Graphene polymer nanometer energy heating mattress

The design of the graphene polymer nano-energy heating mattress solves the problems of heating wire aging and electromagnetic radiation, achieving safe and radiation-free high-efficiency heating and physiotherapy effects, and improving the comfort and warmth of the mattress.

CN117017005BActive Publication Date: 2026-02-06SUZHOU HOUSING CONSTR DIGITAL TECH CO LTD
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Patent Information

Application Number
CN202311052798.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-08-21
Publication Date
2026-02-06
Estimated Expiration
2043-08-21

AI Technical Summary

Technical Problem

The heating wires in existing heated mattresses are prone to aging, posing safety hazards and causing electromagnetic radiation, and cannot meet the requirements for long lifespan and safety.

Method used

The graphene polymer nano-energy heating mattress includes a base fabric layer, an XPS insulation layer, a reflective heat insulation pad, a heating layer, and a reflective film. The heating layer consists of a polymer nano-energy core, an insulation layer, an anti-oxidation layer, and a protective layer. The cable and terminal are fixed by a limiting mechanism and a storage component to ensure safety and comfort.

Benefits of technology

It achieves safe and radiation-free high-efficiency heating, and has antibacterial, anti-static and physiotherapy functions, improving the comfort and warmth of the mattress. It heats up quickly and for a long time, and has nano-far-infrared physiotherapy effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a graphene polymerization nanometer energy heating mattress, which comprises a mattress assembly and a terminal and a cable, wherein the mattress assembly comprises, from bottom to top, a base cloth layer two, an XPS heat preservation layer, a reflective thermal insulation pad, a heating layer, a reflective film and a base cloth layer one in sequence, and the heating layer is in an L-shaped coil shape. In the application, the polymerization nanometer energy core is formed by three-dimensional weaving of a plurality of graphene polymerization nanometer energy wires, has good integrity, and the polymerization nanometer energy wire fiber is safe and free of radiation, has a fast heating speed and a long duration, and basically has no decay. After the polymerization nanometer energy core is heated, nanometer far infrared and negative oxygen ions can be generated, the nanometer far infrared emits light waves of 6-16 microns to the human body, has a physiotherapy effect through reasonable and slow release of heat, and the released negative oxygen ions can activate human cells, enhance cell vitality and benefit human health.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of heat-generating bed mattress, in particular to a graphene polymer nanometer energy heat-generating bed mattress. BACKGROUND

[0002] With the further improvement of people's requirements for daily necessities, more and more new technologies are applied, for example, the original bed mattress is generally composed of an outer cover and internal support springs, but in order to adapt to the change of indoor temperature and meet the demand for health care function, some bed mattresses are provided with heating components, which play a warming and health care role through heating of the heating components.

[0003] Chinese patent publication No. CN102028363A, published on April 27, 2011, discloses a multifunctional heat-generating bed mattress, which comprises an outer cover with built-in support springs and a heating device located in the outer cover. The outer cover is provided with a hot air cavity surrounded by a heat preservation material layer, and the support springs are located in the hot air cavity. The heating device is composed of a shell, a heating component fixed on the shell, and a control circuit thereof. The heating component is a far-infrared heating sheet located at one end of the hot air cavity. The far-infrared heating sheet is in the shape of an arc tile, and its concave surface faces the other end of the hot air cavity.

[0004] The existing heat-generating bed mattress, such as the above, generally follows the traditional electric heating blanket structure, that is, the temperature of the bed mattress is adjusted by the internal electric heating wire. In the specific implementation process, the heating wire of the heat-generating bed mattress is prone to aging, resulting in a shorter service life of the heat-generating bed mattress. Moreover, the insulation of the connection between the heating wire of the heat-generating blanket and the power supply wire cannot be guaranteed, and electromagnetic radiation is generated after power-on, which poses a safety hazard. Therefore, it is urgent to propose a corresponding graphene polymer nanometer energy heat-generating bed mattress to solve the above problems. SUMMARY

[0005] The present application relates to the technical field of heat-generating bed mattress, in particular to a graphene polymer nanometer energy heat-generating bed mattress.

