110. The first light guide plate 400 is arranged in a ring shape to fit the shape of the frame 100. The first light guide plate 400 is installed in the opening of the mounting groove 210 so that the light from the first light source plate 300 shines on the bottom surface of the first light guide plate 400. The side of the first light guide plate 400 away from the first light source plate 300, that is, the top surface, is set as an inclined surface so that the light from the first light source plate 300 can be deflected towards the center of the receiving groove 110 after shining into the first light guide plate 400.

[0029] When the light emitted by the first light source plate 300 passes through the first light guide plate 400, it is deflected towards the center of the receiving groove 110, so that the light emitted by the first light source plate 300 can be concentrated towards the center of the mirror 120, making the light on the front side of the mirror 120 more uniform and improving the lighting effect.

[0030] Furthermore, the bottom surface of the first light guide plate 400 near the first light source plate 300 is flat and covered with reflective paper 410. A light guide gap is provided between the outer periphery of the first light guide plate 400 and the side wall of the receiving groove 110. Light emitted from the first light source plate 300 enters the first light guide plate 400 through the light guide gap, and is then refracted by the first light guide plate 400 and converges towards the center of the mirror 120. It can be understood that at this time, the inclined surface of the first light guide plate 400 is inclined towards the center of the bottom of the receiving groove 110, so that the thickness of the first light guide plate 400 gradually decreases to zero towards the center of the receiving groove 110. The inclination angle of the inclined surface is between 10 degrees and 40 degrees, preferably 15 degrees.

[0031] The reflective paper 410 is made of high-reflectivity PVC material with a special coating treatment, achieving a reflectivity of over 90%. The reflective paper 410 can reflect light emitted from the first light source plate 300 to the rear or sides back to the front, reducing light loss, improving light utilization, and allowing more light to be projected onto the target area through the first light guide plate 400, thus enhancing the overall lighting effect.

[0032] Furthermore, a second light source plate 500 is installed on the inner side of the baffle 200 away from the mounting groove 210, and the light from the second light source plate 500 shines in a horizontal direction away from the baffle 200. The second light source plate 500 surrounds the inner side of the baffle 200, so that the second light source plate 500 is arranged in a ring shape.

[0033] The second light source board 500 includes tri-color LEDs and dual-color LEDs, which are arranged in a modular fashion. The tri-color LEDs include red, blue, and green LEDs. The dual-color LEDs include yellow and infrared LEDs. The second light source board 500 provides the beauty functions, enabling three beauty modes, and also uses a flexible printed circuit board (FPC) for circuit connections.

[0034] A second light guide plate 510 is provided inside the receiving groove 110. The top and bottom surfaces of the second light guide plate 510 are both flat. The second light guide plate 510 is located above the mirror 120, that is, on the side of the mirror 120 away from the bottom of the receiving groove 110.

[0035] The second light guide plate 510 is a nano-light guide plate with a thickness of 3mm. The material of the second light guide plate 510 is not limited to PC, PMMA, PS, glass, etc. When the light emitted by the second light source plate 500 enters the side of the second light guide plate 510, the light is propagated by total internal reflection inside the second light guide plate 510, transforming the concentrated light emitted by the side-emitting second light source plate 500 into a large-area, uniform surface light source, providing users with a comfortable and dark-free beauty lighting environment.

[0036] A surface glass 520 is also provided inside the receiving groove 110. The surface glass 520 is located on the top surface of the second light guide plate 510, that is, on the side of the second light guide plate 510 away from the mirror 120. The surface glass 520 is made of reinforced optical glass, and its surface is tempered, which has high hardness and impact resistance, and can resist scratches and minor collisions in daily use, protecting the internal precision components such as the mirror 120 and the second light guide plate 510.

[0037] A light-transmitting mask 420 is installed at the top edge of the inner side of the receiving groove 110. The light-transmitting mask 420 covers the top surface of the first light guide plate 400, and the shape of the light-transmitting mask 420 is adapted to the top of the first light guide plate 400. The outer periphery of the light-transmitting mask 420 is fixed to the side wall of the receiving groove 110, and the inner edge of the light-transmitting mask 420 is connected to the edge of the surface glass 520, thus fixing the surface glass 520, the light-transmitting mask 420, and the frame 100 relatively. The light-transmitting mask 420, being the outermost layer, is made of PMMA material, which has good light transmittance and optical uniformity, allowing light to illuminate the face more softly and evenly, avoiding light spots and shadows.

