Anti-deformation medical fever cooling patch

By using backing layer, reinforcement layer, shaping layer, reinforcement strip and gel layer in medical anti-heat patches, the problems of deformation, displacement and falling off during use of the anti-heat patches are solved, and a stable cooling effect and a better user experience are achieved.

CN222899445UActive Publication Date: 2025-05-27QINGDAO NERITIC BIOENGINEERING CO LTD
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Patent Information

Application Number
CN202421781788.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2025-05-27
Estimated Expiration
2034-07-26

AI Technical Summary

Technical Problem

Existing medical anti-heat patches are prone to deform, displace or fall off during use, resulting in poor cooling effect and poor usage experience.

Method used

A medical anti-deformation anti-heat patch is designed, using backing layer, reinforcement layer, shaping layer, reinforcement strip and gel layer structures. Through the synergy of these layers, it provides strong anti-deformation ability and stable bonding effect.

Benefits of technology

Effectively prevent deformation and displacement of the anti-heat patch, ensure the stability and reliability of the cooling effect, and improve the comfort and reliability of the use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an anti-deformation medical fever cooling patch which comprises a back lining layer, a gel layer is arranged on the front face of the back lining layer through a reinforcing mechanism, a protective film is further arranged on the gel layer, the gel layer comprises water, a high polymer material and fever cooling medicine, the protective film is arranged on the surface of the gel layer, a shaping layer is installed on the back face of the back lining layer, and the shaping layer is arranged on the back face of the back lining layer. A plurality of reinforcing strips are further mounted on the reverse side of the backing layer and penetrate through the shaping layer. Deformation is effectively prevented, through the synergistic effect of the structures such as the backing layer, the reinforcing layer, the reinforcing strips and the shaping layer, strong deformation resistance is provided for the antipyretic patch, it is guaranteed that the stable shape and the attaching effect are kept in the using process, and therefore the stability of the antipyretic effect is guaranteed.
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Description

Technical Field

[0001] The utility model relates to the technical field of medical supplies, in particular to an anti-deformation medical cooling patch. Background Art

[0002] Currently, medical cooling patches are widely used to physically cool down patients with fever. However, in actual use, cooling patches are prone to deformation, displacement and other problems, which affect the cooling effect and user experience.

[0003] Its main technical disadvantages are as follows:

[0004] 1. Insufficient anti-deformation ability, easy to curl, shift or even fall off when the patient moves or sweats.

[0005] 2. The fit to the skin is not close and stable enough, which may lead to poor cooling effect.

[0006] 3. The material of some cooling patches is not comfortable enough and may cause irritation or pressure to the skin.

[0007] In order to address the above technical shortcomings, improvements are made here, so a deformation-resistant medical cooling patch is proposed here. Utility Model Content

[0008] The utility model aims to solve the shortcomings in the prior art and provides a deformation-resistant medical cooling patch.

[0009] In order to achieve the above purpose, the utility model adopts the following technical solutions:

[0010] A deformation-resistant medical antipyretic patch comprises a backing layer, a gel layer is arranged on the front side of the backing layer through a reinforcing mechanism, a protective film is also arranged on the gel layer, the gel layer comprises water, a polymer material and an antipyretic drug, the surface of the gel layer is provided with a protective film, a shaping layer is arranged on the reverse side of the backing layer, a plurality of reinforcing strips are also arranged on the reverse side of the backing layer, and the plurality of reinforcing strips all penetrate the shaping layer.

[0011] Preferably, the reinforcing mechanism comprises a reinforcing layer arranged between the backing layer and the gel layer, and a reinforcing strip is installed inside the reinforcing layer.

[0012] Preferably, a plurality of anti-skid protrusions are installed on the front side of the reinforcement layer, and the plurality of anti-skid protrusions all penetrate the gel layer.

[0013] Preferably, the reinforcement strip is made of metal sheet, and the material of the reinforcement layer is silicone.

[0014] Preferably, the backing layer is made of polyester fiber, and the surface of the shaping layer is provided with anti-slip patterns.

[0015] Preferably, a plurality of micro elastic balls are arranged in the gel layer, and the plurality of micro elastic balls are evenly distributed.

