Potential balance type bedding capable of releasing far infrared rays

By incorporating conductive yarn and far-infrared yarn into bedding through a textile process, a static electricity release path and a far-infrared radiation structure are formed, solving the problem of bedding being unable to release static electricity and provide far-infrared rays, thus achieving safe static electricity release and healthy irradiation effects.

CN224573113UActive Publication Date: 2026-07-31TAI SONG ENTERPRISE CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TAI SONG ENTERPRISE CO LTD
Filing Date
2025-07-21
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing bedding cannot effectively release static electricity from the human body and provide far-infrared radiation, which may cause health problems due to potential imbalance.

Method used

Design a bedding body comprising conductive yarn and far-infrared yarn, forming an electrical connection and far-infrared radiation structure through a textile process, forming an electrostatic discharge path by combining it with a grounding cable, and connecting it to the grounding cable through a conductive connector to achieve electrostatic discharge and far-infrared irradiation.

Benefits of technology

It effectively releases static electricity from the human body, preventing static electricity damage, while providing far-infrared irradiation to promote health and wellness.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224573113U_ABST
    Figure CN224573113U_ABST
Patent Text Reader

Abstract

A potential-balanced bedding device capable of emitting far-infrared rays includes a bedding body, a conductive connector, and a grounding cable. The bedding body includes a physical interaction fabric layer, which comprises at least a plurality of conductive yarns and a plurality of far-infrared yarns. The conductive yarns are in contact with each other to form a two-dimensional electrical connection structure, and the far-infrared yarns are combined to form a two-dimensional far-infrared radiating structure. The conductive connector is disposed on the bedding body and electrically connected to the conductive yarns. One end of the grounding cable is electrically connected to the conductive connector, and the other end is grounded. The connection structure of the conductive yarns, conductive connector, and grounding cable of the bedding body forms an electrostatic discharge path, through which the static electricity of the user's body is released. The far-infrared yarns release far-infrared rays that irradiate the user's body.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the technical field of bedding with health benefits, and in particular to a potential-balanced bedding that can release far-infrared rays. Background Technology

[0002] Sleep occupies about one-quarter to one-third of a person's day, so everyone uses bedding for a considerable period of time. Therefore, in addition to affecting the quality of sleep, the various characteristics of bedding can also directly or indirectly affect the body's functioning due to the long-term contact between the body and bedding.

[0003] Experts suggest that humans use nerve conduction to achieve their activities, so an imbalance in electrical potential can easily generate excessive positive charge. Free radicals are positive charges, and when the positive charge is too high, it may damage the working cells and make them more susceptible to disease.

[0004] In addition, appropriate exposure to electromagnetic waves of specific wavelengths can also be beneficial to health, such as far-infrared rays. Far-infrared rays have a longer wavelength and can penetrate objects without being easily absorbed. Utility Model Content

[0005] In view of this, the purpose of this utility model is to provide a potential-balanced bedding that can release far-infrared rays, which can simultaneously release the static electricity of the human body through the static discharge path and generate far-infrared rays.

[0006] An embodiment of this utility model of a potential-balanced bedding device capable of releasing far-infrared rays includes a bedding body, a conductive connector, and a grounding cable. The bedding body includes a physical-action fabric layer, which comprises at least a plurality of conductive yarns and a plurality of far-infrared yarns. The conductive yarns and far-infrared yarns are combined using a textile process. The conductive yarns are in contact with each other to form a two-dimensional electrical connection structure, and the far-infrared yarns are combined with each other to form a two-dimensional far-infrared radiating structure. The conductive connector is disposed on the bedding body and electrically connected to the conductive yarns. One end of the grounding cable is electrically connected to the conductive connector, and the other end is grounded. The connection structure of the conductive yarns, conductive connector, and grounding cable of the bedding body forms an electrostatic discharge path. When a user lies on the bedding body, the static electricity of the user's body is released through this electrostatic discharge path. The far-infrared yarns release far-infrared rays that irradiate the user's body.

[0007] In another embodiment, it further includes a joining structure, wherein the bedding body has two opposing sides, the joining structure is disposed on the two sides, and the two sides are joined by the joining structure, so that the bedding body forms a cylindrical shape.

[0008] In another embodiment, the engagement structure includes a snap-fit ​​fastener.

[0009] In another embodiment, the joining structure is a zipper.

[0010] In another embodiment, the conductive connector is located near the joint structure.

[0011] In another embodiment, the textile process is a plain weave process, and the conductive yarn is a combination of mutually perpendicular warp and weft yarns, and the far-infrared yarn is a combination of mutually perpendicular warp and weft yarns.

[0012] In another embodiment, the textile process is a knitting process, in which the conductive yarn forms a plurality of first bends and the far-infrared yarn forms a plurality of second bends, the first bends and the second bends engaging with each other.

