Beauty Mask

The photon beauty mask addresses safety and efficacy issues in conventional devices by using a filter-switchable system with a large-area light source for uniform skin treatment, enhancing cosmetic and therapeutic outcomes.

JP2026504404APending Publication Date: 2026-02-05SHENZHEN YUYI ELECTRONICS TECH CO LTD
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Patent Information

Application Number
JP2025544663
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-01-31
Filing Date
2023-08-28
Publication Date
2026-02-05

AI Technical Summary

Technical Problem

Conventional photorejuvenation devices, including IPL and LED-based masks, suffer from safety issues, inconsistent energy distribution, and inadequate wavelength flexibility, leading to suboptimal cosmetic and therapeutic effects on the skin.

Method used

A photon beauty mask with a detachable filter system that allows selection and switching of specific wavelength bands, combined with a large-area, non-contact light source for uniform skin treatment, ensuring safety and efficacy.

Benefits of technology

The mask provides safe, reliable, and efficient skin treatment by avoiding burns and thermal differentiation, achieving superior results in skin whitening, rejuvenation, and collagen regeneration with reduced application time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The cosmetic mask of the present application comprises a mask body, a first light source assembly disposed on the mask body, and a first optical sheet assembly, the first light source assembly including a light source, the first optical sheet assembly including at least one filter, the light emitted from the light source of the first light source assembly passing through the at least one filter, the light emitted in a frontal direction of the mask body, and the light from the light source emitted from the front and irradiated onto the face of a user wearing the cosmetic mask. In the present application, a large-area full-surface light is used to simultaneously cover the entire face, including blind spots such as the tip of the nose and lips. The full-surface illumination maximizes the consistency of facial skin treatment, significantly enhancing the overall whitening and rejuvenation effects of the facial skin, and the full-surface illumination can be used to cover the facial skin, significantly reducing the usage time.
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Description

[Technical Field]

[0001] The present application relates to beauty devices, and in particular to photon beauty masks. [Background technology]

[0002] Intense Pulsed Light (IPL) is a broadband visible light that has achieved remarkable clinical results in the treatment of vascular and pigmented lesions, hirsutism, scars, acne, and photorejuvenation. IPL is generated by focusing a high-intensity light source and filtering it initially to form a powerful beam of light with a wavelength of 400-1200 nm. A filter can then be placed in front of the beam to capture photons of a specific wavelength band suitable for skin treatment and cosmetic applications. IPL photorejuvenation penetrates deep into the skin, and through photothermal and photochemical effects, it realigns and recombines elastic and collagen fibers, restoring skin elasticity and tightening the skin, resulting in a more youthful appearance. It also has the potential to improve acne, remove redness and dark spots, whiten skin, reduce fine lines and wrinkles, improve dullness, and brighten skin.

[0003] For facial rejuvenation, whitening, blemish removal, capillary removal, etc., conventional photorejuvenation devices have a light exit area (generally 1-4cm 2 Due to the influence of the laser, the photon irradiation area moves as the device is moved during use. Therefore, the irradiation area overlaps with each light emission, or the spacing varies, resulting in different light and dark effects on the unirradiated skin. If a large-area light outlet is used directly, IPL photons can easily damage the skin and other tissues due to distance control or improper use. Conventional LED-based mask beauty devices, however, lack energy and have a single, fixed wavelength band, making them unable to provide beneficial effects for various skin conditions. Furthermore, the energy intensity of LED-based masks is insufficient, resulting in poor cosmetic results.

[0004] Therefore, there is a need to provide a photon cosmetic device that is safe, reliable, easy to use, and has excellent therapeutic and cosmetic effects. Summary of the Invention [Problem to be solved by the invention]

[0005] The object of the present application is to provide a beauty mask that is safe, reliable, easy to use, and has excellent beauty effects. [Means for solving the problem]

[0006] In order to achieve the object of the present application, the following technical means are provided.

[0007] The present application provides a cosmetic mask comprising a mask body, a first light source assembly disposed on the mask body, and a first optical sheet assembly, wherein the first light source assembly includes a light source, and the first optical sheet assembly includes at least one filter or filter film attached to the light source, and the light emitted from the light source of the first light source assembly passes through the at least one filter or filter film and then passes through the mask body to be emitted. In some specific embodiments, the emission direction is a front direction of the mask body, wherein the front direction is a direction toward the user's face when the user wears the cosmetic mask, and the light from the light source is emitted from the front direction and irradiated onto the face of the user wearing the cosmetic mask.

[0008] The filter transmits light of a specific wavelength and blocks light of other wavelengths, ultimately emitting light of a specific wavelength band suitable for skin treatment or beauty. The corresponding wavelength band is selected according to the purpose and effect of the treatment or beauty treatment. That is, the corresponding filter is selected. The wavelength band to be selected according to the symptoms and treatment / beauty plan is a matter to be considered by the treatment or beauty user or physician, and is also within the knowledge field of the beauty industry. It does not affect the implementation or technical effects of the technical solution of this application. This application provides a device that can be used for treatment / beauty. After determining the wavelength band required for the treatment / beauty plan, the beauty mask of this application and its corresponding filter can be used. The filter may be fixed to the beauty mask. Different models of beauty masks can be selected to meet various needs. The filter may also be detachably attached to the beauty mask. Different filters can be replaced to meet various needs. Furthermore, multiple different wavelength band filters may be placed within the beauty mask, and different emission wavelength bands can be selected by switching between them. The beauty mask of this application is safe, reliable, easy to use, and has excellent beauty effects.

[0009] In some embodiments, the first optical sheet assembly uses a filter, which is detachably attached to the cosmetic mask, allowing filters of different wavelength bands to be switched as needed, particularly for larger filters, to address various skin conditions and comprehensively and effectively resolve various skin problems. In some specific embodiments, the mask body is provided with at least one slot, and the at least one filter can be accommodated in the at least one slot. In some other specific embodiments, the first optical sheet assembly further includes at least one optical sheet bracket, and the at least one filter is arranged corresponding to the at least one optical sheet bracket, and the mask body and the optical sheet bracket are each provided with a magnetic member that cooperates with and is attracted to each other, and the optical sheet bracket is attached to the mask body via the magnetic member, allowing the filter to be removed and replaced. In other embodiments, the first optical sheet assembly includes a filter film attached to a light source, and specifically, the light source may be a lamp tube to which a filter film may be attached.

