Atomization type hand and foot skin rehabilitation equipment

By combining multi-layered composite gloves with an atomizing box, and with a real-time monitoring and feedback system, the problems of low drug absorption efficiency and poor patient compliance in traditional skin rehabilitation treatments have been solved. This has enabled precise drug delivery and skin protection, and reduced the neurotoxicity symptoms caused by chemotherapy.

CN121987900APending Publication Date: 2026-05-08ZHEJIANG CANCER HOSPITAL
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
ZHEJIANG CANCER HOSPITAL
Filing Date
2026-04-10
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Traditional treatments for skin diseases and postoperative skin rehabilitation often suffer from low drug absorption efficiency, lack of monitoring during treatment, large equipment size, poor patient compliance, poor compatibility, high incidence of hand-foot syndrome caused by chemotherapy, and negative impacts on quality of life.

Method used

A nebulized hand and foot skin rehabilitation device was designed, which combines a multi-layer composite glove with a nebulizer. It achieves real-time monitoring and feedback through pressure sensors and a display module. It is equipped with massage balls and slot structures to adapt to different hand shapes, providing micro-positive pressure and massage stimulation, ensuring uniform drug coverage and avoiding joint stiffness caused by prolonged fixation.

Benefits of technology

It achieves precise drug delivery and skin protection, reduces the risk of pressure sores, improves the portability of the treatment process and patient compliance, and reduces the incidence of neurotoxic symptoms caused by chemotherapy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of medical atomizers, and provides atomization type hand and foot skin rehabilitation equipment. The rehabilitation glove comprises an atomization box and a rehabilitation glove body of at least two layers of composite structures, a net-shaped attaching layer is arranged on the inner layer of the glove body, a pressure sensor is arranged on the side, close to the glove body, of the net-shaped attaching layer, the glove body is provided with a pressure relief structure, and the pressure relief structure comprises pressure relief holes. The pressure relief holes are first through holes located in the outer side of the hand back of the glove body and second through holes located in the tail ends of the fingers of the glove body. The rehabilitation glove body is attached to the hand and generates micro-positive pressure, and absorption of atomized medicine is promoted. The disassembly and butt joint mechanism of the multi-layer composite glove body and the atomization box realizes portable and fixed services in the atomization treatment process; medicine absorption is accelerated through physical stimulation, fingers are allowed to move slightly through the massage balls and the first protruding parts and the second protruding parts of the elastic supports, and joint stiffness caused by long-time fixation is avoided.
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Description

Technical Field

[0001] This invention relates to the field of medical nebulizer technology, and provides a nebulizer-type hand and foot skin rehabilitation device. Background Technology

[0002] In the field of dermatology and postoperative skin rehabilitation, traditional treatment methods have significant limitations: low drug absorption efficiency: topical medications only act on the skin surface and are difficult to penetrate into the dermis, and are easily lost due to friction, resulting in long treatment cycles. The treatment process lacks monitoring, making it impossible to provide real-time feedback on skin condition, and excessive pressure or inappropriate drug concentration may worsen skin damage; traditional nebulizers are bulky, require fixed locations, and the drug addition and equipment cleaning processes are cumbersome, leading to poor patient compliance; poor fit: gloves are fixed in size and cannot fit different hand shapes, and drug coverage on the fingers is uneven; most chemotherapy and immunosuppressive drugs easily cause hand-foot syndrome and peripheral neurotoxicity, with an incidence rate as high as 70%-80%, of which 50% of patients experience 24-72 hours of sensory, motor, and autonomic dysfunction symptoms, and 30% of patients still have symptoms several years after chemotherapy ends, becoming chronic pain and irreversible nerve damage, causing great suffering to patients. Approximately 25% of patients try to limit their toxic reactions by adjusting their chemotherapy regimen or even discontinuing chemotherapy, seriously affecting the anti-tumor process and patients' quality of life. Existing technology CN115414590B provides a treatment formula for chemotherapy-induced hand-foot syndrome, including a formula drug and a foaming agent. The formula drug includes 10g of Astragalus membranaceus, 10g of Cinnamomum cassia, 10g of Paeonia lactiflora and Paeonia veitchii, 6g of Zingiber officinale, 10g of Ligusticum chuanxiong, 15g of Salvia miltiorrhiza, 10g of Angelica sinensis, 15g of Clematis chinensis, 15g of Cynanchum paniculatum, and 6g of Carthamus tinctorius. The formula drug and foaming agent are ground and mixed together, then mixed with white vinegar and kneaded into pills. It also provides a special treatment glove, including a glove body with several tracks. The tracks are detachably slidably equipped with slide seats. The slide seats are equipped with a cylinder, and the cylinder has a drug receiving cavity for receiving pills. The cylinder is detachably assembled with a clamping component, which is inserted into the cylinder to clamp the pills. Summary of the Invention