[0013] In another embodiment, the bedding body further includes a padding, which is physically covered by a fabric layer.

[0014] In another embodiment, the far-infrared yarn comprises a plurality of far-infrared fibers twisted together, the far-infrared fibers comprising fibers made of the same or different materials capable of emitting far-infrared rays.

[0015] In another embodiment, the textile process is a plain weave process, and the conductive yarn is a combination of mutually perpendicular warp and weft yarns, and the far-infrared yarn is a combination of mutually perpendicular warp and weft yarns.

[0016] In another embodiment, the textile process is a knitting process, where the conductive yarn forms a first bend and the far-infrared yarn forms a second bend, and the first bend and the second bend engage with each other.

[0017] In another embodiment, the bedding body further includes a padding, which is physically covered by a fabric layer.

[0018] In another embodiment, the far-infrared yarn comprises a plurality of far-infrared fibers twisted together, the far-infrared fibers comprising fibers made of the same or different materials capable of emitting far-infrared rays.

[0019] In another embodiment, the far-infrared yarn further comprises a plurality of non-far-infrared fibers, which are twisted together with the far-infrared fibers to form the yarn.

[0020] In another embodiment, the conductive yarn is formed by twisting a plurality of conductive fibers and a plurality of insulating fibers together, wherein the conductive fibers include fibers made of the same or different conductive materials.

[0021] This utility model of a potential-balanced bedding that can release far-infrared rays can release static electricity generated by the human body through the static electricity release path formed by conductive yarn. At the same time, the far-infrared rays released by the far-infrared yarn can simultaneously achieve the effect of avoiding static electricity damage to the human body and promoting health. Attached Figure Description

[0022] Figure 1 This is a perspective view of the first embodiment of the potential-balanced bedding that can emit far-infrared rays according to this utility model.

[0023] Figure 2 yes Figure 1 A partially exploded view of a potential-balanced bedding unit that emits far-infrared rays.

[0024] Figure 3 This is a schematic diagram of an embodiment of the physical function fabric layer of the bedding body of the potential-balanced bedding that can emit far-infrared rays according to this utility model.

[0025] Figure 4 This is a schematic diagram of another embodiment of the physical function fabric layer of the bedding body of the potential balance bedding that can emit far-infrared rays according to this utility model.

[0026] Figure 5 This is a schematic diagram of an embodiment of the conductive yarn in the physical function layer of the bedding body of the potential-balanced bedding that can release far-infrared rays according to this utility model.

[0027] Figure 6 This is a schematic diagram of an embodiment of the far-infrared yarn in the fabric layer of the potential-balanced bedding body that can release far-infrared rays according to this utility model.

[0028] Figure 7 This is a schematic diagram of another embodiment of the potential-balanced bedding that can emit far-infrared rays according to this utility model.

[0029] Figure 8 This is a perspective view of the second embodiment of the potential-balanced bedding that can emit far-infrared rays according to this utility model.

[0030] Figure 9 This is a perspective view of the third embodiment of the potential-balanced bedding that can emit far-infrared rays according to this utility model.

[0031] Figure 10 This is a top view of the fourth embodiment of the potential-balanced bedding that can emit far-infrared rays according to this utility model.

[0032] Figure 11 This is a perspective view of the fifth embodiment of the potential-balanced bedding that can emit far-infrared rays according to this utility model.

[0033] In the picture: 1: Potentially balanced bedding that emits far-infrared rays; 10: Bedding body; 11: Physical action layering; 11a: Conductive yarn; 11a1: First bend; 11b: Far-infrared yarn; 11b1: Second bend; 11c: Textile yarn; 11c1: Third bend; 12: Flange; 13: Padding; 20: Conductive connector; 30: Grounding cable; 40: Joint structure; 111: Conductive fiber; 112: Insulating fiber; 113: Far-infrared fiber; 114: Non-far-infrared fiber. Detailed Implementation

[0034] Please see Figure 1 and Figure 2 This describes the first embodiment of the far-infrared emitting, potential-balanced bedding of this utility model. The far-infrared emitting, potential-balanced bedding 1 of this embodiment includes a bedding body 10, a conductive connector 20, and a grounding cable 30. The bedding body 10 of this embodiment includes a physical action fabric layer 11, which can be seen in the accompanying description. Figure 3 , Figure 4 , Figure 5 and Figure 6 The physical layer 11 is formed by mixing and weaving at least a plurality of (at least two) conductive yarns 11a, a plurality of far-infrared yarns 11b, and textile yarns 11c that have no conductive (insulating) and no far-infrared effect.

