Intelligent monitoring device for exercise rehabilitation of chronic diseases

The intelligent monitoring system for water-based treadmills addresses joint stress and fall risks in fatty patients by using sensors to adjust treadmill settings and prevent falls, ensuring safe and efficient exercise.

CN120305628APending Publication Date: 2025-07-15SHANGHAI JIAOTONG UNIV
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Patent Information

Application Number
CN202510631996.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-16
Publication Date
2025-07-15

AI Technical Summary

Technical Problem

Obese patients have a risk of falling while exercising underwater treadmills and find it difficult to get up. The intensity of exercise is inaccurate, which affects the rehabilitation effect.

Method used

An intelligent monitoring device is designed, including a water cavity, running functional components, water body fluctuation sensor, wearer and controller, to determine the intensity of movement and fall risk by detecting water body fluctuations and heart rate changes, and is equipped with telescopic parts and temperature adjustment functions to provide buoyancy and safety protection.

Benefits of technology

Effectively reduce knee joint burden, accurately evaluate exercise intensity, reduce fall risk, provide safety protection and rehabilitation training data analysis, and improve exercise efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of rehabilitation monitoring, in particular to an intelligent monitoring device for exercise rehabilitation of chronic diseases, which comprises a box body with a top opening and a controller, a water cavity used for containing liquid is formed in the box body, a running function assembly is arranged at the bottom of the water cavity, and the running function assembly is used for enabling a patient to run or walk underwater after being started; a water body fluctuation sensor is arranged in the water cavity and used for detecting water body fluctuation caused by underwater running of the patient; the controller is used for judging and recording the exercise intensity of the patient according to the water body fluctuation amplitude detected by the water body fluctuation sensor, and the water body fluctuation amplitude is in positive correlation with the exercise intensity of the patient. According to the technical scheme, whether the patient enters the traveling state or not is judged by detecting the heart rate change of the patient, and the exercise intensity of the patient is analyzed through the water fluctuation amplitude.
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Description

Technical Field

[0001] The present invention relates to the field of rehabilitation monitoring, and in particular to an intelligent monitoring device for motor rehabilitation of chronic diseases. Background Art

[0002] With the progress of industrialization and urbanization, people's lifestyles have gradually changed, and the risk of chronic non-communicable diseases caused by unhealthy lifestyles and eating habits has continued to increase. Today, obesity has become a common chronic disease. In many countries, the problem of overweight and obesity has become increasingly prominent and is one of the important factors affecting people's health. Obesity not only affects body shape, but also has many harms to physical and mental health. Obesity, especially central obesity, can increase the risk of a variety of chronic diseases, such as diabetes, hypertension, hyperlipidemia, cardiovascular and cerebrovascular diseases, etc. Moreover, obese people will also have an increased risk of certain cancers, such as breast cancer and colon cancer. Scientific fitness and exercise play an important role in the prevention and treatment of chronic diseases such as obesity, and more and more residents are beginning to exercise and do fitness and exercise.

[0003] For obese patients, due to fat accumulation and weight gain, the burden on the knee joints and other parts of the body will increase during exercise, and the risk of sports injuries will increase, such as meniscus injury, ligament, joint capsule tear or rupture. The underwater treadmill is a new type of exercise equipment. When obese patients exercise inside it, the buoyancy of the water will act on the obese patients to reduce the burden on the knee joints and other parts. At the same time, the water increases the resistance during running, so that the patients can quickly reach the rated amount of exercise. However, underwater treadmills have safety hazards. If the patient falls, it will not only be difficult to get up, but also cause the patient to choke on water. Summary of the invention

[0004] In order to solve the above problems, the present invention provides an intelligent monitoring device for exercise rehabilitation of chronic diseases, which is used to determine whether the patient enters a staggering state by detecting changes in the patient's heart rate, and analyze the patient's exercise intensity by the amplitude of water fluctuations.

[0005] In order to achieve the above-mentioned object, the technical solution of the present invention is as follows: an intelligent monitoring device for exercise rehabilitation of chronic diseases, comprising a box with a top opening and a controller;

[0006] A water cavity for containing liquid is provided in the box body, and a running function component is provided at the bottom of the water cavity, and the running function component is used for allowing the patient to run underwater after being started; a water body fluctuation sensor is provided in the water cavity, and the water body fluctuation sensor is used to detect the water body fluctuation caused by the patient's underwater running;

[0007] The controller is used to judge and record the patient's exercise intensity according to the water body fluctuation amplitude detected by the water body fluctuation sensor, and the water body fluctuation amplitude is positively correlated with the patient's exercise intensity.

