Novel physical medical integrated intelligent equipment control system
By designing a new physical and medical integrated intelligent equipment control system, the integration, power supply and operation complexity of existing medical instruments in field operations and transportation is solved, free combination and flexible transportation of instruments are realized, treatment effect and resource utilization efficiency are improved, and complex environments are adapted to the complex environment in the field.
Patent Information
- Application Number
- CN202510575736.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-06
- Publication Date
- 2025-08-15
AI Technical Summary
The existing physical and medical instruments have problems such as large size, heavy weight, difficulty in integration, unstable power supply, inconvenient communication, poor protective performance and complex operation during field operations and transportation, resulting in inefficient treatment efficiency and waste of resources.
A new type of physical and medical integrated intelligent equipment control system was designed, including operating terminals, processing modules, treatment instrument interface modules, power modules and data monitoring and feedback modules, to realize the free combination, flexible transportation and rapid deployment of instruments, with intelligent diagnosis and recommendation functions, and to provide integrated hardware architecture and software systems.
It realizes the free combination and flexible transportation of medical instruments, simplifies the operation process, improves the treatment effect and resource utilization efficiency, ensures the safety and effectiveness of treatment, and adapts to complex environments in the wild.
Smart Images

Figure CN120496779A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical equipment, and in particular to a novel physical medical integrated intelligent equipment control system. Background Art
[0002] In today's healthcare landscape, as medical services continue to expand, the need for medical care in field operations is becoming increasingly prominent. For example, in scenarios like medical assistance in remote mountainous areas, emergency medical support during outdoor adventures, and treating the injured and sick at natural disaster rescue sites, convenient transportation of medical equipment and stable operation in field environments are crucial.
[0003] However, traditional physical medical equipment has numerous shortcomings when it comes to field operations and transportation. Existing medical equipment is often bulky and heavy, lacking a rational integrated design. Different types of equipment, such as ultrasound therapy devices, laser therapy devices, and electromagnetic therapy devices, are packaged and shipped separately, taking up significant space and increasing transportation complexity and costs. In complex field terrain and with limited transportation resources, this fragmented and cumbersome transportation method severely hinders the rapid deployment of medical equipment.
[0004] From a field operation perspective, these instruments are difficult to effectively integrate and coordinate in a field environment. Field operations often face issues such as unstable power supply and poor communication network coverage. Traditional instruments operate independently, lacking unified power management and efficient communication connections. For example, when providing medical assistance in remote mountainous areas, the lack of a stable mains power supply means that the instrument's built-in battery life is insufficient, and different instruments require different charging methods, making it difficult to provide continuous patient treatment. Furthermore, in the absence of network coverage, medical staff cannot rely on remote medical resources and must rely on limited on-site medical knowledge and experience for diagnosis and treatment, which greatly limits the effectiveness of treatment.
[0005] Furthermore, existing medical equipment lacks adequate protection against harsh outdoor environments. Dust, sand, rain, and other debris can easily intrude, causing malfunctions and impacting normal use. Furthermore, traditional equipment is complex to operate. In the intense field medical rescue environment, medical staff struggle to quickly and accurately operate multiple instruments, resulting in inefficient treatment.
[0006] Therefore, proposing an integrated intelligent equipment control system that can realize the free combination of medical instruments, facilitate transportation and adapt to the field working environment is an issue that technical personnel in this field need to solve urgently. It is of great significance to improve the level of field medical services and protect the life and health of patients. Summary of the Invention
[0007] In view of this, the present invention provides a new physical medical integrated intelligent equipment control system to solve at least one of the above technical problems.
[0008] In order to achieve the above object, the present invention adopts the following technical solutions:
[0009] A novel integrated intelligent equipment control system for physical medical treatment, comprising: an operation terminal, a processing module, multiple therapeutic devices, a therapeutic device interface module corresponding to the multiple therapeutic devices, and a power supply module;
[0010] The operation terminal is connected to the processing module and is used by medical staff to set parameters and adjust combination plans for each instrument on the operation terminal, as well as to display the detailed working status of each medical instrument in real time;
[0011] A processing module, communicating with multiple therapeutic instrument interface modules, for coordinating and controlling the operation of each instrument;
[0012] The therapeutic device interface module is connected to the corresponding therapeutic device for data interaction and control of the therapeutic device;
[0013] The therapeutic device is electrically connected to the output terminal of the power module and is used by medical staff to select the corresponding therapeutic device based on the patient's condition on the operation terminal;
[0014] The power module is used to provide electrical energy to the therapeutic device.
