Wet and hot compress waistband for abdomen
By using a composite sandwich design and a graphene sheet heating wet compress waist belt, the problem of non-fitting in existing technologies has been solved, achieving a comfortable abdominal heat compress effect and preventing condensation from overflowing.
Patent Information
- Application Number
- CN202423011670.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-06
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2034-12-06
AI Technical Summary
Existing heat therapy waist belts are difficult to deform and adapt to the abdominal curve, resulting in a poor fit after wearing and affecting the effectiveness of heat therapy.
It adopts a composite sandwich design, including a soft outer layer, a middle layer and an inner layer. The outer layer and the middle layer form a heating cavity, the middle layer and the inner layer form a dressing cavity, and the inner layer fits the abdomen. The dressing in the dressing cavity is heated by a graphene sheet. The outer layer, middle layer and inner layer can all be bent to fit the curve of the abdomen.
It achieves a lightweight, strap-style fit, provides comfortable heat therapy, enhances the effect of moist heat therapy, prevents condensation from overflowing, and maintains both wearing comfort and heat therapy effectiveness.
Smart Images

Figure CN223773927U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of hot compress therapy equipment technology, specifically to a wet hot compress waist belt for the abdomen. Background Technology
[0002] The abdominal heat compress belt is a commonly used tool to relieve bloating, alleviate abdominal pain, and promote the recovery of gastrointestinal function. It promotes abdominal blood circulation, relieves muscle tension, and promotes gastrointestinal motility by providing gentle heat.
[0003] Currently, commonly used moist heat compress waist belts typically consist of a dressing box and a strap. The dressing box is usually a square plastic box containing a heating element and a cavity for filling the dressing. The heating element heats the dressing, causing it to apply heat to the abdomen. While this square box-style moist heat compress waist belt can achieve the effect of moist heat compress, during use, due to the fixed square box structure and the fact that everyone's abdominal curves are different, it may not fit snugly after being worn on the abdomen, thus affecting the moist heat compress effect and easily causing condensation to seep out.
[0004] Therefore, existing box-shaped wet heat therapy waist belts are difficult to deform and adapt to the abdominal curve, resulting in a poor fit after wearing, which affects the wet heat therapy effect. Utility Model Content
[0005] The purpose of this invention is to provide a wet heat compress belt for the abdomen, in order to solve the technical problem in the prior art where the belt does not fit properly after wearing due to its difficulty in adapting to the abdominal curve, thus affecting the effect of wet heat compress.
[0006] To solve the above-mentioned technical problems, this utility model specifically provides the following technical solution:
[0007] A hot compress belt for the abdomen includes a heat compress belt that is fixed to the abdominal skin. The heat compress belt is composed of a soft outer layer, a middle layer and an inner layer stacked in sequence. A heating cavity is formed between the outer layer and the middle layer, and a dressing cavity is formed between the middle layer and the inner layer.
[0008] The heating chamber contains a graphene sheet. When the graphene sheet is energized and heated, the heat is conducted to the dressing chamber through the interlayer to heat and keep the dressing pre-placed in the dressing chamber warm. The dressing acts on the abdominal skin through the inner layer.
[0009] The heating chamber and the dressing chamber are waterproof and isolated.
[0010] In a preferred embodiment of this utility model, the outer layer includes an outer fabric and a heat insulation film, the outer fabric is bonded to the heat insulation film, and the heat insulation film is located inside the heating cavity and is bonded to the graphene sheet.
[0011] As a preferred embodiment of this utility model, the interlayer is composed of a first thermally conductive film, a lining fabric, and a second thermally conductive film bonded together in sequence. The first thermally conductive film is located inside the heating cavity and bonded to the periphery of the heat insulation film to seal and encapsulate the graphene sheet.
[0012] Both the first thermally conductive film and the thermally insulating film are waterproof.
[0013] As a preferred embodiment of the present invention, the inner layer includes a silicone frame and cotton gauze, and a ring of Velcro strip is provided on the side of the silicone frame away from the interlayer, and the cotton gauze is adhered to the Velcro strip to seal the silicone frame.
[0014] The cotton gauze is connected to the dressing cavity through the middle area of the silicone frame, and the dressing in the dressing cavity can be applied to the abdominal skin through the cotton gauze.
[0015] In a preferred embodiment of the present invention, the second thermally conductive film is located inside the dressing cavity, and the four sides of the second thermally conductive film extend and are glued to the silicone frame, and the four sides of the inner fabric and the outer fabric are glued between the second thermally conductive film and the silicone frame.
[0016] As a preferred embodiment of this utility model, a wire is provided on the outer wall of the outer layer. One end of the wire is placed in the heating cavity and electrically connected to the graphene sheet. The other end of the wire is connected to a controller. The controller is used to control the heating temperature of the graphene sheet to heat and keep the dressing in the dressing cavity warm.
