Efficient antibacterial physiotherapy insole

By using nano-silver composite fiber antibacterial layer and LED lamp array phototherapy layer in physiotherapy insoles, combined with flexible lithium batteries and wireless charging technology, the problem that existing physiotherapy insoles is difficult to have a substantial impact on the human body, and the precise stimulation and efficient physiotherapy effect on sole acupoints is achieved.

CN119999988APending Publication Date: 2025-05-16SHENZHEN YIXINCHENG OPTOELECTRONICS CO LTD
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Patent Information

Application Number
CN202510326922.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-19
Publication Date
2025-05-16

AI Technical Summary

Technical Problem

Existing insoles with physiotherapy functions are difficult to have a substantial impact on the human body, and it is difficult to personalize stimulation for different acupoints.

Method used

A highly effective antibacterial physiotherapy insole is designed, and an antibacterial layer made of nano-silver composite fiber or bamboo charcoal fiber is used to match the phototherapy layer of multiple LED lamp arrays. The LED lamp array emits 620-680nm red light and 800-950nm infrared light to stimulate the sole acupoints, and ensures stable power supply through flexible bendable lithium batteries and wireless charging technology.

Benefits of technology

It achieves precise stimulation of the sole acupoints, promotes blood circulation, relieves muscle tension, improves the effect of physical therapy, and improves the durability and stability of the insole through wear-resistant layers and anti-slip bottoms.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of insoles, and discloses an efficient antibacterial physiotherapy insole which comprises an antibacterial layer and a phototherapy layer, the antibacterial layer is made of nano-silver composite fibers or bamboo charcoal fibers and used for inhibiting bacteria and peculiar smells, the phototherapy layer is arranged above the antibacterial layer and comprises a plurality of LED lamp arrays, and the LED lamp arrays are arranged on the antibacterial layer. The light therapy layer comprises an LED lamp array and a power supply layer, the LED lamp array stimulates sole acupuncture points by emitting light waves with specific wavelengths, the wavelength range of the LED lamp array is 620-680 nm red light and 800-950 nm infrared light, and the power supply layer is located below the light therapy layer and comprises a PCB and a battery which are electrically connected with the LED lamp array. A plurality of LED lamp arrays are arranged on the phototherapy layer, the wavelengths emitted by the LED lamps and the micro convex points are utilized to stimulate foot acupuncture points, stimulate cell metabolism and promote blood circulation, infrared light can penetrate into tissues to generate a warm effect, muscle tension is relieved, the phototherapy massage effect is achieved, accurate phototherapy massage is achieved, foot fatigue is effectively relieved, and body health is promoted.
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Description

Technical Field

[0001] The invention relates to the technical field of insoles, in particular to a highly efficient antibacterial physiotherapy insole. Background Art

[0002] Insoles are widely used in the shoemaking industry, health care, and special functions. They are generally divided into two modes: shoemaking industry application type, shoe factory application type, and market commodity type. The insoles used in the shoemaking industry are mainly used to match the outsoles and midsoles of shoes to make corresponding shapes. The size plates are made according to the bottom plate or panel, and the corresponding shapes are made. Market commodity type insoles mainly sell insoles directly as a commodity, designed by developers, and circulated in the market.

[0003] Currently available insoles with therapeutic functions stimulate the acupoints of the foot through built-in magnets or mechanical massage structures, claiming to promote blood circulation and relieve fatigue. However, their effects are often too weak to have a substantial impact on the human body, and it is difficult to provide personalized stimulation for different acupoints. Summary of the invention

[0004] In view of the deficiencies in the prior art, the present invention provides a highly efficient antibacterial therapeutic insole, which solves the problem that it is difficult to have a substantial impact on the human body and difficult to provide personalized stimulation to different acupoints.