[0003] The purpose of this invention is to provide a rehabilitation glove that conforms to the hand and generates micro-positive pressure to promote the absorption of nebulized medication. Secondly, the disassembly and docking mechanism between the multi-layered composite glove and the nebulizer box enables both portable and fixed-position nebulization treatments. The massage ball and slot structure work together to accelerate drug absorption through physical stimulation, and the curved gaps and elastic support of the first and second protrusions adapt to different hand shapes, allowing for slight finger movement and avoiding joint stiffness caused by prolonged immobilization.

[0004] A nebulizer-type hand and foot skin rehabilitation device includes a nebulizer box and a rehabilitation glove body with at least two composite layers. The inner layer of the glove body has a mesh-like adhesive layer, and a pressure sensor is located on the side of the mesh-like adhesive layer near the glove body. The glove body has a pressure relief structure, which includes pressure relief holes. The pressure relief holes are a first through-hole located on the outer side of the back of the hand and a second through-hole located at the fingertips. The nebulizer box converts a traditional Chinese medicine formula into nebulized medication through a built-in nebulizer. Combined with the multi-layer composite structure of the glove body, it achieves the dual functions of precise drug delivery and skin protection. The inner layer of the glove body uses an elastic mesh-like adhesive layer to fit the skin. The pressure sensor is embedded between the mesh-like adhesive layer and the outer layer, which can monitor the pressure changes inside the glove in real time. When the pressure exceeds a safe threshold, the pressure is automatically relieved through the first through-hole on the outer side of the back of the hand and the second through-hole at the fingertips, effectively preventing skin blood circulation disorders caused by excessive pressure. The pressure relief holes are closed by valves made of elastic elements that open and close when the internal pressure reaches the threshold, so as to maintain the fit of the glove inside the hand and generate a slight positive pressure to promote drug absorption.

[0005] Preferably, the pressure relief structure also includes a display module located on the outer back of the glove body. The display module is electrically connected to the pressure sensor and displays internal parameters of the glove body. The integration of the display module and the pressure sensor creates a parameter monitoring and feedback system for the treatment process. Furthermore, the mesh bonding layer inside the glove body can be equipped with a temperature and humidity sensor. The display module can read the sensor signals and display parameters such as pressure, temperature, and nebulized drug concentration inside the glove in real time. The nebulized drug concentration can be calculated based on the humidity inside the glove, allowing medical staff to adjust the treatment plan based on the data, and patients to intuitively understand the treatment status. For example, when the pressure sensor detects skin pressure exceeding 30 mmHg, the display module will issue an audible and visual alarm and automatically initiate the pressure relief procedure to avoid the risk of pressure sores caused by prolonged high pressure. In addition, the display module is electrically connected to the glove body through a first contact point, supporting the fixed use of the glove body and the nebulizer box. Internal data from the glove body is transmitted in real time to the display module of the electrical equipment in the nebulizer box, enabling both portable and fixed use of the nebulization therapy device.

[0006] Preferably, the outer side is provided with a first contact point that can locate the display module, and the first contact point is also electrically connected to the display module. The design of the first contact point enables the wearable device's glove body to be electrically connected to the nebulizer box of the fixed device. When performing fixed nebulization treatment through the nebulizer box, parameters such as pressure, temperature, and nebulized drug concentration inside the glove can also be read.