[0010] The cosmetic mask of the present application is a non-contact cosmetic treatment, which can effectively avoid burns compared to commercially available contact-type DPL photorejuvenation devices. Furthermore, the non-contact method allows light to diffuse more effectively on the skin. Compared to LED mask treatments, the difference is that LED light sources have higher energy and faster speeds, while the energy of LED light sources is low, resulting in less thermal differentiation between the deep and superficial layers of the skin during treatment, resulting in heat being absorbed by the epidermis, resulting in poor treatment efficacy. The cosmetic mask of the present application uses a large, full-area light source to simultaneously cover the entire face, including blind spots such as the nose and lips. Full-area illumination maximizes the consistency of facial skin treatment and significantly improves the beneficial effects of whitening, rejuvenation, and collagen regeneration stimulation. At the same time, compared to commercially available photorejuvenation devices, each flash only affects a small area of ​​skin, and depending on the size of the facial area, dozens to hundreds of flashes are required to cover the entire face. However, in the present application, full-surface irradiation is used to cover the entire face with just one flash, significantly shortening usage time. One flash (0.2 to 3 seconds) in the present application is equivalent to using a commercially available photorejuvenation device once (approximately 3 to 5 minutes). If 30 flashes are used each time, as in the present application, the effect can be achieved several tens of times that of a regular photorejuvenation device with each use. In the present application, treatment / beauty is performed by wearing a mask, and light in the required wavelength band can be obtained by turning on the light source, and treatment / beauty plans can be implemented by irradiating the face directly, making operation very convenient.

[0011] In some embodiments, at least one filter of the first optical sheet assembly is disposed forward of the front surface of the mask body, and light emitted from the light source of the first light source assembly is emitted through a filter disposed forward of the front surface of the mask body, and the light filtered by the filter is irradiated onto the face of a user wearing the cosmetic mask.

[0012] In some embodiments, the first light source assembly includes one light source, while in other embodiments, the first light source assembly includes at least two light sources. In some specific embodiments, the at least two light sources are arranged along a surface that cooperates with the outer shape of the mask body to improve cosmetic effects. Specifically, when the front outer shape of the mask body is an arcuate surface that matches the outer shape of a human face, the at least two light sources are arranged in an array along the arcuate surface that matches the outer shape of the mask body.

[0013] In some embodiments, the at least one filter has a switchable first position and a switchable second position, and when the at least one filter is in the first position, light emitted by the first light source assembly is output through the at least one filter. In some specific embodiments, the first optical sheet assembly is provided with one filter, and when the filter is in the first position, light emitted from the first light source assembly is output through the filter, and when the filter is in the second position, a synchronous power switch can be used to cut off power and turn off the light source. In other embodiments, a light-blocking sheet may be provided. When the filter is in the second position, the light-blocking sheet is in the first position and blocks the output light, enabling the output light switch to be switched. In other embodiments, the first optical sheet assembly is provided with two filters of different wavelength bands, and the two filters are switchable between the first position and the second position, and the filter in the first position filters the output light. In another embodiment, the first optical sheet assembly is provided with three or more filters of different wavelength bands, each having a first position, a second position, a third position, etc. that can be switched, and the filter in the first position filters the emitted light.

[0014] In some embodiments, the first light sheet assembly includes a rotatable light sheet bracket, the at least one filter is disposed corresponding to the light sheet bracket, and the light sheet bracket can rotate around the first light source assembly, thereby switching the at least one filter between a first position and a second position around the first light source assembly, the first position being located on one side of the light emission direction. In yet another embodiment, the at least one filter is detachably disposed on the rotatable light sheet bracket.

[0015] In some embodiments, the first light sheet assembly includes at least one rotatable light sheet bracket, a corresponding number of the filters, and a corresponding number of the light sources, the filters being arranged corresponding to the light sheet bracket, and the light sheet bracket being actuable to rotate the filters around the light source, thereby switching the filters between a first position and a second position around the light source, the first position being located on one side of the light emission direction. In yet other embodiments, the first light sheet assembly includes at least two filters, which can be rotated around the first light source assembly by manual or motorized control. Specifically, the first light source assembly may be a vertically arranged IPL lamp tube.

[0016] In some embodiments, the light source of the first light source assembly is positioned vertically and extends along the axial direction of the optical sheet bracket, the optical sheet bracket rotates around the axial direction, and the filter is positioned around the outer periphery of the light source along the circumferential direction of the optical sheet bracket, and the filter extends along the axial direction of the optical sheet bracket.

[0017] In some embodiments, the cosmetic mask further includes a filter adjustment device including a first adjustment member, the optical sheet bracket is provided with a second adjustment member cooperating with the first adjustment member, and the optical sheet bracket can be driven to rotate about an axial direction by transmitting power to the second adjustment member via the first adjustment member. In some specific embodiments, the second adjustment member is an adjustment gear, the first adjustment member is an adjustment rack cooperating with the adjustment gear, and the filter adjustment device further includes an operating member connected to the adjustment rack.

[0018] In some embodiments, the first optical sheet assembly includes at least two corresponding optical sheet brackets, the light source is a vertically arranged IPL lamp tube, each lamp tube is individually attached to one of the optical sheet brackets, the second adjustment member is an adjustment gear, and the first adjustment member is an adjustment rack cooperating with the adjustment gear, the adjustment gears of all the optical sheet brackets are arranged along an arc cooperating with the outer shape of the mask body, the outer shape of the adjustment rack is arc-shaped and is aligned with the outer curvature of the arc-shaped adjustment gears, and the adjustment rack meshes with the outer cross-sectional direction of each adjustment gear, resulting in high transmission efficiency and strong synchronization.

[0019] In some embodiments, the second adjustment member is disposed within the mask body, and one side of the first adjustment member cooperates with the second adjustment member, while the other side is connected to an operating member protruding outside the mask body, facilitating adjustment by the user. In specific embodiments, the first adjustment member is an adjustment rack, and the second adjustment member is an adjustment gear, and the adjustment rack and adjustment gear are interlocked. One side of the operating member is connected to the adjustment rack, while the other side protrudes outside the mask body, facilitating adjustment by the user. A user operates the operating member to propel the adjustment rack and rotate the adjustment gear. The adjustment gear is attached to the optical sheet bracket, and the rotation axis of the adjustment gear coincides with the axis of the optical sheet bracket, so that the optical sheet bracket can be driven to rotate around the axial center. In specific embodiments, the operating member may be another gear that interlocks with the adjustment rack, a knob that cooperates with the adjustment rack, a push rod that drives the adjustment rack to move laterally, or the like.

[0020] In some specific embodiments, the adjustment rack can be arc-shaped to fit the outer shape of the mask body, and this arc-shaped design matches the outer circumferential arc of the adjustment gear to improve transmission efficiency.

[0021] In some specific embodiments, the first light source assembly has at least two light sources, and the first optical sheet assembly includes at least two corresponding optical sheet brackets, the light sources are vertically arranged IPL lamp tubes, each lamp tube is individually attached to one of the optical sheet brackets, the second adjusting member is an adjusting gear, and the first adjusting member is an adjusting rack cooperating with the adjusting gears, the adjusting gears of all the optical sheet brackets are arranged along an arc cooperating with the outer shape of the mask body, the outer shape of the adjusting rack is arc-shaped and matches the outer circumferential curvature of the arc-shaped adjusting gears, and the adjusting rack meshes with the outer circumferential cross-sectional direction of each adjusting gear, thereby achieving high transmission efficiency and strong synchronization.

[0022] In some embodiments, the first light source assembly includes at least one IPL light source, at least one tungsten light source, or at least one carbon fiber light source, while in other embodiments, the first light source assembly includes at least one IPL light source and at least one tungsten light source, i.e., the light source simultaneously emits light using an IPL light source and a tungsten lamp.