[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions: a highly efficient antibacterial physiotherapy insole, comprising:

[0006] An antibacterial layer, wherein the antibacterial layer is made of nano-silver composite fiber or bamboo charcoal fiber, and is used to inhibit bacteria and odor;

[0007] A phototherapy layer is arranged above the antibacterial layer, and the phototherapy layer includes a plurality of LED light arrays. The LED light arrays stimulate the acupuncture points on the soles of the feet by emitting light waves of specific wavelengths. The wavelength range of the LED light arrays is 620-680nm red light and 800-950nm infrared light.

[0008] A power supply layer, which is located below the light therapy layer and includes a PCB board and a battery electrically connected to the LED light array and is externally powered through a charging interface;

[0009] The wear-resistant layer is located at the bottom of the power layer.

[0010] Preferably, a woven layer is provided on the top of the antibacterial layer, and the woven layer is made by a cotton thread combined with a monofilament mesh cloth weaving process.

[0011] Preferably, the arrangement position of the LED light array corresponds to the Yongquan point, Taichong point and kidney reflex zone on the sole of the foot, and the power of a single LED is 0.5-1.2W.

[0012] Preferably, the bottom of the wear-resistant layer is fixedly connected with an anti-skid bottom, the wear-resistant layer and the anti-skid bottom are bonded with glue, the bottom of the anti-skid bottom is provided with an anti-skid groove, and the front side of the bottom of the wear-resistant layer is provided with a plurality of cutting grooves.

[0013] Preferably, edge banding strips are fixedly connected to the outer sides of the antibacterial layer, phototherapy layer, power supply layer and wear-resistant layer, and the edge banding strips are bonded to the antibacterial layer, phototherapy layer, power supply layer and wear-resistant layer by glue.

[0014] Preferably, the charging interface passes through and extends to the outside of the edge sealing strip, and the edge sealing strip and the charging interface are fixedly connected.

[0015] Preferably, the battery is a flexible and bendable lithium battery, and a wireless charging coil is embedded in the power layer. The wireless charging coil is electrically connected to the battery, and electromagnetic induction wireless charging is adopted.

[0016] Preferably, the phototherapy layer and the power supply layer are made of a silica gel substrate composite with boron nitride particles, and the phototherapy layer and the power supply layer are formed by a hot pressing process. Placement grooves are provided at positions corresponding to the LED light array in the phototherapy layer and at positions corresponding to the battery and the PCB board in the power supply layer.

[0017] Preferably, the thickness of the antibacterial layer is 0.5-1.5 mm, the thickness of the phototherapy layer is 1-3 mm, the thickness of the power supply layer is 2-5 mm, and the thickness of the wear-resistant layer is 1-2 mm.

[0018] Preferably, a plurality of micro-bumps are provided on the surface of the antibacterial layer on one side close to the phototherapy layer. The micro-bumps are hemispherical in shape and have a height of 0.2-0.5 mm. The micro-bumps are arranged corresponding to the LED light array of the phototherapy layer.

[0019] The present invention provides a highly efficient antibacterial physiotherapy insole, which has the following beneficial effects:

[0020] 1. The present invention arranges multiple LED lamp arrays in the phototherapy layer, wherein the LED lamp arrays correspond to the acupuncture points on the soles of the feet, and utilizes the wavelengths and micro-bumps emitted by the LED lamps to stimulate the acupuncture points on the soles of the feet, thereby stimulating cell metabolism and promoting blood circulation. The infrared light can penetrate into the tissues to produce a warming effect, relieve muscle tension, and play a role in phototherapy massage. The two types of light stimulate the acupuncture points through photochemical and photothermal effects, regulate the circulation of qi and blood in the meridians, achieve precise phototherapy massage, effectively relieve foot fatigue, and promote physical health.

[0021] 2. The present invention increases the friction with the sole through the anti-skid groove at the bottom of the anti-skid bottom, ensuring that the insole is stable in the shoe and avoiding displacement that affects use. The cutting groove on the front side of the bottom of the wear-resistant layer allows the insole to be cut according to different shoe types, improving versatility and adaptability. The overall structural stability is improved through the edge banding bonding process to avoid inter-layer displacement.