[0038] Furthermore, the baffle 200 is a light-shielding plate made of black PC material, which has excellent light-shielding performance. It can effectively block the light from the second light source plate 500 from interfering with the light illumination effect of the first light source plate 300, ensuring that the light from the two functions does not affect each other and each performs at its best. It is understood that both the first light source plate 300 and the second light source plate 500 are electrically connected to a main controller, which can be used to adjust the lighting effects of the first light source plate 300 and the second light source plate 500.

[0039] Among them, the light-transmitting mask 420, the first light guide plate 400 and the reflective paper 410 all extend to the position above the second light source plate 500.

[0040] Reference Figure 5-7 In this embodiment, the first light source board 300 is equipped with three beauty modes: fair mode, rosy mode and natural mode, to meet the lighting needs of different makeup looks.

[0041] White Mode: This mode accurately simulates natural daylight, presenting a pure, neutral white tone. Its spectral parameters are industry-leading: a color temperature of 6500K, close to the color temperature of midday sunlight, providing bright and natural light; Rf (Color Rendering Index) ≥96, Ra (Photobiological Safety) ≥97, indicating that the light source has extremely strong color reproduction capabilities; color preference MCP1r ≥100%, color resolution CDMr ≥105%. This ensures users can clearly and accurately distinguish cosmetic colors, meeting AAA-grade light source color rendering quality standards. This mode is particularly suitable for accurately reproducing earth-toned nude makeup, creating an ideal lighting environment for creating a fair and fresh makeup look, allowing users to achieve a delicate and natural fair makeup effect even inside the car.

[0042] The Rosy Mode, also designed to simulate natural daylight, has a color temperature of 4500K, creating a warm and soft lighting atmosphere. With Rf≥94 and Ra≥97, it maintains excellent color rendering performance. Its color preference MCP1r≥100% and color resolution CDMr≥105% make it ideal for creating a refined, romantic pink-toned date makeup look, making the makeup appear even more rosy, radiant, and captivating under light.

[0043] Natural Mode: Spectral parameters include a color temperature of 5700K, providing a soft and comfortable lighting experience; Rf≥96, Ra≥97, ensuring excellent color reproduction for natural makeup; color preference MCP1r≥100%, color resolution CDMr≥105%. It accurately presents the details and texture of natural makeup, providing professional-grade lighting support for creating a refined natural makeup look, allowing users to easily create a natural and fresh everyday makeup style. Color performance is stable. This mode meets AAA-grade light source color rendering quality standards, providing professional-grade lighting support for creating a refined natural makeup look, allowing users to easily create a natural and fresh everyday makeup look.

[0044] The adjustable color temperature of the first light source board 300 can be achieved by using two or more LEDs with different color temperatures, or by using PWM dimming technology or mixed light output.

[0045] Reference Figure 8-10In this embodiment, the second light source plate 500 is equipped with three beauty modes: brightening mode, acne clearing mode, and soothing mode. By utilizing the characteristics of different wavelengths of light, skin care effects can be achieved.

[0046] Brightening Mode: This mode uses a combination of 630nm red light and 590nm yellow light, with a color ratio of yellow:red = 1:4. Red light promotes blood circulation and accelerates metabolism, while yellow light inhibits melanin production and brightens skin tone. The two work synergistically to achieve a significant skin brightening effect, allowing the skin to glow in a short time.

[0047] Acne-Clearing Mode: Composed of 465nm wavelength blue light and 850nm wavelength infrared light, with a light color ratio of blue:infrared = 5:1. Blue light has powerful antibacterial and anti-inflammatory capabilities, effectively killing Propionibacterium acnes, which causes acne. Infrared light can penetrate deep into the skin's layers, promoting cell repair and regeneration. The combination of these two light sources achieves anti-inflammatory and acne-removing effects, helping users improve acne-prone skin problems.

[0048] Soothing Mode: Integrates 630nm red light, 590nm yellow light, 525nm green light, and 850nm infrared light, with a color ratio of yellow:green:red:infrared = 1:2:8:30. Red and infrared light promote cell repair, yellow light reduces inflammation, and green light has a calming and soothing effect on the skin. The synergistic effect of these multiple light sources provides comprehensive soothing and repair benefits to the skin, effectively relieving skin sensitivity, redness, and other problems.

[0049] This embodiment also provides a control method for an automotive sun visor mirror light. The control method is used to control the aforementioned automotive sun visor mirror light. The control method includes: In response to the user's first input operation, the first light source panel 300 is adjusted to the white mode; in response to the user's second input operation, the first light source panel 300 is adjusted to the rosy mode; in response to the user's third input operation, the first light source panel 300 is adjusted to the natural mode.