[0015] The above system can optionally include multiple therapeutic devices including: high-voltage electrotherapy device, ultraviolet light therapy device, ultrashort wave therapy device, magnetic therapy device and medium and low frequency electrotherapy device.
[0016] The above-mentioned system can optionally have therapeutic device interface modules corresponding to multiple therapeutic devices, including a high-voltage electrotherapy device interface module, an ultraviolet therapy device interface module, an ultrashort wave therapy device interface module, a magnetic therapy device interface module, and a medium and low frequency electrotherapy device interface module arranged in parallel with the processing module.
[0017] In the above system, optionally, the power supply module includes a first power supply module and a second power supply module;
[0018] The first power supply module provides power to the high-voltage electrotherapy device, ultraviolet light therapy device, and ultrashort wave therapy device;
[0019] The second power supply module provides power to the magnetic therapy device and the medium and low frequency electrotherapy device.
[0020] In the above system, optionally, the first power module and the second power module have the same settings and parameters and are interchangeable during use.
[0021] The above-mentioned system may optionally further include a data monitoring and feedback module, which is communicated with the processing module and is used to collect the working data of the treatment instrument in real time during the treatment process, and feed the collected working data back to the processing module. The processing module adjusts the working parameters of each treatment instrument in real time based on the fed-back working data to ensure that the treatment process is safe and effective.
[0022] The above system may optionally further include a first sensor module and a second sensor module, both of which are communicatively connected to the processing module;
[0023] The first sensor module and the second sensor module both include a temperature sensor and a humidity sensor for detecting the temperature and humidity of the control system.
[0024] The above system may optionally further include an automatic camouflage protection system, which is in communication with the processing module and has a visible light / infrared stealth rate of ≥90%.
[0025] The above system may optionally further include a remote communication module for sending equipment control data and feedback data to the cloud platform.
[0026] The above system can optionally have an operating terminal equipped with an intelligent diagnosis and recommendation function module, which is used for automatically analyzing and recommending treatment instrument combination plans after medical staff inputs the patient's condition information, including specific working parameter settings of the treatment instruments.
[0027] It can be seen from the above technical solutions that, compared with the prior art, the present invention provides a new physical medical integrated intelligent equipment control system with the following beneficial effects:
[0028] Freely combine instruments to improve treatment effects: Given that existing medical instruments have single functions and operate independently, it is difficult to comprehensively use multiple instruments for treatment according to the patient's condition. This invention uses the instrument combination management module of the integrated intelligent control software to enable medical staff to freely select treatment instruments based on the patient's specific condition and personalize the working sequence, working time, output parameters, etc. of each instrument, significantly improving treatment effects and effectively solving the problem of treatment effects being affected by unreasonable instrument combinations;
[0029] Simplify the operation process and reduce the burden on medical staff: To address the problem that existing medical instruments lack effective integrated control methods, resulting in cumbersome operation and increased workload for medical staff, this invention has built an integrated hardware architecture and software system. Medical staff can complete centralized control of multiple medical instruments simply on the operation terminal. The operation terminal uses a touch screen display to display the working status, parameter settings, and combination schemes of each medical instrument in real time, making operation convenient and intuitive.
[0030] Providing scientific solutions and promoting medical standardization: Considering the lack of an integrated system in traditional medicine, which makes it difficult to use scientific methods to assist medical staff in formulating instrument combination plans and over-reliance on personal experience, the intelligent diagnosis and recommendation function module of the present invention plays an important role. Based on the input patient condition information, combined with the system's built-in medical knowledge base and big data analysis algorithm, this module can automatically recommend appropriate medical instrument combination plans and corresponding parameter settings, ensuring that different patients can receive scientific and consistent treatment plans in different medical scenarios.
