Light beautifier

By designing a light beauty container with multiple light sources, using the synergistic effect of visible and invisible light of different wavelengths to perform light energy treatment on the skin levels of different parts of the face, the problem of poor beauty effects in existing beauty containers is solved and more efficient beauty effects are achieved.

CN223026544UActive Publication Date: 2025-06-27MTG CO LTD
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Patent Information

Application Number
CN202420917454.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Priority Date
2024-04-02
Filing Date
2024-04-29
Publication Date
2025-06-27
Estimated Expiration
2034-04-29

AI Technical Summary

Technical Problem

Existing beauty containers have shortcomings in improving beauty effects, and they cannot effectively utilize the synergy between visible and invisible light of different wavelengths, resulting in poor beauty effects.

Method used

A light beauty container is designed, with a mask having a plurality of light sources, including an LED element emitting visible light and an LED element emitting invisible light. Through the synergistic effect of visible and invisible light at different wavelengths, light energy treatment is performed on the skin levels in different parts of the face.

Benefits of technology

Through the synergy of light at different wavelengths, the beauty effect can be improved, including improving skin elasticity, reducing wrinkles, repairing damaged skin, improving edema and erythema.

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Abstract

The utility model provides a light beautifying device which is high in beautifying effect. A light beautifier (1) has a mask (3) that covers at least a part of the face of a user, the mask (3) having a plurality of light sources (30, 30A, 30B, 30C) that emit light toward the face of the user wearing the light beautifier, each light source (30, 30A, 30B, 30C) having a first LED element (31) that emits visible light, a second LED element (32), and a third LED element (33) that emits invisible light.
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Description

Technical Field

[0001] The utility model relates to a light beauty device. Background Art

[0002] Patent Document 1 discloses a conventional beauty device. The beauty device has a mask that covers the face of a user. The mask has a plurality of light sources that emit light toward the face of the user wearing the mask. Each light source includes an LED element. The beauty device can apply stimulation to the skin of the user's face by the light emitted from the LED elements of each light source, and provide a beauty effect.

[0003] Prior Art Documents

[0004] Patent Documents

[0005] Patent Document 1: Japanese Unexamined Patent Application Publication No. 2018-187323

[0006] The beauty device of Patent Document 1 discloses applying light stimulation to the skin of the user's face in order to bring a beauty effect, but there is room for improvement in order to further improve the beauty effect. Summary of the Utility Model

[0007] The utility model is completed in view of the above-mentioned existing actual situations, and the technical problem to be solved is to provide a light beauty device with high beauty effect.

[0008] The light beauty device of the utility model includes:

[0009] a mask that covers at least a part of the face of a user,

[0010] the mask has a plurality of light sources that emit light toward the face of the user wearing the mask,

[0011] each of the light sources includes a light-emitting element that emits visible light and a light-emitting element that emits invisible light.

[0012] The light beauty device includes a light-emitting element that emits visible light and a light-emitting element that emits invisible light in each light source. Visible light and invisible light with different wavelengths act on different skin layers, and their effects are also different. Therefore, the light beauty device emits visible light and invisible light from each light source, so that the energy of each light acts on different layers of the skin, and the beauty effect of the beauty device can be improved through their synergistic effect.

[0013] Therefore, the light beauty device of the utility model has a high beauty effect. Brief Description of the Drawings

[0014] Figure 1 It is a perspective view showing the light beauty device and the remote controller of Embodiment 1.

[0015] Figure 2It is a rear view of the optical beauty device of Example 1.

[0016] Figure 3 It is a perspective view showing a state in which a part of the optical beauty device of Example 1 is disassembled.

[0017] Figure 4 It is a view showing a flexible substrate provided with a plurality of light sources of Example 1.

[0018] Figure 5 It is a schematic view showing the light source of Example 1.

[0019] Figure 6 It is a schematic view showing the arrival positions of lights of different wavelengths on the structure of the skin.