[0050] It is understood that the first light source board 300 is connected to an input device, such as a button or touchscreen. Inputting a first operation via the input device adjusts the spectral parameters of the first light source board 300 to the spectral parameters of the whitening mode, thus entering whitening mode. Inputting a second operation adjusts the spectral parameters of the first light source board 300 to the spectral parameters of the rosy mode, thus entering rosy mode. Inputting a third operation adjusts the spectral parameters of the first light source board 300 to the spectral parameters of the natural mode, thus entering natural mode. Furthermore, when users want to use the sun visor mirror light for touch-ups or makeup application, they can select the corresponding mode to operate, thereby achieving a more perfect final effect.

[0051] Furthermore, the control method also includes: acquiring the makeup pattern of the irradiated target, wherein the makeup pattern includes fair makeup, rosy makeup, and natural makeup; when the makeup pattern is fair makeup, adjusting the first light source panel to fair mode; when the makeup pattern is rosy makeup, adjusting the first light source panel to rosy mode; when the makeup pattern is natural makeup, adjusting the first light source panel to natural mode.

[0052] Specifically, the target of the illumination is the person sitting in the driver's seat corresponding to the sun visor. A head photo of the target can be acquired using a camera device, and makeup analysis can be performed on the target's head, including eye, face, lip, and hairstyle analysis. This analysis is compared with corresponding data in a preset database to determine the target's makeup mode. When the overall makeup mode of the target is "fair skin," the spectral parameters of the first light source panel 300 are adjusted to those of the fair skin mode, thus entering the fair skin mode. When the overall makeup mode of the target is "rosy skin," the spectral parameters of the first light source panel 300 are adjusted to those of the rosy skin mode, thus entering the rosy skin mode. When the overall makeup mode of the target is "natural skin," the spectral parameters of the first light source panel 300 are adjusted to those of the natural skin mode, thus entering the natural skin mode. Users can select the makeup mode via an input device using an automatic mode.

[0053] The control method also includes: adjusting the second light source panel 500 to a skin brightening mode in response to a fourth input operation from the user; adjusting the second light source panel 500 to an acne clearing mode in response to a fifth input operation from the user; and adjusting the second light source panel 500 to a soothing mode in response to a sixth input operation from the user.

[0054] It is understood that the second light source board 500 is connected to an input device, such as a button or touchscreen. Inputting a fourth input operation via the input device adjusts the wavelength characteristics of the second light source board 500 to the skin-brightening mode, thus entering skin-brightening mode. Inputting a fifth input operation adjusts the wavelength characteristics of the second light source board 500 to the acne-clearing mode, thus entering acne-clearing mode. Inputting a sixth input operation adjusts the wavelength characteristics of the second light source board 500 to the soothing mode, thus entering soothing mode. Users can select the corresponding mode according to their needs.

[0055] Furthermore, the control method also includes: acquiring the facial condition of the irradiated target, wherein the facial condition includes dullness, acne, and sensitivity; when the facial condition is dullness, adjusting the second light source panel to brightening mode; when the facial condition is acne, adjusting the second light source panel to acne-clearing mode; and when the facial condition is sensitivity, adjusting the second light source panel to soothing mode.

[0056] Specifically, a photograph of the target's face can be acquired using a camera device. Facial analysis of the target's face is then performed, including skin tone analysis, acne analysis, and redness analysis. After obtaining the skin tone, it is compared with a preset skin tone level. Based on the size and depth of the identified reddish areas, it is distinguished whether it is acne or redness, thus obtaining the target's facial condition. When the target's face has a dullness issue, i.e., the skin tone is darker than the preset skin tone level, the wavelength characteristics of the second light source board 500 are adjusted to the brightening mode, and the second light source board 500 enters brightening mode. When the target's face has acne issues, i.e., red acne is identified, the wavelength characteristics of the second light source board 500 are adjusted to the acne-clearing mode, and the second light source board 500 enters acne-clearing mode. When the target's face has sensitivity issues, i.e., redness is identified, the wavelength characteristics of the second light source board 500 are adjusted to the soothing mode, and the second light source board 500 enters soothing mode.

[0057] Users can also select the beauty mode via input device to choose automatic mode. Makeup mode and beauty mode can be used simultaneously or separately.

[0058] Furthermore, when two or three facial issues are present simultaneously, treatments can be administered sequentially based on the severity of each issue, or according to a preset order. Each beauty mode is set to run for 10 minutes or another preset time, with the corresponding LED power density controlled at 40-50 mw / cm², ensuring both effectiveness and safety to prevent skin damage.

[0059] This embodiment of the mirror light, through its innovative functional design and reasonable structural composition, provides users with a more professional and convenient in-vehicle beauty and cosmetic solution, and has broad market application prospects and significant technical advantages.