[0007] Preferably, the nebulizer also includes a glove opening, with a corresponding massage ball at the opening. The massage ball has raised surfaces, and the palm side of the glove body has a corresponding massage groove. The massage ball and massage groove work together to achieve the effects of nebulization therapy and physical massage, promoting the absorption of nebulized medication by the skin of the hands. Simultaneously, the massage ball supports the hands inserted into the glove box, allowing the patient to be in a relaxed state. When the glove body is inserted into the glove opening of the nebulizer, the massage ball embeds into the massage groove on the palm side, limiting the patient's hands and preventing them from impacting the nebulizer device inside the nebulizer. At the same time, the massage ball continuously stimulates acupoints on the palm, promoting local blood circulation and accelerating drug absorption. The raised surfaces of the massage ball are positioned according to the distribution of acupoints on the palm, and the height and shape of the raised surfaces are differentiated according to the varying stages of hand-foot syndrome in patients, meeting the needs of different skin conditions.

[0008] Preferably, the nebulizer also includes a docking mechanism that mates with the glove body. This docking mechanism has a medication inlet that mates with a pressure relief port. The docking mechanism includes a first slot located above the glove hole, and the medication inlet within the first slot mates with a first through-hole. The pressure relief port is a one-way pressure valve; internally, the nebulized medication needs to reach a preset pressure to open the port, but external devices can be easily docked to directly inject the nebulized medication. The first slot, located above the glove hole and aligned with the first through-hole of the glove body, allows the medication inlet to deliver the nebulized medication to the skin area on the back of the hand through the first through-hole in the pressure relief port. The medication inlet of the second slot mates with the second through-hole, enabling nebulized medication treatment on the fingers and pressure relief in multiple areas, preventing uneven distribution of the nebulized medication within the glove body.

[0009] Preferably, the docking mechanism also includes a second slot located at the front end of the glove hole. The second slot includes a first protrusion below the glove body and a second protrusion above the glove body, the first and second protrusions conforming to the finger shape of the glove body. The first and second protrusions of the second slot feature curved surfaces that conform to the fingers, fitting the natural curvature of the fingers when supported by the massage ball, ensuring effective support for the patient's fingers. When the glove body is inserted into the docking mechanism, the two protrusions limit the fingertips from both above and below, applying pressure to both sides of the fingers to ensure even coverage of the atomized medication on both sides of the fingers.

[0010] Preferably, the second slot has a medication inlet on the side furthest from the glove hole, and the medication inlet of the second slot mates with the second through hole. Simultaneously, the second through hole serves as a pressure relief channel, allowing excess gas to be quickly expelled and pressure balance maintained when the finger's internal pressure increases due to swelling.

[0011] Preferably, the end of the glove body is provided with an inclined second contact point, and the second through hole is provided along the extension direction of the second contact point.

[0012] Preferably, the top surfaces of both the first and second protrusions are curved, and the gap between the first and second protrusions is parallel to the extension direction of the second contact point. This curved gap design between the first and second protrusions controls the width of the gap, balancing the degree of freedom of finger movement with the pressure on the finger area. The gap direction is parallel to the extension direction of the second contact point, allowing for slight bending of the finger during treatment and avoiding joint stiffness caused by traditional sealed structures.

[0013] Preferably, the docking mechanism also includes a rotating shaft for fixing the massage ball, and the first and second protrusions are slidable relative to the glove hole. An elastomer connects the rotating shaft and the first protrusion. This allows the patient to maintain slight finger movement during treatment, avoiding joint stiffness caused by prolonged immobilization. The combination of the rotating shaft and the elastomer provides adaptability to different hand lengths while ensuring full hand extension. When the patient inserts the glove body into the nebulizer, the massage groove in the palm of the glove body engages with the massage ball, and the fingertips of the glove body contact the first protrusion.

[0014] This invention has the following beneficial effects: the nebulizer box transforms traditional Chinese medicine formulas into nebulized medication, which is then used to fill the inside of the glove body; the disassembly and docking mechanism between the multi-layer composite glove and the nebulizer box enables both portable and fixed services during the nebulization treatment process; the dynamic pressure relief system of the multi-layer composite glove, with pressure sensors and a display module forming a visual closed loop, allows for real-time control of pressure, temperature, and humidity, avoiding risks such as pressure sores; the massage ball and slot structure work together to accelerate drug absorption through physical stimulation, and the curved gaps and elastic support of the first and second protrusions adapt to different hand shapes, allowing for slight finger movement and avoiding joint stiffness caused by prolonged fixation. Attached Figure Description

[0015] To more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings in the following description are merely exemplary, and those skilled in the art can derive other embodiments based on the provided drawings without creative effort.