[0020] Symbol Explanation

[0021] 1... Optical beauty device

[0022] 3... Mask

[0023] 30, 30A, 30B, 30C... Light sources

[0024] 31, 32... Light emitting elements that emit visible light (31... First LED element, 32... Second LED element)

[0025] 33... Light emitting element that emits invisible light (third LED element). Detailed Embodiment

[0026] A preferred embodiment of the present utility model will be described.

[0027] Each light source of the optical beauty device of the present utility model may have a plurality of light emitting elements that emit visible light of different wavelengths. Visible lights of different wavelengths have different effects on the irradiated skin. Therefore, by emitting visible lights of different wavelengths toward the user's face, this optical beauty device can obtain different beauty effects according to each wavelength.

[0028] The light source of the optical beauty device of the present utility model may have a light emitting element that emits invisible light of different wavelengths according to the position arranged on the mask. In this case, by arranging light sources that emit invisible light of wavelengths suitable for each part at positions corresponding to each part of the user's face, this optical beauty device can obtain beauty effects suitable for each part of the face.

[0029] The mask of the light beauty device of the present utility model can be configured with the following light sources at positions opposite to the foreheads of the above-mentioned users wearing the mask. The light sources have light-emitting elements that emit invisible light with wavelengths capable of reaching the deep dermis. In this case, for the foreheads of the users, the light beauty device allows the energy of the invisible light to reach the deep dermis, increasing the thickness of the dermis and the density of collagen fibers, and increasing the number of fibroblasts. Therefore, the aged dermis can be repaired, and the lower layer of the skin can be made plump, achieving the beauty effect of reducing wrinkles.

[0030] The mask of the light beauty device of the present utility model can be configured with the following light sources at positions opposite to the areas around the nasolabial folds of the above-mentioned users wearing the mask. The light sources have light-emitting elements that emit invisible light with wavelengths capable of reaching the subcutaneous tissue. At this time, for the skin around the nasolabial folds of the users, the energy of the invisible light reaches the subcutaneous tissue, promoting cell repair and regeneration, and enhancing the activity of fibroblasts. Therefore, the regeneration of collagen can be activated, and the beauty effect of three-dimensionally supporting elastic collagen can be obtained.

[0031] The mask of the light beauty device of the present utility model can be configured with the following light sources at positions opposite to the cheeks of the said users wearing the mask. The light sources have light-emitting elements that emit invisible light with wavelengths capable of reaching the dermis. In this case, since the energy of the invisible light reaches the dermis, the number of fibroblasts is increased. Therefore, the beauty effects of repairing damaged skin and improving edema and erythema can be obtained.

[0032] <Example 1>

[0033] Next, Example 1 in which the light beauty device of the present utility model is embodied will be described with reference to the accompanying drawings. For ease of explanation, the up-down direction of the mask 3 in the state where the user wears it is set as the up-down direction. In the state where the user wears the mask 3, the direction in which the mask 3 is worn relative to the user's face is set as the rear direction, the opposite direction is set as the front direction, and the left-right direction in the front view is set as the left-right direction. In Figures 1 to 3 the shown three-dimensional orthogonal coordinate system, the positive direction of the X-axis is the "front direction", the negative direction of the X-axis is the "rear direction", the positive direction of the Y-axis is the "left direction", the negative direction of the Y-axis is the "right direction", the positive direction of the Z-axis is the "up direction", and the negative direction of the Z-axis is the "down direction".

[0034] As Figures 1 to 3 shown, the light beauty device 1 of Example 1 has a mask 3 and a remote controller 5. The mask 3 has a mask main body 10, a plurality of light sources 30, and a glasses part 50. The mask main body 10 is formed in a curved surface so as to cover the entire face of the user wearing the mask 3, and is in a substantially elliptical shape that is longer in the up-down direction in the front view.