[0008] The above scheme has the following beneficial effects:

[0009] 1. In this solution, the patient can run on the running function component in the water cavity. The liquid in the water cavity can provide a certain buoyancy for the patient, which can alleviate the wear and pressure of the patient's own weight on the knee joint and other parts, and reduce the side effects of the patient in rehabilitation exercise. At the same time, the liquid will increase the resistance of the patient when running, thereby achieving efficient sports training efficiency.

[0010] 2. In this scheme, different patients have different body shapes, weights, and exercise habits, which results in different calories consumed even when running at the same speed. When the patient's legs swing underwater, they will move the water, causing the water to fluctuate. According to the patient's body shape, amplitude, and strength, it will be converted into different sizes of water fluctuations. By detecting the water fluctuations, it can directly feedback the patient's work, and thus feedback the patient's exercise consumption, which is convenient for a deeper understanding of the patient's exercise status and evaluation of the patient's rehabilitation exercise training volume.

[0011] Furthermore, it also includes a wearer, which is used for being worn by a patient, and is used to detect the patient's heart rate, and the wearer is provided with an inertial sensor;

[0012] The controller is used to stop the running function component when the patient's heart rate change value and the acceleration detected by the inertial sensor exceed preset values within a unit time.

[0013] Beneficial effects: If a patient falls while running, he or she may choke on water, and the running function component is still pulling the patient to run, making it difficult for the patient to get up, so the risk of falling is extremely high. The inertial sensor of the wearable device can detect the shaking of the patient's body during the staggering process and determine whether the patient is about to fall. Through heart rate detection, the wearable device can identify the heart rate fluctuations caused by the patient's accelerated heartbeat when falling, so that when the patient is about to fall, the running function component is stopped to help the patient stabilize the center of gravity and make it easier for the patient to get up after falling.

[0014] Furthermore, the wearable device is also used to detect the patient's blood oxygen, blood sugar, blood pressure and body temperature.

[0015] Beneficial effects: The wearable device is also used to detect the patient's blood oxygen, blood sugar, blood pressure and body temperature, thereby evaluating the patient's physical condition from multiple aspects.

[0016] Furthermore, a partition is provided on the top of the water chamber, and a restriction opening is opened on the partition; a plurality of telescopic parts are provided on the inner side of the restriction opening, and the extension direction of the telescopic parts is toward the center of the restriction opening; the controller is used to control the extension of the telescopic parts when the patient's heart rate change value and the acceleration detected by the inertial sensor exceed preset values within a unit time.

[0017] Beneficial effects: The user can run in the restraint opening. When falling, the user can rely on the partition to quickly stabilize their body shape. In addition, when the wearable device detects that the patient has fallen, the telescopic member is used to narrow the restraint opening to enhance the restraint on the patient and help the patient maintain balance.

[0018] Furthermore, a temperature regulator is provided in the water chamber. The temperature regulator is used to control the temperature of the liquid in the water chamber. When the wearable device detects that the patient's body temperature has risen, the temperature of the liquid in the water chamber is reduced to 70%-99% of the patient's body temperature.

[0019] Beneficial effects: The liquid in the water chamber can be heated to make the liquid temperature close to the normal body temperature of the human body. After the patient exercises, the body's heat dissipation ability is less than the heat dissipation requirement. By reducing the temperature of the liquid in the water chamber, it can assist the patient in dissipating heat.

[0020] Furthermore, the box body is also provided with a physical and chemical analyzer, which is used to perform physical and chemical analysis on the body fluids generated by the patient during running and incorporated into the liquid in the water chamber.

[0021] Beneficial effects: In addition to providing buoyancy to relieve joint burden and providing training resistance to promote training efficiency, the liquid in the water chamber can also dissolve the body fluids generated by the patient during exercise. The body fluids can be sweat and other secretions generated during exercise. By performing physical and chemical analysis on them, the patient's pathological information can be captured, so as to collect the patient's condition changes during exercise training and provide a basis for long-term analysis.

