Functional devices, multifunctional clothing, membrane structures and wearable devices
By collecting and converting environmental electromagnetic waves into resonant waves through the functional chip on the flexible printed substrate, the problem that existing electrical stimulation therapeutic devices cannot penetrate deep into the lesions is solved, and painless, side-effect-free bioelectric stimulation is achieved, which is suitable for a variety of daily consumer products.
Patent Information
- Application Number
- CN202111116051.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-09-23
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2041-09-23
AI Technical Summary
Existing electrical stimulation therapy devices are unable to penetrate deep into the lesions, making it difficult to effectively treat painful and chronic diseases. Traditional solutions cannot be applied to daily consumer products such as bras, yoga pants, and shapewear.
It uses a functional chip on a flexible printed substrate, collects environmental electromagnetic waves through a flexible receiving coil and converts them into resonance waves. The resonance chip is used to resonate with the organism to achieve passive bioelectric stimulation, promote blood flow and metabolism, and does not require an external power supply, making it easy to carry and durable.
It achieves painless, side-effect-free deep bioelectric stimulation, promotes blood flow and metabolism, and is suitable for daily consumer products in a variety of scenarios.
Smart Images

Figure CN113769277B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of radio wave conduction technology, and in particular to a functional device, a multifunctional garment, a membrane structure and a wearable device. Background Art
[0002] In related technologies, all electrical stimulation therapy devices, whether 220V voltage or 5V low voltage, use output energy converted into EMS pulses as a means of treatment or physical therapy. The theoretical basis of these devices is local stimulation, which makes patients feel obvious numbness and pain, and it is difficult to penetrate deep into the lesion. Moreover, this active voltage solution cannot break away from the limitations of application scenarios and cannot be applied to daily consumer products such as bras, yoga pants, body shapers, facial masks, watches, and bracelets. Summary of the Invention
[0003] The present invention aims to solve or improve at least one of the technical problems existing in the prior art or related art.
[0004] To this end, a first aspect of the present invention provides a functional device.
[0005] A second aspect of the present invention also provides a multifunctional garment.
[0006] The third aspect of the present invention also provides a membrane structure.
[0007] A fourth aspect of the present invention further provides a wearable device.
[0008] In view of this, the first aspect of the present invention proposes a functional device including: a flexible printed substrate; a functional chip, arranged on the flexible printed substrate, the functional chip including: a flexible receiving coil, used to collect ambient electromagnetic waves around the functional device; a resonance chip, connected to the flexible receiving coil, used to convert the ambient electromagnetic waves into resonance waves.
[0009] The present invention provides a functional device, comprising a functional chip and a flexible printed substrate. The functional chip is arranged on the flexible printed substrate, and the environmental electromagnetic waves around the functional device (such as electromagnetic waves generated by a light source, magnetic field waves around an organism, etc.) are collected by the flexible receiving coil of the functional chip, and the environmental electromagnetic waves are introduced into the resonance chip of the functional chip so that the resonance chip changes the frequency of the environmental electromagnetic waves and emits a resonant wave with a similar frequency to the biological electromagnetic waves generated by the organism. In the first aspect, when the resonance wave acts on the organism, it conducts and penetrates from the outside to the inside, resonates and resonates with the cells in the body, forms bioelectricity, and realizes cell charging. Even if some traditional artificial massage or meridian therapy cannot penetrate into the organs and tissues, it can still play the role of dilating blood vessels, promoting blood flow rate, increasing blood flow and activating systemic immunoglobulins, promoting the metabolism of the organism, solving the problem that artificial therapy cannot penetrate into the lesions and is difficult to dredge capillaries, especially for chronic diseases such as painful diseases and capillary stasis nodules (such as mastitis, breast nodules, prostatitis, edema, etc.), which has a good alleviating and improving effect. Secondly, the functional device itself does not generate any energy waves, with an energy radiation rate of zero, causing no damage or side effects to the skin. Thirdly, the functional chip can emit resonant waves without the need for an external power source, making it easy to carry and use. Furthermore, the passive functional chip is mounted on a flexible printed substrate, which offers high deformation tolerance and is washable and rub-resistant, extending the device's service life and accommodating a wide range of applications.
