Health-care insole with built-in massage particles
By introducing removable airbag support, breathable sponge pads, and silicone support structures into the insole, the problem of poor adaptability of existing insoles is solved, and the comfort and stability of multi-legged insoles are improved.
Patent Information
- Application Number
- CN202522239347.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-23
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-10-23
AI Technical Summary
Existing health-care insoles with built-in massage particles are difficult to adapt to different foot shapes, resulting in reduced comfort for people with high or flat feet.
An insole structure was designed that includes an airbag support system, a breathable sponge pad, massage particles, and a silicone support pad. The airbag is detachable and connected by Velcro. The massage particles are positioned by the breathable sponge pad. The silicone pad has a honeycomb support and anti-slip structure to enhance adaptability and comfort.
The air bladder can automatically adjust its shape to adapt to different foot shapes, the breathable sponge pad disperses pressure, and the silicone pad cushions the impact, improving the comfort and stability of the insole and reducing the feeling of discomfort on the feet.
Smart Images

Figure CN224670954U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of health care insole technology, specifically a health care insole with built-in massage particles. Background Technology
[0002] Health-care insoles are a type of functional insole that, in addition to the basic functions of insoles, are optimized for foot health care, fatigue relief, and physiological regulation through material selection, structural design, or additional functional modules. Their core objective is to achieve foot health care and maintenance during daily wear. They are suitable for people who stand or walk for long periods of time, or those with mild foot discomfort.
[0003] Massage particles are a common functional structure in health-care insoles, massage equipment, and other products. They usually exist in the form of raised dots, columns, or small particles of specific shapes. Through contact, friction, and pressure with human skin (especially the soles of the feet), they achieve physical stimulation and massage effects, and are one of the core carriers of health care functions.
[0004] Existing health-care insoles with built-in massage particles are often designed according to the natural arch of the foot, making them difficult to adapt to different foot shapes. This can significantly reduce comfort for people with high or flat feet.
[0005] Therefore, this utility model provides a health care insole with built-in massage particles. Utility Model Content
[0006] In order to overcome the shortcomings of the prior art, at least one technical problem raised in the background art is solved.
[0007] The technical solution adopted by this utility model to solve its technical problem is as follows: A health-care insole with built-in massage particles, comprising a base layer; a massage layer fixedly connected to the top of the base layer; a sweat-absorbing cotton pad fixedly connected to the top of the massage layer; a groove formed on the top of the sweat-absorbing cotton pad; the groove being located at the arch of the foot; a sub-hook and loop fastener fixedly connected inside the groove; a female hook and loop fastener adhered to the top of the sub-hook and loop fastener; an air bladder fixedly connected to the top of the female hook and loop fastener; the width of the air bladder being smaller than the width of the sweat-absorbing cotton pad; and an air valve fixedly connected to the side wall of the air bladder. Through the above structure, the air bladder can effectively support and cushion the arch of the foot, greatly improving walking comfort.
[0008] Preferably, the massage layer includes massage particles; the massage particles are fixed to the top of the base layer; there are multiple massage particles, which are evenly distributed; a breathable sponge pad is fixed to the top of the base layer; the breathable sponge pad is fixed to the bottom of the sweat-absorbing cotton pad; the breathable sponge pad has multiple through holes, which are located at positions corresponding to the massage particles; the massage particles pass through the through holes; the bottom of the sweat-absorbing cotton pad has multiple positioning holes; the positioning holes are located at positions corresponding to the massage particles; the massage particles are engaged inside the positioning holes; through the above structure, the massage particles can effectively massage the feet, and the breathable sponge pad allows the feet to retain the tactile sensation of massage while dispersing pressure through the breathable sponge pad.
[0009] Preferably, the base layer includes a silicone pad; a support pad is fixed to the bottom of the silicone pad; the support pad is positioned at the heel; the support pad is made of silicone; the support pad is honeycomb-shaped; through the above structure, the support pad can effectively cushion the impact force through its own elasticity, thereby relieving fatigue and pain.