[0035] As Figure 3As shown, the mask body 10 includes an outer contour portion 110, a flexible substrate 130, a shielding film 150, and an inner shell portion 170. The outer contour portion 110 is made of PET (polyethylene terephthalate) resin. The outer contour portion 110 forms the front surface of the mask body 10. The outer contour portion 110 is opaque. A substantially T-shaped pattern P is formed on the front surface of the outer contour portion 110. When viewed from the front, the substantially T-shaped pattern P is a mirror surface. A horizontal portion (hereinafter referred to as "horizontal portion P1") extending in the left-right direction of the substantially T-shaped pattern P extends to the height of the eyes of the user wearing the mask 3. This horizontal portion P1 is located in front of the spectacle body 510 of the spectacle portion 50 described later. The upper end edge of this horizontal portion P1 protrudes slightly forward with respect to the upper side of the horizontal portion P1. The horizontal portion P1 is a semi-transmissive and semi-reflective mirror that transmits light from the rear to the front and reflects light from the front to the rear. That is, the user wearing the mask 3 can visually recognize the front of the mask 3 through the outer contour portion 110 of the mask body 10. On the other hand, the face of the user wearing the mask 3 cannot be seen from the front of the mask 3. A portion (hereinafter referred to as "vertical portion P2") extending in the up-down direction of the substantially T-shaped pattern P gradually narrows the left-right width toward the lower side. The lower end of the vertical portion P2 extends to the lower portion of the outer contour portion 110.

[0036] As Figure 3 and Figure 4 shown, the flexible substrate 130 is a substantially circular thin insulating material that can be bent. The flexible substrate 130 is formed with a plurality of cut portions 131. Each cut portion 131 is substantially slit-shaped. The flexible substrate 130 is bent into a curved surface shape while overlapping the portion where the cut portions 131 are formed. The flexible substrate 130 is deformed to conform to the shape of the rear surface of the outer contour portion 110 and is disposed in contact with the rear surface of the outer contour portion 110. In a state where the flexible substrate 130 is disposed on the rear surface of the outer contour portion 110, an opening 133 is formed at a position corresponding to the horizontal portion P1 of the substantially T-shaped pattern P of the outer contour portion 110 along the outer edge of the front end of the spectacle body 510 described later.

[0037] As Figure 4 shown, 126 light sources 30 are disposed on the rear side of the flexible substrate 130. As Figure 5As shown in the figure, each light source 30 includes a first LED element 31 that emits visible light of different wavelengths, a second LED element 32, and a third LED element 33 that emits invisible light. Each light source 30 is arranged in the order of the first LED element 31, the second LED element 32, and the third LED element 33. The first LED element 31, the second LED element 32, and the third LED element 33 correspond to light-emitting elements. The first LED element 31, the second LED element 32, and the third LED element 33 are supplied with power from the remote controller 5 via a connector portion 175 provided in an inner case portion 170 described later and emit light.

[0038] The first LED element 31 emits yellow light with a wavelength of 590 nm. The second LED element 32 emits red light with a wavelength of 660 nm. The third LED element 33 selects and arranges one of four LED elements that emit near-infrared light with a wavelength of 850 nm, near-infrared light with a wavelength of 940 nm, short-wave infrared light with a wavelength of 1064 nm, and short-wave infrared light with a wavelength of 1320 nm according to the position arranged on the mask 3. That is, the third LED element 33 is arranged to select one from the four LED elements. Specifically, as Figure 4 shown, the third LED element 33 of the light source 30A arranged in the A area is an LED element that emits short-wave infrared light with a wavelength of 1064 nm. The A area is a position opposite to the forehead of the user wearing the mask 3. The third LED element 33 of the light sources 30B arranged in the B1 area and the B2 area is an LED element that emits near-infrared light with a wavelength of 940 nm. The B2 area is a position opposite to the cheek of the user wearing the mask 3. The third LED element 33 of the light source 30C arranged in the C area is an LED element that emits short-wave infrared light with a wavelength of 1320 nm. The C area is a position opposite to the area around the nasolabial fold of the user wearing the mask 3. The third LED element 33 of the light source 30 outside the A area, the B1 area, the B2 area, and the C area is an LED element that emits near-infrared light with a wavelength of 850 nm.