[0010] The functional device provided above according to the present invention may also have the following additional technical features:
[0011] In the above technical solution, further, the resonance chip includes: an oscillator connected to the flexible receiving coil, the oscillator is used to resonate with the environmental electromagnetic waves to form a resonance wave of a specified frequency; a transmitter connected to the oscillator, the transmitter is used to emit the resonance wave.
[0012] In this technical solution, the resonance chip includes an oscillator and a transmitter. Among them, the oscillator is based on the principle of wave-frequency coupling resonance. When an environmental electromagnetic wave of a specified wavelength is obtained, the oscillator is started to amplify the environmental electromagnetic wave with an oscillation frequency (specified frequency) similar to the biological electromagnetic wave emitted by the organism to form a resonance wave. The resonance wave is input to the transmitter, and the resonance wave is fed back to the outside of the functional device through the transmitter. When the functional device is close to the organism, the resonance wave can act on the organism, causing resonance of the magnetic elements in the organism, thereby forming bioelectricity, promoting blood flow rate, increasing blood flow, improving the immune system, and facilitating the dissipation of chronic inflammation. It also helps to promote blood circulation, remove blood stasis, regulate qi and relieve pain, thereby preventing or eliminating nodules in the body, so as to achieve the cell resonance effect of the functional device.
[0013] In any of the above technical solutions, the functional chip further includes: a sensor for detecting biological electromagnetic waves emitted by a biological body; a main control chip connected to the resonance chip and the sensor, and the main control chip is used to adjust the oscillation frequency of the oscillator according to the resonance frequency of the biological electromagnetic waves.
[0014] In this technical solution, the functional chip also includes interconnected sensors and a main control chip. The sensors are highly sensitive to bioelectromagnetic waves from organisms and can sense the bioelectromagnetic waves scattered by them. The main control chip calculates the resonant frequency based on the sensed bioelectromagnetic waves and controls the oscillation frequency of the oscillator accordingly. This fully accounts for the potential differences in bioelectromagnetic wave frequencies among different organisms, allowing the resonant waves emitted by the transmitter to match those of the organism, thereby causing resonance of the magnetic elements within the organism. This, in turn, through resonant waves that vary with individual individuals, replenishes the organism's bioelectricity, enhancing the practicality of the functional device.
[0015] It is understood that when the transmitter resistance is fixed, the current can be adjusted by changing the output voltage of the energy converter. When the output voltage is fixed, the current can be adjusted by changing the transmitter resistance.
[0016] Furthermore, the wavelength range of the resonance wave is 4 microns to 14 microns, and the frequency range of the resonance wave is 30 Hz to 200 Hz, which can be reasonably set according to the wavelength and resonance frequency of the bioelectromagnetic waves generated by the organism.
[0017] In any of the above technical solutions, the functional device further includes: an isolation layer, which is coated on the functional chip.
[0018] In this technical solution, an isolation layer is applied to the surface of the functional chip to encapsulate the functional device. This prevents the functional chip from being damaged by direct exposure to the atmosphere, thereby protecting the functional chip and making the functional device more durable.
[0019] In any of the above technical solutions, further, the flexible printed substrate is constructed into a sheet structure, and the thickness of the flexible printed substrate is 0.3 mm to 3 mm.
[0020] In this technical solution, the thickness of the flexible printed substrate determines the thickness of the functional device. The flexible printed substrate can be constructed into a sheet structure with a thickness of 0.3 mm to 3 mm to ensure the aesthetics and comfort of wearing the functional device.
[0021] In addition, the length, width, or diameter of the flexible printed substrate is set to range from 0.5 cm to 15 cm. The size of the flexible printed substrate can be specifically set according to the corresponding biological part of the functional device and the required resonance wave coverage range.
[0022] In any of the above technical solutions, further, the number of the resonance chips is one or more, and the multiple resonance chips are evenly distributed on the flexible printed substrate.
[0023] In this technical solution, multiple resonance chips can be set on the flexible printed substrate. The multiple resonance chips can simultaneously output resonance waves at different positions of the flexible printed substrate, effectively suppressing the attenuation of the resonance wave during propagation, which is conducive to increasing the coverage range of the resonance wave.
[0024] In any of the above technical solutions, further, a minimum distance between the flexible receiving coil and an edge of the flexible printed substrate is 1 mm to 2 mm.
