Bionic breathing sleep-aiding device and system and eyeshade

By using a biomimetic breathing sleep aid device to simulate changes in light to mimic breathing patterns, it addresses the problem of insomnia in modern society, achieving the effects of improving sleep quality and relieving psychological stress.

CN224166693UActive Publication Date: 2026-04-28LIGHTWAVE INFORMATION TECHNOLOGY (SHENZHEN) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
LIGHTWAVE INFORMATION TECHNOLOGY (SHENZHEN) CO LTD
Filing Date
2025-05-19
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

The fast pace of modern society and the blue light emitted by electronic devices have led to serious insomnia problems, and existing sleep aids are unable to effectively improve sleep quality and relieve psychological stress.

Method used

Design a biomimetic breathing-aided sleep device that uses a light panel that illuminates and dims to simulate breathing patterns, guiding users to adjust their breathing frequency to match the changes in light, thereby achieving a sleep-aiding effect.

Benefits of technology

The biomimetic breathing sleep aid device can effectively adjust the user's breathing rate, reduce brain wave frequency, improve sleep quality, relieve psychological stress, and prevent the risk of chronic diseases.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of phototherapy, in particular to a bionic breathing sleep-aiding device, a bionic breathing sleep-aiding system and an eyeshade. The bionic breathing sleep-aiding device comprises a surface layer, a lamp panel and an inner layer. A plurality of LED lamp beads are arranged on the surface of one side of the lamp panel. The surface layer and the inner layer are arranged on the two sides of the lamp panel respectively. The surface layer is arranged on the side, away from the LED lamp beads, of the lamp panel. The inner layer is arranged on the side, close to the LED lamp beads, of the lamp panel. And the surface layer and the inner layer are attached to cover the lamp panel. Preferably, the surface layer and the inner layer are both made of sponge and flexible fabric and can be bent freely. When a user wears the bionic breathing sleep-aiding eyeshade provided by the utility model, the lamp panel emits light and shade in a breathing simulation manner to guide the user to adjust breathing, so that the breathing frequency of the user is matched with the light and shade change of the light emitted by the lamp panel, and the sleep-aiding effect is achieved.
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Description

Technical Field

[0001] This utility model relates to the field of phototherapy technology, and in particular to a biomimetic breathing sleep aid device, system and eye mask. Background Technology

[0002] In today's fast-paced society with high work pressure, many people often stay up late and are in a state of anxiety, depression, and tension for extended periods. The blue light emitted from electronic devices suppresses melatonin secretion, further affecting sleep and exacerbating insomnia. Psychological stress, environmental discomfort, physiological factors, and unhealthy lifestyle habits work together to cause more and more people to suffer from insomnia. Chronic insomnia not only leads to weakened immunity, memory loss, and mood disorders, but also increases the risk of cardiovascular disease, diabetes, and other chronic illnesses. It can also cause problems such as poor concentration and skin aging, seriously affecting people's physical and mental health and quality of life.

[0003] To improve sleep quality, relieve psychological stress and anxiety, adjust the body's biological clock, and prevent health problems caused by insomnia, many sleep aids have emerged. For example, Chinese patent CN209734312U discloses a specific structure of a flexible eye mask. This patent's technical solution improves the specific structure of the flexible eye mask by dividing the functional layer into a first functional area and a second functional area. Different functional materials are used in the first and second functional areas, allowing them to emit light of different wavelengths. This can eliminate wrinkles, relieve fatigue, alleviate stress, improve sleep, and increase skin elasticity, improving skin laxity. Utility Model Content

[0004] The purpose of this invention is to provide a sleep aid device with a sleep-aiding effect, specifically a biomimetic breathing sleep aid device, system, and eye mask.

[0005] First, this utility model provides a biomimetic breathing-aided sleep device, comprising: a surface layer, a lamp panel, and an inner layer. A plurality of LED beads are disposed on one side of the lamp panel. The surface layer and the inner layer are respectively disposed on both sides of the lamp panel. The surface layer is disposed on the side of the lamp panel away from the LED beads. The inner layer is disposed on the side of the lamp panel closer to the LED beads. Furthermore, the surface layer and the inner layer are adhered to each other, covering the lamp panel.