[0006] In order to achieve the above-mentioned purpose, the present application adopts the following technical solutions:

[0007] A graphene polymer nano-energy heating mattress includes a mattress assembly, a terminal, and a cable. The mattress assembly, from bottom to top, includes a second base fabric layer, an XPS insulation layer, a reflective heat insulation pad, a heating layer, a reflective film, and a first base fabric layer. The heating layer is L-shaped and coiled. The first and second base fabric layers are sewn together by overlocking. The heating layer, from the inside out, includes a polymer nano-energy core, an insulation layer, an anti-oxidation layer, and a protective layer. The polymer nano-energy core is three-dimensionally woven from several graphene polymer nano-energy filaments. The cable extends from the top center of the mattress assembly. The cable, the terminal, and the heating layer are electrically connected. The mattress also includes a limiting mechanism for defining the position of the terminal. The limiting mechanism includes a housing, a base, a connecting component for connecting the housing to the edge of the bed, and a storage component for storing the cable. The terminal is fixedly connected to the inner wall of the housing, and the housing is fixedly connected to the base.

[0008] Preferably, the connecting assembly includes suction cups, and at least two sets of suction cups are respectively fixedly installed on the outer wall of the placement housing and the bottom compartment.

[0009] Preferably, a rubber pad is fixedly installed on the inner surface of the housing, and the outer surface of the rubber pad abuts against the outer surface of the terminal.

[0010] Preferably, the storage assembly includes two sets of winding posts fixedly installed on the inner wall of the bottom compartment, the cable is wound between the two sets of winding posts, and a positioning part for cable positioning is provided between the two sets of winding posts.

[0011] Preferably, the positioning part includes a stud fixedly installed on the inner surface of the bottom compartment. The stud is located between two sets of spiral studs. A push plate is screwed onto the outer surface of the stud. A pressure plate is slidably connected to the outer surface of the stud. A convex ring is fixedly installed on the outer surface of the push plate. The convex ring is slidably connected to the inner surface of the pressure plate through an annular groove.

[0012] Preferably, a cover plate is hinged to the outer wall of the bottom compartment, a tab is fixedly installed at the open end of the cover plate, and a protrusion is fixedly installed on the outer wall of the bottom compartment, with the tab and the protrusion engaging and connecting.

[0013] Preferably, the top of the mattress assembly is fixedly installed with buckles, and the two sets of buckles are symmetrically distributed. The fleece composite layer and the anti-slip layer are respectively fixedly connected to the opposite sides of the base fabric layer one and the base fabric layer two.

[0014] Preferably, the first base fabric layer and the second base fabric layer have the same structure, and both the first base fabric layer and the second base fabric layer include an antibacterial layer and an antistatic layer. The antibacterial layer is made of interwoven antibacterial fibers and polyester fibers, and the warp yarns of the antistatic layer are composed of conductive metal fibers.

[0015] To sum up, the application has the following advantages:

[0016] 1、In the application, the heating layer is fixed in a meandering shape between the reflective film and the reflective thermal insulation pad, the base cloth layer one and the base cloth layer two tightly sandwich the heating layer, and the insulating layer on the outer side of the polymeric nanometer energy core makes the heating layer not conductive when powered on, so that the heating layer can be directly touched by hand in the powered-on state without electric shock, and the safety is high, the application prospect is wide, and the base cloth layer one and the base cloth layer two are completely the same in structure and both include the antibacterial layer and the anti-static layer, the antibacterial layer as the innermost layer is interwoven by antibacterial fibers and polyester fibers and has good antibacterial effect, the warp yarn of the anti-static layer is composed of conductive metal fibers and is used to improve the conductivity of the fabric and achieve the effect of preventing static electricity, and the outermost pile layer can significantly improve the comfort and warmth of the pile composite layer one and the pile composite layer two, the polymeric nanometer energy core is made of a plurality of graphene polymeric nanometer energy filaments and is three-dimensionally woven, has good integrity, and the polymeric nanometer energy filament fiber is safe and has no radiation, has fast heating speed and long duration, and basically has no decay, and the polymeric nanometer energy core can generate nanometer far infrared and negative oxygen ions after heating, the nanometer far infrared emits light waves of 6-16 microns to the human body, has a physiotherapy effect through the reasonable and slow release of heat, and the released negative oxygen ions can activate human cells and enhance cell vitality, which is beneficial to human health.