[0017] The controller is equipped with a display screen, and a temperature sensor is electrically connected to one end of the wire located inside the heating cavity.
[0018] The temperature sensor is used to detect the temperature inside the heating chamber, and the controller controls the power supply to the graphene sheet according to the detected temperature to maintain the heating temperature within the set temperature range.
[0019] Compared with the prior art, this utility model has the following advantages:
[0020] This invention employs a composite sandwich structure, consisting of an outer layer, an intermediate layer, and an inner layer to form a heat-compressing bandage. A heating cavity is formed between the outer layer and the intermediate layer, and a dressing cavity is formed between the intermediate layer and the inner layer. Graphene sheets are placed within the heating cavity to heat the dressing within the dressing cavity. All three layers—outer, intermediate, and inner—as well as the graphene sheets are flexible, allowing the inner layer to conform to the abdominal curve, achieving a lightweight, comfortable, and heat-compressing effect, and enhancing the effectiveness of moist heat therapy. Attached Figure Description
[0021] To more clearly illustrate the embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings in the following description are merely exemplary, and those skilled in the art can derive other embodiments based on the provided drawings without creative effort.
[0022] Figure 1 A schematic diagram of the structure of a hot compress belt for the abdomen is provided for embodiments of this utility model;
[0023] Figure 2 A schematic diagram of the heat therapy belt portion of the wet heat therapy belt for the abdomen is provided for an embodiment of this utility model;
[0024] Figure 3 This invention provides a schematic diagram of the outer and intermediate layers of a wet heat compress belt for the abdomen, which is provided as an embodiment of the present invention.
[0025] The labels in the diagram represent the following:
[0026] 1-Heating bandage; 2-Elastic bandage; 3-Graphene sheet; 4-Wire;
[0027] 11-Outer layer; 12-Intermediate layer; 13-Inner layer; 14-Heating chamber; 15-Dressing chamber; 41-Controller; 42-Display screen; 43-Temperature sensor;
[0028] 111-Outer fabric; 112-Heat insulation film; 121-First heat-conducting film; 122-Inner fabric; 123-Second heat-conducting film; 131-Silicone frame; 132-Cotton gauze; 133-Helmet strip. Detailed Implementation
[0029] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0030] like Figure 1-3 As shown, this utility model provides a hot compress belt for the abdomen, including a hot compress belt 1. The hot compress belt 1 is fixed to the abdominal skin. The hot compress belt 1 is composed of a soft outer layer 11, a middle layer 12 and an inner layer 13 stacked in sequence. A heating cavity 14 is formed between the outer layer 11 and the middle layer 12, and a dressing cavity 15 is formed between the middle layer 12 and the inner layer 13.
[0031] The heating chamber contains a graphene sheet 3. When the graphene sheet 3 is powered on and heated, the heat is conducted to the dressing chamber 15 through the interlayer 12 to heat the dressing that is pre-placed in the heat-insulating dressing chamber 15. The dressing acts on the abdominal skin through the inner layer 13.
[0032] The heating chamber 14 and the dressing chamber 15 are waterproof and isolated.
[0033] The hot compress belt for the abdomen in this embodiment is mainly composed of a hot compress belt 1 that can adhere to the skin surface. The hot compress belt 1 is composed of a soft outer layer 11, an intermediate layer 12 and an inner layer 13 stacked in sequence. Between the outer layer 11 and the intermediate layer 12 is a heating chamber 14, which is equipped with a graphene sheet 3 for heating. Between the intermediate layer 12 and the inner layer 13 is a dressing chamber 15. After the dressing is placed in the dressing chamber 15, the dressing is heated and kept warm to achieve the effect of hot compress. Furthermore, wet dressing can be added to the dressing to achieve hot compress.
[0034] Compared to existing box-shaped heat therapy belts, the wet heat therapy belt for the abdomen in this embodiment adopts a composite layer design. The heat therapy belt 1 is composed of a soft outer layer 11, a middle layer 12, and an inner layer 13, forming an independent heating chamber 14 and a dressing chamber 15 inside. The heating chamber 14 is equipped with a graphene sheet 3 for heating, and the dressing chamber 15 can be filled with various dressings, thereby achieving a lightweight wearing and comfortable heat therapy effect.
[0035] The heat pack 1 has elastic straps 2 at both ends, which are used to secure the heat pack 1 to the abdomen. An opening 151 is formed at the junction of the outer layer 11 and the interlayer 12, connecting to the dressing cavity 15 for adding dressing material. The elastic straps 2 are suitable for users with various abdominal sizes and provide a more comfortable wearing experience.
[0036] It should be noted that a waterproof zipper (existing structure, not shown in the figure) is provided at the opening 151 to close the dressing cavity 15 during hot compress.
