Clinical irradiation control method and system for water filtering infrared light

The infrared light source is filtered through the water filter solution and the irradiation is regulated according to the patient data, which solves the problem of inaccurate control in the existing infrared light irradiation technology and improves the stability and safety of the treatment effect.

CN119971328AInactive Publication Date: 2025-05-13河南医药大学第二附属医院(河南省精神病医院)
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Patent Information

Application Number
CN202510145346.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-10
Publication Date
2025-05-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing infrared light irradiation technology has inaccurate control of irradiation intensity and time in clinical applications, resulting in unstable treatment effects and may have adverse effects on the patient's skin.

Method used

The infrared light source is filtered through the water filter solution to obtain the therapeutic light waves, and the irradiation time and intensity are set and regulated according to the patient's historical treatment data and real-time biological indicators.

Benefits of technology

Accurate control of infrared light irradiation is achieved, the stability and safety of the treatment effect are improved, and the adverse effects on the patient's skin are reduced.

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Abstract

The invention provides a clinical irradiation control method for water-filtering infrared light. The method comprises the following steps: selecting an infrared light source as an irradiation light source; the irradiation light source is subjected to light filtering operation through the water filtering solution, and treatment light waves are obtained; setting different irradiation time according to the historical treatment data of the patient; treating light waves are used for irradiating the patient, and biological indexes of the patient are monitored in real time; a treatment state index is calculated according to the biological index, and the treatment light wave is regulated and controlled through the treatment state index. According to the method, the illumination intensity and the irradiation time are accurately controlled according to the specific condition of the patient, and the treatment effect is improved.
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Description

Technical Field

[0001] The present invention relates to the field of medical physical therapy technology, and in particular to a clinical irradiation control method and system of water-filtered infrared light. Background Art

[0002] Depression is a common mental illness that affects the quality of life of millions of people worldwide. Traditional treatments include medication, psychotherapy, and physical therapy. However, these methods have limited effectiveness in some patients and may be accompanied by side effects. Infrared light has become an important choice in light therapy due to its good penetration ability and biocompatibility. As a non-invasive and non-traumatic physical therapy, infrared light therapy has achieved remarkable results in clinical medicine. Infrared light can penetrate the skin, promote blood circulation, relieve pain, and accelerate tissue healing. In recent years, infrared light has been increasingly used in the medical field, especially in physical therapy, pain management, rehabilitation therapy, etc. The use of water filtration combined with infrared light has been shown to improve treatment effects, relieve pain, and promote healing.

[0003] However, the existing infrared light irradiation technology has some shortcomings in clinical applications, such as inaccurate control of irradiation intensity and time, which leads to unstable treatment effects and may even have adverse effects on the patient's skin. Therefore, it is very necessary to design a clinical irradiation control method and system for water-filtered infrared light. Summary of the invention

[0004] The purpose of the present invention is to provide a clinical irradiation control method and system for water-filtered infrared light, which can accurately control the intensity and irradiation time of the light according to the specific conditions of the patient to improve the treatment effect.

[0005] To achieve the above object, the present invention provides the following solutions:

[0006] A method for controlling clinical irradiation of water-filtered infrared light comprises the following steps:

[0007] Select an infrared light source as the irradiation light source;

[0008] The irradiation light source is filtered through a water filter solution to obtain therapeutic light waves;

[0009] Set different irradiation times based on the patient's historical treatment data;

[0010] Irradiate patients with therapeutic light waves and monitor their biological indicators in real time;

[0011] The treatment state index is calculated based on the biological index, and the treatment light wave is regulated by the treatment state index.

[0012] Optionally, the infrared light source is a laser light source with adjustable wavelength, and the adjustable wavelength range is 700nm to 1500nm.

