Far infrared physiotherapy equipment

By using a graphene textile fabric layer and a carbon material heating layer in far-infrared therapy equipment, the problem of insufficient transmittance caused by the inner fabric absorbing the heat source light is solved, far-infrared radiation with high transmittance is achieved, and the therapy effect is improved.

CN223311535UActive Publication Date: 2025-09-09孙杰
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Patent Information

Application Number
CN202421737240.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-22
Publication Date
2025-09-09
Estimated Expiration
2034-07-22

AI Technical Summary

Technical Problem

In existing far-infrared therapy products, after the inner textile fabric absorbs the far-infrared light from the heat source, it cannot be effectively transmitted to the human body, resulting in weakened radiation intensity and inability to achieve high transmittance.

Method used

A graphene textile fabric layer is used as the inner layer, combined with a carbon material heating layer and a power supply component. After the graphene textile fabric layer absorbs the far-infrared light emitted by the middle-layer graphene material heating sheet, it can effectively transmit it to the human body, avoiding the radiation weakening caused by absorption by the inner layer of fabric.

Benefits of technology

It achieves high transmittance of far-infrared light from the middle-layer heat source to the human body, improves the therapeutic effect, and has auxiliary therapeutic effects of promoting blood circulation, dredging meridians, accelerating metabolism and improving immunity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses far infrared physiotherapy equipment, which comprises a carbon material heating layer and a graphene textile fabric layer, the carbon material heating layer is arranged on the outer side of the graphene textile fabric layer; the carbon material heating layer is fixedly connected with the graphene textile fabric layer. According to the far infrared physiotherapy equipment provided by the utility model, after the graphene textile fabric layer is selected as the inner-layer fabric, the graphene textile fabric layer at the inner layer absorbs far infrared light emitted by the graphene material heating sheet at the middle layer, and the emitted light also has the far infrared light; therefore, high permeability in the process of radiating far-infrared light from a heat source of the middle layer to a human body is realized, and the far-infrared light is prevented from being absorbed and blocked by the diathermanous layer fabric in the process of radiating the far-infrared light to the human body and is greatly weakened.
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Description

Technical Field

[0001] The utility model relates to the technical field of physical therapy equipment, in particular to a far-infrared physical therapy equipment. Background Art

[0002] There are more and more far-infrared therapy products on the market now. The structure of this type of wearable far-infrared therapy products can be roughly divided into three layers: the outer layer is conventional textile fabric, the middle layer is a heat source that can emit far-infrared light, and the inner layer is conventional textile fabric that protects the heat source layer.

[0003] In existing far-infrared therapy products on the market, a portion of the far-infrared light emitted by the heat source is absorbed by the inner textile fabric as it radiates toward the human body. This inner textile fabric then emits light at its own intrinsic frequency. However, the intrinsic spectrum of conventional inner textile fabrics is not concentrated in the far-infrared region. Therefore, after the inner fabric absorbs the far-infrared light from the heat source, the light it emits toward the human body is not far-infrared light. This significantly weakens the intensity of the far-infrared radiation received by the human body from the intermediate heat source. Imagine if the inner fabric were made of a layer of SBR neoprene or a thick synthetic fabric. The far-infrared radiation from the heat source would have difficulty penetrating these fabrics, and a significant portion of the heat that would have penetrated would no longer be far-infrared light, thus preventing far-infrared therapy from being effective. In other words, using conventional fabrics as the inner heat-permeable fabric will result in a portion of the far-infrared light emitted by the intermediate heat source being wasted during radiation, failing to achieve high transmittance of the far-infrared light from the intermediate heat source. Utility Model Content

[0004] In view of this, the utility model proposes a far-infrared therapy device.

[0005] In order to achieve the above purpose, the present invention adopts the following technical solutions:

[0006] A far-infrared physiotherapy device comprises a carbon material heating layer and a graphene textile fabric layer; the carbon material heating layer is arranged on the outer side of the graphene textile fabric layer;

[0007] Also includes a power supply assembly; the power supply assembly includes a temperature control switch, a connector and a power adapter;

[0008] The carbon material heating layer and the temperature control switch are electrically connected;

[0009] The temperature control switch is electrically connected to the connector;

[0010] The connector is electrically connected to the power adapter.