[0006] According to a preferred embodiment, the inner layer includes a working area and connecting areas extending along both sides of the working area. The working area has two edges in the direction perpendicular to the extending connecting areas. One edge protrudes outward from the working area, and the other edge includes two protrusions protruding outward from the working area and a recessed portion recessed inward from the working area. The recessed portion is disposed between the two protrusions.

[0007] According to a preferred embodiment, a groove is provided on the side of the working area away from the lamp panel, and a through hole is provided within the groove. The groove has two edges extending in the direction perpendicular to the connecting area. One edge protrudes outward from the groove, and the other edge includes two protruding portions protruding outward from the groove and a recessed portion recessed into the groove. The recessed portion is disposed between the two protruding portions.

[0008] According to a preferred embodiment, the inner layer is axially symmetrical, the outer layer covers the inner layer, and the shape of the outer layer is adapted to the inner layer.

[0009] According to a preferred embodiment, the system further includes a battery assembly and a driver. The battery assembly is electrically connected to the driver, and the driver is electrically connected to the lamp panel. The battery assembly and the driver are disposed between the outer layer and the inner layer.

[0010] According to a preferred embodiment, the LED beads arranged on the lamp panel include at least LED beads with an emission wavelength of 630~760nm. The emission color temperature of the lamp panel is 1000~4500K. The total emission power of the lamp panel is 0.5~10W. The emission peak wavelength of the lamp panel is located in the range of 630~760nm. The emission half-wavelength of the lamp panel is >30nm. The proportion of blue light in the emission color ratio of the lamp panel is <6%.

[0011] According to a preferred embodiment, the LED beads configured on the lamp board are: single-wavelength red LED beads with an emission wavelength of at least one wavelength in the 630~760nm band; or broadband red LED beads with an emission wavelength of 640~720nm band and a half-wave width greater than 60nm.

[0012] According to a preferred embodiment, the light panel has a color temperature of 1000~1700K. The proportion of blue light in the light panel's color temperature ratio is <2%.

[0013] According to a preferred embodiment, the LED beads arranged on the lamp board further include white LED beads. The color temperature of the lamp board is 1700~4500K. The total luminous power of the lamp board is 1~10W. The color rendering index Ra of the lamp board is ≥70. The half-wavelength of the lamp board is >100nm.

[0014] According to a preferred embodiment, the light panel has a color temperature of 1700~2200K. The proportion of blue light in the light panel's color temperature ratio is <3%.

[0015] According to a preferred embodiment, the light panel has a color temperature of 2200~3000K. The proportion of blue light in the light panel's color temperature ratio is <4%.

[0016] According to a preferred embodiment, the light panel has a color temperature of 3000~4500K. The proportion of blue light in the light panel's color temperature ratio is <6%.

[0017] This utility model also provides a biomimetic breathing-assisted sleep system comprising: a wearable unit and a light-emitting unit. The wearable unit includes a surface layer and an inner layer; the light-emitting unit includes a lamp panel. A plurality of LED beads are disposed on one side surface of the lamp panel. The surface layer and the inner layer are respectively disposed on both sides of the lamp panel. The surface layer is disposed on the side of the lamp panel away from the LED beads. The inner layer is disposed on the side of the lamp panel closer to the LED beads. Furthermore, the surface layer and the inner layer are adhered to each other, covering the lamp panel.

[0018] This utility model also provides a biomimetic breathing-aid sleep mask, comprising: a surface layer, a light panel, and an inner layer. A plurality of LED beads are disposed on one side of the light panel. The surface layer and the inner layer are respectively disposed on both sides of the light panel. The surface layer is disposed on the side of the light panel away from the LED beads. The inner layer is disposed on the side of the light panel closer to the LED beads. The surface layer and the inner layer are adhered to each other, covering the light panel.

[0019] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0020] The biomimetic breathing sleep aid eye mask provided by this utility model includes: a surface layer, a light panel, and an inner layer. When the user wears the biomimetic breathing sleep aid eye mask provided by this utility model, the light panel emits light and shadow in a manner that simulates breathing, guiding the user to adjust their breathing so that the user's breathing frequency matches the changes in the brightness of the light panel, thereby achieving a sleep aid effect. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the composition of a preferred embodiment of the biomimetic breathing sleep aid device of this utility model;

[0022] Figure 2 This is a test diagram illustrating the effect of a biomimetic breathing sleep aid device according to a preferred embodiment of this utility model.

