Wearable wireless pressure sensing insole
By embedding heating wire and pressure sensors in the insole, the problem that existing medical insoles cannot judge the recovery situation and wearable mode is solved, real-time monitoring and multiple wearable modes are achieved, and comfort and safety are improved.
Patent Information
- Application Number
- CN202510575032.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-06
- Publication Date
- 2025-07-29
AI Technical Summary
The existing medical insoles cannot judge the recovery status based on the pressure of the patient when walking, and they are wearing a single way and have weak adaptability.
A wearable wireless pressure-induced insole is designed, using a silicone block embedded heating wire and pressure sensor, combined with Velcro and fixing strap to achieve multiple wear methods, and real-time monitoring of patient foot pressure through a microprocessor and 4G module, providing heating and massage functions.
Real-time monitoring of patients' rehabilitation is achieved, and a variety of wearable methods is provided, which improves comfort and safety, reduces maintenance costs, and enhances heating effects and massage experience.
Smart Images

Figure CN120381173A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of insoles, and particularly relates to a wearable wireless pressure sensing insole. Background Art
[0002] An insole, also known as a shoe lining or insole pad, is a pad placed at the bottom inside of a shoe and plays an important role in people's daily lives. Currently, there are many types of insoles, including those used in daily life and those used in medical treatment. The insoles used in medical treatment can play a certain role in the rehabilitation of patients.
[0003] The existing medical insoles, although having functions such as massage, lack in understanding the rehabilitation degree of patients and cannot judge the rehabilitation situation of patients through the pressure on the insoles when patients walk; the existing medical insoles have limitations in the wearing method, cannot achieve multiple wearing methods, and have weak adaptability.
[0004] Therefore, in view of this, research and improvement are carried out on the existing structure and deficiencies, and a wearable wireless pressure sensing insole is provided in order to achieve a more practical value purpose. Summary of the Invention
[0005] In order to solve the above technical problems, the present invention provides a wearable wireless pressure sensing insole to solve the problems that the existing medical insoles, although having functions such as massage, lack in understanding the rehabilitation degree of patients and cannot judge the rehabilitation situation of patients through the pressure on the insoles when patients walk; the existing medical insoles have limitations in the wearing method, cannot achieve multiple wearing methods, and have weak adaptability.
[0006] The present invention provides a wearable wireless pressure sensing insole, which specifically includes: a silica gel block; a first groove and a second groove are provided on the top surface of the silica gel block, heating wires are fixed in both the first groove and the second groove, and the heating wires are in a bent structure; the gap between the two heating wires is aligned with the bent part of the foot during walking.
[0007] Further, a first cushion layer is adhered to the top surface of the silica gel block, the first cushion layer is made of cloth material, a first magic tape is adhered to the top surface of the first cushion layer, a second magic tape is adhered to the top surface of the first magic tape, and a second cushion layer is adhered to the top surface of the second magic tape.
[0008] Further, protrusions are adhered to the top surface of the second cushion layer in a rectangular array, the protrusions are in a semi-cylindrical structure, and the protrusions are made of rubber material.
[0009] Further, a fixing component is installed on the second cushion layer. The fixing component is composed of a fixing band, an adhesive sticker, a third magic tape and a fourth magic tape. Fixing bands are sewn on the front side and the rear side of the second cushion layer respectively, and an adhesive sticker is adhered to the top surface of each fixing band.
[0010] Further, a third magic tape is sewn on the top surface of the front fixing band, and a fourth magic tape is sewn on the bottom surface of the rear fixing band.
[0011] Further, first anti-slip blocks are longitudinally adhered to the bottom surface of the silica gel block in a linear array. The first anti-slip blocks are strip-shaped structures and are made of rubber. After the silica gel block is put into the shoe, the first anti-slip blocks can prevent the silica gel block from slipping back and forth in the shoe.
