Novel moxa sticking heatproof gloves

By combining a multi-layered structural design with high-temperature resistant materials, the problem of poor heat insulation in existing gloves during moxibustion has been solved, resulting in highly effective and comfortable moxibustion gloves that extend service life and improve wearing stability.

CN224268388UActive Publication Date: 2026-05-26ZHONGSHAN CHEN XINGHAI HOSPITAL
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHONGSHAN CHEN XINGHAI HOSPITAL
Filing Date
2025-05-07
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing gloves are difficult to effectively block continuous high temperatures during moxibustion, which makes the material prone to deformation or damage, shortens the service life, and is uncomfortable to wear.

Method used

It adopts a multi-layer structure design, including expanded graphite insulation felt, composite non-woven fabric, silicone rubber sponge layer and glass fiber mesh, combined with high temperature resistant materials such as fluorosilicone rubber and nano flame retardant modified silicone rubber, and forms a tight structure through hot melt adhesive film composite process to enhance heat insulation, fire resistance and comfort.

Benefits of technology

Effectively resists the high temperature of moxibustion, protects the skin of the hands, improves safety and comfort, extends the service life of gloves, adapts to different hand shapes, prevents hand slippage, and provides a secure fit.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224268388U_ABST
    Figure CN224268388U_ABST
Patent Text Reader

Abstract

This utility model relates to a novel heat-resistant glove for moxibustion, comprising a glove surface layer, an inner filling of expanded graphite heat-insulating felt, a composite non-woven fabric at the bottom of the expanded graphite heat-insulating felt, an organosilicon rubber sponge layer at the bottom of the composite non-woven fabric, a fiberglass mesh at the bottom of the organosilicon rubber sponge layer, and a first rubber pad fixedly connected at equal intervals at the bottom of the glove surface layer. The beneficial effects of this utility model are that the multi-layered structure forms a multi-composite heat insulation system, improving heat protection capabilities from the dimensions of blocking, buffering, and filtering, effectively resisting the high temperatures of moxibustion and protecting the skin of the hands. The first and second rubber pads reinforce protection for the high-temperature areas at the bottom of the glove, enhancing local heat protection performance, meeting the needs of moxibustion operation scenarios, and improving safety. The cooperation of each functional layer ensures heat insulation while improving wearing comfort through the organosilicon rubber sponge layer, achieving a balance between protection and comfort.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of traditional Chinese medicine technology, and in particular to a novel heat-resistant glove for moxibustion. Background Technology

[0002] In the practical application of traditional Chinese medicine treatments, operators need to be frequently exposed to high-temperature environments, which places high demands on the heat protection performance of gloves.

[0003] However, in the existing technology, most gloves use a single heat insulation structure and rely solely on ordinary materials, which is difficult to effectively block the continuous high temperature generated during moxibustion and cannot provide reliable protection for the hands. The materials used in some gloves have poor fire resistance and high temperature resistance, and are prone to deformation or damage in high temperature environments, resulting in a shortened service life. Utility Model Content

[0004] In view of the above-mentioned problems in the prior art, the main purpose of this utility model is to provide a new type of heat-resistant glove for moxibustion, which solves the problem that most gloves in the prior art use a single heat insulation structure and rely on ordinary materials, which is difficult to effectively block the continuous high temperature generated during moxibustion and cannot provide reliable protection for the hands. Furthermore, the materials used in some gloves have poor fire resistance and high temperature resistance, and are prone to deformation or damage in high temperature environments, resulting in a shortened service life.

[0005] The technical solution of this utility model is as follows: a novel moxibustion heat-resistant glove, comprising a glove surface layer, wherein the inside of the glove surface layer is filled with an expandable graphite heat-insulating felt, the bottom of the expandable graphite heat-insulating felt is provided with a composite non-woven fabric, the bottom of the composite non-woven fabric is provided with an organosilicon rubber sponge layer, the bottom of the organosilicon rubber sponge layer is provided with a glass fiber mesh, the bottom of the glove surface layer is fixedly connected with a first rubber pad at equal intervals, and the bottom of the glove surface layer and on one side of the first rubber pad is fixedly connected with a second rubber pad.