[0017] 2、In the application, after the mattress is laid on the bed body, the cables are pulled in the specified direction according to the position of the power strip, part of the cables are transversely arranged on the top of the mattress and are positioned by buckles, the terminal and the cables are passed through the placement shell, the rubber pad in the placement shell is extruded to realize the positioning of the terminal, then the plug is combined to the power strip, the undulating pressing plate is made to be in the same direction as the connecting lines of the two groups of winding columns, then the excess part of the cables is wound between the two groups of winding columns, the pressing plate and the connecting lines are kept vertical, the position of the pressing plate is artificially constrained, then the pushing disc is rotated to push the screw column and push the pressing plate downward at the same time, until the pressing plate abuts against the outside of the cables between the two groups of winding columns, so that the positioning of the cables in the winding is realized, and the terminal is fixed outside the bed edge to avoid the artificial touch of the terminal and realize the storage of the cables. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 An overall structure schematic diagram provided by an embodiment of the application is shown;

[0019] Figure 2 A cover plate structure schematic diagram provided by an embodiment of the application is shown;

[0020] Figure 3A schematic diagram of a suction cup structure provided by an embodiment of the present application is shown.

[0021] Figure 4 A schematic diagram of a winding column structure provided by an embodiment of the present application is shown.

[0022] Figure 5 A schematic diagram of a convex ring structure provided by an embodiment of the present application is shown.

[0023] Figure 6 A schematic diagram of a heating layer structure provided by an embodiment of the present application is shown.

[0024] Figure 7 A schematic diagram of a mattress assembly structure provided by an embodiment of the present application is shown.

[0025] Figure 8 A schematic diagram of a polymeric nanometer heating core provided by an embodiment of the present application is shown.

[0026] Figure 9 A schematic diagram of an electrical connection provided by an embodiment of the present application is shown.

[0027] Legend:

[0028] 1, mattress assembly; 101, reflective film; 102, reflective thermal insulation pad; 103, base cloth layer one; 104, napped composite layer; 105, XPS thermal insulation layer; 106, base cloth layer two; 107, anti-skid layer; 2, buckle; 3, terminal; 4, cable; 5, placement housing; 6, bottom bin; 7, tab; 8, heating layer; 801, protective layer; 802, antioxidant layer; 803, insulating layer; 804, polymeric nanometer energy core; 9, rubber pad layer; 10, suction cup; 11, push disc; 12, pressing plate; 13, stud; 14, convex ring; 15, winding column; 16, cover plate. DETAILED DESCRIPTION

[0029] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative labor fall within the scope of protection of the present application.

[0030] Please refer to Figures 1-4 The present application provides a technical solution:

[0031] A graphene polymer nanometer energy heating mattress, comprising a mattress assembly 1, a terminal 3 and a cable 4, the mattress assembly 1 comprises from bottom to top a base cloth layer two 106, an XPS heat preservation layer 105, a reflective thermal insulation pad 102, a heating layer 8, a reflective film 101 and a base cloth layer one 103, the heating layer 8 is L-shaped and coiled, the base cloth layer one 103 and the base cloth layer two 106 are stitched by overlock, and the heating layer 8 comprises from inside to outside a polymer nanometer energy core 804, an insulating layer 803, an anti-oxidation layer 802 and a protective layer 801, the polymer nanometer energy core 804 is made of a plurality of graphene polymer nanometer energy filaments three-dimensionally woven;

[0032] The polymer nanometer energy filament fiber is made of a formula and a process of a graphene polymer nanometer energy heating filament and a preparation method thereof with a patent application number CN201910617985.5, the polymer nanometer energy filament fiber is safe and radiation-free, and since it is a non-metallic mineral, no magnetic field is generated and no radiation phenomenon occurs.

[0033] The cable 4 is led out from the middle of the top of the mattress assembly 1, the cable 4, the terminal 3 and the heating layer 8 are electrically connected, and further comprising a limiting mechanism for limiting the position of the terminal 3, the limiting mechanism comprises a placing shell 5, a bottom bin 6, a connecting assembly for connecting the placing shell 5 and the bed edge, and a storage assembly for storing the cable 4, the terminal 3 is fixedly connected with the inner wall of the placing shell 5, and the placing shell 5 is fixedly connected with the bottom bin 6.