[0011] Furthermore, a protective layer is included;

[0012] The protective layer is arranged on the outer side of the carbon material heating layer;

[0013] The protective layer and the graphene textile fabric layer are fixedly connected.

[0014] Furthermore, the outer protective layer is a thermal insulation and heat-resistant textile fabric layer.

[0015] Furthermore, the temperature control switch and the connector are respectively fixed on the outer surface of the protective layer.

[0016] Furthermore, the carbon material heating layer is arranged in the middle of the outer side of the graphene textile fabric layer.

[0017] Furthermore, the carbon material heating layer is laid flat on the outside of the graphene textile fabric layer.

[0018] Furthermore, a plurality of the carbon material heating layers are arranged at a certain interval on the outside of the graphene textile fabric layer.

[0019] Furthermore, the carbon material heating layer is a graphene material heating sheet.

[0020] Furthermore, the carbon material heating layer is a carbon fiber heating sheet or a carbon nanotube heating sheet.

[0021] Compared with the existing technology, the beneficial effect of the present invention is: the far-infrared therapy equipment provided by the present invention, after the inner fabric selects the graphene textile fabric layer, after the inner graphene textile fabric layer absorbs the far-infrared light emitted by the middle graphene material heating plate, the emitted light will also contain far-infrared light, thereby achieving high transmittance in the process of far-infrared light radiating from the middle heat source to the human body, thereby avoiding the far-infrared radiation received by the human body from the middle heat source being absorbed and dissipated by the ordinary inner fabric and being greatly weakened. The inner fabric selected in this way not only realizes the basic function of serving as an inner protective layer of the middle heat source, but also realizes high transmittance of far-infrared heat radiation from the middle heat source to the human body. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a right side view of the far infrared therapy device provided in Example 1 of the present utility model;

[0023] Figure 2 This is a front view of the far-infrared therapy device provided in Example 1 of the present utility model;

[0024] Figure 3 This is a right side view of the far-infrared therapy device provided in Example 2 of the present utility model;

[0025] Figure 4 This is a front view of the far-infrared therapy device provided in Example 2 of the present utility model;

[0026] Figure 5 This is a right side view of the far infrared therapy device provided in Example 3 of the present utility model;

[0027] Figure 6 This is a front view of the far-infrared therapy device provided in Example 3 of the present utility model;

[0028] Figure 7 This is a right side view of the far infrared therapy device provided in Example 4 of the present utility model;

[0029] Figure 8 This is a front view of the far-infrared therapy device provided in Example 4 of the present utility model;

[0030] Figure 9 This is a right side view of the far infrared therapy device provided in Example 5 of the present utility model;

[0031] Figure 10 This is a front view of the far-infrared therapy device provided in Example 5 of the present utility model;

[0032] Figure 11 A right side view of the far-infrared therapy device provided in Example 6 of the present utility model;

[0033] Figure 12 This is a front view of the far-infrared therapy device provided in Example 6 of the present utility model.

[0034] In the figure: 1. Graphene textile fabric layer; 2. Carbon material heating layer; 3. Protective layer; 4. Temperature control switch; 5. Connector; 6. Power adapter. DETAILED DESCRIPTION

[0035] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0036] In the description of this utility model, unless otherwise specified, "plurality" means two or more; the terms "upper," "lower," "left," "right," "inner," "outer," "front end," "rear end," "head," "tail," etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings and are intended solely to facilitate the description of this utility model and simplify the description. They do not indicate or imply that the devices or components referred to must have a specific direction, be constructed, or operate in a specific direction, and therefore should not be construed as limiting this utility model. Furthermore, the terms "first," "second," "third," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0037] In the description of this utility model, it should be noted that, unless otherwise specified or limited, the terms "connected" and "connection" should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integral connection; mechanical connection, electrical connection; direct connection, or indirect connection through an intermediary. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on the specific circumstances.

[0038] Example 1:

[0039] like Figure 1-2 As shown, a far-infrared therapy device includes a carbon material heating layer 2, a graphene textile fabric layer 1 and a power supply component.