[0010] Preferably, the bottom of the silicone pad is adhered with multiple anti-slip strips; the anti-slip strips are distributed in a linear array; the anti-slip strips are located at the end away from the silicone pad; through the above structure, the anti-slip strips can effectively increase the friction between the silicone pad and the shoe, reducing the possibility of the insole sliding inside the shoe.
[0011] Preferably, the top of the sweat-absorbing cotton pad is bonded with an anti-slip mesh surface; the anti-slip mesh surface is made of bamboo fiber material; through the above structure, the anti-slip mesh surface can make the foot fit the insole more closely and reduce the chance of the foot slipping.
[0012] Preferably, the silicone pad has multiple ventilation holes; the ventilation holes are evenly distributed; through the above structure, the user can quickly expel heat and sweat generated by the feet, reducing stuffiness.
[0013] Preferably, the massage particles are semi-circular in shape; the massage particles are made of silicone; through the above structure, the massage particles can better conform to the curves of the foot, thereby improving the massage effect.
[0014] The beneficial effects of this utility model are as follows:
[0015] 1. The health-care insole with built-in massage particles described in this utility model inflates the air bladder through an air valve. When walking, the arch of the foot comes into contact with the air bladder, which supports the arch. After prolonged use, the air bladder may become damaged and needs to be replaced. To remove the air bladder, simply peel the female Velcro at the bottom of the air bladder from the female Velcro. This structure effectively supports and cushions the arch of the foot, automatically adjusting the degree of deformation through the flow of gas to reduce excessive or insufficient support, thus adapting to various foot shapes and greatly improving walking comfort. Furthermore, the detachable design of the air bladder makes it easy for users to replace or maintain it, thereby improving the practicality of the insole.
[0016] 2. The health-care insole with built-in massage particles described in this utility model effectively massages the feet by setting a breathable sponge on the top of the massage particles. After the particles pass through the through holes on the breathable sponge, they are stuck in the positioning holes at the bottom of the sweat-absorbing cotton pad. The breathable sponge pad allows the feet to retain the tactile sensation of massage while dispersing pressure, reducing the direct pressure of the massage particles on the feet, balancing the massage intensity and comfort, and thus reducing the feeling of discomfort on the feet. Attached Figure Description
[0017] The present invention will be further described below with reference to the accompanying drawings.
[0018] Figure 1 This is a perspective view of the present invention;
[0019] Figure 2 This is a schematic diagram of the structure of the massage particles in this utility model;
[0020] Figure 3 This is a schematic diagram of the groove structure in this utility model;
[0021] Figure 4 This is a schematic diagram of the through hole structure in this utility model;
[0022] Figure 5 This is a schematic diagram of the support pad structure in this utility model.
[0023] In the diagram: 1. Base layer; 11. Massage layer; 12. Sweat-absorbing cotton pad; 13. Groove; 14. Female Velcro; 15. Female Velcro; 16. Airbag; 17. Air valve; 2. Massage particles; 21. Breathable sponge pad; 22. Through hole; 23. Positioning hole; 3. Silicone pad; 31. Support pad; 4. Anti-slip strip; 5. Anti-slip mesh surface; 6. Ventilation hole. Detailed Implementation
[0024] 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 skilled in the art without creative effort are within the protection scope of the present utility model.
[0025] Specific implementation examples are given below.