[0023] Marked in the image:

[0024] Lamp board 110, LED beads 111, inner layer 120, working area 121, connecting area 122, groove 123, through hole 124, surface layer 130, battery assembly 140, driver 150. Detailed Implementation

[0025] The present invention will be further described in detail below with reference to specific embodiments. However, it should not be construed as limiting the scope of the present invention to the following embodiments; all technologies implemented based on the content of the present invention fall within the scope of the present invention.

[0026] Unless otherwise specified, the use of terms such as "upper," "lower," "left," "right," "center," "inner," and "outer" to indicate orientation or positional relationships in the description of specific embodiments of this utility model is based on the orientation or positional relationships shown in the accompanying drawings, or the orientation or positional relationship in which the utility model product / equipment / device is typically placed during use. These terms are merely for the purpose of facilitating the description of the utility model solution or simplifying the description in specific embodiments, enabling those skilled in the art to quickly understand the solution, and do not indicate or imply that a specific device / component / element must have a specific orientation, or be constructed and operated in a specific positional relationship. Therefore, they should not be construed as limitations on this utility model.

[0027] Furthermore, the use of terms such as "horizontal," "vertical," "suspended," and "parallel" does not imply that the corresponding device / component / element must be absolutely horizontal, vertical, suspended, or parallel, but rather that it can be slightly tilted or have a deviation. For example, "horizontal" merely means that its direction is more horizontal relative to "vertical," not that the structure must be completely horizontal, but can be slightly tilted. Alternatively, it can be simplified to mean that the corresponding device / component / element, when set in a "horizontal," "vertical," "suspended," or "parallel" direction, can have an error / deviation of ±10% relative to the corresponding direction, more preferably within ±8%, more preferably within ±6%, more preferably within ±5%, and more preferably within ±4%. As long as the corresponding device / component / element is within the error / deviation range, it can still achieve its function in the present invention.

[0028] Furthermore, the use of terms such as "first," "second," and "third" in terminology is merely for distinguishing descriptions of identical or similar components and should not be interpreted as emphasizing or implying the relative importance of a particular component.

[0029] Furthermore, in the description of the embodiments of this utility model, "several", "multiple", and "several" represent at least two. The number can be any number, such as two, three, four, five, six, seven, eight, or nine, and can even exceed nine.

[0030] Furthermore, in the description of the technical solution of this utility model, unless otherwise explicitly specified / limited / restricted, the terms "set up," "install," "connect," "link," "equipped with," "laid out," and "arranged" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to common connection methods in the art, such as welding, riveting, bolting, and threaded connections. Such connections can be mechanical, electrical, or communication connections; they can be direct connections or indirect connections through an intermediate medium; and they can refer to the internal communication between two components.

[0031] Example 1

[0032] This embodiment provides a biomimetic breathing-assisted sleep device. See also... Figure 1 The breathing-aid sleep device includes: a surface layer 130, a lamp panel 110, and an inner layer 120. A plurality of LED beads 111 are disposed on one side of the lamp panel 110. The surface layer 130 and the inner layer 120 are respectively disposed on both sides of the lamp panel 110. The surface layer 130 is disposed on the side of the lamp panel 110 away from the LED beads 111. The inner layer 120 is disposed on the side of the lamp panel 110 closer to the LED beads 111. The surface layer 130 and the inner layer 120 are adhered to each other, covering the lamp panel 110. Preferably, both the surface layer 130 and the inner layer 120 are made of sponge and flexible fabric, allowing for free bending.

[0033] Preferably, the inner layer 120 includes a working area 121 and connecting areas 122 extending along both sides of the working area 121. The working area 121 has two edges in the direction perpendicular to the extension of the connecting areas 122. One edge protrudes outward from the working area 121, and the other edge includes two protrusions protruding outward from the working area 121 and a recessed portion recessed inward from the working area 121. The recessed portion is disposed between the two protrusions.

[0034] Preferably, the connecting area 122 can be configured as a strap, Velcro, etc., for wearing the bionic breathing sleep aid device over the user's eyes. Preferably, the recessed portion of the working area 121 can conform to the user's nose bridge for positioning during wear.