[0023] In some embodiments, the first optical sheet assembly further includes a reflective member disposed behind the light source. One reflective member may be used to reflect light from all light sources, or one reflective member may be provided for each light source. The reflective member has an arcuate surface shape disposed around the light source. Specifically, the arcuate surface of the reflective member extends along the circumferential direction of the light source and is disposed around the light source, thereby more efficiently reflecting light emitted backward from the light source toward the front of the mask. When multiple reflective members are provided, the multiple reflective members may be connected to each other.

[0024] In some embodiments, the first optical sheet assembly may further include at least one cosmetic mirror removably attached to the front of the cosmetic mask. In other embodiments, the filter of the first optical sheet assembly is disposed on the front of the cosmetic mask, with a filter film plated on one side of the filter and a single-sided light-transmitting film plated on the other side. Light passes through the surface of the filter film and then through the single-sided light-transmitting film to achieve photonic beauty treatment. When photonic beauty treatment is not in use, the other side plated with the single-sided light-transmitting film can be used as a regular cosmetic mirror. In other words, the photonic beauty filter and the cosmetic mirror are integrated into a design, which effectively improves product utilization and reduces the user's equipment purchase costs and usage time.

[0025] In some embodiments, the cosmetic mask further includes a heat dissipation member disposed behind the reflective member. Heat dissipation from the light source may be achieved by airflow / suction using a fan, or by heat conduction / dissipation using an aluminum part, copper block, heat pipe, or the like. In some embodiments, the cosmetic mask further includes a mask back shell that is attached to the mask body to form a cavity that can accommodate the light source, reflective member, and heat dissipation member. The mask back shell is disposed at the rear of the cosmetic mask, the rear being the side opposite the front of the cosmetic mask, i.e., the side facing away from the user's face when the cosmetic mask is worn. The mask back shell has heat dissipation holes that communicate with the cavity.

[0026] In some embodiments, the cosmetic mask further includes a head position limiting block fixedly or detachably arranged in the front direction of the mask body.

[0027] In some embodiments, the cosmetic mask further includes an elastic belt that is used to help secure the cosmetic mask by being wrapped around the user's head when wearing the cosmetic mask, and the elastic belt has an elastic adjustment structure or is elastic.

[0028] In some embodiments, the cosmetic mask further includes a circuit board within the mask body, and the first light source assembly is connected to the circuit board. In other embodiments, the circuit board is disposed outside the cosmetic mask and is connected via a socket during use. [Effects of the Invention]

[0029] Compared with the prior art, the advantages of the present application are as follows:

[0030] The cosmetic mask of the present application is a non-contact cosmetic treatment method, which effectively avoids burns compared to the contact-type treatments used in commercially available DPL photorejuvenation devices. Furthermore, the non-contact method allows light to diffuse more effectively, resulting in a more effective effect on the skin. The present application employs a large, full-area light source to simultaneously cover the entire face, including blind spots such as the nose and lips. Full-area illumination maximizes consistency in facial skin treatment and significantly enhances the beneficial effects of whitening, rejuvenation, and collagen regeneration stimulation. At the same time, compared to commercially available photorejuvenation devices, each flash only affects a small area of ​​skin, and depending on the size of the facial area, dozens to hundreds of flashes are required to cover the entire face. However, the present application utilizes full-area illumination to cover the entire face with just one flash, significantly reducing application time. One flash (0.2-3 seconds) of the present application is equivalent to one use of a commercially available photorejuvenation device (approximately 3-5 minutes). As in the present application, if 30 flashes are used each time, the effect can be several tens of times greater than that of a regular photorejuvenation device each time.

[0031] Furthermore, the present application can obtain output light of different wavelength bands by changing the filter, meet various treatment / beauty needs, respond to different skin conditions, and solve different skin problems comprehensively and effectively. It is easy to use, has good treatment / beauty effects, and the filter load switching method is flexible, convenient and diverse.

[0032] Furthermore, the present application employs the characteristics of an IPL light source, allowing the light energy to be instantly applied to the target skin, reducing energy and heat loss and achieving faster and more effective treatment results. The low energy of the LED light source used in conventional beauty devices results in little thermal differentiation between the deep and superficial layers of the skin during treatment, resulting in heat being absorbed by the epidermis and poor treatment results. The difference between the treatment of the present application and that of an LED beauty device is the higher energy and faster treatment speed. Furthermore, some embodiments of the present application use a halogen lamp, whose continuous broadband spectrum of near-infrared wavelengths better affects the deep layers of the skin, stimulating collagen regeneration, and its full-spectrum characteristics more effectively inhibit melanin secretion, achieving better whitening effects. [Brief explanation of the drawings]

[0033] [Figure 1] 1 is a first three-dimensional view of a cosmetic mask according to Example 1 of the present application. [Figure 2] FIG. 2 is a second three-dimensional view of the cosmetic mask according to Example 1 of the present application. [Figure 3] 1 is a cross-sectional view of a cosmetic mask according to Example 1 of the present application. [Figure 4] 1 is a longitudinal cross-sectional view of a cosmetic mask according to Example 1 of the present application. [Figure 5] FIG. 1 is an exploded view of a cosmetic mask according to Example 1 of the present application. [Figure 6] FIG. 2 is a schematic diagram showing a beauty mask according to Example 1 of the present application inserted into a power socket. [Figure 7] 1 is a schematic diagram showing the connection relationship between a beauty mask and a power socket according to a first embodiment of the present application. [Figure 8] FIG. 10 is a schematic diagram of components of a power socket according to a second embodiment of the present application. [Figure 9] 1 is a first three-dimensional view of a cosmetic mask according to Example 2 of the present application. [Figure 10] FIG. 2 is a second three-dimensional view of a cosmetic mask according to Example 2 of the present application. [Figure 11]FIG. 1 is a first cross-sectional view of a cosmetic mask according to Example 2 of the present application. [Figure 12] FIG. 2 is a second cross-sectional view of a cosmetic mask according to Example 2 of the present application. [Figure 13] FIG. 2 is a longitudinal cross-sectional view of a cosmetic mask according to Example 2 of the present application. [Figure 14] FIG. 2 is an exploded view of a cosmetic mask according to Example 2 of the present application. [Figure 15] FIG. 10 is a schematic diagram showing the connection relationship between a beauty mask and a power socket according to a second embodiment of the present application. [Figure 16] 1 is a three-dimensional view of a photonic cosmetic mirror according to Example 3 of the present application. [Figure 17] FIG. 10 is a schematic diagram of a slot-type first optical sheet assembly of a photonic cosmetic mirror according to Example 3 of the present application. [Figure 18] FIG. 10 is a longitudinal axial cross-sectional view of a photonic cosmetic speculum according to a third embodiment of the present application. [Figure 19] FIG. 10 is an exploded view of a photonic cosmetic mirror according to Example 3 of the present application. [Figure 20] 1 is a schematic diagram of the use of a photon cosmetic mirror according to Example 3 of the present application. [Figure 21] FIG. 10 is a schematic diagram of a magnetic attraction type first optical sheet assembly of a photonic cosmetic mirror according to Example 3 of the present application. [Figure 22] 1 is a three-dimensional view of a photonic cosmetic mirror according to Example 4 of the present application. [Figure 23] FIG. 10 is a longitudinal axial cross-sectional view of a photonic cosmetic speculum according to a fourth embodiment of the present application. [Figure 24] FIG. 10 is a cross-sectional view of a photonic cosmetic speculum according to Example 4 of the present application. [Figure 25] FIG. 10 is an exploded view of a photonic cosmetic mirror according to Example 4 of the present application. [Figure 26] 1 is a three-dimensional view of a photon cosmetic mirror according to Example 5 of the present application. [Figure 27] FIG. 10 is a longitudinal axial cross-sectional view of a photonic cosmetic speculum according to a fifth embodiment of the present application. [Figure 28] FIG. 10 is a cross-sectional view of a photonic cosmetic speculum according to Example 5 of the present application. [Figure 29] FIG. 10 is a front cross-sectional view of a photonic cosmetic speculum according to Example 5 of the present application. [Figure 30] FIG. 10 is an exploded view of a photonic cosmetic mirror according to Example 5 of the present application. [Figure 31] FIG. 10 is a longitudinal axial cross-sectional view of a photonic cosmetic speculum according to a sixth embodiment of the present application. [Figure 32] FIG. 10 is a front cross-sectional view of a photonic cosmetic speculum according to Example 6 of the present application. [Figure 33] FIG. 10 is a cross-sectional view of a photonic cosmetic speculum according to Example 6 of the present application. [Figure 34] FIG. 10 is an exploded view of a photonic cosmetic mirror according to Example 6 of the present application. DETAILED DESCRIPTION OF THE INVENTION