[0025] In this technical solution, the minimum distance between the flexible receiving coil and the edge of the flexible printed substrate should be neither too large nor too small. If it is too large, the flexible printed substrate will easily block the flexible receiving coil from collecting ambient electromagnetic waves. If it is too small, the flexible receiving coil will be close to the edge of the flexible printed substrate, making it more susceptible to damage when the flexible printed substrate is bent. This also means that the flexible printed substrate will have difficulty protecting and securing the flexible receiving coil. To this end, the minimum distance between the flexible receiving coil and the edge of the flexible printed substrate is set to 1 mm to 2 mm.
[0026] According to a second aspect of the present invention, a multifunctional garment is provided, comprising: a garment body; and the functional device of the first aspect, the functional device being disposed within the garment body. Thus, the multifunctional garment possesses all the beneficial effects of the functional device of the first aspect, and to avoid repetition, further details are omitted.
[0027] Furthermore, the multifunctional clothing includes at least one of the following: a bra, underwear, a top, pants, a body-shaping garment, and socks.
[0028] Specifically, one or more functional devices can be detachably mounted on the garment body, allowing the wearer to select the number of functional devices required, thereby utilizing multiple functional devices to achieve a resonant effect on cells in different regions of the body. Furthermore, the functional devices can be positioned near specific acupuncture points on the body, not only producing a systemic effect through resonant waves flowing throughout the body, but also further enhancing the effectiveness of acupuncture point stimulation.
[0029] According to a third aspect of the present invention, a membrane structure is provided, comprising a membrane fabric and the functional device of the first aspect, the functional device being disposed on the membrane fabric. Thus, the membrane structure possesses all the beneficial effects of the functional device of the first aspect, and to avoid repetition, further details will be omitted.
[0030] Furthermore, the membrane structure includes at least one of the following: a facial mask, an eye mask, a neck mask, a chest mask, a hand mask, a foot mask, a buttocks mask, etc.
[0031] According to a fourth aspect of the present invention, a wearable device is further provided, comprising the functional device provided in the first aspect. Therefore, the wearable device has all the beneficial effects of the functional device provided in the first aspect, and to avoid repetition, no further details are given.
[0032] Furthermore, the wearable device includes at least one of the following: a watch, a bracelet, an eye mask, glasses, etc.
[0033] It should be noted that the functional device is arranged on the side of the multifunctional clothing, membrane structure or wearable device close to the organism, so as to prevent other structures of the multifunctional clothing, membrane structure or wearable device from hindering the transmission of the resonance wave.
[0034] Additional aspects and advantages of the invention will become apparent from the description which follows, or may be learned by practice of the invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0035] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the following description of the embodiments with reference to the accompanying drawings, in which:
[0036] Figure 1 A schematic structural diagram of a functional device according to an embodiment of the present invention is shown;
[0037] Figure 2 A schematic structural diagram of a multifunctional garment according to an embodiment of the present invention is shown;
[0038] Figure 3 A schematic structural diagram of a membrane structure according to an embodiment of the present invention is shown.
[0039] in, Figures 1 to 3 The corresponding relationship between the reference numerals and component names is as follows:
[0040] 100 functional devices, 110 flexible printed substrates, 120 functional chips, 122 resonance chips, 124 flexible receiving coils, 200 clothing bodies, 300 membrane fabrics. DETAILED DESCRIPTION
[0041] In order to more clearly understand the above-mentioned objects, features and advantages of the present invention, the present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that, in the absence of conflict, the embodiments of the present application and the features therein can be combined with each other.
[0042] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present invention is not limited to the specific embodiments disclosed below.
[0043] Refer to the following Figures 1 to 3 A functional device, multifunctional clothing, membrane structure and wearable device according to some embodiments of the present invention are described.
[0044] Example 1:
[0045] like Figure 1 As shown, according to an embodiment of the first aspect of the present invention, the present invention provides a functional device 100 including a flexible printed substrate 110 and a functional chip 120 .
[0046] Specifically, the functional chip 120 is disposed on the flexible printed circuit board 110. The functional chip 120 includes a flexible receiving coil 124 and a resonance chip 122. The flexible receiving coil 124 is used to collect ambient electromagnetic waves surrounding the functional device 100. The resonance chip 122 is connected to the flexible receiving coil 124 and is used to convert ambient electromagnetic waves into resonance waves.