[0006] Through the above technical solutions, a multi-layered structure forms a multi-composite heat insulation system, enhancing heat resistance from dimensions such as barrier, buffer, and filtration, effectively resisting the high temperatures of moxibustion and protecting the skin of the hands. The first and second rubber pads reinforce protection for the high-temperature areas at the bottom of the glove, enhancing local heat resistance and meeting the needs of moxibustion operation scenarios, thus improving safety. The various functional layers work together to ensure heat insulation while improving wearing comfort through layers such as silicone rubber sponge, achieving a balance between protection and comfort.

[0007] In a preferred embodiment, the bottom of the inner wall of the glove surface is provided with equally spaced ventilation grooves, and one end of the glove surface is fixedly connected with connecting straps at equal intervals, with Velcro straps provided between the multiple connecting straps.

[0008] Through the above technical solutions, the ventilation grooves improve the breathability of the gloves and enhance wearing comfort; the Velcro and connecting straps work together to make the gloves fit different users' hand shapes and make them more secure to wear.

[0009] In a preferred embodiment, the material of the glove surface is a blended fireproof cloth, the material of the first rubber pad is fluorosilicone rubber, and the material of the second rubber pad is nano flame-retardant modified silicone rubber.

[0010] Through the above technical solutions, the blended fireproof fabric is fireproof, and the fluorosilicone rubber and nano flame-retardant modified silicone rubber enhance the high temperature resistance and flame retardancy, thereby strengthening the overall protective performance of the gloves from the material level.

[0011] In a preferred embodiment, the expanded graphite insulation felt, composite nonwoven fabric, silicone rubber sponge layer and glass fiber mesh are pressed together by a hot melt adhesive film composite process.

[0012] Through the above technical solution, the materials of each layer are firmly bonded together by the hot melt adhesive film composite process, avoiding delamination, ensuring the long-term stability of the glove's heat insulation structure, and extending its service life.

[0013] In a preferred embodiment, both the first rubber pad and the second rubber pad have wavy anti-slip ridges on their surfaces.

[0014] Through the above technical solutions, the anti-slip texture improves the grip stability of the gloves during operation, prevents the hand from slipping, and ensures safety during use.

[0015] Compared with the prior art, the advantages and positive effects of this utility model are as follows:

[0016] In this invention, a multi-layered structure forms a multi-composite heat insulation system, enhancing heat resistance from dimensions such as barrier, buffer, and filtration, effectively resisting the high temperatures of moxibustion and protecting the skin of the hands. The first and second rubber pads reinforce protection in areas of the glove bottom that are prone to contact with high temperatures, enhancing local heat insulation performance, meeting the needs of moxibustion operation scenarios, and improving safety. The various functional layers work together to ensure heat insulation while improving wearing comfort through silicone rubber sponge layers, achieving a balance between protection and comfort. Breathable grooves improve the glove's breathability, enhancing wearing comfort; Velcro and connecting straps work together to adapt the glove to different hand shapes, making it more secure; the blended fire-retardant fabric provides fire resistance; fluorosilicone rubber and nano-flame-retardant modified silicone rubber enhance high-temperature resistance and flame retardancy, strengthening the overall protective performance of the glove from a material perspective; the materials of each layer are firmly bonded through a hot-melt adhesive film composite process, preventing delamination and ensuring the long-term stability of the glove's heat insulation structure, extending its service life; anti-slip ridges improve grip stability during operation, preventing hand slippage and ensuring safety. Attached Figure Description

[0017] Figure 1This utility model provides a schematic diagram of the overall structure of a novel heat-resistant glove for moxibustion.

[0018] Figure 2 A three-dimensional structural diagram of a novel heat-resistant glove for moxibustion is provided for this utility model;

[0019] Figure 3 This utility model provides a bottom view structural diagram of a novel heat-resistant glove for moxibustion.