[0035] Preferably, a groove 123 is provided on the side of the working area 121 away from the lamp panel 110, and a through hole 124 is provided in the groove 123. The groove 123 has two edges in the direction extending vertically to the connecting area 122. One edge protrudes outward from the groove 123, and the other edge includes two protruding portions protruding outward from the groove 123 and a recessed portion recessed inward from the groove 123. The recessed portion is located between the two protruding portions.

[0036] Preferably, when the user wears the bionic breathing sleep aid device, the groove 123 covers the user's eyes. At this time, the cavity between the groove 123 and the user's eyes can prevent the user's eyeballs from being pressured.

[0037] Preferably, the inner layer 120 is symmetrical about its central axis, the outer layer 130 covers the inner layer 120, and the shape of the outer layer 130 is adapted to that of the inner layer 120.

[0038] Preferably, the system further includes a battery assembly 140 and a driver 150. The battery assembly 140 is electrically connected to the driver 150, and the driver 150 is electrically connected to the lamp panel 110. Preferably, the electrical connection is specifically a wire connection. The battery assembly 140 and the driver 150 are disposed between the outer layer 130 and the inner layer 120.

[0039] Preferably, the battery assembly 140 supplies power to the lamp panel 110 via the driver 150. Preferably, the driver 150 is equipped with a switch for controlling the on / off state of the circuit.

[0040] Preferably, the lamp panel 110 includes two annular regions and a strip region connecting the two annular regions. Preferably, a plurality of LED beads 111 are arranged in the center of the annular regions of the lamp panel 110. Preferably, the plurality of LED beads 111 arranged in the annular regions of the lamp panel 110 are connected in series and parallel. And the power supply ports of the plurality of LED beads 111 on the lamp panel 110 are led out from the lamp panel 110 and connected to the driver 150.

[0041] Preferably, the driver 150 is an intelligent LED driver, capable of adjusting the power supply to the lamp board 110, thereby controlling the brightness and switching of the LED beads 111. Preferably, the driver 150 is equipped with a control chip, and by pre-setting a control program to the control chip, the driver 150 can control the brightness of the lamp board 110 at a preset frequency or duration, thereby achieving biomimetic breathing.

[0042] Preferably, the brightness control scheme of the driver 150 for the lamp board 110 can be as follows: after power-on, the brightness of the lamp board 110 is gradually increased from 5% to 100%, then the brightness of the lamp board 110 is gradually decreased from 100% to 5%, and then the brightness of the lamp board 110 is gradually increased from 5% to 100%, and so on.

[0043] Preferably, within 1 to 10 minutes after power-on, the brightness of the lamp panel 110 is gradually increased from 5% to 100%, then gradually decreased from 100% to 5%, and then gradually increased from 5% to 100%, and this cycle is repeated. Preferably, the time taken for the brightness of the lamp panel 110 to gradually increase from 5% to 100% is 1.1 to 3.5 seconds, more preferably 1.4 to 1.6 seconds; the time taken for the brightness of the lamp panel 110 to gradually decrease from 100% to 5% is 1.2 to 3.6 seconds, more preferably 2.3 to 2.6 seconds.

[0044] Preferably, within 11-20 minutes after power-on, the brightness of the lamp panel 110 is gradually increased from 5% to 100%, then gradually decreased from 100% to 5%, and then gradually increased from 5% to 100%, and this cycle is repeated. Preferably, the time taken for the brightness of the lamp panel 110 to gradually increase from 5% to 100% is 1.3-4.5 seconds, more preferably 1.6-1.8 seconds; the time taken for the brightness of the lamp panel 110 to gradually decrease from 100% to 5% is 1.4-4.6 seconds, more preferably 2.9-3.2 seconds.

[0045] Preferably, within 21-30 minutes after power-on, the brightness of the lamp panel 110 is gradually increased from 5% to 100%, then gradually decreased from 100% to 5%, and then gradually increased from 5% to 100%, and this cycle is repeated. Preferably, the time taken for the brightness of the lamp panel 110 to gradually increase from 5% to 100% is 1.4-5.5 seconds, more preferably 1.9-2.1 seconds; the time taken for the brightness of the lamp panel 110 to gradually decrease from 100% to 5% is 1.5-5.6 seconds, more preferably 3.5-3.8 seconds.