[0034]

[0023] Exemplary embodiments of the present application will now be described in detail with reference to the drawings. While the drawings illustrate exemplary embodiments of the present application, it should be understood that the present application is not limited to the embodiments set forth herein and may be embodied in various forms. On the contrary, these embodiments are provided to provide a clearer and more complete understanding of the present application and to fully convey the scope of the present application to those skilled in the art.

[0035] It is also to be understood that the terminology used herein is for the purpose of describing particular exemplary embodiments only, and is not intended to be limiting. As used herein, the singular forms "a," "an," and "said" are intended to include the plural unless the context clearly dictates otherwise. The terms "comprise," "include," "have," and "comprises" are inclusive and, therefore, indicate the presence of stated features, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, steps, operations, elements, components, and / or combinations thereof. The method steps, processes, and operations described herein should not be construed as necessarily required to be performed in the particular order described or illustrated, unless an order of execution is explicitly indicated. It should also be understood that additional or alternative steps may be employed.

[0036] Terms such as "first," "second," and "third" may be used herein to describe multiple elements, components, regions, layers, and / or sections; however, these elements, components, regions, layers, and / or sections should not be limited by these terms. These terms may be used only to distinguish one element, component, region, layer, or section from another region, layer, or section. Unless the context clearly dictates otherwise, terms such as "first," "second," and other numerical terms, when used herein, do not imply a sequence or order. Thus, a first element, component, region, layer, or section described below may be referred to as a second element, component, region, layer, or section without departing from the teachings of the exemplary embodiments.

[0037] For ease of explanation, spatially relative terms such as "interior," "exterior," "inner," "outer," "lower," "below," "upper," "upper," "tip," "rear," and the like may be used herein to describe the relationship of one element or feature to another as shown in the figures. Such spatially relative terms are intended to encompass different orientations of the device in use or operation other than that depicted in the figures. For example, if the device in the figures is turned over, an element described as "under other elements or features" or "under other elements or features" would then be oriented as "on top of other elements or features" or "above other elements or features." Thus, the exemplary term "under" can encompass both above and below orientations. The device can be oriented in other directions (rotated 90 degrees or otherwise), and the spatially relative descriptors used herein would be interpreted accordingly.

[0038] 1 to 5, a cosmetic mask according to Example 1 of the present application includes a mask body 6100, a first light source assembly disposed on the mask body 6100, and a first optical sheet assembly, the first light source assembly including a light source 6210. In this example, three light sources 6210 are provided, and the first optical sheet assembly includes a filter 6310. The filter 6310 is disposed forward of the front of the mask body 6100, and the light source is covered within the space between the mask body 6100 and a reflective member 6320. Light emitted from the light source 6210 of the first light source assembly passes through the filter 6310 and is emitted in the front direction of the mask body 6100, with area a in the figure being the light emission area. Here, the front direction is the direction toward the user's face when the user wears the cosmetic mask, and light from the light source 6210 is emitted from the front direction and irradiated onto the face of the user wearing the cosmetic mask.

[0039] The front of the mask body 6100 may have a curvature that fits a human face, as shown in FIGS. 1 to 11. In other embodiments, the front of the mask body may be flat or may be composed of multiple surfaces that are angled relative to one another. In this embodiment, the present application is specifically realized as a wearable mask. In other embodiments, the present application may be used on a desktop or handheld.

[0040] The filter transmits light of a specific wavelength and blocks light of other wavelengths, ultimately emitting light of a specific wavelength band suitable for skin treatment or beauty. The corresponding wavelength band is selected according to the purpose and effect of the treatment or beauty treatment. That is, the corresponding filter is selected. The wavelength band to be selected according to symptoms and treatment / beauty regimen is a matter to be considered by the treatment or beauty regimen user or physician, and is also within the knowledge field of the beauty regimen industry. This does not affect the implementation or technical effect of the technical solution of this application. This application provides a device that can be used for treatment / beauty treatment. After determining the wavelength band required for the treatment / beauty regimen, the beauty mask of this application and its corresponding filter can be used. The filter may be fixed to the beauty mask. Different models of beauty masks can be selected to meet various needs. The filter may also be detachably attached to the beauty mask. Different needs can be met by replacing the filter.

[0041] The cosmetic mask of the present application is a non-contact cosmetic treatment, which can effectively avoid burns compared to commercially available contact-type DPL photorejuvenation devices. Furthermore, the non-contact method allows light to diffuse more effectively on the skin. Compared to LED mask treatments, the difference is that LED light sources have higher energy and faster speeds, while the energy of LED light sources is low, resulting in less thermal differentiation between the deep and superficial layers of the skin during treatment, resulting in heat being absorbed by the epidermis, resulting in poor treatment efficacy. The cosmetic mask of the present application uses a large, full-area light source to simultaneously cover the entire face, including blind spots such as the nose and lips. Full-area illumination maximizes the consistency of facial skin treatment and significantly improves the beneficial effects of whitening, rejuvenation, and collagen regeneration stimulation. At the same time, compared to commercially available photorejuvenation devices, each flash only affects a small area of ​​skin, and depending on the size of the facial area, dozens to hundreds of flashes are required to cover the entire face. However, in the present application, full-surface irradiation is used to cover the entire face with just one flash, significantly shortening usage time. One flash (0.2 to 3 seconds) in the present application is equivalent to using a commercially available photorejuvenation device once (approximately 3 to 5 minutes). If 30 flashes are used each time, as in the present application, the effect can be achieved several tens of times that of a regular photorejuvenation device with each use. In the present application, treatment / beauty is performed by wearing a mask, and light in the required wavelength band can be obtained by turning on the light source, and treatment / beauty plans can be implemented by irradiating the face directly, making operation very convenient.