[0016] Figure 1 This is a schematic diagram of the structure of atomizing hand and foot skin rehabilitation device.

[0017] Figure 2 This is a front view of a misting-type hand and foot skin rehabilitation device.

[0018] Figure 3A type of atomized hand and foot skin rehabilitation device Figure 2 AA section view in the image.

[0019] Figure 4 A type of atomized hand and foot skin rehabilitation device Figure 2 BB section view in the middle.

[0020] Figure 5 A type of atomized hand and foot skin rehabilitation device Figure 3 CC section view in the image.

[0021] Figure 6 A type of atomized hand and foot skin rehabilitation device Figure 2 DD section view in the image.

[0022] Figure 7 This is a schematic diagram of the structure of the glove body of the present invention.

[0023] Figure 8 This is a front view of the glove body of the present invention.

[0024] Figure 9 This is a top view of the glove body of the present invention.

[0025] Figure 10 This is a side view of the glove body of the present invention.

[0026] Legend: 1 Atomizing box; 2 Glove body; 21 Display module; 22 First through hole; 23 First connecting contact point; 24 Second connecting contact point; 25 Massage groove; 3 Atomizing device; 4 Electrical device; 5 Docking mechanism; 51 First protrusion; 52 Second protrusion; 53 Rotating shaft; 54 Massage ball; 55 Elastomer; 56 Second through hole; 57 First slot. Detailed Implementation

[0027] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0028] Example 1 like Figure 1 and Figure 2 As shown, an atomizing hand and foot skin rehabilitation device includes an atomizing box 1 and a rehabilitation glove body 2 with at least two layers of composite structure. Figure 3 As shown, the nebulizer box 1 includes a docking mechanism 5, a nebulizing device 3, and an electrical device 4. The nebulizing device 3 prepares the traditional Chinese medicine formula required for nebulization treatment into nebulized medicine. The electrical device 4 has a display area on the outside of the nebulizer box 1, which displays data such as temperature, humidity, and pressure inside the glove body 2 when it docks with the docking mechanism 5.

[0029] Combination Figure 4 and Figure 5 As shown, the docking mechanism 5 also includes a rotating shaft 53 for fixing the massage ball 54. The first protrusion 51 and the second protrusion 52 can slide relative to the glove hole. An elastomer 55 connects the rotating shaft 53 and the first protrusion 51. Patients can maintain slight finger movement during treatment, avoiding joint stiffness caused by prolonged immobilization. The combination of the rotating shaft 53 and the elastomer 55 provides adaptability to different hand lengths while ensuring full extension of both hands. When the patient wears the glove body 2 and inserts it into the nebulizer box 1, the massage groove 25 in the palm of the glove body 2 cooperates with the massage ball 54, and the fingertips of the glove body 2 contact the first protrusion 51.

[0030] like Figure 7 As shown, the inner layer of the glove body 2 is provided with a mesh bonding layer. A pressure sensor is located on the side of the mesh bonding layer near the glove body 2. The glove body 2 has a pressure relief structure, which includes pressure relief holes. The pressure relief holes are a first through hole 22 located on the outer side of the back of the hand and a second through hole 56 located at the fingertips of the glove body 2. The nebulizer 1 converts the traditional Chinese medicine formula into nebulized medicine through the built-in nebulizer 3. Combined with the multi-layer composite structure of the glove body 2, it achieves the dual functions of precise drug delivery and skin protection. The inner layer of the glove body 2 uses a mesh bonding layer to fit the skin. The pressure sensor is embedded between the mesh bonding layer and the outer layer, which can monitor the internal pressure changes of the glove body 2 in real time. When the pressure exceeds the safety threshold, the pressure is automatically relieved through the first through hole 22 on the outer side of the back of the hand and the second through hole 56 at the fingertips, effectively preventing skin blood circulation disorders caused by excessive pressure. The pressure relief holes are closed by a valve made of elastic elements that opens and closes when the internal pressure reaches the threshold, so as to maintain the internal pressure of the glove body 2 to fit the hand and generate a slight positive pressure.