[0047] In this embodiment, the functional chip 120 is set on the flexible printed substrate 110, and the flexible receiving coil 124 of the functional chip 120 collects the environmental electromagnetic waves (such as electromagnetic waves generated by the light source, magnetic field waves around the biological body, etc.) around the functional device 100 (within 3 meters to 10 meters), and introduces the environmental electromagnetic waves into the resonance chip 122 of the functional chip 120, so that the resonance chip 122 changes the frequency of the environmental electromagnetic waves and emits resonant waves with a similar frequency to the biological electromagnetic waves generated by the biological body. First, when the resonance wave acts on the organism, it conducts and penetrates from the outside to the inside, resonating and resonating with the cells in the body, generating bioelectricity and achieving cell charging. Even if some traditional manual massage or meridian therapy cannot penetrate into the organs and tissues, it can still dilate blood vessels, promote blood flow velocity, increase blood volume, and activate systemic immunoglobulins, thereby promoting the metabolism of the organism. This solves the problem that manual therapy cannot penetrate into the lesions and is difficult to dredge capillaries. In particular, it has a good alleviating and improving effect on chronic diseases such as painful diseases and capillary congestion nodules (such as mastitis, breast nodules, prostatitis, edema, etc.). Second, the functional device 100 itself does not have any energy waves and has an energy radiation rate of 0, causing no damage to the skin of the organism and no side effects. Thirdly, the functional chip 120 can realize the emission of resonance waves without an external power supply, which is convenient for users to carry and use. Moreover, the passive functional chip 120 is set on the flexible printed substrate 110, which has a high deformation tolerance rate and achieves the effects of washing resistance and rubbing resistance, which is beneficial to prolonging the service life of the functional device 100, and can better fit the biological body, while improving the resonance effect of the resonance wave, meeting various scenarios of the wide application of the functional device 100.
[0048] Specifically, the flexible printed circuit board 110 is a high-temperature-resistant flexible printed circuit board 110, capable of withstanding temperatures as low as 150°C to 200°C. The flexible receiving coil 124 is very sensitive to external electromagnetic waves and can be a metal coil. Of course, the flexible receiving coil 124 can be a flexible coil, which has a high deformation tolerance and is washable and rub-resistant.
[0049] Furthermore, the flexible printed substrate 110 is constructed into a sheet structure, and the thickness of the flexible printed substrate 110 is 0.3 mm to 3 mm, for example, 0.9 mm, 1.5 mm or 2.6 mm, etc., to ensure the aesthetics and comfort of the wearable functional device 100.
[0050] In addition, the length, width, or diameter of the flexible printed substrate can be set to a range of 0.5 cm to 15 cm, for example, 0.6 cm, 1 cm, 2.25 cm, 9 cm, etc. The size of the flexible printed substrate can be specifically set according to the corresponding biological part of the functional device and the required resonance wave coverage range. The present invention is not specifically limited here. For example, if the functional device is used in a bra, the flexible printed substrate can be set as a flat circular sheet with a diameter of 2 cm. If the functional device is used in a facial mask, the flexible printed substrate can be set as a flat circular sheet with a diameter of 0.6 cm.
[0051] Furthermore, the number of resonant chips is one or more, and the multiple resonant chips are evenly distributed on the flexible printed substrate. Thus, the multiple resonant chips simultaneously output resonant waves at different positions on the flexible printed substrate, thereby effectively suppressing the attenuation of the resonant wave during propagation, which is conducive to increasing the coverage range of the resonant wave.
[0052] Example 2:
[0053] According to an embodiment of the present invention, based on the above embodiment, further: the resonance chip includes an oscillator and a transmitter.
[0054] Specifically, an oscillator is connected to the flexible receiving coil and is used to resonate with the ambient electromagnetic wave to form a resonance wave of a specified frequency. A transmitter is connected to the oscillator and is used to transmit the resonance wave.