[0013] Optionally, filtering the irradiation light source through a water filter solution to obtain therapeutic light waves includes:

[0014] Add active substances to ionized water to obtain a water filtration solution;

[0015] Performing spectral analysis on the light waves passing through the water filter solution, and adjusting the concentration of the water filter solution according to the analysis results; the concentration range of the water filter solution is 0.5% to 5%;

[0016] The irradiation light source is filtered by a water filter solution and a filter material to obtain a therapeutic light wave; the filter material includes: a transparent optical material and an optical film; the wavelength range of the therapeutic light wave is 800nm ​​to 1200nm.

[0017] Optionally, historical treatment data include: medical history, previous treatment responses, current condition assessment and biological baseline; medical history includes: previous illness, family medical history and mental health history; previous treatment responses are obtained through comprehensive analysis of patient self-reports, clinical observation records and standardized psychological assessment scales; current condition assessment is obtained through clinical assessment and psychological testing of patients by professional physicians; biological baseline is obtained through regular physical examinations of patients.

[0018] Optionally, set different irradiation times based on the patient's historical treatment data, including:

[0019] The medical history, previous treatment response, current condition assessment and biological baseline are scored separately to obtain the corresponding scoring results;

[0020] The time index is calculated based on the scoring results;

[0021] Set different irradiation times according to the time indicators.

[0022] Optionally, the time indicator is calculated as: Among them, TI is the time index, H is the medical history score, R is the previous treatment response score, C is the current condition assessment score, B is the biological baseline score, and S is the social environment score.

[0023] Optionally, different irradiation times can be set according to time indicators, including:

[0024] When TI < 10, the irradiation time is 5 to 10 minutes;

[0025] When 10≤TI<20, the irradiation time is 10 to 15 minutes;

[0026] When 20≤TI<30, the irradiation time is 15 to 20 minutes;

[0027] When 30≤TI<40, the irradiation time is 20-25 minutes;

[0028] When 40<TI, the irradiation time is 25~30 minutes.

[0029] Optionally, the biological indicators include: skin temperature of the irradiated area, heart rate, blood oxygen saturation, blood pressure, body temperature and skin electrical response.

[0030] Optionally, the calculation formula of the treatment status index is: Among them, Q is the treatment status indicator, HR is the heart rate, O2 is the blood oxygen saturation, T p is the skin temperature of the irradiated part, BP is the blood pressure, T s is body temperature and G is the electrical response of the skin.

[0031] A clinical irradiation control system for water-filtered infrared light, comprising:

[0032] An irradiation module, used for generating an irradiation light source;

[0033] A light filtering module, used to filter the irradiation light source through a water filter solution to obtain therapeutic light waves;

[0034] Treatment course calculation module, used to set different irradiation times based on the patient's historical treatment data;

[0035] Biomonitoring module, used to monitor patients’ biological indicators in real time;

[0036] The light source control module is used to calculate the treatment state index according to the biological index and control the treatment light wave according to the treatment state index.

[0037] According to the specific embodiments provided by the present invention, the present invention discloses the following technical effects: the clinical irradiation control method of water-filtered infrared light provided by the present invention comprises: selecting an infrared light source as an irradiation light source; filtering the irradiation light source through a water-filtered solution to obtain a therapeutic light wave; setting different irradiation times according to the patient's historical treatment data; irradiating the patient with the therapeutic light wave and monitoring the patient's biological indicators in real time; calculating the treatment state indicator according to the biological indicator, and regulating the treatment light wave through the treatment state indicator. The present invention accurately controls the intensity and irradiation time of the light according to the specific conditions of the patient, thereby improving the treatment effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0038] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.

[0039] Figure 1 This is a flow chart of the infrared light irradiation control method of the present invention;

[0040] Figure 2 is a flow chart of the filtering operation of the present invention;

[0041] Figure 3 The irradiation time setting flow chart of the present invention. DETAILED DESCRIPTION

[0042] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0043] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and understandable, the present invention is further described in detail below with reference to the accompanying drawings and specific embodiments.