[0022] Furthermore, a touch display is provided on the partition. The touch display is used to enter the patient's identity information and display the patient's heart rate, blood oxygen, blood glucose, blood pressure, body temperature, exercise time, and exercise intensity information; the controller is used to bind the patient's heart rate, blood oxygen, blood glucose, blood pressure, body temperature, exercise time, and exercise intensity information to the patient's identity information and store them.

[0023] Beneficial effects: During the underwater running exercise process, the patient can understand their own condition by checking the touch display, which is convenient for the patient to control the amount and range of exercise. In addition, the touch display can also enter the patient's identity information, which is convenient for collecting and storing various physical signs and exercise parameters of the patient.

[0024] Furthermore, the controller is used to pair the relationship between the body fluid secretion volume and body fluid type of the patient with the exercise time, exercise intensity, heart rate, blood oxygen, blood glucose, and blood pressure, body temperature based on the physical and chemical results analyzed by the physical and chemical analyzer.

[0025] Beneficial effects: The controller can record the relationship between various pathologies, physical signs, and exercise performances of each patient over time, which is convenient for doctors to understand and analyze the patient's condition and formulate medical plans.

[0026] Further, the box body is provided with a water outlet and a water inlet, a sealing door is arranged on the side wall of the box body, a pressure sensor is arranged at the bottom of the box body, and a water body density regulator is arranged inside the box body, and the water body density regulator is used to control the density of the liquid in the water cavity;

[0027] The controller is used to detect the patient's weight through the pressure sensor, control the water body density regulator to adjust the density of the liquid in the water cavity according to the patient's weight, and the patient's weight is proportional to the liquid density;

[0028] The controller is used to search for the patient's medical history in a preset hospital medical record system based on the patient's identity information, and control the water body density regulator to adjust the density of the liquid in the water cavity according to the patient's orthopedic disease history.

[0029] Beneficial effects: The patient can enter the box body by opening the sealing door, and perform exercise preparation after inputting information on the touch display. The water outlet and the water inlet can respectively inject and extract liquid into the box body. The adjustment of the liquid is based on the patient's weight detected by the pressure sensor, and the density of the liquid in the water cavity is adjusted by the water body density regulator to enhance the buoyancy and further reduce the burden on the patient's joints.

[0030] In addition, the controller can also search for the patient's medical history in a preset hospital medical record system through the patient's identity information. When the patient has bone diseases such as osteoporosis and arthritis, the buoyancy is increased by regulating the density of the liquid in the water cavity, and the burden on the patient's joints is reduced.

[0031] Further, the running function component is one of a caterpillar treadmill and a roller treadmill.

[0032] Beneficial effects: The running function component can be a caterpillar treadmill or a roller treadmill, providing a platform for the patient to run in the box body.

[0033] The additional aspects and advantages of the present invention will be partially given in the following description, partially become obvious from the following description, or be understood through the practice of the present invention. Description of the Drawings

[0034] Figure 1 Isometric schematic diagram of an embodiment of the intelligent monitoring device for chronic disease exercise rehabilitation of the present invention;

[0035] Figure 2 Isometric sectional view schematic diagram of an embodiment of the intelligent monitoring device for chronic disease exercise rehabilitation of the present invention;

[0036] Figure 3 Schematic diagram of the water body fluctuation sensor of an embodiment of the intelligent monitoring device for chronic disease exercise rehabilitation of the present invention;

[0037] Figure 4Schematic side cross-sectional view of an embodiment of the intelligent monitoring device for chronic disease exercise rehabilitation of the present invention;

[0038] Figure 5 Schematic diagram of the control system of an embodiment of the intelligent monitoring device for chronic disease exercise rehabilitation of the present invention.

[0039] Reference numerals in the accompanying drawings of the specification include: 1, box body; 2, running function component; 3, water body fluctuation sensor; 4, wearer; 5, partition board; 6, limiting port; 7, telescopic member; 8, temperature regulator; 9, physical and chemical analyzer; 10, touch display; 11, water outlet; 12, water inlet; 13, sealing door; 14, water body density regulator. Detailed implementation manners

[0040] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. Apparently, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0041] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention. In addition, the terms "first", "second", and "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0042] In the description of the present invention, it should be noted that unless otherwise clearly specified and limited, the terms "installed", "connected", and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0043] The following is a further detailed description through specific implementation manners:

[0044] As shown in the attached Figures 1 - 5 figures: An intelligent monitoring device for chronic disease exercise rehabilitation includes a box body 1 with an open top, a controller, and a wearer 4.