[0031] like Figure 8The pressure relief structure also includes a display module 21, located on the outer back of the glove body 2. The display module 21 is electrically connected to the pressure sensor and can display internal parameters of the glove body 2. The integration of the display module 21 and the pressure sensor establishes parameter monitoring and feedback for the treatment process. In this embodiment, the mesh bonding layer inside the glove body 2 may be equipped with a temperature and humidity sensor. The display module 21 can read the sensor signals and display parameters such as pressure, temperature, and atomized drug concentration inside the glove body 2 in real time. The atomized drug concentration display is based on the humidity conversion result from the temperature and humidity sensor inside the glove body 2. Medical staff can adjust the treatment plan based on the data, and patients can also intuitively understand the treatment status. For example, when the pressure sensor detects skin pressure exceeding 30 mmHg, the display module 21 will issue an audible and visual alarm and automatically start the pressure relief procedure to avoid the risk of pressure sores caused by prolonged high pressure. In addition, the display module 21 is electrically connected to the glove body 2 through the first contact point 23, supporting the fixed use of the glove body 2 and the nebulizer box 1. The internal data of the glove body 2 is transmitted in real time to the display module 21 of the electrical equipment 4 of the nebulizer box 1, realizing the portable and fixed use of the nebulization therapy device.

[0032] like Figure 8 As shown, the outer side is provided with a first contact point 23 that can position the display module 21. The first contact point 23 is also electrically connected to the display module 21. The design of the first contact point 23 enables the wearable device's glove body 2 to be electrically connected to the nebulizer box 1 of the fixed device. When performing fixed nebulization treatment through the nebulizer box 1, parameters such as pressure, temperature, and humidity inside the glove body 2 can also be read, and the humidity parameter can be converted into data display of the nebulized drug concentration.

[0033] Combination Figure 6 and Figure 9 As shown, the nebulizer box 1 also includes a glove hole, with a massage ball 54 corresponding to the glove hole. The palm side of the glove body 2 has a massage groove 25 corresponding to the massage ball 54. The massage ball 54 and the massage groove 25 work together to achieve the effects of nebulization therapy and physical massage, promoting the absorption of the nebulized medication by the skin of the hands. Simultaneously, the massage ball 54 supports the hands inserted into the glove box, allowing the patient to be in a naturally relaxed state. When the glove body 2 is inserted into the glove hole of the nebulizer box 1, the massage ball 54 embeds into the massage groove 25 on the palm side of the glove body 2, limiting the patient's hands and preventing them from impacting the nebulizer device 3 inside the nebulizer box 1. At the same time, the massage ball 54 can continuously stimulate acupoints in the palm, promoting local blood circulation and accelerating drug absorption.

[0034] Combination Figure 4 and Figure 6As shown, the atomizing box 1 also includes a docking mechanism 5 that cooperates with the glove body 2. The docking mechanism 5 has a drug addition port that cooperates with the pressure relief hole. The docking mechanism 5 includes a first slot 57 located above the glove hole. The drug addition port in the first slot 57 cooperates with the first through hole 22.

[0035] Combination Figure 6 and Figure 10 As shown, the first slot 57 is located above the glove hole and aligned with the first through hole 22 of the glove body 2. The drug addition port delivers the nebulized drug to the skin area on the back of the hand through the first through hole 22 in the pressure relief hole. The drug addition port of the second slot cooperates with the second through hole 56, realizing nebulized drug treatment and dynamic pressure relief in the finger area, avoiding uneven distribution of nebulized drug in the glove body 2. Independently controllable solenoid valves are added to the first slot 57 and the second slot of the docking mechanism 5, and the palm and fingers have independent channels for drug delivery network. Furthermore, the solenoid valve of the second slot can be divided into multiple branches according to the thumb. Medical staff can set the drug flow rate of different channels through the electrical device 4 of the nebulizer box 1. For example, for patients with hand-foot syndrome, the flow rate of the finger channel can be adjusted to 1.5 ml / min, and the flow rate of the back of the hand channel can be kept at 1 ml / min. High-concentration drug delivery is given to the lesion area at the fingertip to avoid drug waste. Multi-channel distribution reduces the amount of drug used in non-lesion areas and avoids the side effects of nebulized treatment such as eczema and ulcers in non-lesion areas.