[0044] like Figure 1 As shown, the present invention provides a clinical irradiation control method of water-filtered infrared light, comprising the following steps:

[0045] Step 100: Select an infrared light source as an irradiation light source;

[0046] Specifically, the infrared light source is a laser light source with adjustable wavelength, and the adjustable wavelength range is 700nm to 1500nm. Light in this wavelength range can effectively penetrate the skin and penetrate deep into biological tissues, especially deep structures composed of blood and cells. By irradiating these biological tissues, infrared light can activate photosensitive receptors in cells, promote energy metabolism and blood circulation. Improved blood circulation can not only effectively increase the delivery of oxygen and nutrients, help cell metabolism, but also accelerate the excretion of metabolic waste, thereby improving the overall functional state of the body, and has a positive impact on the physical and mental health of patients with depression.

[0047] It should be noted that infrared light is relatively safe to use, and the non-invasive method of treatment can reduce the psychological burden of patients and improve the acceptance of treatment. Secondly, the penetrating ability of infrared light enables it to act on larger tissue areas, which helps regulate overall emotions. In addition, clinical studies have shown that infrared light can stimulate the release of a variety of neurotransmitters, such as endorphins and serotonin, which play a vital role in regulating emotions and reducing anxiety. Finally, the process of treatment through infrared light irradiation usually does not require a special recovery period, and patients can return to their daily lives after treatment, thereby improving their overall quality of life. This treatment method can effectively improve the patient's physical and mental condition.

[0048] Step 200: filtering the irradiation light source through the water filter solution to obtain therapeutic light waves; the specific steps are as follows Figure 2 As shown, including:

[0049] Step 201: adding active substances to ionized water to obtain a water filtration solution;

[0050] Specifically, the active substances include but are not limited to natural plant extracts, amino acids, vitamins and other ingredients that promote biological metabolism and improve nerve function. By adding these ingredients, the water-filtered solution can enhance its biocompatibility and therapeutic effectiveness during the irradiation of light waves.

[0051] Step 202: spectrally analyzing the light waves passing through the water filter solution, and adjusting the concentration of the water filter solution according to the analysis results;

[0052] Specifically, the concentration of the water filter solution ranges from 0.5% to 5%. A spectrometer is used to measure the light waves passing through the water filter solution to obtain the intensity distribution data of the light waves at different wavelengths, thereby obtaining a spectrum curve. The spectrum curve reflects the relationship between the light intensity and the wavelength after passing through the water filter solution. Data analysis of the spectrum curve can obtain the ratio of the light intensity of each wavelength to the incident light wave (i.e., the transmittance of the light wave of a specific wavelength), and then find out the effective wavelength range of the light wave transmission and the invalid band that may be filtered out. Based on the existing biomedical knowledge, the measured spectral data is linked to the known biological response to evaluate the effects of different wavelengths of light on biological tissues, cell activities, and possible emotional regulation effects. For example, infrared rays of certain specific wavelengths have positive effects in regulating emotions and promoting blood circulation. Finally, the transmittance of each wavelength is detected based on the results of the spectral analysis to see if it has achieved the expected effect. If the light intensity of certain bands is low or does not meet the requirements of optimized treatment, the concentration of the water filter solution is adjusted. When the transmittance is too low, the light transmittance can be increased by reducing the concentration of the water filter solution; conversely, when the transmittance is too high or some unnecessary wavelengths are transmitted, the concentration of the water filter solution can be increased to enhance the filtering effect.

[0053] It should be noted that through the analysis of the spectrum, the water filtration solution is personalized, ensuring that each patient can obtain the most suitable therapeutic light wave for their condition, which not only improves the pertinence of light-regulated treatment, but also maximizes the promotion effect of infrared light on biological tissues. Adjusting the concentration of the water filtration solution according to the specific conditions of different patients helps to enhance the metabolism and repair ability of different patients' cells, improves the effectiveness and safety of treatment, ensures the accuracy and effectiveness of the light source, and provides patients with more accurate treatment options.

[0054] Step 203: filtering the irradiation light source through a water filter solution and a filter material to obtain a therapeutic light wave; the filter material includes: a transparent optical material and an optical film; the wavelength range of the therapeutic light wave is 800nm ​​to 1200nm.