[0045] Inside the box body 1, there is a water chamber for containing liquid. At the bottom of the water chamber, there is a running function component 2. The running function component 2 is a tracked treadmill that has been waterproofed. The running function component 2 is used to allow patients to run or walk underwater after startup. Among them, the running function component 2 controls the conveying speed of the track. For example, it allows patients to perform walking exercises at 2 km / h and running exercises at 2 - 10 km / h. The box body 1 is provided with a water outlet 11 and a water inlet 12. A sealed door 13 is opened on the side wall of the box body 1. A pressure sensor is installed at the bottom of the box body 1. A water body density regulator 14 is bolted inside the box body 1. The water body density regulator 14 is a sand pump, and the sand pump is used to add biologically safe solid salts or salt solutions to the liquid in the water chamber. Inside the water chamber, there is a water body fluctuation sensor 3. The water body fluctuation sensor 3 can be a float type water level gauge, and the water body fluctuation sensor 3 is used to detect the water body fluctuation caused by the patient's underwater running.

[0046] The wearable device 4 is used for patients to wear. The wearable device 4 is one of a bracelet or a vest. The wearable device 4 is provided with an inertial sensor, a heart rate sensor, a blood oxygen sensor, a blood glucose sensor, a blood pressure sensor, and a temperature sensor. The controller is used to stop the running function component 2 when the change value of the patient's heart rate per unit time and the acceleration detected by the inertial sensor exceed the preset value.

[0047] The controller is used to judge and record the patient's exercise intensity according to the water body fluctuation amplitude detected by the water body fluctuation sensor 3. The water body fluctuation amplitude is positively correlated with the patient's exercise intensity.

[0048] At the top of the water chamber, there is a partition 5. A limiting port 6 is opened on the partition 5. Inside the limiting port 6, there are several telescopic members 7. The telescopic members 7 are air bags. The extending direction of the telescopic members 7 faces the center of the limiting port 6. The controller is used to control the telescopic members 7 to extend when the change value of the patient's heart rate per unit time and the acceleration detected by the inertial sensor exceed the preset value. The extension amount of the telescopic members 7 is between 3 cm and 10 cm.

[0049] The specific implementation process is as follows: The patient can enter the box body 1 by opening the sealed door 13 and stand inside the limiting port 6, so that the lower body of the patient is inside the box body 1 and the upper body is on the partition 5. The box body 1 injects liquid into the water chamber through the water inlet 12. The liquid has been heated to near the normal human body temperature before injection.

[0050] The patient wears the wearable device 4 on the upper body and starts running by starting the running function component 2. When running, the lower body of the patient is immersed in the liquid in the water chamber. The liquid will generate buoyancy on the patient, relieve the pressure of the patient's own weight on parts such as the knee joint, thereby reducing the damage to parts such as the patient's knee joint caused by exercise, reducing joint swelling and pain caused by exercise, and is especially suitable for diabetic patients and obese patients.

[0051] The partition 5 can prevent the patient from falling. When the patient falls, the body will tilt greatly due to the unstable center of gravity, and the partition 5 can support the patient after the tilt. However, since the running function component 2 is still running, it may continue to involve the patient and pull the patient into the restriction port 6.

[0052] The wearable device 4 can detect various vital signs of the patient, thereby monitoring the patient's physical condition during exercise. When the patient is about to fall and the body tilts significantly, the inertial sensor can capture the rapid and violent shaking, thereby determining whether the patient is about to fall. The heart rate sensor can determine the acceleration of the patient's heart rate when falling, thereby providing feedback during the patient's fall.

[0053] When the wearer 4 determines that the patient has fallen, the running function component 2 is stopped to prevent the running function component 2 from continuing to pull and causing the patient's center of gravity to continue to tilt. At the same time, the telescopic component 7 is controlled to telescope, reduce the restriction opening 6 or clamp the patient, so that the patient can quickly stabilize his body shape. The telescopic component 7 is an airbag that can be quickly inflated by gas drive and has a certain degree of flexibility, which can buffer the impact force generated during clamping.