[0036] Combination Figure 4 and Figure 10 As shown, the docking mechanism 5 also includes a second slot located at the front end of the glove hole. The second slot includes a first protrusion 51 located below the glove body 2 and a second protrusion 52 located above the glove body 2. The first protrusion 51 and the second protrusion 52 conform to the shape of the fingers on the glove body 2. The first protrusion 51 and the second protrusion 52 of the second slot adopt curved surfaces that conform to the fingers, fitting the natural curvature of the fingers when the hands are supported by the massage ball 54, ensuring that the patient's fingers are also effectively supported. When the glove body 2 is inserted into the docking mechanism 5, the two protrusions limit the fingertips from the top and bottom, applying pressure to both sides of the fingers to ensure that the atomized medication is evenly covered on both sides of the fingers.

[0037] like Figure 4 As shown, the second slot has a drug filling port on the side away from the glove hole, and the drug filling port of the second slot cooperates with the second through hole 56. At the same time, the second through hole 56 serves as a pressure relief channel, which can quickly expel excess gas and maintain pressure balance when the internal pressure of the finger increases due to swelling.

[0038] like Figure 9As shown, the end of the glove body 2 is provided with an inclined second contact point 24, and the second through hole 56 is provided along the extending direction of the second contact point 24. The top surfaces of the first protrusion 51 and the second protrusion 52 are both curved surfaces, and the gap between the first protrusion 51 and the second protrusion 52 is parallel to the extending direction of the second contact point 24.

[0039] The curved gap design of the first protrusion 51 and the second protrusion 52 controls the width of the curved gap, balances the degree of freedom of finger movement and the pressure on the finger. The gap direction is parallel to the extension direction of the second contact point 24, allowing the finger to bend slightly during treatment, avoiding joint stiffness caused by traditional sealed structures.

[0040] Example 2 Unlike Embodiment 1, in this embodiment, a heating component, such as a resistance thermometer, is provided inside the massage ball 54, and the atomizing device 3 in the atomizing box 1 includes a metering pump with multiple metering functions and a valve structure that controls the slow release of various drugs. The heating component inside the massage ball 54 regulates the skin surface temperature to 32-34°C in real time via a temperature sensor in the display module 21, promoting the dilation of skin pores; the aforementioned metering pump and valve structure, through a dual-channel design of the first through-hole 22 and the second through-hole 56, delivers atomized Chinese medicine particles and liposome-encapsulated Western medicine components, such as chemotherapy adjuvant drugs, in batches according to a preset ratio.

[0041] This embodiment improves drug absorption efficiency through temperature control, enabling multiple drug treatments such as atomization of traditional Chinese medicine and sustained release of Western medicine, and making the device adaptable to various solutions for chemotherapy-related neurotoxicity.

[0042] Example 3 Unlike Embodiment 2, in this embodiment, the nebulizer 3 is integrated into the wrist area of ​​the glove body 2. There is no need for the nebulizer box 1 to nebulize the TCM formula or add nebulized medication to the glove body 2. Patients can add a small dose of the TCM formula to the nebulizer 3 in the wrist area to generate nebulized medication themselves. Treatment can be performed anytime, anywhere, such as outdoors or in the office, making it particularly suitable for patients with hand-foot syndrome caused by chemotherapy. The nebulizer 3 connects to a medical staff app via a communication module within the electrical device 4, enabling remote control and guidance of drug dosage and nebulization time. The electrical device 4 records treatment data in real time, such as nebulization duration and remaining drug amount.

[0043] The present invention has the following beneficial effects: the nebulizer box 1 converts the traditional Chinese medicine formula into nebulized medicine, which is then filled into the glove body 2. The multi-layer composite glove body 2 and the nebulizer box 1 are connected and disconnected by the disassembly and docking mechanism 5 to achieve both portable and fixed services for the nebulization treatment process. The dynamic pressure relief system of the multi-layer composite glove body 2, with pressure sensor and display module 21 forming a visual closed loop, controls pressure, temperature and humidity in real time, avoiding risks such as pressure sores. The massage ball 54 works in conjunction with the slot structure to accelerate drug absorption through physical stimulation, and the curved gap and elastic support of the first protrusion 51 and the second protrusion 52 adapt to different hand shapes, allowing slight finger movement and avoiding joint stiffness caused by prolonged fixation.