[0055] In this embodiment, the resonance chip includes an oscillator and a transmitter. Among them, the oscillator is based on the principle of wave-frequency coupling resonance. When an environmental electromagnetic wave of a specified wavelength is obtained, the oscillator is started to amplify the environmental electromagnetic wave with an oscillation frequency (specified frequency) similar to the biological electromagnetic wave emitted by the organism to form a resonance wave. The resonance wave is input to the transmitter, and the resonance wave is fed back to the outside of the functional device through the transmitter. When the functional device is close to the organism, the resonance wave can act on the organism, causing resonance of the magnetic elements in the organism, thereby forming bioelectricity, promoting blood flow rate, increasing blood flow, improving the immune system, and being conducive to the dissipation of chronic inflammation, and helping to promote blood circulation, remove blood stasis, regulate qi and relieve pain, thereby preventing or eliminating nodules in the body, so as to achieve the cell resonance effect of the functional device.
[0056] For example, the blackbody radiation theory can be used to deduce wavelength values beneficial to organisms. Based on the Wien constant and absolute temperature, the calculated resonant wavelength beneficial to organisms is 9.34 microns, calculated as 2897 / (37+273)=9.34, where 2897 is the Wien constant, 37 is the Celsius temperature of the radiator's surface, and 273 is the absolute temperature. Therefore, the wavelength of the resonance chip is set to 9.34±0.1 microns. When receiving ambient electromagnetic waves with a wavelength of 9.34±0.1 microns, the oscillator resonates with the ambient electromagnetic waves at a specified frequency, thereby adjusting the frequency of the radio waves. This ensures that the resonant waves emitted by the resonance chip are consistent in frequency and wavelength with the biological electromagnetic waves emitted by the organism itself, thereby achieving the cellular resonance effect of the resonance chip while ensuring that the use of the resonance chip is more efficient and safe, and does not change the characteristics of the organism's electrical current.
[0057] Example 3:
[0058] According to an embodiment of the present invention, based on the above embodiment, further: the functional chip further includes a sensor and a main control chip.
[0059] Specifically, the sensor is used to detect bioelectromagnetic waves emitted by a living organism. The main control chip is connected to the resonance chip and the sensor, and is used to adjust the oscillation frequency of the oscillator according to the resonant frequency of the bioelectromagnetic waves.
[0060] In this embodiment, the functional chip also includes interconnected sensors and a main control chip. The sensors are highly sensitive to bioelectromagnetic waves from organisms and can sense the bioelectromagnetic waves scattered by the organism. The main control chip calculates the resonant frequency based on the sensed bioelectromagnetic waves and controls the oscillation frequency of the oscillator accordingly. This fully accounts for the potential frequency differences in bioelectromagnetic waves found in different organisms, allowing the resonant waves emitted by the transmitter to match those of the organism, thereby causing resonance within the organism's magnetic elements. This, in turn, through individualized resonant waves, replenishes the organism's bioelectricity, enhancing the practicality of the functional device.
[0061] Specifically, the sensor can directly sense the bioelectromagnetic waves emitted by the organism, or sample the microcurrent in the organism and convert the microcurrent into the resonant frequency of the bioelectromagnetic waves.
[0062] It is understood that when the transmitter resistance is fixed, the current can be adjusted by changing the output voltage of the energy converter. When the output voltage is fixed, the current can be adjusted by changing the transmitter resistance.
[0063] Specifically, the sensor and the main control chip can be integrated on the resonance chip, which is conducive to the miniaturization of functional devices, or independently set on a flexible printed substrate.
[0064] Furthermore, the wavelength range of the resonance wave is 4 microns to 14 microns, and the frequency range of the resonance wave is 30 Hz to 200 Hz, which can be reasonably set according to the wavelength and resonance frequency of the electromagnetic waves generated by the organism.
[0065] Example 4:
[0066] According to an embodiment of the present invention, on the basis of the above embodiment, further: the functional device further includes an isolation layer, and the isolation layer is coated on the functional chip.
[0067] In this embodiment, an isolation layer is formed on the surface of the functional chip to encapsulate the functional device through the isolation layer, thereby preventing the functional chip from being damaged by direct exposure to the atmosphere, thereby protecting the functional chip and making the functional device more durable.
[0068] Specifically, the isolation layer includes a high-temperature resistant layer, a waterproof layer, and / or an insulating layer to achieve functions such as high-temperature resistance, waterproofness, and insulation. This not only comprehensively protects the functional chip but also prevents the resonant chip from generating excessive current that could stimulate the organism. For example, a high-temperature insulating adhesive can be applied to the surface of the functional chip to form the isolation layer.