[0042] As shown in Example 1 in FIGS. 1 to 7 , the light sources 6210 of the first light source assembly employ three IPL lamp tubes arranged vertically, and may employ an IPL lamp tube and a halogen lamp tube. The illustrated first optical sheet assembly further includes a reflective member 6320 arranged behind the light sources 6210, which reflects light from all of the light sources 6210. In this example, each light source 6210 has one reflective member 6320, all of which are connected to each other, and each reflective member 6320 has an arcuate surface shape arranged around the corresponding light source 6210. Specifically, the arcuate surface of the reflective member 6320 extends along the circumferential direction of the light source 6210 and is centered around the light source 6210, thereby more efficiently reflecting light emitted backward from the light source 6210 toward the front of the mask. It is also understood that the reflective member 6320 can be a one-piece structure that forms three arcuate shapes correspondingly positioned behind the three lamp tubes.

[0043] The cosmetic mask further includes a heat dissipation member 6410 that is disposed behind the reflecting member 6320 and conforms to the shape of the reflecting member 6320 or is integral with the reflecting member 6320. The heat dissipation member 6410 is a heat sink or a combination of one or more of a heat pipe, a temperature equalizing plate, a super heat pipe, a super thermally conductive plate, and a thermally conductive substrate made of a single thermally conductive material (e.g., aluminum or copper). Heat dissipation from the light source 6210 can be replaced by a fan-based airflow / suction method. The cosmetic mask further includes a mask back shell 6420 that is attached to the mask body 6100 to form a cavity that can accommodate the light source 6210, the reflecting member 6320, and the heat dissipation member 6410. The mask back shell 6420 is disposed at the rear of the cosmetic mask, and the rear is the side opposite the front of the cosmetic mask, i.e., the side that faces away from the user's face when the cosmetic mask is worn. The mask back shell 6420 is provided with heat dissipation holes 6421 that communicate with the cavity, facilitating heat dissipation and cooling.

[0044] The cosmetic mask further includes a head position limiting block 6510 fixedly or detachably disposed in the front direction of the mask body 6100, which makes it easy for the user to wear and position the mask and maintain a certain safety distance.

[0045] The cosmetic mask further includes an elastic belt 6520. When wearing the cosmetic mask, the elastic belt 6520 is used to help secure the cosmetic mask by being wrapped around the user's head, and the elastic belt 6520 has an elastic adjustment structure or is elastic so that it can be adapted to various users.

[0046] 5, the cosmetic mask further includes a control circuit board 6430 in the mask body 6100, and the light source of the first light source assembly is connected to the control circuit board 6430. In this embodiment, the control circuit board shown is located in the mask body 6100. In other embodiments, the circuit board is located outside the cosmetic mask and can be connected to a power source via a socket during use.

[0047] 6 to 8, the present application further includes a power socket 6600, a power circuit board 6620 for power supply is provided in the power socket 6600, and a power cord 6610 protrudes through a power socket connection port 6611 to be electrically connected to the control circuit board in the beauty mask. In other embodiments, the power socket connection port may be a plug-in power interface or a charging interface, and the beauty mask is directly plugged into the power socket connection port to be connected to power or charged.

[0048] The filter in Example 1 may be converted into a filter film. For example, a filter film capable of filtering a specific wavelength band may be attached to the IPL lamp tube of Example 1, and the surface of the lamp tube may be plated using an optical plating process to form a lamp tube with a filter film attached. In this case, a transparent sheet / transparent cover may be provided in front of the front of the mask body to cover the light source.

[0049] 9 to 15, a cosmetic mask according to Example 2 of the present application differs from Example 1 in that the first optical sheet assembly is different. The cosmetic mask according to Example 2 of the present application includes a mask body 6100, a first light source assembly disposed on the mask body 6100, and a first optical sheet assembly, where the first light source assembly includes a light source 6210. In this example, three light sources 6210 are provided. The first optical sheet assembly includes rotatable optical sheet brackets 7330 corresponding to the number of light sources. The light sources 6210 are vertically disposed within the cavity of the mask body 6100 and extend along the axial direction of the optical sheet bracket 7330. Each optical sheet bracket 7330 is provided with two filters 7310 and 7320, each having a different filtering band. For example, the wavelength band of the emitted light obtained after filtering with one filter is 500 to 600 nm, and the wavelength band of the emitted light obtained after filtering with the other filter is 900 to 1800 nm. Each of the optical sheet brackets 7330 is rotatable around the corresponding light source 6210 about its axial direction. Specifically, the filters 7310 and 7320 are arranged on the outer periphery of the light source 6210 along the circumferential direction of the optical sheet bracket 7330. The filters 7310 and 7320 also extend along the axial direction of the optical sheet bracket 7330. Each of the light sources 6210 and the corresponding optical sheet bracket 7330 are arranged coaxially, and the filters 7310 and 7320 arranged on each of the optical sheet brackets 7330 are switchable between a first position and a second position around the light source 6210. The first position is located on one side of the light emission direction, and the second position is located on the non-light emission side. The filters are either fixed to the rotatable optical sheet bracket or detachably arranged on the rotatable optical sheet bracket. The light is emitted in the front direction of the mask body 6100, and a transparent cover 7500 is further provided on the front of the mask body 6100. Here, the front direction is the direction toward the user's face when the user wears the cosmetic mask, and light from the light source 6210 is emitted from the front direction and irradiated onto the face of the user wearing the cosmetic mask.

[0050] When one of the filters 7310 is in the first position, light emitted from the light source 6210 is emitted through the filter 7310 in the first position. The optical sheet bracket 7330 can be driven to rotate the filters 7310 and 7320 around the light source 6210, and by driving the optical sheet bracket 7330 to rotate manually or by motor control, the filters 7310 and 7320 can be switched between the first position and the second position around the light source 6210. When the other filter 7320 is switched to the first position, light emitted from the light source 6210 is emitted through the filter 7320 in the first position.

[0051] In another embodiment, the first optical sheet assembly is provided with three or more filters of different wavelength bands, each having a first position, a second position, a third position, etc. that can be switched, and the filter in the first position filters the emitted light.

[0052] In Example 2, the cosmetic mask further includes a filter adjustment device including a first adjustment member, and the optical sheet bracket 7330 is provided with a second adjustment member cooperating with the first adjustment member, and the optical sheet bracket can be driven to rotate about an axial direction by transmitting power to the second adjustment member via the first adjustment member. Specifically, the second adjustment member is an adjustment gear 7420 disposed on the optical sheet bracket 7330, and the first adjustment member is an adjustment rack 7410 cooperating with the adjustment gear 7420, and the filter adjustment device further includes an operation member 7430 connected to the adjustment rack 7410.