[0054] Different patients have different body shapes, weights, and exercise habits, which results in different calories burned even when running at the same speed. When the patient's legs swing underwater, the legs will move the water, causing the water to fluctuate. Depending on the patient's body shape, amplitude, and strength, it will be converted into water fluctuations of different sizes. By detecting the fluctuations in the water, it can directly feedback the patient's work and thus the patient's exercise consumption, facilitating a deeper understanding of the patient's exercise conditions and evaluating the patient's rehabilitation exercise training volume. Compared with the existing system, there is no need to set up multiple inertial sensors on the legs, nor is there any need to perform complex trajectory calculations. The patient's work can be directly fed back through the fluctuations in the water.

[0055] A temperature regulator 8 is provided in the water cavity, and the temperature regulator 8 is used to control the temperature of the liquid in the water cavity. When the wearer 4 detects that the patient's body temperature rises, the temperature of the liquid in the water cavity is reduced to 70%-99% of the patient's body temperature.

[0056] The liquid in the water cavity can be heated to make the liquid temperature close to the normal body temperature. After the patient exercises, his own heat dissipation capacity is less than the heat dissipation demand, and the temperature of the liquid in the water cavity can be lowered to assist the patient in heat dissipation.

[0057] The box 1 is also provided with a physical and chemical analyzer 9, which is used to perform physical and chemical analysis on the body fluids generated by the patient during running and then blended into the liquid in the water cavity.

[0058] In addition to providing buoyancy to relieve joint burden and providing training resistance to promote training efficiency, the liquid in the water chamber can also dissolve the body fluids produced by the patient during exercise. The body fluids can be sweat and other secretions produced during exercise. By performing physical and chemical analysis on them, the pathological information of the patient can be captured, so as to collect the changes in the patient's condition during exercise training and provide a basis for long-term analysis.

[0059] A touch display 10 is provided on the partition plate 5. The touch display 10 is used to input the patient's identity information and display the patient's heart rate, blood oxygen, blood sugar, blood pressure, body temperature, exercise time and exercise intensity information; the controller is used to bind the patient's heart rate, blood oxygen, blood sugar, blood pressure, body temperature, exercise time and exercise intensity information to the patient's identity information and store it.

[0060] During the underwater running exercise process, the patient can understand his own condition by viewing the touch display 10, which is convenient for the patient to control the amount and range of exercise. In addition, the touch display 10 can also input the patient's identity information, which is convenient for collecting and storing the patient's various physical signs and exercise parameters.

[0061] The controller is used to pair the relationship between the amount and type of the patient's body fluid secretion and the exercise time, exercise intensity, heart rate, blood oxygen, blood sugar, blood pressure, and body temperature according to the physical and chemical results analyzed by the physical and chemical analyzer 9.

[0062] The controller can record the relationship between various pathologies, physical signs, and exercise performances of each patient over time, which is convenient for doctors to understand and analyze the patient's condition and formulate medical plans.

[0063] A pressure sensor is provided at the bottom of the box body 1, and a water density regulator 14 is provided inside the box body 1. The water density regulator 14 is used to control the density of the liquid in the water chamber;

[0064] The controller is used to detect the patient's weight through the pressure sensor, and control the water density regulator 14 to adjust the density of the liquid in the water chamber according to the patient's weight. The patient's weight is proportional to the liquid density;

[0065] The controller is used to search for the patient's medical history in the preset hospital medical record system based on the patient's identity information, and control the water density regulator 14 to adjust the density of the liquid in the water chamber according to the patient's orthopedic disease history.

[0066] The patient can enter the box body 1 by opening the sealed door 13, and perform exercise preparation after inputting information on the touch display 10. The water outlet 11 and the water inlet 12 can respectively inject and extract liquid into the box body 1. The adjustment of the liquid is based on the patient's weight detected by the pressure sensor, and the density of the liquid in the water chamber is adjusted by the water density regulator 14 to enhance the buoyancy and further reduce the burden on the patient's joints.

[0067] In addition, the controller can also search for the patient's medical history in the preset hospital medical record system through the patient's identity information. When the patient has bone diseases such as osteoporosis and arthritis, by regulating the density of the liquid in the water cavity, the buoyancy can be increased to reduce the burden on the patient's joints.

[0068] Obviously, the above embodiments are merely examples for clear illustration and not limitations on the implementation manners. For those of ordinary skill in the art, other different forms of changes or modifications can be made based on the above description. It is not necessary and impossible to enumerate all implementation manners here. And the obvious changes or modifications derived therefrom are still within the protection scope of the present invention.