[0035] Conductive yarn 11a and far-infrared yarn 11b are combined using a textile process, such as... Figure 3 As shown, the above textile process is a plain weave process. The conductive yarn 11a is a combination of warp and weft yarns that are perpendicular to each other, and the far-infrared yarn 11b is a combination of warp and weft yarns that are perpendicular to each other. The conductive yarn 11a, the far-infrared yarn 11b and the textile yarn 11c are arranged to interweave with each other in the direction of warp and weft.

[0036] Another implementation example Figure 4 As shown, the above textile process is a knitting process. The conductive yarn 11a forms multiple continuous first bends 11a1, the far-infrared yarn 11b forms multiple continuous second bends 11b1, and the textile yarn 11c forms multiple continuous third bends 11c1. The first bends 11a1, the second bends 11b1, and the third bends 11c1 are connected and interlocked with each other.

[0037] Thus, the conductive yarns 11a come into contact with each other to form a two-dimensional electrical connection structure, and the far-infrared yarns 11b combine with each other to form a two-dimensional far-infrared radiating structure. When the user's body comes into contact with the physical action fabric layer 11 of the bedding body 10, the static electricity of the body is conducted into the physical action fabric layer 11 through the two-dimensional electrical connection structure formed by the conductive yarns 11a. The two-dimensional far-infrared radiating structure formed by the far-infrared yarns 11b can produce at least two-dimensional irradiation effects on the human body.

[0038] Please see Figure 5 The conductive yarn 11a is formed by twisting together multiple conductive fibers 111 and multiple insulating fibers 112. The conductive fibers 111 include fibers made of the same or different conductive materials, such as metal fibers, graphite fibers, or a mixture of metal fibers and graphite fibers. Please refer to [link to documentation]. Figure 6 The far-infrared yarn 11b is formed by twisting multiple far-infrared fibers 113 and non-far-infrared fibers 114. The far-infrared fibers 113 include fibers made of the same or different materials that can release far-infrared rays, such as bamboo charcoal fiber, graphene fiber or mica fiber.

[0039] The conductive connector 20 is disposed on the bedding body 10 and electrically connected to the conductive yarn 11a. One end of the grounding cable 30 is electrically connected to the conductive connector 20, and the other end is grounded. Thus, the connection structure of the conductive yarn 11a, the conductive connector 20 and the grounding cable 30 of the bedding body 10 forms an electrostatic discharge path, through which the static electricity of the user's body is released.

[0040] Please see Figures 1 to 7 The bedding body 10 of this embodiment can also be used as a quilt or a bed sheet. The bedding body 10 of this embodiment includes a physical action fabric layer 11. When it is used as a quilt to cover the body, if the quilt is not grounded, the conductive yarn 11a of the quilt and the bed sheet can be connected by contact between the quilt and the bed sheet. The connection structure of the conductive yarn 11a, the conductive connector 20 and the grounding cable 30 of the bed sheet forms an electrostatic discharge path, thereby forming grounding.

[0041] Please see Figure 8This represents a second embodiment of the far-infrared emitting potential-balanced bedding of this invention. This embodiment shares some structural similarities with the first embodiment; therefore, identical components are given the same reference numerals and their descriptions are omitted. The difference between this embodiment and the first embodiment is that the far-infrared emitting potential-balanced bedding 1 further includes a joining structure 40, wherein the bedding body 10 has two opposing sides 10a, and the joining structure 40 is disposed on the two sides 10a, the two sides 10a being joined by the joining structure 40, so that the bedding body 10 forms a cylindrical shape. The joining structure 40 of this embodiment includes snap-fit ​​fasteners, such as pressure buckles, spring buckles, magnetic buckles, etc. Since the bedding body 10 forms a cylindrical shape, the two-dimensional far-infrared emitting structure formed by the far-infrared yarn 11b can generate a three-dimensional irradiation effect by surrounding the human body. Furthermore, to avoid discomfort caused by user contact, the conductive connector 20 is located near the joining structure 40.

[0042] Please see Figure 9 This indicates a third embodiment of the potential-balanced bedding that emits far-infrared rays according to the present invention. This embodiment has some of the same structure as the second embodiment, therefore the same elements are given the same reference numerals and their descriptions are omitted. The difference between this embodiment and the second embodiment is that the joining structure 40 in this embodiment includes a zipper.

[0043] See Figure 10 This indicates the fourth embodiment of the potential-balanced bedding that emits far-infrared rays according to this utility model. This embodiment has some of the same structure as the third embodiment, therefore the same elements are given the same reference numerals and their descriptions are omitted. The difference between this embodiment and the second embodiment is that the bedding body 10 of this embodiment forms a flange 12 corresponding to the head of the user's body, so that the bedding body 10 can be used as a sleeping bag.

[0044] See Figure 11 This represents the fifth embodiment of the far-infrared emitting, potential-balanced bedding of this invention. This embodiment has some of the same structure as the first embodiment, therefore the same elements are given the same reference numerals and their descriptions are omitted. The difference between this embodiment and the first embodiment is that the bedding body 10 further includes a pad 13, which is covered by a physical layer 11. The bedding body 10 of this embodiment can be used as a mattress.