[0046] Preferably, within 31-40 minutes after power-on, the brightness of the lamp panel 110 is gradually increased from 5% to 100%, then gradually decreased from 100% to 5%, and then gradually increased from 5% to 100%, and this cycle is repeated. Preferably, the time taken for the brightness of the lamp panel 110 to gradually increase from 5% to 100% is 1.5-6.5 seconds, more preferably 2.1-2.3 seconds; the time taken for the brightness of the lamp panel 110 to gradually decrease from 100% to 5% is 1.6-6.6 seconds, more preferably 4.3-4.6 seconds.

[0047] Preferably, the power is turned off 41 minutes after power-on.

[0048] Preferably, the shape of the groove 123 is adapted to the shape of the lamp panel 110. Preferably, two through holes 124 are provided in the groove 123. The two through holes 124 correspond to the arrangement area of ​​the LED beads 111 of the lamp panel 110. Preferably, when the lamp panel 110 emits light, the light shines into the human eye through the through holes 124.

[0049] Preferably, the operating voltage of the lamp board 110 is DC 3V. Preferably, the operating current of the lamp board 110 is 200~2000mA.

[0050] Preferably, the LED chips 111 arranged on the lamp panel 110 include at least LED chips with an emission wavelength of 630~760nm. The emission color temperature of the lamp panel 110 is 1000~4500K. The total emission power of the lamp panel 110 is 0.5~10W. The emission peak wavelength of the lamp panel 110 is located in the range of 630~760nm. The emission half-width of the lamp panel 110 is >30nm. The proportion of blue light in the emission color ratio of the lamp panel 110 is <6%.

[0051] Preferably, the LED beads 111 configured on the lamp board 110 may be only red LED beads. Preferably, the LED beads 111 configured on the lamp board 110 may be: single-wavelength red LED beads with an emission wavelength of at least one wavelength in the 630-760nm band; or broadband red LED beads with a half-wavelength greater than 60nm in the 640-720nm band. Preferably, the emission color temperature of the lamp board 110 is 1000-1700K. The total emission power of the lamp board 110 is 0.5-10W. The emission peak wavelength of the lamp board 110 is located in the 630-760nm range. The emission half-wavelength of the lamp board 110 is >30nm. The proportion of blue light in the emission color ratio of the lamp board 110 is <2%.

[0052] Preferably, the LED beads 111 configured on the light panel 110 can be a combination of white LED beads and red LED beads. Specifically, it can be a combination of white LED beads and single-wavelength red LED beads, or a combination of white LED beads and broadband red LED beads.

[0053] Preferably, when the LED beads 111 configured on the lamp board 110 are a combination of white LED beads and red LED beads, the emission color temperature of the lamp board 110 is 1700~4500K; the total emission power of the lamp board 110 is 1~10W; the color rendering index Ra of the lamp board 110 is ≥70; the emission peak wavelength of the board 110 is located in the range of 630~760nm; the emission half-wave width of the lamp board 110 is >100nm; and the proportion of blue light in the emission color ratio of the lamp board 110 is <3%.

[0054] Preferably, when the LED beads 111 configured on the lamp board 110 are a combination of white LED beads and red LED beads, the emission color temperature of the lamp board 110 is 2200~3000K; the total emission power of the lamp board 110 is 1~10W; the color rendering index Ra of the lamp board 110 is ≥70; the emission peak wavelength of the board 110 is located in the range of 630~760nm; the emission half-wave width of the lamp board 110 is >100nm; and the proportion of blue light in the emission color ratio of the lamp board 110 is <4%.

[0055] Preferably, when the LED beads 111 configured on the lamp board 110 are a combination of white LED beads and red LED beads, the emission color temperature of the lamp board 110 is 3000~4500K; the total emission power of the lamp board 110 is 1~10W; the color rendering index Ra of the lamp board 110 is ≥70; the emission peak wavelength of the board 110 is located in the range of 630~760nm; the emission half-wave width of the lamp board 110 is >100nm; and the proportion of blue light in the emission color ratio of the lamp board 110 is <6%.