[0037] Of course, the outer layer 11, the intermediate layer 12, and the inner layer 13 can be made of waterproof materials, thus enabling moist heat compresses, such as by adding a hot towel into the dressing cavity 15. Based on this, the following preferred embodiments are provided.
[0038] like Figure 2 , Figure 3 As shown, the outer layer 11 includes an outer fabric 111 and a heat insulation film 112. The outer fabric 111 is bonded to the heat insulation film 112, and the heat insulation film 112 is located inside the heating cavity 14 and is bonded to the graphene sheet 3.
[0039] Specifically, the outer layer 11 consists of an outer fabric 111 and a heat insulation film 112. The heat insulation film 112 can reduce the heat loss of the graphene sheet 3, thereby improving the thermal efficiency of the graphene sheet 3 and making its heating and heat preservation effects better.
[0040] To achieve a waterproof effect, the following preferred embodiments are provided.
[0041] like Figure 2 , Figure 3 As shown, the interlayer 12 is composed of a first thermally conductive film 121, a lining fabric 122, and a second thermally conductive film 123 bonded together in sequence. The first thermally conductive film 121 is located inside the heating cavity 14 and bonded to the periphery of the heat insulation film 112 to seal and wrap the graphene sheet 3.
[0042] Both the first thermal conductive film 121 and the heat insulation film 112 are waterproof.
[0043] Specifically, the interlayer 12 is composed of a first thermally conductive film 121, a lining 122, and a second thermally conductive film 123. The first thermally conductive film 121 is bonded to the heat insulation film 112 to protect the graphene sheet 3. The first thermally conductive film 121 can concentrate the heat generated by the graphene sheet 3 to the lining 122 and the second thermally conductive film 123.
[0044] The lining 123 uses a mesh structure to improve the bonding strength and reduce the heat insulation capacity, so that the heat on the first thermal conductive film 121 can be quickly transferred to the second thermal conductive film 123.
[0045] Of course, during the wet compress process, the hot steam will come into contact with the skin and condense into water. Therefore, in order to avoid the hot compress belt 1 getting soaked with water, the following preferred embodiments are provided.
[0046] like Figure 2 , Figure 3 As shown, the inner layer 13 includes a silicone frame 131 and cotton gauze 132. A Velcro strip 133 is provided on the side of the silicone frame 131 away from the interlayer 12. The cotton gauze 132 is attached to the Velcro strip 133 to seal the silicone frame 131.
[0047] The cotton gauze 132 is connected to the dressing cavity 15 through the middle area of the silicone frame 131, and the dressing in the dressing cavity 15 can be applied to the abdominal skin through the cotton gauze 132.
[0048] Specifically, the inner layer 13 is composed of a silicone frame 131 and cotton gauze 132. The cotton gauze 132 is attached to the Velcro strip 133 of the silicone frame 131. The hot steam in the dressing cavity 15 passes through the silicone frame 131 and moistens the cotton gauze 132 for wet heat compress. The silicone frame 131 contacts the skin and seals the perimeter to prevent water from soaking through the heat compress band 1, thus keeping the surface of the heat compress band 1 dry and preventing water from running down the skin and wetting the clothes.
[0049] Because the cotton gauze 132 is fixed by Velcro 133, it can be easily disassembled and replaced, maintaining the hygiene of the hot compress.
[0050] Of course, in order to further prevent water generated during hot compresses from wetting the hot compress belt 1, the following preferred embodiments are provided.
[0051] like Figure 2 , Figure 3 As shown, the second thermal conductive film 123 is located inside the dressing cavity 15, and the four sides of the second thermal conductive film 123 extend and are glued to the silicone frame 131, and the four sides of the inner fabric 122 and the outer fabric 111 are glued between the second thermal conductive film 123 and the silicone frame 131.
[0052] Specifically, the second thermally conductive film 123 is extended and bent to be pasted onto the silicone frame 131, while the inner fabric 122 and the outer fabric 111 are also glued to the silicone frame 131, with the ends of the inner fabric 122 and the outer fabric 111 located between the second thermally conductive film 123 and the silicone frame 131. This allows the second thermally conductive film 123 and the silicone frame 131 to isolate the inner fabric 122 and the outer fabric 111 from the dressing cavity 15, thereby preventing water from wetting the inner fabric 122 and the outer fabric 111 and keeping the heat pack 1 dry.
[0053] Based on the above embodiments, the controller 41 can control the graphene sheet 3, and in order to intuitively obtain the temperature value and adjust the temperature accordingly, the following preferred embodiments are provided.
[0054] like Figure 3 As shown, a wire 4 is provided on the outer wall of the outer layer 11. One end of the wire 4 is placed in the heating chamber 14 and electrically connected to the graphene sheet 3. The other end of the wire 4 is connected to the controller 41. The controller 41 is used to control the heating temperature of the graphene sheet 3 to heat and keep the dressing in the dressing chamber 15 warm.