[0039] As Figure 6 shown, the energy of the light emitted from the first LED element 31, the second LED element 32, and the third LED element 33 acts on different layers of the skin. Specifically, the yellow light with a wavelength of 590 nm emitted from the first LED element 31 has its energy reach the epidermis and directly act on the basal layer, which is the lowest layer of the epidermis, to inhibit melanin production, which is the cause of the initial darkening step. In this way, the yellow light with a wavelength of 590 nm has beauty effects such as improving pigmentation, fading spots, suppressing darkness, and improving luster.

[0040] The red light with a wavelength of 660 nm emitted from the second LED element 32 reaches the epidermis with its energy, improving cell activity and promoting collagen production. In this way, the red light with a wavelength of 660 nm has beauty effects such as imparting a halo and making wrinkles less conspicuous, which can improve and repair wrinkles.

[0041] The near-infrared light with a wavelength of 850 nm emitted from the third LED element 33 of the light source 30 disposed outside the A area, B1 area, B2 area, and C area reaches the surface of the dermis, improving the appearance of the skin damaged by light and promoting the production of collagen. In this way, the near-infrared light with a wavelength of 850 nm has beauty effects such as imparting a halo and making wrinkles less conspicuous, which can improve and repair wrinkles.

[0042] The near-infrared light with a wavelength of 940 nm emitted from the third LED element 33 of the light source 30B disposed in the B1 area and B2 area reaches the dermis and increases the number of fibroblasts. In this way, the near-infrared light with a wavelength of 940 nm has beauty effects such as repairing damaged skin, improving edema and erythema.

[0043] The short-wave infrared light with a wavelength of 1064 nm emitted from the third LED element 33 of the light source 30A disposed in the A area reaches the deep layer of the dermis, increasing the thickness of the dermis and the density of collagen fibers, and increasing the number of fibroblasts. In this way, the short-wave infrared light with a wavelength of 1064 nm has beauty effects such as repairing the aging dermis, filling the lower layer of the skin, and reducing the wrinkles on the face.

[0044] The short-wave infrared light with a wavelength of 1320 nm emitted from the third LED element 33 of the light source 30C disposed in the C area reaches the subcutaneous tissue, promoting cell repair and regeneration and improving the activity of fibroblasts. In this way, the short-wave infrared light with a wavelength of 1320 nm has beauty effects such as activating the regeneration of collagen and three-dimensionally supporting elastic collagen.

[0045] As Figure 3 shown, the shielding film 150 is made of PS (polystyrene) resin. The shielding film 150 has a shape that bends along the rear surface of the outer contour portion 110. The shielding film 150 is formed with circular holes 151 at positions corresponding to the 126 light sources 30 disposed on the flexible substrate 130 respectively. The shielding film 150 is disposed behind the flexible substrate 130, and a state is formed in which the light sources 30, 30A, 30B, and 30C are disposed in the respective holes 151. The shielding film 150 shields portions other than the respective light sources 30, 30A, 30B, and 30C of the flexible substrate 130, and cannot be seen from the rear. The shielding film 150 is located at a position corresponding to the horizontal portion P1 of the substantially T-shaped pattern P of the outer contour portion 110, and an opening portion 153 is formed along the outer edge of the front end of the spectacle portion main body 510 described later.