[0053] The adjustment gears 7420 in all of the optical sheet brackets are arranged along an arc that cooperates with the outer shape of the mask body 6100, and the outer shape of the adjustment rack 7410 is arc-shaped, which is aligned with the outer circumferential curvature of the adjustment gears 7420 arranged in the arc shape, and the adjustment rack 7410 engages with the outer circumferential cross-sectional direction of each adjustment gear 7420, resulting in high transmission efficiency and strong synchronization.

[0054] The adjustment gear 7420 is disposed within the mask body 6100, and one side of the filter adjustment device engages with the adjustment gear 7420 via the adjustment rack 7410. The other side is connected to an operating member 7430 protruding from the outside of the mask body 6100, facilitating adjustment by a user. A user operates the operating member 7430 to propel the adjustment rack 7410 and rotate the adjustment gear 7420. The adjustment gear 7420 is attached to the optical sheet bracket 7330, and the adjustment gear 7420 is coaxial with the optical sheet bracket 7330, so that the optical sheet bracket 7330 can be driven to rotate about its axial axis. In a specific embodiment, the operating member 7430 may be another gear that engages with the adjustment rack 7410 or a knob that cooperates with the adjustment rack 7410. In this embodiment, the operating member 7430 is a push rod that can be driven to move the adjustment rack 7410.

[0055] In another embodiment, filters 730 and 7320 are plated on the surface of the same transparent substrate (e.g., arc-shaped or cylindrical) in sections, each section corresponding to a different filtering band, and the sections are axially parallel, thereby obtaining a multi-section filter with different filtering bands. The filters are arranged by rotating the corresponding section in front of the light source to filter the light generated by the light source, and rotating different filtering sections to obtain output light of different wavelength bands.

[0056] The illustrated first optical sheet assembly further includes a reflective member 7340 disposed behind the light sources 6210, and the reflective member 7340 reflects light from all of the light sources 6210. In this embodiment, each light source 6210 has one corresponding reflective member 7340, and all of the reflective members 7340 are connected to each other. Each reflective member 7340 has an arcuate surface shape disposed around the corresponding light source 6210. The reflective member 7340 extends along the circumferential direction of the light source 6210 and is centered around the light source 6210, thereby more efficiently reflecting light emitted backward from the light source 6210 toward the front of the mask. The three reflective members 7340 may be an integrated structure including three arcuate shapes suitable for the three light sources.

[0057] The cosmetic mask further includes a heat dissipation member 6410 disposed behind the reflecting member 7340. The cosmetic mask further includes a mask back shell 6420 that is attached to the mask body 6100 to form a cavity that can accommodate the light source 6210, the reflecting member 7340, and the heat dissipation member 6410, and the mask back shell 6420 is provided with heat dissipation holes 6421 that communicate with the cavity, facilitating heat dissipation and cooling.

[0058] The cosmetic mask further includes a head position limiting block 6510 fixedly or detachably disposed on the front of the mask body 6100, allowing for easy positioning and maintaining a certain safety distance. The cosmetic mask further includes an elastic belt 6520. The elastic belt 6520 is used to help secure the cosmetic mask by surrounding the user's head when wearing the cosmetic mask. The elastic belt 6520 may have an adjustable stretch structure or may be elastic enough to accommodate a variety of users. The cosmetic mask further includes a control circuit board 6430 within the mask body 6100, and the light source of the first light source assembly is connected to the control circuit board 6430. In this embodiment, the illustrated control circuit board 6430 is disposed within the mask body 6100.

[0059] Referring to FIG. 15, in the second embodiment, a plug-in power interface 7610 is shown in a power socket 7600, and a mutually cooperating socket 6101 is provided at the bottom of the mask body 6100 of the beauty mask, and the beauty mask can be directly plugged into the power socket connection port to connect electricity or charge.

[0060] The light source 6210 of the cosmetic mask of the present application may be an IPL light source, a tungsten light source, or a carbon fiber light source.

[0061] Here, tungsten or carbon fiber light sources use tungsten or carbon fiber as the filament, which is the light-emitting material. The filament is installed in a light bulb (lamp tube) and emits light when electricity is passed through the filament. To prevent the filament from oxidizing at high temperatures, the light bulb (lamp tube) is kept in a vacuum state or filled with low-pressure inert gas or halogen gas. If the light bulb (lamp tube) of a tungsten or carbon fiber light source is filled with halogen gas such as iodine or bromine, a halogen lamp (also called a tungsten halogen lamp) is obtained. Tungsten or carbon fiber light sources belong to the incandescent light bulb family and are realized using the same structure as an incandescent light bulb.

[0062] The light source 6210 of the cosmetic mask of this application uses a tungsten filament and / or carbon fiber as the light-emitting material, i.e., the filament. To extend the life of the light source, a certain percentage of inert gas or halogen gas can be filled into the bulb (lamp tube). The spectral distribution of the tungsten filament and / or carbon fiber lamp can be changed by adjusting the gas pressure and gas ratio in the lamp, current pulse, or supply voltage, etc.

[0063] Tungsten or carbon fiber light sources have both full-spectrum and constant-light characteristics. They generate full-spectrum light, including visible and invisible light, which can be filtered with filters or filter films to obtain specific wavelength bands for skin beauty and treatment. For example, visible light in the 500-600 nm range reduces melanin in the epidermis, while near-infrared light in the 900-2500 nm range directly penetrates the dermis and basal layer, stimulating collagen regeneration and repairing the basal layer.

[0064] Furthermore, the light source 6210 of the beauty mask of the present application can accurately select wavelength bands and provide accurate treatment according to different skin conditions, different people, and different skin care needs by plating a filter film on the surface of the lamp tube or adopting a filter switching form.

[0065] Although both Example 1 and Example 2 of the present application are shown in the form of a mask, the technical solution of the present application is not limited to a single product form. Other examples of the beauty device that is the technical solution of the present application may be a tabletop product without an extendable head belt or a handheld product. These other examples will be described below.

[0066] 16 to 21, Example 3 of the present application is a photonic beauty mirror product including a main holder 100 (a converted form of the mask body in Examples 1 and 2), a first light source assembly arranged on the main holder 100, a first optical sheet assembly, and a circuit board 105. The first light source assembly is connected to the circuit board 105, and light emitted from the first light source assembly is emitted through the first optical sheet assembly. Specifically, the first light source assembly includes an IPL light source, and the first optical sheet assembly includes at least one filter. The first optical sheet assembly is detachably arranged on the main holder 100. The detachable arrangement of the first optical sheet assembly allows filters of different wavelength bands to be switched as needed, especially large filters, allowing for replacement. It can address various skin conditions and comprehensively and effectively solve various skin problems. In this application, a large-area full-surface light can be used to simultaneously cover the entire face, including blind spots such as the tip of the nose and lips. Full-surface irradiation can maximize the consistency of facial skin treatment, greatly enhance the whitening and rejuvenation effect of the entire facial skin, and can use full-surface irradiation to cover the facial skin, greatly shortening the use time.