[0040] The carbon material heating layer 2 is arranged in the middle of the outer side of the graphene textile fabric layer 1 .

[0041] The carbon material heating layer 2 is a graphene material heating sheet. The graphene material heating sheet has multiple carbon layers, while the graphene heating sheet has a single carbon layer.

[0042] The graphene textile fabric layer is formed by chemically bonding modified functionalized graphene into the polyester / nylon molecular chain structure to form an in-situ polymerized graphene polyester / nylon composite material, namely the graphene textile fabric layer 1, which is a textile fabric that has been disclosed in the market.

[0043] The power supply assembly includes a temperature control switch 4, a connector 5, and a power adapter 6. The graphene material heating plate is electrically connected to the temperature control switch 4, the temperature control switch 4 is electrically connected to the connector 5, and the connector 5 is electrically connected to the power adapter 6.

[0044] The temperature control switch 4 has the function of turning on and off the heating function of the graphene material heating plate, and also has the function of gear adjustment, which can be adjusted to the corresponding gear according to the corresponding temperature requirements.

[0045] Connector 5 uses a DC5521 female connector. One end of the power adapter 6 plugs into connector 5, and the other end of the power adapter 6 plugs into an outlet to power it. The power adapter 6 converts the higher-voltage AC power into the lower-voltage DC power suitable for the graphene material heating sheet. The operating voltage of the graphene material heating sheet is 12V, ensuring safety.

[0046] The graphene material heating plate is also provided with a number of through holes to drain water vapor.

[0047] The graphene textile fabric layer 1 is washable and has a structure that is not easily damaged. The graphene material heating sheet is thin, foldable, washable, and not easily damaged. The temperature control switch 4 adopts a waterproof switch with good waterproof effect. The wires of the electrical connection are fold-resistant, waterproof, and have a long service life.

[0048] The power supply components are all arranged on the outside.

[0049] Working principle: The main wavelength in the human body's thermal radiation band is between 9 and 10 microns, and the main wavelength in the graphene heating spectrum is between 5 and 15 microns. Therefore, it can be seen that the human body's thermal radiation spectrum and the graphene heating spectrum highly overlap;

[0050] After the inner fabric layer selects the graphene textile fabric layer 1, the inner graphene textile fabric layer 1 absorbs the far-infrared light emitted by the graphene material heating plate in the middle layer, and the light emitted will also contain far-infrared light, thereby achieving high permeability in the process of far-infrared light radiating from the middle-layer heat source to the human body, avoiding the situation where the far-infrared radiation received by the human body from the middle-layer heat source is absorbed and dissipated by the ordinary inner fabric and is greatly weakened.

[0051] The far-infrared therapy device of this embodiment can be used to make belts, uterine warming belts, clothes, cloaks, gloves, insoles, blankets, pillows, quilts, hot compress cervical products, hot compress massage products, etc., without specific restrictions here, including but not limited to applications in physical therapy, health care, hot compress and other fields, with the effects of promoting blood circulation, dredging meridians, accelerating metabolism, improving immunity, etc., and playing a very excellent auxiliary treatment or rehabilitation treatment or health care role.

[0052] Example 2:

[0053] like Figure 3-4 As shown, a far-infrared therapy device includes a carbon material heating layer 2, a graphene textile fabric layer 1 and a power supply component.

[0054] The carbon material heating layer 2 is laid flat on the outside of the graphene textile fabric layer 1, and the area of ​​the carbon material heating layer 2 is slightly smaller than the area of ​​the graphene textile fabric layer.

[0055] The carbon material heating layer 2 is a graphene material heating sheet. The graphene material heating sheet has multiple carbon layers, while the graphene heating sheet has a single carbon layer.

[0056] The graphene textile fabric layer 1 is formed by chemically bonding modified functionalized graphene into the polyester / nylon molecular chain structure to form an in-situ polymerized graphene polyester / nylon composite material, namely the graphene textile fabric layer 1, which is a textile fabric that has been disclosed in the market.