[0016] Beneficial effects of the utility model:

[0017] 1. Effectively prevent deformation: Through the synergistic effect of structures such as the backing layer, reinforcement layer, reinforcement strip and shaping layer, the cooling patch is provided with a strong anti-deformation ability, ensuring that a stable shape and fitting effect are maintained during use, thereby ensuring the stability of the cooling effect.

[0018] 2. Improve the comfort and reliability of use: Use materials with good elasticity and flexibility, such as polyester fiber, silicone, etc., and set anti-slip bumps and micro elastic balls to increase the friction and adaptability with the skin, reduce the possibility of sliding and displacement, and buffer the external impact force, providing patients with a more comfortable use experience. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 This is a schematic structural diagram of an anti-deformation medical cooling patch proposed by the utility model;

[0020] Figure 2 for Figure 1 A vertical section structure diagram from top view;

[0021] Figure 3 for Figure 2 A schematic diagram of the enlarged structure of .

[0022] In the figure: 1 backing layer, 2 gel layer, 3 reinforcement layer, 4 shaping layer, 5 reinforcement strip, 6 protective film, 7 anti-slip bumps, 8 reinforcement strip, 9 micro elastic ball. DETAILED DESCRIPTION

[0023] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all of the embodiments.

[0024] Reference Figure 1-3 A deformation-resistant medical antipyretic patch includes a backing layer 1. The backing layer 1 is a basic supporting structure of the entire antipyretic patch and is composed of polyester fibers with good elasticity and flexibility. This material can not only adapt to the skin shape and contour of different patients, but also provide a certain stretching and recovery ability during use, ensuring that the antipyretic patch fits tightly to the skin.

[0025] On the front of the backing layer 1, a gel layer 2 is provided through a reinforcing mechanism. The gel layer 2 is the core part of the antipyretic patch to play a cooling role, and its components include water, polymer materials and antipyretic drugs. Water, as the main carrier, can effectively transfer heat; the polymer material gives the gel layer 2 a certain viscosity and flexibility, so that it can be stably attached to the skin; the antipyretic drug can penetrate through the skin and play a role in lowering body temperature.

[0026] A protective film 6 is also provided on the surface of the gel layer 2, which can keep the gel layer 2 clean and effective before use, and can be torn off when in use.

[0027] The back surface of the backing layer 1 is provided with a shaping layer 4, which can provide shape stability for the cooling patch to prevent excessive bending or deformation during use. At the same time, the surface of the shaping layer 4 is provided with anti-slip grooves to increase the friction between the cooling patch and clothing or other contact surfaces, thereby preventing the cooling patch from accidentally shifting during use.

[0028] In addition, a plurality of reinforcing strips 5 are installed on the reverse side of the backing layer 1, and these reinforcing strips 5 are evenly distributed and all penetrate the shaping layer 4. The reinforcing strips 5 further enhance the overall strength and anti-deformation ability of the cooling patch, especially at the edge, which can effectively prevent the cooling patch from curling or falling off.

[0029] The reinforcing layer 3 located between the backing layer 1 and the gel layer 2 is an important component of the reinforcing mechanism. A reinforcing strip 8 is installed inside the reinforcing layer 3, and the reinforcing strip 8 is composed of a metal sheet with excellent toughness and strength. This metal sheet has been finely processed and treated, and has good tensile and bending resistance, which can provide strong support for the cooling patch and effectively prevent the cooling patch from being deformed due to external forces during use. The material used in the reinforcing layer 3 is silicone. Silicone is soft, elastic and high temperature resistant. Its soft texture can make patients feel comfortable when using the cooling patch without causing irritation or pressure on the skin. Good elasticity enables the reinforcing layer 3 to adapt to the skin shape and movement changes of different parts while providing support. Moreover, the high temperature resistance of silicone ensures that the performance of the reinforcing layer 3 itself will not be affected during the cooling effect of the cooling patch, and it can always and stably play its reinforcing and supporting role.

[0030] A plurality of anti-skid convex points 7 are installed on the front of the reinforcing layer 3, and these anti-skid convex points 7 are evenly distributed and all penetrate the gel layer 2. The presence of the anti-skid convex points 7 increases the friction between the gel layer 2 and the skin, further ensuring that the cooling patch will not slide or shift easily during use, thereby ensuring the stability and reliability of the cooling effect.