[0046] The inner housing part 170 is made of PC (polycarbonate) resin. The inner housing part 170 has an outer shape that is one size larger than the outer shape of the outer contour part 110. The inner housing part 170 is integrated with the outer contour part 110 by embedding the outer peripheral edge part of the outer contour part 110 inside the outer peripheral frame part 171. The inner housing part 170 forms the rear surface of the mask body 10. A flexible substrate 130 and a shielding film 150 are sequentially sandwiched between the inner housing part 170 and the outer contour part 110 from the side of the outer contour part 110. At a position corresponding to the horizontal part P1 of the substantially T-shaped pattern P of the outer contour part 110, the inner housing part 170 forms an opening 173 along the outer edge of the front end of the spectacle part main body 510 described later. The inner housing part 170 mounts and fixes the front end part 511 of the spectacle part main body 510 described later in the opening 173. The inner housing part 170 is provided with a connector part 175 at the lower end part, and one end of a cable 5C extending from the remote controller 5 is detachably mounted on the connector part 175.

[0047] As Figure 2 and Figure 3 shown, the spectacle part 50 has a spectacle part main body 510 and a pair of temple parts 530. The spectacle part main body 510 is made of silicone rubber. The spectacle part main body 510 has a front end part 511, a cylindrical part 513, and a contact part 515. In the front end part 511 of the spectacle part main body 510, a pair of openings 511A that are long in the left-right direction are formed side by side. A user wearing the mask 3 can visually recognize the surroundings through each opening 511A formed in the front end part 511 of the spectacle part main body 510 and the semi-transmissive and semi-reflective mirror of the outer contour part 110 of the mask 3. The lower part of the left-right center part of the front end part 511 of the spectacle part main body 510 is recessed upward.

[0048] The cylindrical part 513 of the spectacle part main body 510 extends rearward from the outer periphery of the front end part 511 of the spectacle part main body 510. The left-right center part on the lower side of the cylindrical part 513 of the spectacle part main body 510 is recessed upward and extends in the front-rear direction. The contact part 515 of the spectacle part main body 510 extends outward from the rear peripheral edge part of the cylindrical part 513 of the spectacle part main body 510. The rear surface of the contact part 515 of the spectacle part main body 510 contacts the face around the user's eyes when the user wears the mask 3. The left-right center part on the lower side of the contact part 515 of the spectacle part main body 510 is recessed upward, and when the user wears the mask 3, the nose of the user is clamped from both left and right sides to support the mask 3.

[0049] Each temple part 530 is connected to both end parts of the spectacle part main body 510 via a hinge. The left-right inner sides of each temple part 530 are formed of silicone rubber, and the left-right outer sides are formed of ABS resin. When the user wears the mask 3, each temple part 530 is respectively hung on both ears of the user to support the mask 3. Each temple part 530 can be folded at the hinge part. By making the edge part of each temple part 530 a curved surface, the strength against breakage caused by dropping or the like can be improved.

[0050] As Figure 1 shown, the remote controller 5 has a main body portion 5A and operation buttons 5B. The other end of a cable 5C connected to the mask main body 10 is detachably attached to the main body portion 5A. A battery (not shown) is built in the main body portion 5A. The battery can be charged via the cable 5C. The operation button 5B is a button, and by continuously pressing it for a certain time or more, the power supply of the light beauty device 1 can be turned on and off. The operation button 5B can sequentially and repeatedly switch the three light emission modes described below each time it is briefly pressed.

[0051] The light beauty device 1 has three light emission modes, namely, a tightening mode, a repair mode, and a gloss mode. In the tightening mode, the second LED element 32 and the third LED element 33 emit light in each of the light sources 30, 30A, 30B, and 30C. That is, in the tightening mode, the light beauty device 1 emits red light with a wavelength of 660 nm, near-infrared light with a wavelength of 850 nm, near-infrared light with a wavelength of 940 nm, short-wave infrared light with a wavelength of 1064 nm, and short-wave infrared light with a wavelength of 1320 nm. The tightening mode has anti-aging effects of regenerating collagen, eliminating fat and relaxation, making small wrinkles less noticeable and preventing future wrinkles.