[0022] 3. The flexible lithium battery and wireless charging coil of the present invention support both wired and wireless dual-mode power supply, and are suitable for a variety of usage scenarios. The battery in the power layer is a flexible and bendable lithium battery, which can adapt to the bending deformation of the insole to ensure comfortable wearing. It has a high energy density and can power the LED lamp for a long time. The charging interface supports traditional external power charging, and the wireless charging coil embedded in the power layer can realize electromagnetic induction wireless charging, which meets the charging needs of users in different scenarios and is more convenient to use. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 A three-dimensional diagram of a highly efficient antibacterial physiotherapy insole of the present invention;

[0024] Figure 2 It is a cross-sectional schematic diagram of a highly efficient antibacterial physiotherapy insole of the present invention;

[0025] Figure 3 This is a schematic diagram of an LED light array of a highly efficient antibacterial physiotherapy insole of the present invention;

[0026] Figure 4 This is a schematic diagram of a PCB board of a highly efficient antibacterial physiotherapy insole of the present invention;

[0027] Figure 5 It is a rear view schematic diagram of a highly efficient antibacterial physiotherapy insole of the present invention;

[0028] Figure 6 The figure is a schematic diagram of the anti-slip bottom of a highly efficient antibacterial physiotherapy insole of the present invention.

[0029] Among them, 1. woven layer; 2. antibacterial layer; 3. phototherapy layer; 4. power layer; 5. wear-resistant layer; 6. LED light array; 7. edge banding; 8. battery; 9. PCB board; 10. charging port; 11. anti-slip bottom; 12. cutting groove; 13. micro-bumps. DETAILED DESCRIPTION

[0030] The technical solution of the present invention will be described clearly and completely below in conjunction with the accompanying drawings of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0031] Please see attached Figure 1 -Attached Figure 4 The embodiment of the present invention provides a highly efficient antibacterial physiotherapy insole, comprising:

[0032] The antibacterial layer 2 is made of nano-silver composite fiber or bamboo charcoal fiber, and is used to inhibit bacteria and odor;

[0033] The phototherapy layer 3 is arranged above the antibacterial layer 2. The phototherapy layer 3 includes a plurality of LED light arrays 6. The LED light arrays 6 stimulate the acupuncture points on the soles of the feet by emitting light waves of specific wavelengths. The wavelength range of the LED light arrays 6 is 620-680nm red light and 800-950nm infrared light.

[0034] The power supply layer 4 is located below the light therapy layer 3, and includes a PCB board 9 and a battery 8 electrically connected to the LED light array 6, and is externally powered through a charging interface 10;

[0035] The wear-resistant layer 5 is located at the bottom of the power layer 4 .

[0036] The antibacterial layer 2 is made of nano-silver composite fiber or bamboo charcoal fiber. The silver ions in the nano-silver composite fiber have strong antibacterial ability. They can combine with key biological macromolecules in bacteria to destroy the cell structure and normal physiological functions of bacteria, thereby inhibiting the growth and reproduction of bacteria. Bamboo charcoal fiber, with its porous structure, can not only absorb odor, but also inhibit bacteria to a certain extent. The thickness of the antibacterial layer 2 is 0.5-1.5mm. While effectively inhibiting the growth of bacteria and preventing the generation of odor, it ensures that the overall flexibility and comfort of the insole are not affected.

[0037] The phototherapy layer 3 is arranged on the antibacterial layer 2. The multiple LED lamp arrays 6 are the core components for realizing phototherapy massage. These LED lamps are arranged according to the distribution characteristics of acupuncture points on the soles of the human body, corresponding to the Yongquan acupoint, Taichong acupoint and kidney reflex area. The power of a single LED is in the range of 0.5-1.2W, and can emit red light with a wavelength of 620-680nm and infrared light of 800-950nm. The red light of 620-680nm has a certain degree of penetration, which can penetrate into the surface of the skin, stimulate the cytochrome C oxidase in the mitochondria of the cells, enhance the metabolism of the cells, promote blood circulation, improve the nutrient supply of the tissues, and accelerate the repair and regeneration of the cells. Infrared light of 800-950nm has stronger penetrating power and can penetrate deep into tissues, causing molecular vibrations and producing a warming effect. This sense of warmth can further promote blood circulation, effectively relieve muscle tension and reduce pain. When the user wears the insole, the specific wavelength of light emitted by the LED lamp directly acts on the acupuncture points and reflex areas on the sole of the foot, stimulates the acupuncture points through photochemical and photothermal effects, regulates the circulation of qi and blood in the human meridians, and achieves the purpose of phototherapy massage, relieving foot fatigue and promoting physical health. The thickness of the phototherapy layer 3 is 1-3mm, which ensures that the LED lamp can effectively act on the acupuncture points without making the insole too thick to affect the wearing comfort.