[0057] The power supply assembly includes a temperature control switch 4, a connector 5, and a power adapter 6. The graphene material heating plate is electrically connected to the temperature control switch 4, the temperature control switch 4 is electrically connected to the connector 5, and the connector 5 is electrically connected to the power adapter 6.

[0058] The temperature control switch 4 has the function of turning on and off the heating function of the graphene material heating plate, and also has the function of gear adjustment, which can be adjusted to the corresponding gear according to the corresponding temperature requirements.

[0059] Connector 5 uses a DC5521 female connector. One end of the power adapter 6 plugs into connector 5, and the other end of the power adapter 6 plugs into an outlet to power it. The power adapter 6 converts the higher-voltage AC power into the lower-voltage DC power suitable for the graphene material heating sheet. The operating voltage of the graphene material heating sheet is 12V, ensuring safety.

[0060] The graphene material heating plate is also provided with a number of through holes to drain water vapor.

[0061] The graphene textile fabric layer 1 is washable and has a structure that is not easily damaged. The graphene material heating sheet is thin, foldable, washable, and not easily damaged. The temperature control switch 4 adopts a waterproof switch with good waterproof effect. The wires of the electrical connection are fold-resistant, waterproof, and have a long service life.

[0062] The power supply components are all arranged on the outside.

[0063] Working principle: The main wavelength in the human body's thermal radiation band is between 9 and 10 microns, and the main wavelength in the graphene heating spectrum is between 5 and 15 microns. Therefore, it can be seen that the human body's thermal radiation spectrum and the graphene heating spectrum highly overlap;

[0064] After the inner fabric layer selects the graphene textile fabric layer 1, the inner graphene textile fabric layer 1 absorbs the far-infrared light emitted by the graphene material heating plate in the middle layer, and the light emitted will also contain far-infrared light, thereby achieving high permeability in the process of far-infrared light radiating from the middle-layer heat source to the human body, avoiding the situation where the far-infrared radiation received by the human body from the middle-layer heat source is absorbed and dissipated by the ordinary inner fabric and is greatly weakened.

[0065] The far-infrared therapy equipment of this embodiment can be used to make cushions, hats, belts, uterine warming belts, clothes, cloaks, gloves, insoles, blankets, pillows, quilts, hot compress cervical products, hot compress massage products, etc., without specific restrictions here, including but not limited to applications in physical therapy, health care, hot compress and other fields, with the effects of promoting blood circulation, unblocking meridians, accelerating metabolism, improving immunity, etc., and playing a very excellent auxiliary treatment or rehabilitation treatment or health care role.

[0066] Example 3:

[0067] like Figure 5-6 As shown, a far-infrared therapy device includes a carbon material heating layer 2, a graphene textile fabric layer 1 and a power supply component.

[0068] A plurality of carbon material heating layers 2 are arranged at a certain interval on the outside of the graphene textile fabric layer 1 .

[0069] The carbon material heating layer 2 is a graphene material heating sheet. The graphene material heating sheet has multiple carbon layers, while the graphene heating sheet has a single carbon layer.

[0070] The graphene textile fabric layer 1 is formed by chemically bonding modified functionalized graphene into the polyester / nylon molecular chain structure to form an in-situ polymerized graphene polyester / nylon composite material, namely the graphene textile fabric layer 1, which is a textile fabric that has been disclosed in the market.

[0071] The power supply assembly includes a temperature control switch 4, a connector 5, and a power adapter 6. The graphene material heating plate is electrically connected to the temperature control switch 4, the temperature control switch 4 is electrically connected to the connector 5, and the connector 5 is electrically connected to the power adapter 6.

[0072] The temperature control switch 4 has the function of turning on and off the heating function of the graphene material heating plate, and also has the function of gear adjustment, which can be adjusted to the corresponding gear according to the corresponding temperature requirements.

[0073] Connector 5 uses a DC5521 female connector. One end of the power adapter 6 plugs into connector 5, and the other end of the power adapter 6 plugs into an outlet to power it. The power adapter 6 converts the higher-voltage AC power into the lower-voltage DC power suitable for the graphene material heating sheet. The operating voltage of the graphene material heating sheet is 12V, ensuring safety.