[0012] Further, second anti-slip blocks are transversely adhered to the bottom surface of the silica gel block in a linear array. The second anti-slip blocks are strip-shaped structures and are made of rubber. The second anti-slip blocks are bonded to the first anti-slip blocks.
[0013] Further, a third groove with a rectangular groove structure is formed on the top surface of the silica gel block. A storage battery and a control box are adhered in the third groove. The storage battery is electrically connected to the heating wire.
[0014] Further, a microprocessor and a 4G module are installed in the control box. The microprocessor and the 4G module are electrically connected. Twelve pressure sensors are adhered to the first cushion layer. The twelve pressure sensors are all electrically connected to the microprocessor.
[0015] Compared with the prior art, the present invention has the following beneficial effects: Intelligent monitoring and control: A storage battery and a control box are installed in the third groove at the top of the silica gel block. The storage battery supplies power to the heating wire to ensure the continuous operation of the heating function. The microprocessor and the 4G module in the control box are connected to the pressure sensors on the first cushion layer, and can transmit the pressure signals of the patient's feet to the terminal of the medical staff. The medical staff can timely detect abnormalities and give alarm prompts by comparing the pressure values, so as to realize the real-time monitoring of the patient's foot health. In addition, in winter, the medical staff can also remotely control the heating wire to turn on through the terminal, providing more considerate and convenient nursing services for the patient.
[0016] Superior heating performance: Bent heating wires are fixed in the first groove and the second groove at the top of the silicone block. The bent structure effectively expands the heating area, can heat the patient's feet more evenly and efficiently, improves the heating effect, and further enhances the comfort of the feet. At the same time, the gap between the two heating wires aligns with the bending part of the foot during walking, avoiding the disconnection of the heating wires due to continuous bending during the frequent bending of the foot, preventing electric leakage, ensuring the use safety. Although the existing devices can set heating wires, they are whole heating wires, and the whole heating wire is distributed in the entire insole. During the patient's walking, the toe root will bend continuously. Under the action of the continuous bending of the toe root driving the shoes, the heating wire will also follow and bend continuously. After multiple continuous bends, the heating wire will break, and at this time, there will be electric leakage, with a relatively large potential safety hazard.
[0017] Reduced maintenance cost: The first cushion layer on the top surface of the silicone block is made of cloth material and is connected to the second cushion layer through the first magic tape and the second magic tape. When the second cushion layer is used up, it can be conveniently torn off from the first cushion layer for replacement, without the need to replace the entire device as a whole, greatly saving the usage cost and improving the resource utilization rate.
[0018] Good massage experience: Semi-cylindrical rubber protrusions are distributed in a rectangular array on the top surface of the second cushion layer. During the patient's walking, these protrusions can massage the feet, promote blood circulation in the feet, relieve foot fatigue, and bring a comfortable experience to the user.
[0019] Flexible wearing method: The fixing component equipped with the device includes fixing straps, adhesive stickers, the third magic tape, and the fourth magic tape. When in use, the device can be directly attached to the patient's foot through the adhesive sticker and can be used without being put into the shoe. When the viscosity of the adhesive sticker decreases, the two fixing straps can also be put on the instep through the third magic tape and the fourth magic tape, realizing multiple wearing methods to meet the needs of different scenarios and users.
[0020] Excellent anti-slip and anti-wrinkle performance: Long strip-shaped rubber first anti-slip blocks and second anti-slip blocks are respectively adhered longitudinally and transversely on the bottom end surface of the silicone block. The first anti-slip block can prevent the silicone block from slipping back and forth in the shoe, ensuring the stability of the device in the shoe; the second anti-slip block not only further enhances the anti-slip effect but also prevents the silicone block from wrinkling and shrinking during walking, extending the service life of the device. Description of the drawings
[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments will be briefly introduced below.