[0038] The PCB board 9 plays a key role in circuit control and power distribution in the entire power supply system. It can stably distribute the power output by the battery 8 to each LED lamp, and control the luminous intensity and luminous time parameters of the LED lamp to meet the personalized needs of different users for phototherapy massage. The thickness of the power layer 4 is set at 2-5mm. This thickness range can reasonably accommodate the battery and PCB board components to ensure the stability and reliability of the power supply.

[0039] The power layer 4 is located below the phototherapy layer 3 and is responsible for the important task of supplying power to the entire insole. It consists of a PCB board 9 and a battery 8 electrically connected to the LED light array 6, and is equipped with a charging interface 10 for external power input.

[0040] The wear-resistant layer 5 is located at the bottom of the power layer 4, with a thickness of 1-2 mm. Its main function is to provide wear-resistant protection for the insole and extend the service life of the insole.

[0041] Please see attached Figure 1 A woven layer 1 is arranged on the top of the antibacterial layer 2, and the woven layer 1 is made of a cotton thread combined with a monofilament mesh cloth weaving process.

[0042] The woven layer 1 is located on top of the antibacterial layer 2. It is woven by combining cotton thread with monofilament mesh. The good moisture absorption of cotton thread can absorb the sweat discharged from the foot in time, while the monofilament mesh ensures the air permeability of the insole surface. The synergistic effect of the two can effectively keep the feet dry and provide a comfortable contact surface for the user.

[0043] Please see attached Figure 3 The arrangement position of the LED light array 6 corresponds to the Yongquan point, Taichong point and kidney reflex area on the sole of the foot, and the power of a single LED is 0.5-1.2W.

[0044] Please see attached Figure 6 The bottom of the wear-resistant layer 5 is fixedly connected with an anti-skid bottom 11, the wear-resistant layer 5 and the anti-skid bottom 11 are bonded with glue, an anti-skid groove is provided at the bottom of the anti-skid bottom 11, and a plurality of cutting grooves 12 are provided on the front side of the bottom of the wear-resistant layer 5.

[0045] The anti-skid bottom 11 has an anti-skid groove specially arranged at the bottom, which greatly increases the friction between the insole and the shoe sole, ensuring that the insole can fit firmly in the shoe and will not slide randomly during the user's walking process, thereby ensuring the accuracy of the light therapy massage position and the stability of the user's walking.

[0046] The multiple cutting grooves 12 opened on the front side of the bottom of the wear-resistant layer 5 give the insole better versatility and adaptability. Users can properly cut the insole according to the size of different shoes to make it better fit various shoe types.

[0047] Please see attached Figure 2 The antibacterial layer 2, the phototherapy layer 3, the power layer 4 and the wear-resistant layer 5 are fixedly connected to the outside with an edge strip 7, and the edge strip 7 is bonded to the antibacterial layer 2, the phototherapy layer 3, the power layer 4 and the wear-resistant layer 5 by glue.

[0048] The edge banding strip 7 uses glue to tightly bond the outer sides of the antibacterial layer 2, the phototherapy layer 3, the power layer 4 and the wear-resistant layer 5 together, which can not only effectively protect the internal structure of the insole from the erosion of the external environment and prevent the loose separation of the layers of materials, but also make the insole more beautiful and durable as a whole. At the same time, the edge banding strip 7 also firmly fixes the charging port 10 and extends it to the outside of the insole, which greatly facilitates users to connect the charging device for charging operations.