[0045] This utility model of a potential-balanced bedding that can release far-infrared rays can release static electricity generated by the human body through the static electricity release path formed by conductive yarn. At the same time, the far-infrared rays released by the far-infrared yarn can have a soothing effect on the human body's meridians, thus achieving the effect of avoiding static electricity damage to the human body and promoting health.

[0046] The above-described embodiments are merely preferred embodiments provided to fully illustrate the present utility model, and the scope of protection of the present utility model is not limited thereto. Equivalent substitutions or modifications made by those skilled in the art based on the present utility model, or reasonable combinations of features and solutions of various embodiments, are all within the scope of protection of the present utility model. Furthermore, any embodiment of the present utility model or the scope of the patent application need not achieve all the purposes, advantages, or features disclosed in the present utility model. In addition, the abstract and headings are only used to assist in patent document searching and are not intended to limit the scope of the present utility model. Furthermore, the terms "first," "second," etc., mentioned in this specification or the scope of the patent application are only used to name elements or distinguish different embodiments or scopes, and are not used to limit the upper or lower limit of the number of elements.

Claims

1. A potential-balanced bedding device capable of emitting far-infrared rays, characterized in that, include: A bedding body (10) includes a physical action fabric layer (11), the physical action fabric layer (11) including at least two conductive yarns (11a) and at least two far-infrared yarns (11b), each of the conductive yarns (11a) and each of the far-infrared yarns (11b) being combined by a textile process, each of the conductive yarns (11a) being in contact with each other to form a two-dimensional electrical connection structure, and each of the far-infrared yarns (11b) being combined with each other to form a two-dimensional far-infrared radiation structure; A conductive connector (20) is disposed on the bedding body (10) and electrically connected to each of the conductive yarns (11a); and A grounding cable (30) has one end electrically connected to the conductive connector (20) and the other end grounded; The connection structure of the conductive yarn (11a), the conductive connector (20) and the grounding cable (30) of the bedding body (10) forms an electrostatic discharge path.

2. The potential-balanced bedding that emits far-infrared rays as described in claim 1, characterized in that, The bedding body (10) further includes a joining structure (40), wherein the bedding body (10) has two opposing sides (10a), the joining structure (40) is disposed on the two sides (10a), and the two sides (10a) are joined by the joining structure (40) so that the bedding body (10) forms a cylindrical shape.

3. The potential-balanced bedding that emits far-infrared rays as described in claim 2, characterized in that, The engagement structure (40) includes a snap-fit ​​fastener.

4. The potential-balanced bedding that emits far-infrared rays as described in claim 2, characterized in that, The joining structure (40) is a zipper.

5. The potential-balanced bedding that emits far-infrared rays as described in claim 2, characterized in that, The conductive connector (20) is located near the joint structure (40).

6. The potential-balanced bedding that emits far-infrared rays as described in claim 1 or 2, characterized in that, The textile process is a plain weave process, and each of the conductive yarns (11a) is combined with a warp and weft structure that are perpendicular to each other, and each of the far-infrared yarns (11b) is combined with a warp and weft structure that is perpendicular to each other.

7. The potential-balanced bedding that emits far-infrared rays as described in claim 1 or 2, characterized in that, The textile process is a knitting process, in which each of the conductive yarns (11a) forms a plurality of first bends and each of the far-infrared yarns (11b) forms a plurality of second bends, and each of the first bends and each of the second bends engage with each other.

8. The potential-balanced bedding that emits far-infrared rays as described in claim 1 or 2, characterized in that, The bedding body (10) further includes a pad (13), and the physical action fabric layer (11) covers the pad (13).

9. The potential-balanced bedding that emits far-infrared rays as described in claim 1 or 2, characterized in that, The bedding body (10) further includes a flange (12).

10. The potential-balanced bedding that emits far-infrared rays as described in claim 1, characterized in that, The far-infrared yarn (11b) comprises a plurality of far-infrared fibers (113) twisted together, each of the far-infrared fibers (113) comprising fibers made of the same or different materials capable of emitting far-infrared rays.

11. The potential-balanced bedding that emits far-infrared rays as described in claim 10, characterized in that, The far-infrared yarn (11b) further includes a plurality of non-far-infrared fibers (114), each of the non-far-infrared fibers (114) and each of the far-infrared fibers (113) being twisted together to form the far-infrared yarn (114).

12. The potential-balanced bedding that emits far-infrared rays as described in claim 1, 10, or 11, characterized in that, The conductive yarn (11a) is formed by twisting a plurality of conductive fibers (111) and a plurality of insulating fibers (112) together, and each of the conductive fibers (111) includes fibers made of the same or different conductive materials.