[0022] In the drawings: Figure 1 The axonometric structural schematic diagram of the wearable wireless pressure sensing insole according to the present invention is shown; Figure 2 Shows a schematic right - view structure of a wearable wireless pressure - sensing insole according to the present invention; Figure 3 Shows according to the present invention Figure 2 An enlarged schematic structure diagram at position A; Figure 4 Shows an axonometric exploded - view structure diagram of a wearable wireless pressure - sensing insole according to the present invention; Figure 5 Shows according to the present invention Figure 4 An enlarged schematic structure diagram at position B; Figure 6 Shows a schematic front - view structure diagram of a wearable wireless pressure - sensing insole after being disassembled; Figure 7 Shows an axonometric structure diagram of the first cushion layer and the pressure sensor according to the present invention; Figure 8 Shows a schematic diagram of the system composition according to the present invention.
[0023] List of reference numerals 1, silicone block; 101, first groove; 102, second groove; 103, third groove; 2, heating wire; 3, first cushion layer; 301, first magic tape; 302, second magic tape; 4, second cushion layer; 401, protrusion; 5, fixing component; 501, fixing strap; 502, adhesive sticker; 504, third magic tape; 505, fourth magic tape; 6, first anti - slip block; 7, second anti - slip block; 8, storage battery; 9, control box; 901, micro - processor; 902, 4G module; 903, pressure sensor. Detailed implementation manners
[0024] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the present invention.
[0025] Unless otherwise defined, all terms (including technical and scientific terms) used in the embodiments of the present invention have the same meaning as commonly understood by those of ordinary skill in the art to which the present invention belongs. It should also be understood that terms such as those defined in a general dictionary should be interpreted as having a meaning consistent with their meaning in the context of the relevant art, and should not be interpreted in an idealized or overly formal sense unless clearly defined in the embodiments of the present invention.
[0026] In the embodiments of the present invention, the terms "first", "second" and similar terms do not denote any order, quantity or importance, but are only used to distinguish different components. The terms "a", "an" or "the" and similar terms do not denote a quantity limitation, but mean that there is at least one. Similarly, the terms such as "comprising" or "including" mean that the elements or objects appearing before this word cover the elements or objects listed after this word and their equivalents, without excluding other elements or objects. In the following description, spatial and orientation terms such as "upper", "lower", "front", "rear", "top", "bottom", "vertical" and "horizontal" may be used to describe the embodiments of the present invention, but it should be understood that these terms are only for the convenience of describing the embodiments shown in the drawings, and do not require the actual device to be constructed or operated in a specific orientation. In the following description, the use of terms such as "connected", "coupled", "fixed" and "attached" may refer to a direct connection between two elements or structures without other elements or structures, or may refer to an indirect connection between two elements or structures through intermediate elements or structures, unless otherwise explicitly stated herein.
[0027] Embodiment 1: As shown in the appended Figure 1 to the appended Figure 8 figures: The present invention provides a wearable wireless pressure sensing insole, which includes: a silica gel block 1; a first groove 101 and a second groove 102 are formed on the top surface of the silica gel block 1, and heating wires 2 are fixed in both the first groove 101 and the second groove 102, and the heating wires 2 are in a bent structure; the gap between the two heating wires 2 is aligned with the bent part of the foot during walking. During use, through the heating of the heating wires 2, the comfort of the patient's foot can be improved, and the bent heating wires 2 can expand the heating area and improve the heating effect; moreover, since the gap between the two heating wires 2 is aligned with the bent part of the foot during walking, it avoids the disconnection and leakage caused by the continuous bending of the heating wires 2.
[0028] Wherein, a first cushion layer 3 is adhered to the top surface of the silica gel block 1, the first cushion layer 3 is made of cloth material, a first magic tape 301 is adhered to the top surface of the first cushion layer 3, a second magic tape 302 is adhered to the top surface of the first magic tape 301, and a second cushion layer 4 is adhered to the top surface of the second magic tape 302. After the second cushion layer 4 is used up, it can be torn off from the first cushion layer 3 for replacement without replacing the whole, saving costs.