[0026] like Figures 1 to 4 As shown in the embodiment of this utility model, a health-care insole with built-in massage particles includes a base layer 1; a massage layer 11 is fixedly attached to the top of the base layer 1; a sweat-absorbing cotton pad 12 is fixedly attached to the top of the massage layer 11; a groove 13 is formed on the top of the sweat-absorbing cotton pad 12; the groove 13 is located at the arch of the foot; a sub-hook and loop fastener 14 is fixedly attached inside the groove 13; a female hook and loop fastener 15 is adhered to the top of the sub-hook and loop fastener 14; an air bladder 16 is fixedly attached to the top of the female hook and loop fastener 15; the width of the air bladder 16 is smaller than the width of the sweat-absorbing cotton pad 12; an air valve 17 is fixedly attached to the side wall of the air bladder 16; during operation, air is inflated into the air bladder 16 through the air valve 17, providing foot massage. When walking, the arch of the foot comes into contact with the airbag 16, which supports the arch. After prolonged use, the airbag 16 may become damaged and needs to be replaced. To remove the airbag 16, simply peel the female Velcro 15 from the female Velcro 14 at the bottom of the airbag 16. Through this structure, the airbag 16 can effectively support and cushion the arch of the foot, automatically adjusting the degree of deformation through the flow of air to reduce situations where the support is too strong or too weak, thus adapting to various foot shapes and greatly improving walking comfort. Furthermore, the airbag 16 is detachable, making it convenient for users to replace or maintain it, thereby improving the practicality of the insole.
[0027] like Figure 1 , Figure 2 and Figure 4As shown, the massage layer 11 includes massage particles 2; the massage particles 2 are fixed to the top of the base layer 1; there are multiple massage particles 2, which are evenly distributed; a breathable sponge pad 21 is fixed to the top of the base layer 1; the breathable sponge pad 21 is fixed to the bottom of the sweat-absorbing cotton pad 12; multiple through holes 22 are opened on the breathable sponge pad 21, and the through holes 22 are set at positions corresponding to the massage particles 2; the massage particles 2 pass through the through holes 22; multiple positioning holes 23 are opened at the bottom of the sweat-absorbing cotton pad 12; the positioning holes 23 are set at positions corresponding to the massage particles 2; the massage particles 2 are locked inside the positioning holes 23; during operation, the breathable sponge pad 21 opens at positions corresponding to the massage particles 2. There is a through hole 22. The massage particles 2 pass through the through hole 22 and protrude slightly. The protrusion matches the positioning hole 23 opened on the sweat-absorbing cotton pad 12, so that the sweat-absorbing cotton pad 12 and the breathable sponge pad 21 are better connected. When walking, the massage particles 2 will massage the feet. At the same time, the breathable sponge pad 21 will be deformed by pressure and then return to its original shape through its own elasticity. Through the above structure, the massage particles 2 can effectively massage the feet. The setting of the breathable sponge pad 21 allows the feet to retain the massage sensation and also distribute the pressure through the breathable sponge pad 21, reducing the direct pressure of the massage particles 2 on the feet, balancing the massage intensity and comfort, thereby reducing the feeling of discomfort.
[0028] like Figure 1 , Figure 2 and Figure 5 As shown, the base layer 1 includes a silicone pad 3; a support pad 31 is fixed to the bottom of the silicone pad 3; the support pad 31 is located at the heel; the support pad 31 is made of silicone; the support pad 31 is honeycomb shaped; during operation, when the foot is walking or standing, the support pad 31 supports the heel. The support pad 31 is made of silicone and has good elasticity. Its honeycomb shape provides a multi-layered cushioning effect. Through the above structure, the support pad 31 can effectively cushion the impact force through its own elasticity, evenly distributing the pressure to the entire heel area, reducing local pressure, thereby relieving fatigue and pain. For people with thin heel fat pads or those who have had injuries, the support pad 31 can effectively provide protection and reduce the possibility of re-injury.
[0029] like Figure 5 As shown, multiple anti-slip strips 4 are adhered to the bottom of the silicone pad 3; the anti-slip strips 4 are distributed in a linear array; the anti-slip strips 4 are located at the end away from the silicone pad 3; during operation, the anti-slip strips 4 are placed at the bottom of the silicone pad 3, and the insole is placed inside the shoe, so that the anti-slip strips 4 come into contact with the shoe. Through the above structure, the anti-slip strips 4 can effectively increase the friction between the silicone pad 3 and the shoe, reduce the insole from sliding inside the shoe, and thus enhance the stability of walking.