[0074] The graphene material heating plate is also provided with a number of through holes to drain water vapor.

[0075] The graphene textile fabric layer 1 is washable and has a structure that is not easily damaged. The graphene material heating sheet is thin, foldable, washable, and not easily damaged. The temperature control switch 4 adopts a waterproof switch with good waterproof effect. The wires of the electrical connection are fold-resistant, waterproof, and have a long service life.

[0076] The power supply components are all arranged on the outside.

[0077] Working principle: The main wavelength in the human body's thermal radiation band is between 9 and 10 microns, and the main wavelength in the graphene heating spectrum is between 5 and 15 microns. Therefore, it can be seen that the human body's thermal radiation spectrum and the graphene heating spectrum highly overlap;

[0078] After the inner fabric layer selects the graphene textile fabric layer 1, the inner graphene textile fabric layer 1 absorbs the far-infrared light emitted by the graphene material heating plate in the middle layer, and the light emitted will also contain far-infrared light, thereby achieving high permeability in the process of far-infrared light radiating from the middle-layer heat source to the human body, avoiding the situation where the far-infrared radiation received by the human body from the middle-layer heat source is absorbed and dissipated by the ordinary inner fabric and is greatly weakened.

[0079] The far-infrared therapy equipment of this embodiment can be used to make cushions, hats, belts, uterine warming belts, clothes, cloaks, gloves, insoles, blankets, pillows, quilts, hot compress cervical products, hot compress massage products, etc., without specific restrictions here, including but not limited to applications in physical therapy, health care, hot compress and other fields, with the effects of promoting blood circulation, unblocking meridians, accelerating metabolism, improving immunity, etc., and playing a very excellent auxiliary treatment or rehabilitation treatment or health care role.

[0080] Example 4:

[0081] like Figure 7-8 As shown, a far-infrared therapy device includes a carbon material heating layer 2, a graphene textile fabric layer 1, a protective layer 3 and a power supply component.

[0082] The carbon material heating layer 2 is arranged in the middle of the outer side of the graphene textile fabric layer 1 .

[0083] The protective layer 3 is arranged outside the carbon material heating layer; the protective layer is fixedly connected to the graphene textile fabric layer 1. The protective layer 3 is a heat-insulating and heat-resistant textile fabric layer.

[0084] The carbon material heating layer 2 is a graphene material heating sheet. The graphene material heating sheet has multiple carbon layers, while the graphene heating sheet has a single carbon layer.

[0085] The graphene textile fabric layer 1 is formed by chemically bonding modified functionalized graphene into the polyester / nylon molecular chain structure to form an in-situ polymerized graphene polyester / nylon composite material, namely the graphene textile fabric layer 1, which is a textile fabric that has been disclosed in the market.

[0086] The power supply assembly includes a temperature control switch 4, a connector 5, and a power adapter 6. The graphene material heating plate is electrically connected to the temperature control switch 4, the temperature control switch 4 is electrically connected to the connector 5, and the connector 5 is electrically connected to the power adapter 6.

[0087] The temperature control switch 4 has the function of turning on and off the heating function of the graphene material heating plate, and also has the function of gear adjustment, which can be adjusted to the corresponding gear according to the corresponding temperature requirements.

[0088] Connector 5 uses a DC5521 female connector. One end of the power adapter 6 plugs into connector 5, and the other end of the power adapter 6 plugs into an outlet to power it. The power adapter 6 converts the higher-voltage AC power into the lower-voltage DC power suitable for the graphene material heating sheet. The operating voltage of the graphene material heating sheet is 12V, ensuring safety.

[0089] The graphene material heating plate is also provided with a number of through holes to drain water vapor.

[0090] The graphene textile fabric layer 1 is washable and has a structure that is not easily damaged. The graphene material heating sheet is thin, foldable, washable, and not easily damaged. The protective layer 3 has protective, heat-insulating, heat-resistant, and aesthetic functions and is washable. The temperature control switch 4 adopts a waterproof switch with good waterproof effect. The wires of the electrical connection are fold-resistant, waterproof, and have a long service life.