[0056] Example 2

[0057] This embodiment provides a biomimetic breathing sleep aid system. The biomimetic breathing sleep aid system includes a wearable unit and a light-emitting unit. The wearable unit includes a surface layer 130 and an inner layer 120; the light-emitting unit includes a lamp panel 110. A plurality of LED beads 111 are disposed on one side surface of the lamp panel 110. The surface layer 130 and the inner layer 120 are respectively disposed on both sides of the lamp panel 110. The surface layer 130 is disposed on the side of the lamp panel 110 away from the LED beads 111. The inner layer 120 is disposed on the side of the lamp panel 110 closer to the LED beads 111. The surface layer 130 and the inner layer 120 are adhered to each other, covering the lamp panel 110. Preferably, the biomimetic breathing sleep aid system includes the biomimetic breathing sleep aid device described in Embodiment 1.

[0058] Example 3

[0059] This embodiment provides a biomimetic breathing-aided sleep mask. The biomimetic breathing-aided sleep mask includes: a surface layer 130, a light panel 110, and an inner layer 120. A plurality of LED beads 111 are disposed on one side of the light panel 110. The surface layer 130 and the inner layer 120 are respectively disposed on both sides of the light panel 110. The surface layer 130 is disposed on the side of the light panel 110 away from the LED beads 111. The inner layer 120 is disposed on the side of the light panel 110 closer to the LED beads 111. The surface layer 130 and the inner layer 120 are adhered to each other, covering the light panel 110.

[0060] Preferably, the bionic breathing sleep aid eye mask involved in this embodiment is a specific implementation of the bionic breathing sleep aid device involved in Embodiment 1.

[0061] Preferably, the biomimetic breathing sleep aid eye mask provided in this embodiment is used to test its sleep aid effect.

[0062] Preferably, the test content is as follows: Every night from 9 to 11 pm, the test subject wears a bionic breathing sleep aid eye mask, lies on the bed and rests quietly for about 10 minutes, turns on the light switch of the bionic breathing sleep aid eye mask, and adjusts the breathing under the guidance of the changes in the brightness of the light of the bionic breathing sleep aid eye mask so that the breathing frequency is consistent with the changes in the brightness of the light, that is, continuously inhaling as the light changes from dim to bright and continuously exhaling as the light changes from bright to dim, repeatedly following the cycle of breathing with the changes in the brightness of the light; the brain wave changes of the test subject are monitored during the test, and the test is conducted for 6 consecutive days.

[0063] Preferably, the biomimetic breathing sleep aid eye mask emits biomimetic light during at least four time periods after being turned on. In the first time period, the "inhale" light brightens for 1.4–1.6 seconds, and the "exhale" light dims for 2.3–2.6 seconds. In the second time period, the "inhale" light brightens for 1.6–1.8 seconds, and the "exhale" light dims for 2.9–3.26 seconds. In the third time period, the "inhale" light brightens for 1.9–2.1 seconds, and the "exhale" light dims for 3.5–3.8 seconds. In the fourth time period, the "inhale" light brightens for 2.1–2.3 seconds, and the "exhale" light dims for 4.3–4.6 seconds.

[0064] See test results Figure 2 , Figure 2 It primarily reflects the brainwave changes of the test subjects during resting time and the first four biomimetic breathing periods. According to... Figure 2 It is evident that using the biomimetic breathing sleep-aid eye mask provided in this embodiment can effectively reduce brainwave frequency, thus promoting sleep, and the effect is even better with long-term use. After using the sleep-aid eye mask for one hour, the brainwave frequency of the test subjects decreased from 22-26Hz to 8-12Hz.

[0065] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A biomimetic breathing-aided sleep device, characterized in that, include: Surface layer (130), light panel (110), inner layer (120); A plurality of LED beads (111) are provided on one side surface of the lamp panel (110). The outer layer (130) and the inner layer (120) are respectively disposed on both sides of the lamp panel (110); The surface layer (130) is disposed on the side of the lamp panel (110) away from the LED beads (111); The inner layer (120) is disposed on the side of the lamp panel (110) near the LED beads (111); Furthermore, the outer layer (130) and the inner layer (120) are bonded together to cover the lamp panel (110).

2. The biomimetic breathing sleep aid device according to claim 1, characterized in that, The inner layer (120) includes a working area (121) and a connecting area (122) extending from both sides of the working area (121); The working area (121) has two edges in the direction of extension of the vertical connecting area (122); one edge protrudes outward from the working area (121), and the other edge includes two protrusions protruding outward from the working area (121) and a recessed portion recessed inward from the working area (121), the recessed portion being disposed between the two protrusions.