[0020] Figure 4 This utility model provides a schematic diagram of the internal structure of a novel heat-resistant glove for moxibustion.

[0021] Legend: 1. Glove surface; 2. First rubber pad; 3. Second rubber pad; 4. Connecting strap; 5. Velcro; 6. Breathable groove; 7. Expanded graphite heat insulation felt; 8. Composite non-woven fabric; 9. Silicone rubber sponge layer; 10. Fiberglass mesh. Detailed Implementation

[0022] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.

[0023] Example

[0024] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, this utility model provides a technical solution: including a glove surface layer 1, the inside of the glove surface layer 1 is filled with an expanded graphite heat insulation felt 7, the bottom of the expanded graphite heat insulation felt 7 is provided with a composite non-woven fabric 8, the bottom of the composite non-woven fabric 8 is provided with an organosilicon rubber sponge layer 9, the bottom of the organosilicon rubber sponge layer 9 is provided with a glass fiber mesh 10, the bottom of the glove surface layer 1 is equidistantly fixedly connected with a first rubber pad 2, and the bottom of the glove surface layer 1 and located on one side of the first rubber pad 2 is fixedly connected with a second rubber pad 3.

[0025] In this embodiment, the glove surface layer 1, as the outer layer structure, is the first to contact the external environment, resisting heat and physical impact. The internal expanded graphite insulation felt 7 utilizes the low thermal conductivity of graphite to form a core insulation layer, blocking the transmission of high temperatures from moxibustion. The composite non-woven fabric 8, located at the bottom of the expanded graphite insulation felt 7, assists in filtering hot air, enhances interlayer stability, and further blocks heat conduction. The silicone rubber sponge layer 9, with its porous structure, absorbs and buffers heat, reducing heat transfer efficiency while providing a soft touch. The fiberglass mesh 10, through its high-strength properties, enhances the glove's structural strength, prevents damage to the insulation layer, and ensures the long-term effectiveness of the insulation system. The first rubber pad 2 and the second rubber pad 3 directly contact the high-temperature area, utilizing the high-temperature resistance of rubber to preferentially absorb and block heat, reducing its transfer to the inside of the glove.

[0026] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, ventilation grooves 6 are equidistantly provided at the bottom of the inner wall of the glove surface 1, and connecting straps 4 are fixedly connected at equidistant distances to one end of the glove surface 1, with Velcro 5 provided between the multiple connecting straps 4.

[0027] In this embodiment, the ventilation groove 6 is formed at the bottom of the inner wall of the glove surface 1 to allow air circulation and reduce the stuffiness inside the glove; the connecting strap 4, together with the Velcro 5, can adjust the tightness of the glove.

[0028] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, the material of the glove surface layer 1 is a blended fireproof cloth, the material of the first rubber pad 2 is fluorosilicone rubber, and the material of the second rubber pad 3 is nano flame-retardant modified silicone rubber.

[0029] In this embodiment, the blended fireproof fabric of the glove surface 1 has fireproof properties and can resist external fire sources; the fluorosilicone rubber of the first rubber pad 2 and the nano flame-retardant modified silicone rubber of the second rubber pad 3 utilize their material properties to resist high temperature and flame retardancy, respectively.

[0030] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, the expanded graphite insulation felt 7, the composite nonwoven fabric 8, the silicone rubber sponge layer 9, and the glass fiber mesh 10 are pressed together by a hot melt adhesive film composite process.

[0031] In this embodiment, the expanded graphite insulation felt 7, the composite nonwoven fabric 8, the silicone rubber sponge layer 9, and the glass fiber mesh 10 are pressed together by a hot melt adhesive film composite process to form a tight structure.

[0032] like Figure 1 , Figure 2 , Figure 3 , Figure 4 As shown, both the first rubber pad 2 and the second rubber pad 3 have wavy anti-slip ridges on their surfaces.