[0044] The above embodiments and / or implementation methods are merely illustrative of preferred embodiments and / or implementation methods for realizing the technology of the present invention, and are not intended to limit the implementation methods of the technology of the present invention in any way. Any person skilled in the art may make some modifications to other equivalent embodiments without departing from the scope of the technical means disclosed in the content of the present invention, but these should still be regarded as the technology or embodiments that are substantially the same as the present invention.

Claims

1. A nebulizing hand and foot skin rehabilitation device, comprising a nebulizing box (1) and a glove body (2) with at least two layers of composite structure, characterized in that, The inner layer of the glove body (2) is provided with a mesh bonding layer. A pressure sensor is provided on the side of the mesh bonding layer near the glove body (2). The glove body (2) is provided with a pressure relief structure. The pressure relief structure includes a pressure relief hole. The pressure relief hole is a first through hole (22) located on the outer side of the back of the hand of the glove body and a second through hole (56) located at the fingertips of the glove body.

2. The atomizing hand and foot skin rehabilitation device according to claim 1, characterized in that, The pressure relief structure also includes a display module (21), which is located on the back of the hand of the glove body (2). The display module (21) is electrically connected to the pressure sensor and can display the internal parameters of the glove body.

3. The atomizing hand and foot skin rehabilitation device according to claim 2, characterized in that, The outer side of the glove body (2) is provided with a first contact point (23) that can locate the display module (21), and the first contact point (23) is electrically connected to the display module (21).

4. The atomizing hand and foot skin rehabilitation device according to claim 1, characterized in that, The atomizing box (1) also includes a glove hole, and a massage ball (54) is provided at the glove hole. The surface of the massage ball (54) is provided with protrusions that conform to the patient's skin condition. The palm side of the glove body is provided with a massage groove (25) corresponding to the massage ball (54).

5. The atomizing hand and foot skin rehabilitation device according to claim 4, characterized in that, The atomizing box (1) also includes a docking mechanism (5) that cooperates with the glove body. The docking mechanism (5) has a drug addition port that cooperates with the pressure relief hole. The docking mechanism (5) includes a first slot (57) that is located above the glove hole. The drug addition port in the first slot (57) cooperates with the first through hole (22).

6. The atomizing hand and foot skin rehabilitation device according to claim 5, characterized in that, The docking mechanism (5) further includes a second slot, which is located at the front end of the glove hole. The second slot includes a first protrusion (51) located below the glove body and a second protrusion (52) located above the glove body. The first protrusion (51) and the second protrusion (52) are matched with the finger shape of the glove body.

7. The atomizing hand and foot skin rehabilitation device according to claim 6, characterized in that, The second slot has a drug filling port on the side away from the glove hole. The drug filling port of the second slot cooperates with the second through hole (56). The end of the glove body has an inclined second connecting contact point (24). The second through hole (56) is set along the extension direction of the second connecting contact point (24).

8. The atomizing hand and foot skin rehabilitation device according to claim 7, characterized in that, The top surfaces of the first protrusion (51) and the second protrusion (52) are both curved surfaces, and the gap between the first protrusion (51) and the second protrusion (52) is parallel to the extension direction of the second contact point (24).

9. The atomizing hand and foot skin rehabilitation device according to claim 6, characterized in that, The docking mechanism (5) further includes a rotating shaft (53) for fixing the massage ball (54), the first protrusion (51) and the second protrusion (52) are slidable relative to the glove hole, and the rotating shaft (53) and the first protrusion (51) are connected by an elastomer (55).

10. The atomizing hand and foot skin rehabilitation device according to claim 9, characterized in that, The massage ball (54) is equipped with a heating component inside, and the atomizing device (3) of the atomizing box (1) includes at least two metering pumps and valve structures for controlling the slow release of drugs.

Citation Information

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