[0052] In the repair mode, the first LED element 31, the second LED element 32, and the third LED element 33 emit light in each of the light sources 30, 30A, 30B, and 30C. That is, in the repair mode, the light beauty device 1 emits yellow light with a wavelength of 590 nm, red light with a wavelength of 660 nm, near-infrared light with a wavelength of 850 nm, near-infrared light with a wavelength of 940 nm, short-wave infrared light with a wavelength of 1064 nm, and short-wave infrared light with a wavelength of 1320 nm. The repair mode has beauty effects of relieving discomfort during seasonal changes, repairing sensitive erythema, and calming and stabilizing after cosmetic surgery.

[0053] In the gloss mode, the first LED element 31 and the third LED element 33 emit light in each of the light sources 30, 30A, 30B, and 30C. That is, in the gloss mode, the light beauty device 1 emits yellow light with a wavelength of 590 nm, near-infrared light with a wavelength of 850 nm, near-infrared light with a wavelength of 940 nm, short-wave infrared light with a wavelength of 1064 nm, and short-wave infrared light with a wavelength of 1320 nm. The gloss mode eliminates sallow complexion caused by staying up late, reduces acne marks and spots caused by sunburn, improves skin pigmentation, and has beauty effects of daily whitening care.

[0054] As described above, the optical beauty device 1 of Example 1 includes a mask 3 that covers the face of the user. The mask 3 has 126 light sources 30, 30A, 30B, 30C that emit light toward the face of the wearing user. Each of the light sources 30, 30A, 30B, 30C includes a first LED element 31 that emits visible light, a second LED element 32 that emits visible light, and a third LED element 33 that emits invisible light.

[0055] The optical beauty device 1 includes a first LED element 31 and a second LED element 32 that emit visible light from each of the light sources 30, 30A, 30B, 30C, and a third LED element 33 that emits invisible light. Visible light and invisible light with different wavelengths act on different skin layers, and their effects are also different. Therefore, the optical beauty device 1 emits visible light and invisible light from each of the light sources 30, 30A, 30B, 30C, the energy of each light acts on different layers of the skin, and the beauty effect of the optical beauty device 1 can be improved through their synergistic effect.

[0056] Therefore, the optical beauty device 1 of Example 1 has a high beauty effect.

[0057] Each of the light sources 30, 30A, 30B, 30C of the optical beauty device 1 of Example 1 includes a first LED element 31 that emits visible light with a wavelength of 590 nm and a second LED element 32 that emits visible light with a wavelength of 660 nm. Visible light with different wavelengths has different effects on the irradiated skin. Therefore, the optical beauty device 1 can obtain different beauty device effects according to each wavelength by emitting different visible lights with different wavelengths toward the face of the user.

[0058] The light sources 30, 30A, 30B, 30C of the optical beauty device 1 of Example 1 include a third LED element 33 that emits invisible light with different wavelengths (850 nm, 940 nm, 1064 nm, 1320 nm) according to the position arranged on the mask 3. Therefore, the optical beauty device 1 can obtain beauty effects suitable for each part of the face by arranging light sources 30 that emit invisible light with wavelengths suitable for each part at positions corresponding to each part of the face of the user.

[0059] A light source 30 is arranged in the A area of the mask 3 of the optical beauty device 1 of Example 1 at a position opposite to the forehead of the wearing user. The light source 30 includes a third LED element 33 that emits invisible light with a wavelength of 1064 nm whose energy reaches the deep dermis. Therefore, for the forehead of the user, the energy of the invisible light reaches the deep dermis, increasing the thickness of the dermis and the density of collagen fibers, increasing the number of fibroblasts, thus repairing the aging dermis, making the lower layer of the skin plump, and a beauty effect of reducing wrinkles can be obtained.

[0060] In the mask 3 of the light beauty device 1 according to Embodiment 1, a light source 30 is disposed in the C region, which is a position opposite to the nasolabial fold area of the user wearing the mask. The light source 30 includes a third LED element 33 that emits invisible light with a wavelength of 1320 nm, and the energy of the invisible light reaches the subcutaneous tissue. Therefore, for the skin around the nasolabial fold of the user, the energy of the invisible light reaches the subcutaneous tissue, promoting cell repair and regeneration, enhancing the activity of fibroblasts, and thus activating collagen regeneration and obtaining a beauty effect of three-dimensionally supporting elastic collagen.