[0033] In this embodiment, the wavy anti-slip texture on the surfaces of the first rubber pad 2 and the second rubber pad 3 increases the friction of the contact surfaces.

[0034] Working principle:

[0035] like Figure 1 , Figure 2 , Figure 3 , Figure 4As shown, the outer layer 1 of the glove, as the outer structure, is the first to contact the external environment, resisting heat and physical impact. The internal expanded graphite insulation felt 7 utilizes the low thermal conductivity of graphite to form a core insulation layer, blocking the transmission of high temperatures from moxibustion. The composite non-woven fabric 8, located at the bottom of the expanded graphite insulation felt 7, assists in filtering hot air, enhances interlayer stability, and further blocks heat conduction. The silicone rubber sponge layer 9, with its porous structure, absorbs heat and buffers, reducing heat transfer efficiency while providing a soft touch. The fiberglass mesh 10, through its high strength properties, enhances the structural strength of the glove, prevents damage to the insulation layer, and ensures the long-term effectiveness of the insulation system. The first rubber pad 2 and the second rubber pad 3 are in direct contact with the high-temperature area. They utilize the high-temperature resistance of rubber to preferentially absorb and block heat, reducing the transfer to the inside of the glove. The ventilation groove 6 is opened at the bottom of the inner wall of the glove surface 1 to allow air circulation and reduce the stuffiness inside the glove. The connecting strap 4, together with the Velcro 5, can adjust the tightness of the glove. The blended fireproof cloth of the glove surface 1 has fireproof properties and resists external fire sources. The fluorosilicone rubber of the first rubber pad 2 and the nano flame-retardant modified silicone rubber of the second rubber pad 3 utilize the material properties of high temperature resistance and flame retardancy. Through the hot melt adhesive film composite process, the expanded graphite heat insulation felt 7, the composite non-woven fabric 8, the silicone rubber sponge layer 9, and the glass fiber mesh 10 are pressed together to form a tight structure. The wavy anti-slip texture on the surface of the first rubber pad 2 and the second rubber pad 3 increases the friction of the contact surface.

[0036] Finally, it should be noted that the above-described embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model.

Claims

1. A novel heat-resistant glove for moxibustion, comprising a glove surface layer (1), characterized in that: The glove surface layer (1) is filled with an expanded graphite heat insulation felt (7). The bottom of the expanded graphite heat insulation felt (7) is provided with a composite non-woven fabric (8). The bottom of the composite non-woven fabric (8) is provided with an organosilicon rubber sponge layer (9). The bottom of the organosilicon rubber sponge layer (9) is provided with a glass fiber mesh (10). The bottom of the glove surface layer (1) is fixedly connected with a first rubber pad (2) at equal intervals. The bottom of the glove surface layer (1) and on one side of the first rubber pad (2) is fixedly connected with a second rubber pad (3).

2. The novel heat-resistant glove for moxibustion according to claim 1, characterized in that: The bottom of the inner wall of the glove surface (1) is provided with ventilation grooves (6) at equal intervals, and one end of the glove surface (1) is fixedly connected with connecting straps (4) at equal intervals, and Velcro (5) is provided between the multiple connecting straps (4).

3. The novel heat-resistant glove for moxibustion according to claim 1, characterized in that: The material of the glove surface layer (1) is a blended fireproof cloth, the material of the first rubber pad (2) is fluorosilicone rubber, and the material of the second rubber pad (3) is nano flame-retardant modified silicone rubber.

4. The novel heat-resistant glove for moxibustion according to claim 1, characterized in that: The expanded graphite heat insulation felt (7), composite non-woven fabric (8), silicone rubber sponge layer (9) and glass fiber mesh (10) are pressed together by hot melt adhesive film composite process.

5. A novel heat-resistant glove for moxibustion according to claim 1, characterized in that: Both the first rubber pad (2) and the second rubber pad (3) have wavy anti-slip ridges on their surfaces.