3. The biomimetic breathing sleep aid device according to claim 2, characterized in that, The working area (121) is provided with a groove (123) on the side away from the lamp panel (110), and a through hole (124) is provided in the groove (123); the groove (123) has two edges in the direction of extension of the vertical connection area (122); one edge protrudes out of the groove (123), and the other edge includes two protrusions protruding out of the groove (123) and a recessed part that is recessed into the groove (123), and the recessed part is disposed between the two protrusions.

4. The biomimetic breathing sleep aid device according to claim 3, characterized in that, The inner layer (120) is symmetrical about its central axis, the outer layer (130) covers the inner layer (120), and the shape of the outer layer (130) is adapted to the inner layer (120).

5. The biomimetic breathing sleep aid device according to claim 4, characterized in that, Also includes: Battery assembly (140) and driver (150); The battery assembly (140) is electrically connected to the driver (150), and the driver (150) is electrically connected to the lamp panel (110); The battery assembly (140) and the driver (150) are disposed between the outer layer (130) and the inner layer (120).

6. The biomimetic breathing sleep aid device according to claim 5, characterized in that, The LED beads (111) arranged on the lamp board (110) include at least LED beads with an emission wavelength of 630~760nm; the emission color temperature of the lamp board (110) is 1000~4500K; the total emission power of the lamp board (110) is 0.5~10W; the emission peak wavelength of the lamp board (110) is located in the range of 630~760nm; the emission half-wave width of the lamp board (110) is >30nm; and the proportion of blue light in the emission color ratio of the lamp board (110) is <6%.

7. The biomimetic breathing sleep aid device according to claim 6, characterized in that, The LED beads (111) configured on the lamp board (110) are: single-wavelength red LED beads with an emission wavelength of at least one wavelength in the 630~760nm band; or broadband red LED beads with an emission wavelength of 640~720nm and a half-wave width greater than 60nm.

8. A biomimetic breathing sleep aid device according to claim 7, characterized in that, The light emission color temperature of the lamp panel (110) is 1000~1700K; the proportion of blue light in the light emission color ratio of the lamp panel (110) is <2%.

9. A biomimetic breathing sleep aid device according to claim 6, characterized in that, The LED beads (111) configured on the lamp board (110) also include white LED beads; the luminous color temperature of the lamp board (110) is 1700~4500K; the total luminous power of the lamp board (110) is 1~10W; the color rendering index Ra of the lamp board (110) is ≥70; the luminous half-wavelength of the lamp board (110) is >100nm.

10. A biomimetic breathing sleep aid device according to claim 9, characterized in that, The light emission color temperature of the lamp panel (110) is 1700~2200K; the proportion of blue light in the light emission color ratio of the lamp panel (110) is <3%.

11. A biomimetic breathing sleep aid device according to claim 9, characterized in that, The light emission color temperature of the lamp panel (110) is 2200~3000K; the proportion of blue light in the light emission color ratio of the lamp panel (110) is <4%.

12. A biomimetic breathing sleep aid device according to claim 9, characterized in that, The light emission color temperature of the lamp panel (110) is 3000~4500K.

13. A biomimetic breathing-aided sleep system, characterized in that, include: The wearable unit includes a surface layer (130) and an inner layer (120); the light-emitting unit includes a lamp panel (110). A plurality of LED beads (111) are provided on one side surface of the lamp panel (110). The outer layer (130) and the inner layer (120) are respectively disposed on both sides of the lamp panel (110); The surface layer (130) is disposed on the side of the lamp panel (110) away from the LED beads (111); The inner layer (120) is disposed on the side of the lamp panel (110) near the LED beads (111); Furthermore, the outer layer (130) and the inner layer (120) are bonded together to cover the lamp panel (110).

14. A biomimetic breathing-aid sleep mask, characterized in that, include: Surface layer (130), light panel (110), inner layer (120); A plurality of LED beads (111) are provided on one side surface of the lamp panel (110). The outer layer (130) and the inner layer (120) are respectively disposed on both sides of the lamp panel (110); The surface layer (130) is disposed on the side of the lamp panel (110) away from the LED beads (111); The inner layer (120) is disposed on the side of the lamp panel (110) near the LED beads (111); Furthermore, the outer layer (130) and the inner layer (120) are bonded together to cover the lamp panel (110).

Citation Information

Patent Citations

  • Flexible eyeshade

    CN209734312U