[0061] In the mask 3 of the light beauty device 1 according to Embodiment 1, a light source 30 is disposed in the B2 region, which is a position opposite to the cheek of the user wearing the mask. The light source 30 includes a third LED element 33 that emits invisible light with a wavelength of 940 nm, and the energy of the invisible light reaches the dermis. Therefore, for the skin of the user's cheek, the energy of the invisible light reaches the dermis, increasing the number of fibroblasts, and thus obtaining a beauty effect of repairing damaged skin and improving edema and erythema.

[0062] The present utility model is not limited to Embodiment 1 described above and illustrated in the drawings. For example, the following embodiments are also included within the technical scope of the present utility model.

[0063] (1) The mask may not cover the entire face of the user. For example, it may be a mask that only covers the upper part of the eyes or only covers the lower part of the eyes.

[0064] (2) Among the light sources, the number of light-emitting elements that emit visible light may be one or more than three. Among the light sources, the number of elements that emit invisible light may be two or more. The number of light-emitting elements in each light source is not limited.

[0065] (3) The light-emitting element that emits visible light may be of other colors. For example, it may be a light-emitting element that emits blue light with a wavelength of 420 nm. The light beauty device using this light-emitting element has a bactericidal effect on Propionibacterium acnes and has a beauty effect of tightening pores to form firm and smooth skin.

[0066] (4) The wavelength of the light emitted by the first LED element may also be about 590 nm. The wavelength of the light emitted by the second LED element may also be about 660 nm. The wavelength of the light emitted by the third LED element may be about 850 nm, about 940 nm, about 1064 nm, or about 1320 nm.

[0067] (5) The number of light sources is not limited to 126.

[0068] (6) The third LED element may not have different wavelengths of emitted light according to the position on the mask.

[0069] (7) The third LED element only needs to be an element that emits light with wavelengths in the near-infrared region and the short-wave infrared region.

Claims

1. A light beauty container, characterized in that: A mask is provided to cover at least a portion of a user's face, The mask has a plurality of light sources that emit light toward the face of the user wearing the mask. Each of the light sources comprises a light emitting element that emits visible light and a light emitting element that emits invisible light. The light source includes a light emitting element that emits invisible light of different wavelengths depending on the position of the light source disposed on the mask.

2. A light beauty container, characterized in that: A mask is provided to cover at least a portion of a user's face, The mask has a plurality of light sources that emit light toward the face of the user wearing the mask. Each of the light sources comprises a light emitting element that emits visible light and a light emitting element that emits invisible light. The mask is provided with a light source having a light emitting element that emits invisible light of a wavelength that can reach deep layers of the dermis at a position opposite to the forehead of the user who wears the mask.

3. A light beauty container, characterized in that: A mask is provided to cover at least a portion of a user's face, The mask has a plurality of light sources that emit light toward the face of the user wearing the mask. Each of the light sources comprises a light emitting element that emits visible light and a light emitting element that emits invisible light. The mask is provided with a light source having a light emitting element that emits invisible light of a wavelength that reaches subcutaneous tissue, at a position that is opposite to the vicinity of the nasolabial folds of the user who wears the mask.

4. A light beauty container, characterized in that: A mask is provided to cover at least a portion of a user's face, The mask has a plurality of light sources that emit light toward the face of the user wearing the mask. Each of the light sources comprises a light emitting element that emits visible light and a light emitting element that emits invisible light. The mask is provided with a light source having a light emitting element that emits invisible light of a wavelength that has energy that reaches the dermis, at a position facing the cheek of the user who wears the mask.

5. The photobeautifying device according to any one of claims 1 to 4, characterized in that: Each of the light sources has a plurality of light emitting elements that emit visible light of different wavelengths.

Citation Information

Patent Citations

  • Beauty machine

    JP2018187323A