[0034] The heating layer 8 is fixed in a circuitous winding shape between the reflective film 101 and the reflective thermal insulation pad 102, which ensures the position stability of the heating layer 8 and the continuous heat and far-infrared light wave propagation, the base cloth layer one 103 and the base cloth layer two 106 tightly sandwich the heating layer 8 in the middle, cooperating with the insulating layer 803 outside the polymer nanometer energy core 804, so that the heating layer 8 is not conductive when powered on, and can be directly touched by hand in the powered-on state without electric shock phenomenon, which is safe and has wide application prospect, and the base cloth layer one 103 and the base cloth layer two 106 are completely the same in structure and both comprise an antibacterial layer and an anti-static layer, the antibacterial layer as the innermost layer is interwoven by antibacterial fibers and polyester fibers and has good antibacterial effect, the warp of the anti-static layer is composed of conductive metal fibers to improve the conductivity of the fabric and achieve the effect of anti-static, the outermost shake wool composite layer 104 can significantly improve the comfort and warmth of the mattress, meanwhile, the polymer nanometer energy core 804 is made of a plurality of graphene polymer nanometer energy filaments three-dimensionally woven, which has good integrity, and the polymer nanometer energy filament fiber is safe and radiation-free, has fast heating speed and long duration, and basically no decay, and the polymer nanometer energy core can generate nanometer far-infrared and negative oxygen ions after heating, the nanometer far-infrared emits 6-16 micrometer light wave to human body, has a physiotherapy effect through the reasonable slow release of heat, and the released negative oxygen ions can activate human cells and enhance cell vitality, which is beneficial to human health.

[0035] Specifically, as shown in Figure 2 With Figure 4 The connecting assembly includes suction cups 10, at least two groups of which are fixedly installed on the outer walls of the placement shell 5 and the bottom bin 6. The suction cups 10 can realize quick disassembly and assembly of the placement shell 5 and the bed edge. The inner wall of the placement shell 5 is fixedly installed with a rubber pad 9, the outer wall of which abuts against the outer wall of the terminal 3. The rubber pad 9 provides a restraining force for the terminal 3, realizing the positioning of the terminal 3 inside the placement shell 5. The storage assembly includes two groups of winding columns 15 fixedly installed on the inner wall of the bottom bin 6. The cable 4 is wound between the two groups of winding columns 15, and a positioning portion for positioning the cable 4 is arranged between the two groups of winding columns 15. The positioning portion includes a stud 13 fixedly installed on the inner wall of the bottom bin 6, which is located between the two groups of winding columns 15. The outer wall of the stud 13 is screw-connected with a push disc 11, and the outer wall of the stud 13 is slidingly connected with a pressing plate 12. The outer wall of the push disc 11 is fixedly installed with a protruding ring 14, which is slidingly connected with the inner wall of the pressing plate 12 through an annular clamping groove.

[0036] After the mattress is laid on the bed body, the cable 4 is pulled in a specified direction according to the position of the socket. Part of the cable 4 is horizontally placed on the top of the mattress and is positionally determined by the buckle 2. The placement shell 2 is attracted to the specified position of the bed edge by the suction cups 10. The terminal 3 and the cable 4 pass through the placement shell. The rubber pad 9 inside the placement shell 5 is extruded, thereby realizing the positioning of the terminal 3. Then, the plug is combined to the socket. The pressing plate 12 is actuated to be in the same direction as the connecting line of the two groups of winding columns 15. Then, the excess part of the cable 4 between the plug and the terminal 3 is wound between the two groups of winding columns 15. The pressing plate 12 is actuated to keep the connecting line vertical. The position of the pressing plate 12 is artificially constrained. Then, the push disc 11 is rotated. The push disc 11 is screw-connected with the stud 13 while pushing the pressing plate 12 downward. The pressing plate 12 abuts against the outside of the cable 4 between the two groups of winding columns 15, thereby realizing the positioning of the cable 4 in the winding. In this way, the terminal 3 is fixed outside the bed edge, avoiding the accidental touch of the terminal 3 by human beings, and realizing the storage of the cable 4.