[0069] Example 5:
[0070] According to an embodiment of the present invention, based on the above embodiment, further: a minimum distance between the flexible receiving coil and the edge of the flexible printed substrate is 1 mm to 2 mm.
[0071] In this embodiment, the minimum distance between the flexible receiving coil and the edge of the flexible printed substrate should not be too large or too small. If it is too large, the flexible printed substrate may easily block the flexible receiving coil from collecting ambient electromagnetic waves. If it is too small, the flexible receiving coil is close to the edge of the flexible printed substrate, which may cause damage when the flexible printed substrate is bent. In other words, the flexible printed substrate may not be able to protect and secure the flexible receiving coil. To this end, the minimum distance between the flexible receiving coil and the edge of the flexible printed substrate is set to 1 mm to 2 mm.
[0072] For example, Figure 1 As shown, the flexible printed circuit board is a circular sheet with a diameter of 2.25 cm. A functional chip is mounted on the flexible printed circuit board. The functional chip includes a resonant chip and a spirally arranged flexible receiving coil, symmetrically arranged relative to the resonant chip. The maximum distance between the flexible receiving coil and the center of the flexible printed circuit board is 2.1 cm, which means the minimum distance between the flexible receiving coil and the edge of the flexible printed circuit board is 1.5 mm. Without power, the functional device, through the resonant chip and flexible circuit, acts like an active bioelectric instrument at a micro-voltage of 3V, emitting a 30 Hz to 200 Hz sine wave. This generates bioelectricity with a wavelength of 4 to 14 microns, which is beneficial to human cells and blood vessels. This has a significant effect on treating chronic diseases, painful conditions, capillary congestion, nodules, and other chronic conditions, such as mastitis, breast nodules, breast hyperplasia, breast fibroids, pelvic inflammatory disease, prostatitis, and edema.
[0073] Example 6:
[0074] like Figure 2 As shown, according to an embodiment of the second aspect of the present invention, a multifunctional garment is also proposed, including: a garment body 200; and the functional device 100 proposed in the embodiment of the first aspect, wherein the functional device 100 is arranged in the garment body 200.
[0075] In this embodiment, when the user wears the clothing, the functional device 100 approaches the organism, and the biological waves (resonance waves) with wavelengths very close to those in the organism are transmitted through the functional device 100, so that the surface of the organism quickly receives the biological waves, and transmits and penetrates from the outside to the inside, resonating and resonating with the cells in the body, dredging the meridians to improve circulation, breaking through microcirculation barriers, promoting cell activity, and converting blocked water molecules in the blood into linear water molecule structures, activating and repairing blocked cells in the blood, causing blood vessels to expand, blood circulation to accelerate, and accelerating the material exchange between blood and cells, thereby promoting matrix metabolism, effectively relieving fatigue in the organism, enhancing human immunity, and preventing or eliminating nodules in the body to achieve cell resonance effects.
[0076] Furthermore, the multifunctional clothing includes at least one of the following: a bra, underwear, a top, pants, a body-shaping garment, and socks.
[0077] For example, Figure 2 As shown, taking a bra as an example, two functional devices 100 are placed in the cups of a garment body 200, and when a user wears the bra, cells can resonate on the chest.
[0078] Example 7:
[0079] like Figure 3 As shown, according to an embodiment of the third aspect of the present invention, a membrane structure is proposed, including a membrane cloth; the functional device 100 proposed in the embodiment of the first aspect, the functional device 100 is arranged on the membrane cloth 300.
[0080] In this embodiment, the functional device 100 is disposed on the membrane cloth 300. When the membrane cloth 300 approaches the organism, the functional device 100 emits resonant waves that resonate harmoniously with the organism's biowaves, dredging the meridians to improve circulation, clearing microcirculatory obstructions, thereby accelerating the flow rate of microcirculatory blood, and enhancing the energy of the organism's electromagnetic field to promote the organism's own repair function and effectively relieve fatigue. Furthermore, compared to existing microcurrent stimulation products, which are all handheld beauty devices that require manual operation, the membrane structure can be directly attached to areas such as the human face. While achieving more benefits from biowaves, it does so without the need for manual support, freeing the user's hands and avoiding facial asymmetry caused by manual operation and different force levels. The overall structure is simple and cost-effective, avoiding financial burdens on users.