[0029] Wherein, protrusions 401 are adhered to the top surface of the second cushion layer 4 in a rectangular array, the protrusions 401 are in a semi-cylindrical structure, and the protrusions 401 are made of rubber material. During the walking process of the patient, the protrusions 401 can complete the massage of the patient's foot.
[0030] Among them, a fixing component 5 is installed on the second cushion layer 4. The fixing component 5 is composed of a fixing belt 501, an adhesive patch 502, a third magic tape 504 and a fourth magic tape 505. A fixing belt 501 is sewn on the front side and the rear side of the second cushion layer 4 respectively. An adhesive patch 502 is adhered to the top surface of each fixing belt 501. When directly worn, the two adhesive patches 502 can be pasted on the patient's feet, and at this time, it can be used without putting it into the shoe.
[0031] Among them, a third magic tape 504 is sewn on the top surface of the front fixing belt 501, and a fourth magic tape 505 is sewn on the bottom surface of the rear fixing belt 501. After the viscosity of the adhesive patch 502 decreases, the third magic tape 504 and the fourth magic tape 505 are adhered and connected, and then the two fixing belts 501 are put on the instep, and at this time, it can also be worn and used.
[0032] Among them, the bottom surface of the silica gel block 1 is longitudinally adhered with first anti-slip blocks 6 in a linear array. The first anti-slip blocks 6 are strip-shaped structures, and the first anti-slip blocks 6 are made of rubber. After the silica gel block 1 is put into the shoe, the first anti-slip blocks 6 can prevent the silica gel block 1 from slipping back and forth in the shoe.
[0033] Among them, the bottom surface of the silica gel block 1 is transversely adhered with second anti-slip blocks 7 in a linear array. The second anti-slip blocks 7 are strip-shaped structures, and the second anti-slip blocks 7 are made of rubber. The second anti-slip blocks 7 are bonded to the first anti-slip blocks 6. During use, on the one hand, the second anti-slip blocks 7 can prevent the silica gel block 1 from slipping back and forth in the shoe, and on the other hand, under the action of the second anti-slip blocks 7, the silica gel block 1 can be prevented from wrinkling and shrinking during walking.
[0034] Among them, a third groove 103 with a rectangular groove structure is opened on the top surface of the silica gel block 1. A storage battery 8 and a control box 9 are adhered in the third groove 103. The storage battery 8 is electrically connected to the heating wire 2. During use, the storage battery 8 can supply power to the heating wire 2.
[0035] Embodiment 2: On the basis of Embodiment 1, it further includes: a microprocessor 901 and a 4G module 902 are installed in the control box 9, the microprocessor 901 and the 4G module 902 are electrically connected, twelve pressure sensors 903 are adhered to the first cushion layer 3, and the twelve pressure sensors 903 are all electrically connected to the microprocessor 901. During use, when the patient's foot steps on the second cushion layer 4, the twelve pressure sensors 903 transmit pressure signals to the microprocessor 901, and the microprocessor 901 transmits the signals to the terminal of the medical staff through the 4G module 902. At this time, the transmitted data is compared with the value in the terminal of the medical staff. When the pressure value is greater than or less than the value in the terminal, the terminal will give an alarm prompt; when used in winter, the medical staff operates the terminal to transmit the signal to the microprocessor 901 through the 4G module 902, and the microprocessor 901 turns on the circuit between the storage battery 8 and the heating wire 2.