[0030] like Figures 1 to 3As shown, the top of the sweat-absorbing cotton pad 12 is bonded with an anti-slip mesh 5; the anti-slip mesh 5 is made of bamboo fiber; during operation, the anti-slip mesh 5 is set on the top of the sweat-absorbing cotton pad 12. The anti-slip mesh 5 is made of bamboo fiber, which contains the natural substance bamboo quinone, which has an antibacterial effect. Through the above structure, the anti-slip mesh 5 can make the foot fit the insole more closely, reduce the foot slipping, and improve the overall breathability of the insole. At the same time, the anti-slip mesh 5 has a good antibacterial effect, which can effectively extend the cleaning frequency in actual use.
[0031] like Figure 2 , Figure 4 and Figure 5 As shown, the silicone pad 3 has multiple ventilation holes 6; the ventilation holes 6 are evenly distributed; when working, the ventilation holes 6 on the silicone pad 3 allow air to circulate and exchange between the sole and the insole when the foot moves. Through the above structure, the user can quickly expel the heat and sweat generated by the foot, reduce stuffiness, and effectively improve the breathability of the insole.
[0032] like Figure 2 As shown, the massage particles 2 are semi-circular in shape; the material of the massage particles 2 is silicone; when working, the massage particles 2 are semi-circular in shape, and the outer material is silicone. Silicone is soft and elastic. Through the above structure, the massage particles 2 can better conform to the curve of the foot, thereby improving the massage effect. At the same time, the massage particles 2 can quickly rebound after being pressed, which can provide sufficient pressure to stimulate acupoints and also cushion the foot pressure through deformation.
[0033] During operation, air is inflated into the airbag 16 via the air valve 17. When walking, the arch of the foot contacts the airbag 16, which provides support. After prolonged use, the airbag 16 may become damaged. To replace it, simply peel the female Velcro 15 from the female Velcro 14 at the bottom of the airbag 16 to detach it. Through this structure, the airbag 16 effectively supports and cushions the arch of the foot, automatically adjusting its deformation based on air flow to reduce excessive or insufficient support, thus adapting to various foot shapes and significantly improving walking comfort. Furthermore, the detachable design of the airbag 16 facilitates replacement and maintenance, enhancing the insole's practicality. The breathable sponge pad 21 corresponds to... A through hole 22 is provided at the location of the massage granule 2. After passing through the through hole 22, the massage granule 2 protrudes slightly, and the protrusion matches the positioning hole 23 on the sweat-absorbing cotton pad 12, so that the sweat-absorbing cotton pad 12 and the breathable sponge pad 21 are better connected. When walking, the massage granule 2 will massage the feet. At the same time, the breathable sponge pad 21 will be deformed under pressure and then return to its original shape through its own elasticity. Through the above structure, the massage granule 2 can effectively massage the feet. The setting of the breathable sponge pad 21 allows the feet to retain the tactile sensation of massage while dispersing pressure through the breathable sponge pad 21, reducing the direct pressure of the massage granule 2 on the feet, balancing the massage intensity and comfort, thereby reducing the feeling of discomfort. When the feet are walking or standing, the support pad 3 The shoe provides heel support. The support pad 31 is made of silicone, which has good elasticity and a honeycomb shape, providing multi-layered cushioning. Through this structure, the support pad 31 can effectively cushion impact through its elasticity, evenly distributing pressure across the entire heel area, reducing localized pressure, and thus relieving fatigue and pain. For individuals with thin heel fat pads or those who have previously suffered injuries, the support pad 31 can effectively provide protection and reduce the possibility of further injury. An anti-slip strip 4 is located at the bottom of the silicone pad 3. When the insole is placed inside the shoe, the anti-slip strip 4 contacts the shoe. Through this structure, the anti-slip strip 4 effectively increases the friction between the silicone pad 3 and the shoe, reducing the insole's