[0081] Furthermore, the wearable device includes at least one of the following: a facial mask, an eye mask, a neck mask, a chest mask, a hand mask, a foot mask, a buttocks mask, etc.
[0082] Specifically, when the membrane structure is a facial mask, the membrane fabric includes: two cheek sections, a forehead section, a chin section, and ear loops. This allows the membrane fabric to exert a certain tension on the face, which not only improves the fit of the mask to the face, reduces blind spots left untouched when applying a facial or neck mask, and facilitates the absorption of essence by the skin, but also prevents the membrane structure from slipping, improving the stability of the mask to the face.
[0083] Example 8:
[0084] According to an embodiment of the fourth aspect of the present invention, a wearable device is provided, comprising the functional device provided in the embodiment of the first aspect. Therefore, the wearable device has all the beneficial effects of the functional device provided in the first aspect, and to avoid repetition, no further details are given.
[0085] Furthermore, the wearable device includes at least one of the following: a watch, a bracelet, an eye mask, glasses, etc. For example, the functional device is attached to the side of the watch facing the wearer.
[0086] In the present invention, the term "plurality" refers to two or more, unless otherwise specified. Terms such as "mounted," "connected," "connected," and "fixed" should be interpreted broadly. For example, "connected" can refer to fixed, removable, or integral connections; and "connected" can refer to direct or indirect connections through an intermediary. Those skilled in the art will understand the specific meanings of these terms in the present invention based on specific circumstances.
[0087] Throughout this specification, terms such as "one embodiment," "some embodiments," and "specific embodiments" mean that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of the present invention. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0088] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that various modifications and variations of the present invention are possible. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention are intended to be within the scope of protection of the present invention.
Claims
1. A functional device, characterized in that: include: Flexible printed circuit boards; A functional chip is provided on the flexible printed substrate, and the functional chip includes: A flexible receiving coil for collecting ambient electromagnetic waves around the functional device; a resonance chip, connected to the flexible receiving coil, and configured to convert the ambient electromagnetic waves into resonance waves; The resonance chip includes: an oscillator connected to the flexible receiving coil, the oscillator being configured to resonate with the ambient electromagnetic wave to form the resonance wave of a specified frequency; a transmitter connected to the oscillator, the transmitter being configured to transmit the resonance wave through the oscillator; The functional chip further comprises: a sensor for detecting bio-electromagnetic waves emitted by an organism; a main control chip connected to the resonance chip and the sensor, the main control chip being used to adjust the oscillation frequency of the oscillator according to the resonance frequency of the bioelectromagnetic wave; The wavelength of the resonance wave ranges from 4 microns to 14 microns, and the frequency of the resonance wave ranges from 30 Hz to 200 Hz; The functional chip includes the resonance chip and the spirally distributed flexible receiving coil, and the flexible receiving coil is symmetrically distributed relative to the resonance chip; There are multiple resonance chips, and the multiple resonance chips are evenly distributed on the flexible printed substrate, and resonance waves are output simultaneously at different positions of the flexible printed substrate through the multiple resonance chips. The flexible printed substrate is a circular thin sheet structure, and the maximum distance between the flexible receiving coil and the center of the flexible printed substrate is 2.1 cm, that is, the minimum distance between the flexible receiving coil and the edge of the flexible printed substrate is 1.5 mm; The flexible printed substrate is constructed into a sheet structure, and the thickness of the flexible printed substrate is 0.3 mm to 3 mm; The thickness of the flexible printed substrate determines the thickness of the functional device, and the length, width, or diameter of the flexible printed substrate is set to range from 0.5 cm to 15 cm.
2. The functional device according to claim 1, characterized in that Also includes: The isolation layer is coated on the functional chip.
3. A multifunctional garment, characterized in that: include: Clothing body; The functional device according to claim 1 or 2, wherein the functional device is arranged in the clothing body.
4. A membrane structure, characterized in that include: membrane cloth; The functional device according to claim 1 or 2, wherein the functional device is arranged on the membrane cloth.
5. A wearable device, characterized in that: include: The functional device according to claim 1 or 2.
Citation Information
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