[0091] The graphene material heating sheet is located between the graphene textile fabric layer 1 and the protective layer 3, and is inside the protective layer 3. The temperature control switch 4 and connector 5 of the power supply assembly are fixedly arranged on the outer surface of the protective layer 3, and the wires electrically connecting the graphene material heating sheet, the temperature control switch 4, and the connector 5 of the power supply assembly are located in the area where the graphene material heating sheet is located between the graphene textile fabric layer 1 and the protective layer 3. The wires electrically connecting the connector 5 and the power adapter 6 are located outside the protective layer.

[0092] Working principle: The main wavelength in the human body's thermal radiation band is between 9 and 10 microns, and the main wavelength in the graphene heating spectrum is between 5 and 15 microns. Therefore, it can be seen that the human body's thermal radiation spectrum and the graphene heating spectrum highly overlap;

[0093] After the inner fabric layer selects the graphene textile fabric layer 1, the inner graphene textile fabric layer 1 absorbs the far-infrared light emitted by the graphene material heating plate in the middle layer, and the light emitted will also contain far-infrared light, thereby achieving high permeability in the process of far-infrared light radiating from the middle-layer heat source to the human body, thereby avoiding the human body receiving a significant weakening of the far-infrared radiation from the middle-layer heat source.

[0094] The far-infrared therapy equipment of this embodiment can be used to make cushions, hats, belts, uterine warming belts, clothes, cloaks, gloves, insoles, blankets, pillows, quilts, hot compress cervical products, hot compress massage products, etc., without specific restrictions here, including but not limited to applications in physical therapy, health care, hot compress and other fields, with the effects of promoting blood circulation, unblocking meridians, accelerating metabolism, improving immunity, etc., and playing a very excellent auxiliary treatment or rehabilitation treatment or health care role.

[0095] Example 5:

[0096] like Figure 9-10As shown, a far-infrared therapy device includes a carbon material heating layer 2, a graphene textile fabric layer 1, a protective layer 3 and a power supply component.

[0097] The carbon material heating layer 2 is laid flat on the outside of the graphene textile fabric layer 1, and the area of ​​the carbon material heating layer 2 is slightly smaller than the area of ​​the graphene textile fabric layer.

[0098] The protective layer 3 is arranged outside the carbon material heating layer; the protective layer is fixedly connected to the graphene textile fabric layer 1. The protective layer 3 is a heat-insulating and heat-resistant textile fabric layer.

[0099] The carbon material heating layer 2 is a graphene material heating sheet. The graphene material heating sheet has multiple carbon layers, while the graphene heating sheet has a single carbon layer.

[0100] The graphene textile fabric layer 1 is formed by chemically bonding modified functionalized graphene into the polyester / nylon molecular chain structure to form an in-situ polymerized graphene polyester / nylon composite material, namely the graphene textile fabric layer 1, which is a textile fabric that has been disclosed in the market.

[0101] The power supply assembly includes a temperature control switch 4, a connector 5, and a power adapter 6. The graphene material heating plate is electrically connected to the temperature control switch 4, the temperature control switch 4 is electrically connected to the connector 5, and the connector 5 is electrically connected to the power adapter 6.

[0102] The temperature control switch 4 has the function of turning on and off the heating function of the graphene material heating plate, and also has the function of gear adjustment, which can be adjusted to the corresponding gear according to the corresponding temperature requirements.

[0103] Connector 5 uses a DC5521 female connector. One end of the power adapter 6 plugs into connector 5, and the other end of the power adapter 6 plugs into an outlet to power it. The power adapter 6 converts the higher-voltage AC power into the lower-voltage DC power suitable for the graphene material heating sheet. The operating voltage of the graphene material heating sheet is 12V, ensuring safety.

[0104] The graphene material heating plate is also provided with a number of through holes to drain water vapor.

[0105] The graphene textile fabric layer 1 is washable and has a structure that is not easily damaged. The graphene material heating sheet is thin, foldable, washable, and not easily damaged. The protective layer 3 has protective, heat-insulating, heat-resistant, and aesthetic functions and is washable. The temperature control switch 4 adopts a waterproof switch with good waterproof effect. The wires of the electrical connection are fold-resistant, waterproof, and have a long service life.