[0049] Please see attached Figure 5 The charging interface 10 passes through and extends to the outside of the edge strip 7 , and the edge strip 7 and the charging interface 10 are fixedly connected.

[0050] The charging interface 10 can be connected to a conventional external power source to charge the battery 8

[0051] Please see attached Figure 4 The battery 8 is a flexible and bendable lithium battery, and the power layer 4 has a built-in wireless charging coil, which is electrically connected to the battery 8 and uses electromagnetic induction wireless charging.

[0052] Because the power layer 4 has a built-in wireless charging coil, the insole also supports electromagnetic induction wireless charging technology. When the insole is placed on a device with wireless charging function, the wireless charging coil generates electromagnetic induction with the external device, and then transmits electrical energy to the battery 8, providing users with a more convenient and diverse charging method. Battery 8 uses a flexible and bendable lithium battery. This design enables the battery to adapt to the bending and deformation of the insole in various usage scenarios, ensuring that the user is comfortable to wear. At the same time, its high energy density can provide stable power supply for the LED lamp for a long time.

[0053] Please see attached Figure 3 The phototherapy layer 3 and the power supply layer 4 are made of a silicone base material composite with boron nitride particles. The phototherapy layer 3 and the power supply layer 4 are formed by a hot pressing molding process. Placement grooves are provided at the corresponding positions of the LED lamp array 6 in the phototherapy layer 3 and at the corresponding positions of the battery 8 and the PCB board 9 in the power supply layer 4.

[0054] The phototherapy layer 3 and the power supply layer 4 are made of a silicone substrate composite with boron nitride particles and are formed by a hot pressing process. The silicone substrate has good flexibility and elasticity and can adapt well to the movement and deformation of the foot. The addition of boron nitride particles enhances the thermal conductivity of the material, which helps to quickly dissipate the heat generated by the LED lamp and improve the phototherapy effect.

[0055] Placement grooves are provided at the positions corresponding to the LED light array 6 in the phototherapy layer 3 and at the positions corresponding to the battery 8 and the PCB board 9 in the power layer 4. These placement grooves can accurately position the components to ensure that they are installed firmly, avoid mutual interference during use, and ensure the normal operation of the various functions of the insole.

[0056] Please see attached Figure 2 The thickness of the antibacterial layer 2 is 0.5-1.5 mm, the thickness of the phototherapy layer 3 is 1-3 mm, the thickness of the power layer 4 is 2-5 mm, and the thickness of the wear-resistant layer 5 is 1-2 mm.

[0057] The antibacterial layer 2 is 0.5-1.5mm thick. This thickness allows the nano-silver composite fiber or bamboo charcoal fiber to effectively inhibit bacteria while taking into account comfortable wearing. The phototherapy layer 3 is 1-3mm thick, which allows the LED light to accurately stimulate the acupuncture points, ensuring the phototherapy effect without affecting comfort. The power layer 4 is 2-5mm thick, which is enough to accommodate batteries and PCB boards to ensure stable and safe power supply. The wear-resistant layer 5 is 1-2mm thick, which can effectively resist friction and extend the life of the insole without adding too much burden.

[0058] Please see attached Figure 2 A plurality of micro-bumps 13 are provided on the surface of the antibacterial layer 2 on one side close to the phototherapy layer 3 . The micro-bumps 13 are hemispherical in shape and have a height of 0.2-0.5 mm. The micro-bumps 13 are arranged corresponding to the LED light array 6 of the phototherapy layer 3 .

[0059] When the user walks, these micro-protrusions 13 will provide additional physical stimulation to the acupuncture points on the sole of the foot as the footsteps move. This physical stimulation cooperates with the phototherapy effect of the LED light to further enhance the stimulation effect on the acupuncture points, thereby significantly improving the overall physical therapy effect.