[0037] Specifically, as shown in Figure 2 With Figure 3As shown, the outer wall of the bottom bin 6 is hinged with a cover plate 16, the open end of the cover plate 16 is fixedly installed with a tab 7, the outer wall of the bottom bin 6 is fixedly installed with a protrusion, the tab 7 is connected with the protrusion in a buckling manner, so that when the mattress assembly 1 is not in use, the plug is completely stored in the bottom bin 6, and after the cover plate 16 is closed, the cable 4 and the plug can be protected, avoiding deformation of the plug due to subsequent extrusion when the mattress assembly 1 is stacked, the top of the mattress assembly 1 is fixedly installed with buckles 2, and two groups of buckles 2 are symmetrically distributed, so as to facilitate stable wiring of the cable 2 on the top of the mattress assembly 1, the side away from the base cloth layer two 106 of the base cloth layer one 103 is fixedly connected with a chenille composite layer 104 and an anti-skid layer 107 respectively, the outermost chenille composite layer 104 can significantly improve the comfort and warmth of the mattress, and the anti-skid layer 107 can ensure the stability of the combination of the mattress assembly 1 and the bed body, the base cloth layer one 103 and the base cloth layer two 106 are completely the same in structure, and the base cloth layer one 103 and the base cloth layer two 106 both include a bacteriostatic layer and an anti-static layer, the bacteriostatic layer is interwoven by bacteriostatic fibers and polyester fibers, the warp of the anti-static layer is composed of conductive metal fibers, the bacteriostatic layer as the innermost layer is interwoven by bacteriostatic fibers and polyester fibers, has good bacteriostatic effect, the warp of the anti-static layer is composed of conductive metal fibers, used to improve the conductivity of the fabric and achieve the effect of anti-static.

[0038] Working principle: The heating layer 8 is fixed in a meandering shape between the reflective film 101 and the reflective heat insulation pad 102, ensuring the stable position of the heating layer 8 while ensuring the continuous heat and propagation of far-infrared light waves. The base cloth layer one 103 and the base cloth layer two 106 tightly sandwich the heating layer 8, and the insulating layer 803 on the outside of the polymeric nano energy core 804 makes the heating layer 8 not conductive when powered on. In the powered-on state, it can be directly touched by hand without electric shock, which is safe and has a wide application prospect. The base cloth layer one 103 and the base cloth layer two 106 are completely identical in structure and both include an antibacterial layer and an anti-static layer. The antibacterial layer, as the innermost layer, is interwoven with antibacterial fibers and polyester fibers, providing good antibacterial effect. The warp yarn of the anti-static layer is composed of conductive metal fibers to improve the conductivity of the fabric and achieve anti-static effect. The outermost shake wool composite layer 104 can significantly improve the comfort and warmth of the mattress. The polymeric nano energy core 804 is made of several graphene polymeric nano energy filaments woven in three dimensions, which has good integrity and the polymeric nano energy filament fiber is safe and radiation-free, with fast heating speed and long duration, achieving basically no decay. After the polymeric nano energy core heats up, it can generate nano far-infrared and negative oxygen ions. The nano far-infrared emits 6-16 micron light waves to the human body, which has a physiotherapy effect through the slow and reasonable release of heat. The released negative oxygen ions can activate human cells and enhance cell vitality, which is beneficial to human health. After the mattress is laid on the bed body, the cables 4 are activated in the specified direction according to the position of the power strip. Part of the cables 4 will be placed horizontally on the top of the mattress and positioned by the buckle 2. The rubber pad 9 inside the placement shell 5 will be squeezed to position the terminal 3. Then the plug is combined to the power strip, the pressing plate 12 is actuated to be in the same direction as the connecting wires of the two groups of winding columns 15. Then the excess cable 4 between the plug and the terminal 3 is wound between the two groups of winding columns 15. The pressing plate 12 is actuated to keep the connecting wires vertical. The position of the pressing plate 12 is artificially constrained. Then the push disc 11 is rotated, the push disc 11 is screwed with the stud 13 while pushing the pressing plate 12 down. The pressing plate 12 abuts to the outside of the cable 4 between the two groups of winding columns 15, thereby positioning the cable 4 in the winding. The terminal 3 is fixed outside the bed edge, avoiding accidental touch of the terminal 3 while achieving storage of the cable 4.