[0031] A plurality of micro elastic balls 9 are specially arranged in the gel layer 2, and the micro elastic balls 9 are evenly distributed. These micro elastic balls 9 can produce a certain elastic deformation when subjected to pressure, thereby buffering the external impact force, and quickly return to their original state after the pressure disappears, so that the gel layer 2 can better adapt to the subtle changes on the skin surface and provide a more comfortable use experience.

[0032] When the utility model is used, the protective film 6 on the surface of the gel layer 2 is first torn off. Then the antipyretic patch is applied to the patient's forehead or other parts that need cooling. Since the backing layer 1 is composed of polyester fibers with good elasticity and flexibility, it can adapt to the patient's skin shape and contour to achieve a close fit. At the same time, its stretching and recovery capabilities enable the antipyretic patch to remain in a fitted state when the patient is active or the skin has slight changes. The water in the gel layer 2, as the main carrier of heat transfer, can quickly absorb the heat from the patient's body surface. The polymer material makes the gel layer 2 sticky and flexible, ensuring that it is stably attached to the skin, while the antipyretic drug penetrates into the body through the skin to play a role in lowering body temperature. The metal foil reinforcement strip 8 in the reinforcement layer 3 provides a strong support for the antipyretic patch, effectively resists external stretching and bending forces, and prevents the antipyretic patch from deforming. The silicone material used in the reinforcement layer 3 has the characteristics of softness, elasticity and high temperature resistance. While providing support, it can adapt to the shape and movement changes of the skin, and the performance is not affected when the antipyretic patch plays a cooling role. The anti-skid bumps 7 on the front of the reinforcing layer 3 increase the friction between the gel layer 2 and the skin, preventing the cooling patch from sliding or shifting during use, and ensuring the stability of the cooling effect. The shaping layer 4 on the back of the backing layer 1 provides shape stability for the cooling patch to prevent excessive bending or deformation. The anti-skid patterns on its surface increase the friction with clothing or other contact surfaces to prevent the cooling patch from accidentally shifting. The micro elastic balls 9 distributed in the gel layer 2 can produce elastic deformation when subjected to pressure to buffer external impact forces. When the pressure disappears, it quickly returns to its original state, allowing the gel layer 2 to better adapt to subtle changes in the skin surface and provide a comfortable use experience.

[0033] In summary, this anti-deformation medical cooling patch achieves a stable cooling effect through the synergistic effect of each layer structure, while effectively preventing deformation and displacement, providing patients with reliable and comfortable cooling treatment.

[0034] The above description is only a preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes within the technical scope disclosed by the present invention according to the technical scheme and the utility model concept of the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A deformation-resistant medical cooling patch, comprising a backing layer (1), characterized in that: The front side of the backing layer (1) is provided with a gel layer (2) through a reinforcing mechanism, and a protective film (6) is also provided on the gel layer (2). The components of the gel layer (2) include water, polymer materials and antipyretic drugs, and the surface of the gel layer (2) is provided with a protective film (6). The back side of the backing layer (1) is provided with a shaping layer (4), and the back side of the backing layer (1) is provided with a plurality of reinforcing strips (5), and the plurality of reinforcing strips (5) all penetrate the shaping layer (4).

2. The anti-deformation medical cooling patch according to claim 1, characterized in that: The reinforcing mechanism comprises a reinforcing layer (3) arranged between the backing layer (1) and the gel layer (2), and a reinforcing strip (8) is installed inside the reinforcing layer (3).

3. The anti-deformation medical cooling patch according to claim 2, characterized in that: A plurality of anti-skid protrusions (7) are installed on the front side of the reinforcement layer (3), and the plurality of anti-skid protrusions (7) all penetrate the gel layer (2).

4. The anti-deformation medical cooling patch according to claim 3, characterized in that: The reinforcing strip (8) is made of a metal sheet, and the reinforcing layer (3) is made of silicone.

5. The anti-deformation medical cooling patch according to claim 4, characterized in that: The backing layer (1) is made of polyester fibers, and the surface of the shaping layer (4) is provided with anti-slip grooves.

6. The anti-deformation medical cooling patch according to claim 5, characterized in that: A plurality of micro elastic balls (9) are arranged in the gel layer (2), and the plurality of micro elastic balls (9) are evenly distributed.