[0036] Specific usage method and function of this embodiment: When the patient's foot steps on the second cushion layer 4, the twelve pressure sensors 903 transmit pressure signals to the microprocessor 901, and the microprocessor 901 transmits the signals to the terminal of the medical staff through the 4G module 902. At this time, the transmitted data is compared with the value in the terminal of the medical staff. When the pressure value is greater than or less than the value in the terminal, the terminal will give an alarm prompt; when used in winter, the medical staff operates the terminal to transmit the signal to the microprocessor 901 through the 4G module 902, and the microprocessor 901 turns on the circuit between the storage battery 8 and the heating wire 2; when used directly by wearing, two adhesive patches 502 can be pasted on the patient's foot, and there is no need to put them in the shoes at this time; when the viscosity of the adhesive patch 502 decreases, the third magic tape 504 and the fourth magic tape 505 are adhered and connected, and then the two fixing straps 501 are put on the instep, and it can also be worn and used at this time; when the second cushion layer 4 is severely worn during use, it can be torn off from the first cushion layer 3 and replaced.
[0037] The above is only the specific implementation manner of the present disclosure, but the protection scope of the present disclosure is not limited thereto. The protection scope of the present disclosure shall be subject to the protection scope of the claims.
Claims
1. A wearable wireless pressure sensing insole, characterized in that, Including: A silica gel block (1); a first groove (101) and a second groove (102) are formed on the top surface of the silica gel block (1), heating wires (2) are fixed in both the first groove (101) and the second groove (102), and the heating wires (2) are in a bent structure; the gap between the two heating wires (2) is aligned with the bent part of the foot during walking.
2. The wearable wireless pressure sensing insole according to claim 1, characterized in that: A first cushion layer (3) is adhered to the top surface of the silica gel block (1), the first cushion layer (3) is made of cloth material, a first magic tape (301) is adhered to the top surface of the first cushion layer (3), a second magic tape (302) is adhered to the top surface of the first magic tape (301), and a second cushion layer (4) is adhered to the top surface of the second magic tape (302).
3. The wearable wireless pressure-sensing insole according to claim 2, wherein: Protrusions (401) are adhered to the top surface of the second cushion layer (4) in a rectangular array, the protrusions (401) are in a semi-cylindrical structure, and the protrusions (401) are made of rubber material.
4. The wearable wireless pressure sensing insole according to claim 3, characterized in that: A fixing component (5) is installed on the second cushion layer (4), and the fixing component (5) is composed of a fixing belt (501), an adhesive patch (502), a third magic tape (504) and a fourth magic tape (505). A fixing belt (501) is sewn on the front side and the rear side of the second cushion layer (4), and an adhesive patch (502) is adhered to the top surface of each fixing belt (501).
5. The wearable wireless pressure-sensing insole according to claim 4, characterized in that: A third magic tape (504) is sewn on the top surface of the fixing belt (501) on the front side, and a fourth magic tape (505) is sewn on the bottom surface of the fixing belt (501) on the rear side.
6. The wearable wireless pressure sensing insole according to claim 5, wherein: First anti-slip blocks (6) are longitudinally adhered to the bottom surface of the silica gel block (1) in a linear array, the first anti-slip blocks (6) are in a strip shape, and the first anti-slip blocks (6) are made of rubber material.
7. The wearable wireless pressure sensing insole according to claim 6, wherein: Second anti-slip blocks (7) are transversely adhered to the bottom surface of the silica gel block (1) in a linear array. The second anti-slip blocks (7) are in a strip shape, the second anti-slip blocks (7) are made of rubber material, and the second anti-slip blocks (7) are adhered to the first anti-slip blocks (6).
8. The wearable wireless pressure sensing insole according to claim 7, wherein: A third groove (103) with a rectangular groove structure is formed on the top surface of the silica gel block (1), a storage battery (8) and a control box (9) are adhered in the third groove (103), and the storage battery (8) is electrically connected to the heating wire (2).
9. The wearable wireless pressure-sensing insole according to claim 8, wherein: A microprocessor (901) and a 4G module (902) are installed in the control box (9), the microprocessor (901) and the 4G module (902) are electrically connected, twelve pressure sensors (903) are adhered to the first cushion layer (3), and the twelve pressure sensors (903) are all electrically connected to the microprocessor (901).