[0039] The foregoing description of the embodiments enables one of ordinary skill in the art to make or use the application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein can be applied to other embodiments without departing from the spirit or scope of the application. Thus, the present application is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A graphene polymer nanometer energy heating mattress, comprising a mattress assembly (1), a terminal (3) and a cable (4), characterized in that, The mattress assembly (1) sequentially comprises base cloth layer two (106), XPS heat preservation layer (105), reflective thermal insulation pad (102), heating layer (8), reflective film (101) and base cloth layer one (103) from bottom to top, the heating layer (8) is L-shaped coiled, the base cloth layer one (103) and the base cloth layer two (106) are stitched by overlock, and the heating layer (8) comprises polymeric nanometer energy core (804), insulation layer (803), antioxidant layer (802) and protective layer (801) from inside to outside, the polymeric nanometer energy core (804) is three-dimensionally woven by a plurality of graphene polymeric nanometer energy filaments, the cable (4) is led out from the middle of the top of the mattress assembly (1), the cable (4), the terminal (3) and the heating layer (8) are electrically connected, and the limiting mechanism for limiting the position of the terminal (3) is further included, the limiting mechanism comprises placing shell (5), bottom warehouse (6), connecting assembly for connecting the placing shell (5) and the bed edge and storage assembly for storing the cable (4), the terminal (3) is fixedly connected with the inner wall of the placing shell (5), the placing shell (5) is fixedly connected with the bottom warehouse (6), the storage assembly comprises two groups of winding columns (15) fixedly installed on the inner wall of the bottom warehouse (6), the cable (4) is wound between the two groups of winding columns (15), and the two groups of winding columns (15) are provided with a positioning portion for positioning the cable (4) therebetween, the positioning portion comprises a threaded column (13) fixedly installed on the inner wall of the bottom warehouse (6), the threaded column (13) is located between the two groups of winding columns (15), a push disc (11) is rotationally connected with the outer wall of the threaded column (13), a pressing plate (12) is slidably connected with the outer wall of the threaded column (13), a convex ring (14) is fixedly installed on the outer wall of the push disc (11), and the convex ring (14) is slidably connected with the inner wall of the pressing plate (12) through the annularly arranged clamping groove.

2. The graphene polymer nanometer energy heating mattress according to claim 1, characterized in that, The connecting assembly comprises suction cups (10), and at least two groups of the suction cups (10) are fixedly installed on the outer walls of the placing shell (5) and the bottom warehouse (6) respectively.

3. The graphene polymer nanotechnology energy heat generating mattress according to claim 2, wherein, The placing shell (5) is fixedly installed with a rubber pad layer (9) on the inner wall, and the outer wall of the rubber pad layer (9) abuts against the outer wall of the terminal (3).

4. The graphene polymer nanometer energy heating mattress according to claim 3, characterized in that, The outer wall of the bottom warehouse (6) is hingedly connected with a cover plate (16), the open end of the cover plate (16) is fixedly installed with a clamping piece (7), the outer wall of the bottom warehouse (6) is fixedly installed with a convex strip, and the clamping piece (7) is buckled and connected with the convex strip.

5. The graphene polymer nanotechnology energy heat generating mattress according to claim 4, wherein, The top of the mattress assembly (1) is fixedly installed with buckles (2), and two groups of the buckles (2) are symmetrically distributed, and the side, away from the base cloth layer two (106), of the base cloth layer one (103) is fixedly connected with a chenille composite layer and an anti-skid layer respectively.

6. The graphene polymer nanotechnology energy heat generating mattress according to claim 5, wherein, The base cloth layer one (103) and the base cloth layer two (106) are completely same in structure, and the base cloth layer one (103) and the base cloth layer two (106) both comprise a bacteriostatic layer and an anti-static layer, the bacteriostatic layer is interwoven by bacteriostatic fibers and polyester fibers, and the warp of the anti-static layer is composed of conductive metal fibers.

Citation Information

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