[0055] Specifically, the transparent optical material uses optical glass to reduce light distortion and reflection. The optical film uses a thin film optical coating, which is composed of multiple layers of coatings and can adjust the reflection and transmission of specific wavelengths as needed.

[0056] It should be noted that transparent optical materials minimize light loss. Optical films have a selective light filtering function, effectively blocking specific wavelengths of light, ensuring the purity of the therapeutic light waves, and preventing excessive light waves from causing discomfort or damage to patients.

[0057] Step 300: Setting different irradiation times according to the patient's historical treatment data.

[0058] Specifically, historical treatment data include: medical history, previous treatment responses, current condition assessment and biological baseline.

[0059] Furthermore, medical history includes: past illnesses, family medical history, and mental health history. Past illnesses have an important impact on the patient's psychological state and physiological reactions. For example, a history of chronic illness or major illness may cause mood swings and mental health problems in the patient, thereby affecting treatment. Knowing whether there is a family history of mental health problems or other related diseases in the patient's family can help doctors assess the impact of genetic factors on the patient's current condition. Mental health history includes the patient's past mental health conditions and treatment experiences, which reveals the patient's sensitivity and response patterns to different treatments.

[0060] Furthermore, the previous treatment response was obtained through a comprehensive analysis of patient self-reports, clinical observation records, and standardized psychological assessment scales. Self-reports are patients' subjective feelings and feedback on their own treatment effects, which can reflect their subjective experience of irradiation time, frequency, and effects. Clinical observation records are observations made by the medical team on the patient's behavior, emotional changes, etc. during the treatment process (such as drug therapy, psychotherapy, phototherapy, etc.). Standardized psychological assessment scales are obtained through systematic evaluation using standardized psychological scales (such as self-rating depression scales, anxiety scales, etc.), which can quantify the patient's mental state and help doctors better understand the patient's condition changes.

[0061] Furthermore, the current condition assessment is obtained through clinical assessment and psychological testing of patients by professional physicians. Professional physicians obtain the latest health information of patients through interviews, physical examinations and psychological status assessments with patients, which helps to judge the severity of patients' conditions and their need for treatment. Professional psychological testing of patients can provide a deeper understanding of patients' emotional states, cognitive functions and social adaptability. Standardized scales are also used to assess patients' current depression symptoms, anxiety levels, etc.

[0062] Furthermore, the patient's physiological data (such as heart rate, blood pressure, weight, blood indicators, etc.) is obtained multiple times through biosensors or wearable devices to determine the patient's biological baseline state.

[0063] Specifically, the specific steps for setting different irradiation times according to the patient's historical treatment data are as follows: Figure 3 As shown, including:

[0064] Step 301: Score the medical history, previous treatment response, current condition assessment and biological baseline respectively to obtain corresponding scoring results.

[0065] In some embodiments, six scoring levels are set, namely, 10 points, 8 points, 6 points, 4 points, 2 points and 1 point. For the medical history score, it is obtained by adding the previous disease score, family medical history score and mental health history score according to the weight proportion of 0.3, 0.1 and 0.6. The six scoring levels of previous diseases are: patients with no history of major diseases and no chronic diseases, patients with a history of minor diseases but no long-term effects, patients with certain mild chronic diseases but good control, patients with serious diseases but stable conditions, patients with chronic serious diseases or major diseases that will affect treatment, and patients with multiple chronic diseases and serious conditions. The six scoring levels of family medical history are: patients with no family medical history and good mental health, patients with a slight family medical history but no direct impact, patients with certain family diseases but no symptoms or no obvious symptoms, patients with mental health diseases in the family and mild symptoms, patients with serious mental health diseases in the family and may have an impact on treatment, and patients with serious family medical history and may be inherited. The six scoring levels of mental health history are: patients with no history of mental health problems and good adaptability, patients with mild mental health problems but have been treated, patients with historical problems but no long-term effects after medication treatment, patients with multiple treatment histories and current symptom recurrence, patients with long-term mental health problems and no improvement, and patients with serious mental problems that have a significant impact on their lives.