[0106] The graphene material heating sheet is located between the graphene textile fabric layer 1 and the protective layer 3, and is inside the protective layer 3. The temperature control switch 4 and connector 5 of the power supply assembly are fixedly mounted on the outer surface of the protective layer. The wires electrically connecting the graphene material heating sheet, the temperature control switch 4, and the connector 5 of the power supply assembly are located in the area between the graphene textile fabric layer 1 and the protective layer 3. The wires electrically connecting the connector 5 and the power adapter 6 are located outside the protective layer.

[0107] Working principle: The main wavelength in the human body's thermal radiation band is between 9 and 10 microns, and the main wavelength in the graphene heating spectrum is between 5 and 15 microns. Therefore, it can be seen that the human body's thermal radiation spectrum and the graphene heating spectrum highly overlap;

[0108] After the inner fabric layer selects the graphene textile fabric layer 1, the inner graphene textile fabric layer 1 absorbs the far-infrared light emitted by the graphene material heating plate in the middle layer, and the light emitted will also contain far-infrared light, thereby achieving high permeability in the process of far-infrared light radiating from the middle-layer heat source to the human body, thereby avoiding the human body receiving a significant weakening of the far-infrared radiation from the middle-layer heat source.

[0109] The far-infrared therapy equipment of this embodiment can be used to make cushions, hats, belts, uterine warming belts, clothes, cloaks, gloves, insoles, blankets, pillows, quilts, hot compress cervical products, hot compress massage products, etc., without specific restrictions here, including but not limited to applications in physical therapy, health care, hot compress and other fields, with the effects of promoting blood circulation, unblocking meridians, accelerating metabolism, improving immunity, etc., and playing a very excellent auxiliary treatment or rehabilitation treatment or health care role.

[0110] Example 6:

[0111] like Figure 11-12 As shown, a far-infrared therapy device includes a carbon material heating layer 2, a graphene textile fabric layer 1, a protective layer 3 and a power supply component.

[0112] A plurality of carbon material heating layers 2 are arranged at a certain interval on the outside of the graphene textile fabric layer 1 .

[0113] The protective layer 3 is arranged on the outer side of the carbon material heating layer; the protective layer 3 is fixedly connected to the graphene textile fabric layer 1. The protective layer 3 is a heat-insulating and heat-resistant textile fabric layer.

[0114] The carbon material heating layer 2 is a graphene material heating sheet. The graphene material heating sheet has multiple carbon layers, while the graphene heating sheet has a single carbon layer.

[0115] The graphene textile fabric layer is formed by chemically bonding modified functionalized graphene into the polyester / nylon molecular chain structure to form an in-situ polymerized graphene polyester / nylon composite material, namely the graphene textile fabric layer 1, which is a textile fabric that has been disclosed in the market.

[0116] The power supply assembly includes a temperature control switch 4, a connector 5, and a power adapter 6. The graphene material heating plate is electrically connected to the temperature control switch 4, the temperature control switch 4 is electrically connected to the connector 5, and the connector 5 is electrically connected to the power adapter 6.

[0117] The temperature control switch 4 has the function of turning on and off the heating function of the graphene material heating plate, and also has the function of gear adjustment, which can be adjusted to the corresponding gear according to the corresponding temperature requirements.

[0118] Connector 5 uses a DC5521 female connector. One end of the power adapter 6 plugs into connector 5, and the other end of the power adapter 6 plugs into an outlet to power it. The power adapter 6 converts the higher-voltage AC power into the lower-voltage DC power suitable for the graphene material heating sheet. The operating voltage of the graphene material heating sheet is 12V, ensuring safety.

[0119] The graphene material heating plate is also provided with a number of through holes to drain water vapor.

[0120] The graphene textile fabric layer 1 is washable and has a structure that is not easily damaged. The graphene material heating sheet is thin, foldable, washable, and not easily damaged. The protective layer 3 has protective, heat-insulating, heat-resistant, and aesthetic functions and is washable. The temperature control switch 4 adopts a waterproof switch with good waterproof effect. The wires of the electrical connection are fold-resistant, waterproof, and have a long service life.