[0067] Specifically, the main holder 100 has two slots 101, and the first optical sheet assembly includes a first optical sheet bracket 102 and a second optical sheet bracket 103 that fit into the two slots. A filter is attached to each of the first and second optical sheet brackets. At least one filter in the first optical sheet assembly has a filter film plated on one side and a single-sided light-transmitting film plated on the other side. That is, at least one filter for photonic beauty and a makeup mirror are integrated into one design. One side of the filter is plated with a filter film for filtering light. Light passes through the surface of the filter film and then passes through the single-sided light-transmitting film to achieve photonic beauty. The other side of the filter is plated with a single-sided light-transmitting film, allowing it to be used as a regular makeup mirror when not in use for photonic beauty. This effectively increases product utilization and reduces the user's equipment purchase costs and usage time. In another embodiment, a filter 109 and a makeup mirror are attached to the first optical sheet bracket 102 and the second optical sheet bracket 103, respectively. In other words, the photon beauty filter and the makeup mirror are designed separately. The first optical sheet bracket 102 and the second optical sheet bracket 103 are specific examples of the embodiment. In practice, only one optical sheet bracket may be provided, or two or more optical sheet brackets may be provided, each with an optical sheet attached. The optical sheet may be a filter, a makeup mirror, or an optical sheet that combines the functions of both.

[0068] The first light source assembly employs an IPL light source, a tungsten light source, or a carbon fiber light source. For example, an IPL lamp tube 104, specifically a halogen light source, may be added. For example, the light source may be one IPL lamp tube and one or two halogen lamps, or two IPL lamp tubes and one halogen lamp. The first light source assembly further includes a reflecting member 1041 and a convex lens 1042. The reflecting member is disposed behind the IPL lamp tube 104, and the convex lens is disposed between the IPL lamp tube 104 and the filter 109. The convex lens is used to guide light, making the light received on the face more uniform. Utilizing the principle of a convex lens, divergent light is refracted after passing through the convex lens, resulting in uniform light output across the light output area.

[0069] Referring also to FIG. 20 , the photonic cosmetic mirror further includes protective glasses 200 to protect the user's eyes and prevent eye damage caused by the light source when using the photonic cosmetic mirror. Furthermore, the protective glasses 200 and the main holder 100 are each equipped with a sensing assembly for signal detection. This allows the distance between the protective glasses and the light source to be detected. The sensing signal is connected to the control circuit of the photonic cosmetic mirror, which associates the sensing signal with the control of the light source activation / deactivation. The sensor assembly activates the light source after detecting that the protective glasses are at a certain distance. If the user's face moves outside the designated light irradiation area, the signal from the sensing assemblies of the cosmetic mirror and the protective glasses is blocked, thereby stopping light emission and avoiding other risks. If the distance between the user's forehead and the light emission surface of the cosmetic mirror is too close (exceeding the safe distance), the sensing assembly issues a signal to stop light emission. Specifically, the protective glasses 200 are equipped with a sensor 201, and the main holder 100 is equipped with a protective glasses detection area 106. The sensors may be located at the front end and / or on both sides of the safety glasses.

[0070] The protective glasses are further provided with a protective glasses position limiting block 202 for limiting the distance between the protective glasses and the main holder 100. When the user's forehead moves toward the light output surface of the cosmetic mirror, the position limiting block comes into contact with the mirror bracket of the cosmetic mirror, preventing the user's face from approaching the mirror surface and preventing burns. In some specific embodiments, the protective glasses are also provided with a gear adjustment key 203, allowing the user to easily adjust the gear during use.

[0071] The photonic cosmetic mirror further includes a base 300 and a head positioning support frame 400. The base 300 is provided with a protective glasses receiving cavity 301 and a support frame receiving cavity 302. The protective glasses 200 can be received in the protective glasses receiving cavity 301, and the head positioning support frame 400 can be received in the support frame receiving cavity 302. Specifically, a rotation axis is provided to connect the head positioning support frame, allowing it to be easily folded and stored in the support frame receiving cavity after rotation. The head positioning support frame can be used to support the user's head during use, preventing fatigue and reduced experience caused by maintaining a fixed position for a long period of time. The user can position their chin on the head positioning support frame, which makes it easy to position the distance between the head and the cosmetic mirror and maintain a fixed distance between the face and the mirror surface (light output surface), thereby preventing facial burns due to contact with the mirror surface. At the same time, accurate positioning is possible, ensuring that each aspect of the user's face is optimally illuminated by the light source.

[0072] A connection frame 500 is provided between the base 300 and the main holder 100. An air passage communicating with the main holder 100 is provided within the connection frame, and a fan 501 is also provided within the connection frame. The main holder 100 is provided with heat dissipation holes 107 and a heat dissipation element 108. Heat from the light source may be dissipated by blowing / suction using a fan, or by heat conduction / dissipation using an aluminum part, copper block, heat pipe, etc. Referring to FIG. 24, there are exhaust passages A / B / C, where exhaust passage A mainly passes through the surface of the filter, heat dissipation passage B mainly passes through the lamp tube, and heat dissipation passage C mainly passes through the reflector and heat dissipation element.

[0073] 21, by making some modifications based on the photonic cosmetic mirror of the embodiment shown in FIGS. 16 to 20, the first optical sheet assembly 1021 may be attached, detached, and replaced using a magnetic attraction. Specifically, magnetic members 1022 are provided at the optical sheet brackets on which the filters / cosmetic mirrors are mounted and at the corresponding positions on the main holder, respectively, to enable the attachment and replacement of the optical sheet brackets. The replaced filters / cosmetic mirrors may be stored in the back shell of the main holder 100.

[0074] 22 to 25, the photonic cosmetic mirror according to the fourth embodiment of the present application differs from the third embodiment in that it further includes auxiliary holders 110 connected to both sides of the main holder 100. A second light source assembly and a second optical sheet assembly are mounted on the auxiliary holder 110, and light emitted from the second light source assembly is emitted through the second optical sheet assembly. The second light source assembly includes at least one of an IPL light source, an LED light source, or a halogen light source. The second optical sheet assembly includes a filter 112. The second optical sheet assembly may be mounted in the above-mentioned slot type, magnetic attraction type, or fixed type. In the slot type mounting, a slot may be formed on the top or side of the auxiliary holder 110. The auxiliary holder 110 also includes heat dissipation holes 107. The auxiliary holder may be provided with a safety glasses sensing area 106.

[0075] The light emitted from the first light source assembly through the first optical sheet assembly is a front-emitting light of the photonic cosmetic mirror and can correspondingly illuminate a front area, and the light emitted from the second light source assembly through the second optical sheet assembly is a left-side and / or right-side emitting light of the photonic cosmetic mirror and can correspondingly illuminate a left-side and / or right-side facial area.

[0076] In Example 4, the auxiliary holder 110 is rotatably connected to the main holder 100, and the auxiliary holder 110 connects both sides of the front of the main holder 100 via a rotation axis, and the auxiliary holder 110 can be opened and closed by rotating relative to the main holder 100.