Claims

1. An intelligent monitoring device for chronic disease exercise rehabilitation, characterized in that, It includes a box body (1) with an open top and a controller; Inside the box body (1), there is a water chamber for containing liquid. At the bottom of the water chamber, there is a running function component (2) which is used for allowing a patient to perform underwater running after being started. Inside the water chamber, there is a water body fluctuation sensor (3) which is used for detecting the water body fluctuation caused by the patient's underwater running; The controller is used for judging and recording the patient's exercise intensity according to the amplitude of the water body fluctuation detected by the water body fluctuation sensor (3), and the amplitude of the water body fluctuation is positively correlated with the patient's exercise intensity.

2. The intelligent monitoring device for chronic disease exercise rehabilitation according to claim 1, characterized in that, It further includes a wearable device (4) which is used for the patient to wear. The wearable device (4) is used for detecting the patient's heart rate and is provided with an inertial sensor; The controller is used for stopping the running function component (2) when the change value of the patient's heart rate per unit time and the acceleration detected by the inertial sensor exceed a preset value.

3. The intelligent monitoring device for chronic disease exercise rehabilitation according to claim 2, characterized in that, The wearable device (4) is also used for detecting the patient's blood oxygen, blood glucose, blood pressure and body temperature.

4. The intelligent monitoring device for chronic disease exercise rehabilitation according to claim 3, characterized in that, At the top of the water chamber, there is a partition plate (5). A restriction port (6) is opened on the partition plate (5); inside the restriction port (6), there are several telescopic members (7), and the extending direction of the telescopic members (7) is towards the center of the restriction port (6); the controller is used for controlling the telescopic members (7) to extend when the change value of the patient's heart rate per unit time and the acceleration detected by the inertial sensor exceed a preset value.

5. The intelligent monitoring device for chronic disease exercise rehabilitation according to claim 4, characterized in that, Inside the water chamber, there is a temperature regulator (8) which is used for controlling the temperature of the liquid in the water chamber. When the wearable device (4) detects that the patient's body temperature rises, it reduces the temperature of the liquid in the water chamber to 70%-99% of the patient's body temperature.

6. The intelligent monitoring device for chronic disease exercise rehabilitation according to claim 5, wherein, The box body (1) is also provided with a physical and chemical analyzer (9) which is used for performing physical and chemical analysis on the body fluid generated by the patient during running after it is incorporated into the liquid in the water chamber.

7. The intelligent monitoring device for chronic disease exercise rehabilitation according to claim 6, wherein, On the partition plate (5), there is a touch display (10) which is used for inputting the patient's identity information and is used for displaying the patient's heart rate, blood oxygen, blood glucose, blood pressure, body temperature, exercise time and exercise intensity information; the controller is used for binding the patient's heart rate, blood oxygen, blood glucose, blood pressure, body temperature, exercise time and exercise intensity information with the patient's identity information and storing them.

8. The intelligent monitoring device for chronic disease exercise rehabilitation according to claim 7, characterized in that, The controller is used for pairing the relationship between the body fluid secretion volume and body fluid type of the patient and the exercise time, exercise intensity, heart rate, blood oxygen, blood glucose, blood pressure and body temperature through the physical and chemical results analyzed by the physical and chemical analyzer (9).

9. The intelligent monitoring device for chronic disease exercise rehabilitation according to claim 8, characterized in that, The box body (1) is provided with a water outlet (11) and a water inlet (12). A sealing door (13) is opened on the side wall of the box body (1). A pressure sensor is provided at the bottom of the box body (1). Inside the box body (1), there is a water body density regulator (14) which is used for controlling the density of the liquid in the water chamber; The controller is used for detecting the patient's weight through the pressure sensor and controlling the water body density regulator (14) to adjust the density of the liquid in the water chamber according to the patient's weight. The patient's weight is proportional to the liquid density; The controller is used for searching for the patient's medical history in a preset hospital medical record system based on the patient's identity information and controlling the water body density regulator (14) to adjust the density of the liquid in the water chamber according to the patient's orthopedic disease history.

10. The intelligent monitoring device for chronic disease exercise rehabilitation according to claim 9, characterized in that, The running function component (2) is a caterpillar treadmill or a roller treadmill.