slippage inside the shoe, thereby enhancing walking stability and improving sweat absorption. The top of the cotton pad 12 features an anti-slip mesh 5 made of bamboo fiber. Bamboo fiber contains the natural substance bamboo quinone, which has antibacterial properties. This structure allows the anti-slip mesh 5 to better fit the foot and insole, reducing slippage and improving overall breathability. Simultaneously, the anti-slip mesh 5 has excellent antibacterial properties, effectively extending the cleaning frequency during use. Ventilation holes 6 are created on the silicone pad 3. When the foot moves, air circulates between the sole and insole through these holes. This structure allows the user to quickly expel heat and sweat from the feet, reducing stuffiness and effectively improving the insole's breathability. The massage particles 2 are semi-circular in shape and made of soft and elastic silicone.Through the above structure, the massage particles 2 can better conform to the curves of the foot, thereby enhancing the massage effect. Simultaneously, the massage particles 2 can quickly rebound after being pressed, providing sufficient pressure to stimulate acupoints while also cushioning foot pressure through deformation.
[0034] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A health-care insole with built-in massage particles, characterized in that: The device includes a base layer (1); a massage layer (11) is fixedly attached to the top of the base layer (1); a sweat-absorbing cotton pad (12) is fixedly attached to the top of the massage layer (11); a groove (13) is provided on the top of the sweat-absorbing cotton pad (12); the groove (13) is located at the arch of the foot; a sub-hook and loop fastener (14) is fixedly attached inside the groove (13); a female hook and loop fastener (15) is attached to the top of the sub-hook and loop fastener (14); an air bladder (16) is fixedly attached to the top of the female hook and loop fastener (15); the width of the air bladder (16) is smaller than the width of the sweat-absorbing cotton pad (12); and an air valve (17) is fixedly attached to the side wall of the air bladder (16).
2. The health-care insole with built-in massage particles according to claim 1, characterized in that: The massage layer (11) includes massage particles (2); the massage particles (2) are fixed to the top of the base layer (1); there are multiple massage particles (2) and they are evenly distributed; a breathable sponge pad (21) is fixed to the top of the base layer (1); the breathable sponge pad (21) is fixed to the bottom of the sweat-absorbing cotton pad (12); multiple through holes (22) are provided on the breathable sponge pad (21), and the through holes (22) are located at positions corresponding to the massage particles (2); the massage particles (2) penetrate through the through holes (22); multiple positioning holes (23) are provided at the bottom of the sweat-absorbing cotton pad (12); the positioning holes (23) are located at positions corresponding to the massage particles (2); the massage particles (2) are stuck inside the positioning holes (23).
3. The health-care insole with built-in massage particles according to claim 1, characterized in that: The base layer (1) includes a silicone pad (3); a support pad (31) is fixed to the bottom of the silicone pad (3); the support pad (31) is located at the heel; the support pad (31) is made of silicone; the support pad (31) is arranged in a honeycomb shape.
4. The health-care insole with built-in massage particles according to claim 3, characterized in that: The bottom of the silicone pad (3) is bonded with multiple anti-slip strips (4); the anti-slip strips (4) are distributed in a linear array; the anti-slip strips (4) are located at the end away from the silicone pad (3).
5. A health-care insole with built-in massage particles according to claim 1, characterized in that: The top of the sweat-absorbing cotton pad (12) is bonded with an anti-slip mesh (5); the anti-slip mesh (5) is made of bamboo fiber.
6. The health-care insole with built-in massage particles according to claim 3, characterized in that: The silicone pad (3) has multiple air vents (6); the air vents (6) are evenly distributed.
7. A health-care insole with built-in massage particles according to claim 2, characterized in that: The massage particles (2) are semi-circular in shape; the massage particles (2) are made of silicone.