[0055] A display screen 42 is provided on the controller 41, and a temperature sensor 43 is electrically connected to one end of the wire 4 located in the heating cavity 14;
[0056] The temperature sensor 43 is used to detect the temperature inside the heating chamber 14, and the controller 41 controls the power supply to the graphene sheet 3 according to the detected temperature to maintain the heating temperature within the set temperature range.
[0057] Specifically, the controller 41 controls the heating temperature of the graphene sheet 3 through the wire 4, so as to maintain it within a suitable temperature range.
[0058] By adding a display screen 42 to the controller 41 and setting a temperature sensor 43 in the heating cavity 14 on the wire 4, the display screen 42 can display the temperature returned by the temperature sensor 43 in real time, making it easy to intuitively obtain the current heating temperature and convenient to adjust the temperature.
[0059] Furthermore, the controller 41 is suspended by wire 4, which makes it easy to use, and the controller 41 has a built-in battery or a power interface to provide heating power.
[0060] It should be noted that the end of the wire 4 is bonded and sealed between the first thermal conductive film 121 and the heat insulation film 112, and the first thermal conductive film 121 and the heat insulation film 112 glue and seal the connection between the wire 4 and the graphene sheet 3, so as not to affect its power supply and achieve good waterproof performance.
[0061] The above embodiments are merely exemplary embodiments of this application and are not intended to limit this application. The scope of protection of this application is defined by the claims. Those skilled in the art can make various modifications or equivalent substitutions to this application within its substance and scope of protection, and such modifications or equivalent substitutions should also be considered to fall within the scope of protection of this application.
Claims
1. A waist belt for applying moist heat to the abdomen, characterized in that, Includes a heat pack (1), which is fixed to the abdominal skin. The heat pack (1) is composed of a soft outer layer (11), an intermediate layer (12) and an inner layer (13) stacked in sequence. A heating cavity (14) is formed between the outer layer (11) and the intermediate layer (12), and a dressing cavity (15) is formed between the intermediate layer (12) and the inner layer (13). The heating chamber is provided with a graphene sheet (3). After the graphene sheet (3) is powered on and heated, it conducts heat to the dressing chamber (15) through the interlayer (12) to heat and keep the dressing placed in the dressing chamber (15) warm. The dressing acts on the abdominal skin through the inner layer (13). The heating chamber (14) and the dressing chamber (15) are waterproof and isolated from each other.
2. A waist belt for applying heat to the abdomen according to claim 1, characterized in that, The outer layer (11) includes an outer fabric (111) and a heat insulation film (112), the outer fabric (111) being bonded to the heat insulation film (112), the heat insulation film (112) being located inside the heating cavity (14) and being bonded to the graphene sheet (3).
3. A waist belt for applying heat to the abdomen according to claim 2, characterized in that, The interlayer (12) is composed of a first thermally conductive film (121), a lining (122), and a second thermally conductive film (123) bonded together in sequence. The first thermally conductive film (121) is located inside the heating cavity (14) and bonded to the periphery of the heat insulation film (112) to seal and wrap the graphene sheet (3). Both the first thermally conductive film (121) and the heat-insulating film (112) are waterproof.
4. A waist belt for applying heat to the abdomen according to claim 3, characterized in that, The inner layer (13) includes a silicone frame (131) and cotton gauze (132). A loop of Velcro strip (133) is provided on the side of the silicone frame (131) away from the interlayer (12). The cotton gauze (132) is attached to the Velcro strip (133) to seal the silicone frame (131). The cotton gauze (132) is connected to the dressing cavity (15) through the middle area of the silicone frame (131), and the dressing in the dressing cavity (15) can be applied to the abdominal skin through the cotton gauze (132).
5. A waist belt for applying heat to the abdomen according to claim 4, characterized in that, The second thermal conductive film (123) is located inside the dressing cavity (15), and the four sides of the second thermal conductive film (123) extend and are glued to the silicone frame (131), and the four sides of the inner fabric (122) and the outer fabric (111) are glued between the second thermal conductive film (123) and the silicone frame (131).
6. A waist belt for applying heat to the abdomen according to any one of claims 1-4, characterized in that, A wire (4) is provided on the outer wall of the outer layer (11). One end of the wire (4) is placed in the heating cavity (14) and electrically connected to the graphene sheet (3). The other end of the wire (4) is connected to a controller (41). The controller (41) is used to control the heating temperature of the graphene sheet (3) to heat and keep the dressing in the dressing cavity (15). A display screen (42) is provided on the controller (41), and a temperature sensor (43) is electrically connected to one end of the wire (4) located in the heating cavity (14). The temperature sensor (43) is used to detect the temperature inside the heating chamber (14), and the controller (41) controls the power supply of the graphene sheet (3) according to the detected temperature to maintain the heating temperature within the set temperature range.