[0077] 26 to 30 , Example 5 differs from Example 4 in that the second light source assembly mounted on the auxiliary holder 120 includes an IPL light source 123, a convex lens 124 disposed in front of the IPL light source 123, a reflector 125 and a heat dissipation element 122 disposed behind the IPL light source 123, and the second optical sheet assembly includes a third optical sheet bracket 121 with a filter disposed on its upper surface. The structural arrangement of the second light source assembly and the second optical sheet assembly on the auxiliary holder 120 is similar to the structural arrangement of the first light source assembly and the first optical sheet assembly on the main holder. The third optical sheet bracket 121 may be mounted by the slot type, magnetic attraction type, or fixed type described above. For the slot type mounting, a slot may be provided on the top or side of the auxiliary holder 120. The auxiliary holder 120 also has heat dissipation holes 107. The auxiliary holder may have a safety glasses sensing area 106. One, two, or more third optical sheet brackets 121 may be provided. The first optical sheet bracket 102, the second optical sheet bracket 103, and the third optical sheet bracket 121 are all specific examples of the embodiment. In practice, both the main holder and the auxiliary holder may be provided with only one optical sheet bracket, or two or more optical sheet brackets may be provided, each with an optical sheet. The optical sheet may be a filter, a cosmetic mirror, or an optical sheet combining the functions of both.

[0078] The auxiliary holder may be fixedly attached to the main holder 100 or may be attached via a rotating shaft. The adjustable angle design allows it to accommodate different face widths and can be conveniently stored when not in use to save space. It may also be attached in a detachable manner, such as by a fastening mechanism.

[0079] 31 to 34, Example 6 differs from Example 4 in the filter arrangement within the main holder. A first optical sheet assembly is provided within the main holder. The first optical sheet assembly includes a rotatable optical sheet bracket 136 and two filters 132. The two filters 132 are arranged corresponding to the rotatable optical sheet bracket 136 and can be rotated around the light source 131 to change their positions, allowing the filters passing through in the direction of light emission to be replaced. The two filters can be rotated around the light source by manual or motorized control. Specifically, the light source may be a vertically arranged IPL lamp tube. The two filters are merely a specific example; in practice, one or more filters may be provided. Accordingly, a groove 1351 is provided in the reflecting member 135 to allow the filter 132 to rotate and pass through, and an opening 1352 is also provided in the heat dissipating element 133 to allow the filter 132 to rotate and pass through. Light emitted from the light source passes through the filter 132 rotated in the emission direction, then passes through the convex lens 134, and then passes through another optical sheet 109 before being emitted. The transformation of the optical sheet 109 in this embodiment can be the same as the optical sheet in Embodiment 3. That is, the optical sheet may be a filter, a cosmetic mirror, or an optical sheet that combines the functions of both. One or more optical sheet brackets may be provided on the front end surface of the main holder, and optical sheets may be provided on each of the brackets. The optical sheet may be a filter, a cosmetic mirror, or an optical sheet that combines the functions of both.

[0080] The light source 104 of the photonic cosmetic mirror of the present application may be an IPL light source, a tungsten light source, or a carbon fiber light source. For the tungsten light source or the carbon fiber light source, please refer to the above-mentioned examples. A halogen lamp may also be used. Examples include basal layer repair.

[0081] Compared with the prior art, the advantages of the present application are as follows:

[0082] The photon beauty mirror of the present application uses an IPL light source and includes at least one filter. Filters with different wavelength bands can be switched to address different skin conditions, comprehensively and effectively resolving various skin problems. The filter loading and switching modes are flexible, convenient, and diverse. This application employs a large, full-area light source to simultaneously cover the entire face, including blind spots such as the nose and lips. Full-area illumination maximizes consistency in facial skin treatment and significantly improves overall facial whitening and rejuvenation effects. At the same time, compared to commercially available photorejuvenation devices, each flash only affects a small area of ​​skin, and depending on the size of the facial area, dozens to hundreds of flashes are required to cover the entire face. However, this application utilizes full-area illumination to cover the entire face with just one flash, significantly reducing usage time. One flash (0.2-3 seconds) of this application is equivalent to one use of a commercially available photorejuvenation device (approximately 3-5 minutes). As in the present application, when 30 flashes are used each time, the effect can be several dozen times greater than that of a regular photorejuvenation device. When not using photon beauty treatment, it can be used as a regular makeup mirror, effectively improving the utilization rate of the product and reducing the user's equipment purchase costs and usage time. The photon beauty mirror in the present application is equipped with protective glasses and a detection sensor to improve safety, and can intelligently cut off the signal when the user leaves, making it energy-saving and easy to use.

[0083] The power supply method of the photon cosmetic mirror can be direct plug-in, battery power supply, or rechargeable battery power supply.

[0084] The above description is only a preferred embodiment of the present application, and the protection scope of the present application is not limited thereto, and any equivalent transformation based on the technical solutions of the present application also falls within the protection scope of the present application.

Claims

1. A cosmetic mask comprising: a mask body; a first light source assembly disposed on the mask body; and a first optical sheet assembly, wherein the first light source assembly includes a light source, and the first optical sheet assembly includes at least one filter or filter film attached to the light source, and wherein light emitted from the light source of the first light source assembly passes through the at least one filter or filter film and then passes through the mask body to be emitted.

2. The cosmetic mask according to claim 1 , wherein at least one filter of the first optical sheet assembly is disposed forward of the front surface of the mask body.

3. 2. The cosmetic mask according to claim 1, wherein the at least one filter has a switchable first position and a switchable second position, and when the at least one filter is located in the first position, the light emitted by the first light source assembly is emitted through the at least one filter.

4. 4. The cosmetic mask according to claim 3, wherein the first optical sheet assembly comprises a rotatable optical sheet bracket, the at least one filter is arranged corresponding to the optical sheet bracket, the optical sheet bracket can rotate around the first light source assembly, thereby the at least one filter is switched between the first position and the second position around the first light source assembly, and the first position is located on one side of the light emission direction.

5. 5. The cosmetic mask of claim 4, further comprising a filter adjustment device including a first adjustment member, wherein the optical sheet bracket is provided with a second adjustment member that cooperates with the first adjustment member, and the optical sheet bracket can be driven to rotate around an axial direction by transmitting to the second adjustment member via the first adjustment member.

6. The cosmetic mask according to claim 5, wherein the second adjustment member is an adjustment gear, the first adjustment member is an adjustment rack that cooperates with the adjustment gear, and the filter adjustment device further comprises an operating member connected to the adjustment rack.

7. The cosmetic mask according to any one of claims 1 to 6, wherein the first light source assembly includes at least one of an IPL light source, a tungsten light source, and a carbon fiber light source.

8. The cosmetic mask according to any one of claims 1 to 6, wherein the first optical sheet assembly further comprises a reflective member disposed behind the light source.

9. The cosmetic mask according to any one of claims 1 to 6, further comprising: a heat dissipation member arranged behind the reflective member; and a mask back shell attached in cooperation with the mask body to form a cavity capable of accommodating the light source, wherein the mask back shell is provided with a heat dissipation hole.

10. The cosmetic mask according to any one of claims 1 to 6, further comprising a head position limiting block fixedly or detachably arranged in the front direction of the mask body.

Citation Information

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