[0121] The graphene material heating sheet is located between the graphene textile fabric layer 1 and the protective layer 3, and is inside the protective layer 3. The temperature control switch 4 and connector 5 of the power supply assembly are fixedly mounted on the outer surface of the outer protective layer. The wires electrically connecting the graphene material heating sheet, the temperature control switch 4, and the connector 5 of the power supply assembly are located in the area between the graphene textile fabric layer 1 and the protective layer 3. The wires electrically connecting the connector 5 and the power adapter 6 are located outside the outer protective layer.

[0122] Working principle: The main wavelength in the human body's thermal radiation band is between 9 and 10 microns, and the main wavelength in the graphene heating spectrum is between 5 and 15 microns. Therefore, it can be seen that the human body's thermal radiation spectrum and the graphene heating spectrum highly overlap;

[0123] After the inner fabric layer selects the graphene textile fabric layer 1, the inner graphene textile fabric layer 1 absorbs the far-infrared light emitted by the graphene material heating plate in the middle layer, and the light emitted will also contain far-infrared light, thereby achieving high permeability in the process of far-infrared light radiating from the middle-layer heat source to the human body, thereby avoiding the human body receiving a significant weakening of the far-infrared radiation from the middle-layer heat source.

[0124] The far-infrared therapy equipment of this embodiment can be used to make cushions, hats, belts, uterine warming belts, clothes, cloaks, gloves, insoles, blankets, pillows, quilts, hot compress cervical products, hot compress massage products, etc., without specific restrictions here, including but not limited to applications in physical therapy, health care, hot compress and other fields, with the effects of promoting blood circulation, unblocking meridians, accelerating metabolism, improving immunity, etc., and playing a very excellent auxiliary treatment or rehabilitation treatment or health care role.

[0125] The above are only preferred specific implementation methods of the present invention, but the protection scope of the present invention is not limited to them. Any technician familiar with the technical field can make equivalent replacements or changes based on the technical solution and utility model concept of the present invention within the technical scope disclosed by the present invention, and they should be covered by the protection scope of the present invention.

Claims

1. A far infrared therapy device, characterized in that: It comprises a carbon material heating layer (2) and a graphene textile fabric layer (1); the carbon material heating layer (2) is arranged on the outside of the graphene textile fabric layer (1); Also included is a power supply assembly; the power supply assembly includes a temperature control switch (4), a connector (5) and a power adapter (6); The carbon material heating layer (2) and the temperature control switch (4) are electrically connected; The temperature control switch (4) and the connector (5) are electrically connected; The connector (5) and the power adapter (6) are electrically connected.

2. A far infrared therapy device according to claim 1, characterized in that: Also includes a protective layer (3); The protective layer (3) is arranged on the outer side of the carbon material heating layer (2); The protective layer (3) and the graphene textile fabric layer (1) are fixedly connected.

3. The far infrared therapy device according to claim 2, characterized in that: The protective layer (3) is a heat-insulating and heat-resistant textile fabric layer.

4. The far infrared therapy device according to claim 2, characterized in that: The temperature control switch (4) and the connector (5) are respectively fixed on the outer surface of the protective layer (3).

5. The far-infrared therapy device according to any one of claims 1 to 4, characterized in that: The carbon material heating layer (2) is arranged at the middle portion of the outer side of the graphene textile fabric layer (1).

6. A far infrared therapy device according to any one of claims 1 to 4, characterized in that: The carbon material heating layer (2) is laid flat on the outside of the graphene textile fabric layer (1).

7. The far-infrared therapy device according to any one of claims 1 to 4, characterized in that: A plurality of carbon material heating layers (2) are arranged at a certain interval on the outside of the graphene textile fabric layer (1).

8. The far-infrared therapy device according to any one of claims 1 to 4, characterized in that: The carbon material heating layer (2) is a graphene material heating sheet.

9. The far-infrared therapy device according to any one of claims 1 to 4, characterized in that: The carbon material heating layer (2) is a carbon fiber heating sheet or a carbon nanotube heating sheet.