[0066] In some embodiments, the previous treatment response score is divided into the same level as the medical history score, which is obtained by adding the self-report score, clinical observation record score and standardized psychological assessment scale score according to the weight ratio of 0.2, 0.4 and 0.4. The six self-reported scoring levels are: patients with no discomfort and feel that the treatment is effective, patients with slight discomfort but obvious treatment effect, patients with moderate discomfort but certain treatment effect, patients with discomfort and no obvious treatment effect, patients with no effect on all treatments and very uncomfortable, and patients with worsening symptoms after treatment.

[0067] In some embodiments, the current condition assessment score is divided into the same level as the medical history score, which is obtained by adding the clinical assessment score and the psychological test score according to the weight ratio of 0.5 and 0.5. The six scoring levels of clinical assessment are: patients with good health and no obvious symptoms, patients with mild symptoms but in a controllable stage, patients with moderate symptoms who need regular observation, patients with obvious symptoms that affect daily life, patients with sudden emotional outbursts who need immediate intervention, and patients with emotional outbursts who have suicidal tendencies. The psychological test score is obtained by scaling the depression quantification scale (SDS) score in a proportion of 1-10 points.

[0068] In some embodiments, the biological baseline score is divided into the same levels as the medical history score, and the six scoring levels are: patients with normal all physiological data, patients with one abnormal indicator but within a controllable range, patients with multiple abnormal indicators but within a controllable range, patients with multiple abnormal indicators and any indicator within an uncontrollable range, patients with multiple abnormal indicators and multiple indicators within an uncontrollable range, and patients with severely abnormal data and who are already in an unhealthy state.

[0069] Step 302: Calculate the time index according to the scoring result.

[0070] Specifically, the correlation expression between the medical history and the previous treatment response was established by performing cube and square root operations on the medical history and the previous treatment response, respectively. The current condition assessment was mapped to the standardized range and amplified using the sine function to reflect the impact of the current condition on the treatment duration. The comprehensive impact of the social environment on the patient's physical and mental health was calculated using the baseline values ​​of the biological indicators and the social environment score. The calculation formula for the time index was obtained as follows:

[0071]

[0072] Among them, TI is the time index, H is the medical history score, R is the previous treatment response score, C is the current condition assessment score, B is the biological baseline score, and S is the social environment score.

[0073] Furthermore, the social environment score is evaluated from multiple dimensions such as family support, social support, economic status, work and education experience, and participation in social activities. Each dimension is scored according to different situations, and the average of the scores of each dimension is taken and normalized to a range of 1-10 as the social environment score.

[0074] Step 303: Setting different irradiation times according to the time index, including:

[0075] When TI < 10, the irradiation time is 5 to 10 minutes;

[0076] When 10≤TI<20, the irradiation time is 10 to 15 minutes;

[0077] When 20≤TI<30, the irradiation time is 15 to 20 minutes;

[0078] When 30≤TI<40, the irradiation time is 20-25 minutes;

[0079] When 40<TI, the irradiation time is 25~30 minutes.

[0080] Step 400: Use therapeutic light waves to irradiate the patient and monitor the patient's biological indicators in real time. The biological indicators include: skin temperature at the irradiated site, heart rate, blood oxygen saturation, blood pressure, body temperature and skin electrical response.

[0081] Specifically, use an infrared thermal imager or temperature sensor to monitor skin temperature changes in real time at multiple points in the irradiated area. Use a heart rate monitor to record the patient's heart rate in real time. Use a finger-clip oximeter to monitor the patient's blood oxygen saturation. Use an automatic electronic sphygmomanometer to measure blood pressure every 5-10 minutes to observe whether there are obvious fluctuations. Use an electronic thermometer to measure the patient's body temperature in real time to observe whether there is a fever caused by hormone mutations in the body. Use a skin galvanic response meter to monitor skin conductance changes in real time and sense the patient's sympathetic nerve activity.

[0082] Step 500: Calculate a treatment state index based on the biological index, and regulate the treatment light wave according to the treatment state index.