[0060] This embodiment has the following significant advantages and beneficial effects: 1. Superior color rendering performance: All three makeup modes achieve or approach AAA-grade light source color rendering quality (high Rf, Ra value), and have excellent color preference (high MCPir) and color resolution (high CDMr), which can accurately reproduce the true color of cosmetics and significantly improve the accuracy of makeup application.

[0061] 2. Innovative integrated beauty functions: It breaks through the traditional boundaries of sun visors by integrating three beauty care modes based on specific wavelength combinations: brightening, acne clearing, and soothing. It utilizes photobiological effects to achieve skin care and expands the functional boundaries of sun visors.

[0062] 3. The structural design has been significantly optimized. Key features include a side-emitting LED module (second light source board 500) to improve efficiency, a dedicated light-blocking plate (baffle 200) to effectively isolate interference from makeup and beauty light, and integrated transparent touch buttons for convenient and aesthetically pleasing operation. The overall structure is compact, reliable, and adaptable to the in-vehicle environment. Ultimately, this provides users with a one-stop, professional, and convenient in-vehicle beauty solution, significantly enhancing the user experience.

[0063] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.

Claims

1. A car sun visor mirror light, characterized in that, include: The frame has a receiving groove, and a mirror is installed at the bottom of the receiving groove; A baffle is installed in the receiving groove, and an installation groove is formed between the baffle and the side wall of the receiving groove; The first light source board is installed in the mounting slot; A first light guide plate is disposed at the opening of the mounting groove. The side of the first light guide plate opposite to the first light source plate is provided with an inclined surface that refracts the light emitted by the first light source plate toward the center of the receiving groove.

2. The automotive sun visor mirror light according to claim 1, characterized in that: A reflective paper is provided on the side of the first light guide plate near the first light source plate, a light guide gap is provided between the first light guide plate and the side wall of the receiving groove, and a light-transmitting mask covering the first light guide plate is provided on the edge of the receiving groove.

3. The automotive sun visor mirror light according to claim 1, characterized in that: A second light source plate is installed on the side of the baffle away from the mounting groove.

4. The automotive sun visor mirror light according to claim 3, characterized in that: A second light guide plate is provided on the side of the mirror away from the bottom of the receiving groove, and a surface glass is provided on the side of the second light guide plate away from the mirror.

5. The automotive sun visor mirror light according to claim 3, characterized in that: The baffle, the first light source plate, and the first light guide plate are all arranged in a ring, and the second light source plate is also arranged in a ring.

6. The automotive sun visor mirror light according to claim 3, characterized in that: The second light source board includes spliced ​​tri-color LED beads and bi-color LED beads. The tri-color LED beads include red LED beads, green LED beads and blue LED beads, and the bi-color LED beads include yellow LED beads and infrared LED beads.

7. A method for controlling a car sun visor mirror light, characterized in that, Applied to an automotive sun visor mirror light according to any one of claims 3-6, the first light source plate includes a white mode, a rosy mode, and a natural mode with different light color temperatures, and the control method includes: In response to the user's first input operation, the first light source panel is adjusted to white mode; In response to the user's second input operation, the first light source panel is adjusted to a reddish mode; In response to a third input operation from the user, the first light source panel is adjusted to natural mode.

8. The method for controlling a car sun visor mirror light according to claim 7, characterized in that, include: Obtain the makeup pattern of the irradiated target, wherein the makeup pattern includes fair makeup, rosy makeup and natural makeup; When the makeup mode is fair makeup, adjust the first light source panel to fair mode; When the makeup mode is rosy makeup, the first light source board is adjusted to the rosy mode; When the makeup mode is natural makeup, adjust the first light source panel to natural mode.

9. The method for controlling a car sun visor mirror light according to claim 7, characterized in that, The second light source panel includes a skin brightening mode, an acne clearing mode, and a soothing mode. The skin brightening mode combines red and yellow light, the acne clearing mode combines blue and infrared light, and the soothing mode combines red, yellow, green, and infrared light. The control method includes: In response to the user's fourth input operation, the second light source panel is adjusted to the skin brightening mode; In response to the user's fifth input operation, the second light source panel is adjusted to the acne-clearing mode; In response to the user's sixth input operation, the second light source panel is adjusted to a soothing mode.

10. The method for controlling a car sun visor mirror light according to claim 9, characterized in that, include: Acquire the facial condition of the target being irradiated, wherein the facial condition includes issues such as dullness, acne, and sensitivity. When the facial condition is dullness, adjust the second light source panel to brighten the skin mode; When the facial condition is acne, adjust the second light source panel to acne-clearing mode; When the facial condition is a sensitive issue, adjust the second light source panel to the soothing mode.