[0060] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A highly efficient antibacterial physiotherapy insole, characterized in that: include: An antibacterial layer (2), wherein the antibacterial layer (2) is made of nano-silver composite fibers or bamboo charcoal fibers, and the antibacterial layer (2) is used to inhibit bacteria and odor; A phototherapy layer (3) is arranged at the bottom of the antibacterial layer (2), the phototherapy layer (3) comprises a plurality of LED light arrays (6), the LED light arrays (6) stimulate the acupuncture points on the soles of the feet by emitting light waves of a specific wavelength, the wavelength range of the LED light array (6) being 620-680nm red light and 800-950nm infrared light; A power supply layer (4), the power supply layer (4) is located at the bottom of the light therapy layer (3), comprises a PCB board (9) and a battery (8) electrically connected to the LED light array (6), and is externally powered via a charging interface (10); A wear-resistant layer (5), wherein the wear-resistant layer (5) is located at the bottom of the power supply layer (4).

2. The highly effective antibacterial therapeutic insole according to claim 1, characterized in that: A braided layer (1) is arranged on the top of the antibacterial layer (2), and the braided layer (1) is made by a cotton thread combined with a monofilament mesh cloth weaving process.

3. The highly effective antibacterial therapeutic insole according to claim 1, characterized in that: The arrangement positions of the LED light array (6) correspond to the Yongquan acupoint, Taichong acupoint and kidney reflexology area on the sole of the foot, and the power of a single LED is 0.5-1.2W.

4. The highly effective antibacterial therapeutic insole according to claim 1, characterized in that: The bottom of the wear-resistant layer (5) is fixedly connected to an anti-skid bottom (11), the wear-resistant layer (5) and the anti-skid bottom (11) are bonded by glue, an anti-skid groove is provided at the bottom of the anti-skid bottom (11), and a plurality of cutting grooves (12) are provided at the front side of the bottom of the wear-resistant layer (5).

5. The highly effective antibacterial therapeutic insole according to claim 1, characterized in that: The antibacterial layer (2), the phototherapy layer (3), the power supply layer (4) and the wear-resistant layer (5) are fixedly connected to the outside with an edge banding strip (7), and the edge banding strip (7) is bonded to the antibacterial layer (2), the phototherapy layer (3), the power supply layer (4) and the wear-resistant layer (5) by using glue.

6. The highly effective antibacterial therapeutic insole according to claim 1, characterized in that: The charging interface (10) penetrates through and extends to the outside of the edge sealing strip (7), and the edge sealing strip (7) and the charging interface (10) are fixedly connected.

7. The highly effective antibacterial therapeutic insole according to claim 1, characterized in that: The battery (8) is a flexible and bendable lithium battery, and a wireless charging coil is embedded in the power layer (4). The wireless charging coil is electrically connected to the battery (8) and wireless charging is performed by electromagnetic induction.

8. The highly effective antibacterial therapeutic insole according to claim 1, characterized in that: The phototherapy layer (3) and the power supply layer (4) are made of a silica gel substrate composite with boron nitride particles. The phototherapy layer (3) and the power supply layer (4) are formed by a hot pressing molding process. Placement grooves are provided at positions corresponding to the LED light array (6) in the phototherapy layer (3) and at positions corresponding to the battery (8) and the PCB board (9) in the power supply layer (4).

9. The highly effective antibacterial therapeutic insole according to claim 1, characterized in that: The thickness of the antibacterial layer (2) is 0.5-1.5 mm, the thickness of the phototherapy layer (3) is 1-3 mm, the thickness of the power layer (4) is 2-5 mm, and the thickness of the wear-resistant layer (5) is 1-2 mm.

10. The highly effective antibacterial therapeutic insole according to claim 1, characterized in that: A plurality of micro-bumps (13) are provided on the surface of one side of the antibacterial layer (2) close to the phototherapy layer (3); the micro-bumps (13) are hemispherical and have a height of 0.2-0.5 mm; the micro-bumps (13) are arranged corresponding to the LED light array (6) of the phototherapy layer (3).