[0083] Specifically, the calculation formula of the treatment status index is:

[0084]

[0085] Among them, Q is the treatment status indicator, HR is the heart rate, O2 is the blood oxygen saturation, T p is the skin temperature of the irradiated part, BP is the blood pressure, T s is body temperature and G is the galvanic skin response. The product of the logarithmic ratio of heart rate and blood oxygen concentration reflects the relative sensitivity of heart rate to oxygen concentration, where logarithmic operations are used to process the relationship between blood oxygen concentration and non-saturated state to reduce the impact of extreme values. The effect of body temperature on the treatment state under hypertension is represented by the square root of body temperature multiplied by the exponential function of blood pressure. When blood pressure rises, the proportion of its influence increases exponentially with the increase of blood pressure. The square root of heart rate is multiplied by the galvanic skin response to reflect the interaction between physiological and psychological states. The exponential operation of the ratio of skin temperature to body temperature shows the nonlinear effect of the treatment process at different temperatures. The square of blood pressure is multiplied by the sine function of heart rate to add a periodic effect, indicating the potential dynamic effect of heart rate fluctuations on blood pressure.

[0086] Furthermore, when the treatment status index is greater than 1, it indicates that the patient's physiological and psychological state is good, and the current phototherapy plan should be continued. When the treatment status index is equal to 1, it means that the patient's state is at a critical value. The patient's state should be closely observed, and the light intensity should be slightly adjusted according to the changes in different biological indicators; for example, when the body temperature rises, the light intensity should be slightly reduced until the body temperature returns to normal; when the heart rate rises, the light intensity should be slightly increased to relieve the patient's tension. When the treatment status index is less than 1, it indicates that the patient is in an unstable state, and the light intensity should be reduced and the illumination time should be appropriately shortened according to the patient's actual situation.

[0087] It should be noted that the treatment status indicators calculated based on biological indicators not only effectively improve the pertinence and safety of treatment, but also significantly enhance the controllability of treatment effects. Real-time monitoring of changes in biological indicators provides important data support for clinical practice, enabling the medical team to promptly identify and respond to the patient's physiological state, thereby accurately regulating the light wave treatment plan. This dynamic adjustment mechanism ensures that patients are exposed to appropriate light waves at each stage of treatment, avoiding the adverse effects of excessive or insufficient exposure on patient health. In addition, through data feedback, the medical team can have a deeper understanding of the patient's response to light wave therapy, adjust treatment parameters in real time, and maximize the treatment effect. While improving the patient's recognition and sense of security of the treatment plan, the patient's overall treatment experience has been optimized, which has a positive impact on the patient's physical and mental health.

[0088] The present invention also provides a clinical irradiation control system for water-filtered infrared light, comprising:

[0089] An irradiation module, used for generating an irradiation light source;

[0090] A light filtering module, used to filter the irradiation light source through a water filter solution to obtain therapeutic light waves;

[0091] Treatment course calculation module, used to set different irradiation times based on the patient's historical treatment data;

[0092] Biomonitoring module, used to monitor patients’ biological indicators in real time;

[0093] The light source control module is used to calculate the treatment state index according to the biological index and control the treatment light wave according to the treatment state index.

[0094] The beneficial effects of the present invention are as follows:

[0095] 1) By real-time monitoring of key information (such as heart rate, blood oxygen, body temperature, etc.), changes in the patient's physiological state can be identified in a timely manner, reducing potential risks during treatment;

[0096] 2) Dynamically calculate treatment status indicators based on the patient's biological indicators, realize personalized adjustment of treatment plans, and greatly improve the accuracy of treatment;

[0097] 3) By real-time regulation of the intensity and duration of light wave irradiation, the treatment process can be optimized according to the patient's response, improving the overall efficacy and reducing the patient's anxiety during treatment.

[0098] The various embodiments in this specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the various embodiments can be referenced to each other.

[0099] The present invention uses specific examples to illustrate the principles and implementation methods of the present invention. The above examples are only used to help understand the method and core ideas of the present invention. At the same time, for those skilled in the art, according to the ideas of the present invention, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as limiting the present invention.

Claims

1. A method for controlling clinical irradiation of water-filtered infrared light, characterized in that: The steps include: Select an infrared light source as the irradiation light source; Filtering the irradiation light source through a water filter solution to obtain therapeutic light waves; Set different irradiation times based on the patient's historical treatment data; Using the therapeutic light waves to irradiate the patient, and monitoring the patient's biological indicators in real time; A treatment state index is calculated according to the biological index, and the treatment light wave is regulated by the treatment state index.

2. The clinical irradiation control method of water-filtered infrared light according to claim 1, characterized in that: The infrared light source is a laser light source with adjustable wavelength, and the adjustable wavelength ranges from 700nm to 1500nm.

3. The clinical irradiation control method of water-filtered infrared light according to claim 1, characterized in that: The irradiation light source is filtered by a water filter solution to obtain therapeutic light waves, including: Adding active substances into ionized water to obtain the water filtration solution; Performing spectral analysis on the light waves passing through the water filter solution, and adjusting the concentration of the water filter solution according to the analysis results; the concentration of the water filter solution ranges from 0.5% to 5%; The therapeutic light wave is obtained by filtering the irradiation light source through the water filter solution and the filter material; the filter material includes: transparent optical material and optical film; the wavelength range of the therapeutic light wave is 800nm ​​to 1200nm.

4. The clinical irradiation control method of water-filtered infrared light according to claim 1, characterized in that: The historical treatment data include: medical history, previous treatment response, current condition assessment and biological baseline; the medical history includes: previous illness, family medical history and mental health history; the previous treatment response is obtained by comprehensive analysis of patient self-reports, clinical observation records and standardized psychological assessment scales; the current condition assessment is obtained by clinical evaluation and psychological testing of patients by professional physicians; the biological baseline is obtained by regular physical examinations of patients.

5. The clinical irradiation control method of water-filtered infrared light according to claim 4, characterized in that: Set different irradiation times based on the patient's historical treatment data, including: Scoring the medical history, the previous treatment response, the current condition assessment and the biological baseline respectively to obtain corresponding scoring results; Calculate the time index according to the scoring result; Different irradiation times are set according to the time index.

6. The clinical irradiation control method of water-filtered infrared light according to claim 5, characterized in that: The calculation formula of the time index is: Among them, TI is the time index, H is the medical history score, R is the previous treatment response score, C is the current condition assessment score, B is the biological baseline score, and S is the social environment score.

7. The clinical irradiation control method of water-filtered infrared light according to claim 5, characterized in that: Different irradiation times are set according to the time indicators, including: When TI<10, the irradiation time is 5 to 10 minutes; When 10≤TI<20, the irradiation time is 10 to 15 minutes; When 20≤TI<30, the irradiation time is 15 to 20 minutes; When 30≤TI<40, the irradiation time is 20 to 25 minutes; When 40<TI, the irradiation time is 25-30 minutes.

8. The clinical irradiation control method of water-filtered infrared light according to claim 1, characterized in that: The biological indicators include: skin temperature of the irradiated area, heart rate, blood oxygen saturation, blood pressure, body temperature and skin electrical response.

9. The clinical irradiation control method of water-filtered infrared light according to claim 8, characterized in that: The calculation formula of the treatment status index is: Among them, Q is the treatment status indicator, HR is the heart rate, O2 is the blood oxygen saturation, T p is the skin temperature of the irradiated part, BP is the blood pressure, T s is body temperature and G is the electrical response of the skin.

10. A clinical irradiation control system for water-filtered infrared light, characterized in that: include: An irradiation module, used for generating an irradiation light source; A light filtering module, used for filtering the irradiation light source through a water filter solution to obtain therapeutic light waves; Treatment course calculation module, used to set different irradiation times based on the patient's historical treatment data; A biological monitoring module, used for real-time monitoring of biological indicators of the patient; The light source control module is used to calculate the treatment state index according to the biological index, and control the treatment light wave according to the treatment state index.