[0031] Ensure safe and effective treatment and optimize the use of medical resources: Since existing medical instruments lack real-time data monitoring and feedback mechanisms during operation, they are prone to causing harm to patients due to instrument failure or unreasonable parameters, and are also not conducive to the efficient use of medical resources. The data monitoring and feedback module of the present invention collects data from each medical instrument during operation in real time, and feeds this data back to the central control unit. The central control unit adjusts the working parameters of the medical instrument in real time based on the feedback data. Once an instrument failure or parameter abnormality is detected, timely measures can be taken to avoid causing harm to the patient, ensuring the safety and effectiveness of the treatment process. In addition, by optimizing the combination and operation of instruments, the utilization efficiency of medical resources is improved, the waste of resources caused by unreasonable use of instruments is reduced, and limited medical resources can play a greater role.
[0032] Flexible power management and coordination: Independent primary and secondary power supplies provide power to different instrument combinations, ensuring stable operation of each instrument and improving energy efficiency. When the two combinations are used together, the electrical connection components of the connection structure enable intelligent power allocation between the two power supplies, ensuring power balance across the entire system and preventing instrument failures due to power shortages or overloads. Furthermore, the power supply's safety protection function provides reliable protection for both instruments and patients. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are merely embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the provided drawings without paying any creative work.
[0034] Figure 1 This is a principle block diagram of a new type of physical medical integrated intelligent equipment control system disclosed in the present invention;
[0035] Figure 2 The present invention discloses a novel physical medical integrated intelligent equipment control system structure block diagram. DETAILED DESCRIPTION
[0036] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 making creative efforts are within the scope of protection of the present invention.
[0037] In this application, relational terms such as first and second are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. The terms "include", "comprises" or any other variations thereof are intended to cover non-exclusive inclusion, so that a process, method, article or apparatus comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article or apparatus. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of other identical elements in the process, method, article or apparatus comprising the element.
[0038] This invention aims to provide a new type of integrated intelligent physical medical equipment control system to solve the problems of existing physical medical instruments such as high-voltage electrotherapy devices, ultraviolet light therapy devices, ultrashort wave therapy devices, magnetic therapy devices, and medium and low frequency electrotherapy devices, which are difficult to freely combine and transport flexibly and quickly deploy. This will improve the efficiency and treatment effect of medical equipment and meet the diverse clinical treatment needs and requirements of different application scenarios. The specific technical solution is as follows:
[0039] Reference Figure 1 As shown, the present invention discloses a novel physical medical integrated intelligent equipment control system, comprising: an operation terminal, a processing module, a plurality of therapeutic instruments, a therapeutic instrument interface module corresponding to the plurality of therapeutic instruments, and a power supply module;
[0040] The operation terminal is connected to the processing module and is used by medical staff to set parameters and adjust combination plans for each instrument on the operation terminal, as well as to display the detailed working status of each medical instrument in real time;
[0041] A processing module, communicating with multiple therapeutic instrument interface modules, for coordinating and controlling the operation of each instrument;
[0042] The processing module utilizes a high-performance multi-core processor with powerful data processing and computing capabilities. As the core hub of the entire system, it coordinates and controls the operation of each therapeutic device. Connecting to multiple specially designed therapeutic device interface modules via a high-speed data transmission bus, it enables rapid data exchange and precise control. To ensure stable operation in diverse environments, the processing module is equipped with efficient heat dissipation and protective devices.
[0043] The therapeutic device interface module is connected to the corresponding therapeutic device for data interaction and control of the therapeutic device;
[0044] The therapeutic device is electrically connected to the output terminal of the power module and is used by medical staff to select the corresponding therapeutic device based on the patient's condition on the operation terminal;
[0045] The power module is used to provide electrical energy to the therapeutic device.
[0046] Furthermore, the multiple therapeutic devices include: high-voltage electrotherapy devices, ultraviolet light therapy devices, ultrashort wave therapy devices, magnetic therapy devices and medium and low frequency electrotherapy devices.
[0047] Specifically, other therapeutic devices may be integrated as needed.
[0048] Furthermore, the therapeutic instrument interface modules corresponding to multiple therapeutic instruments include a high-voltage electrotherapy instrument interface module, an ultraviolet therapy instrument interface module, an ultrashort wave therapy instrument interface module, a magnetic therapy instrument interface module and a medium and low frequency electrotherapy instrument interface module arranged in parallel with the processing module.
[0049] Furthermore, the power module includes a first power module and a second power module;
[0050] The first power supply module provides power to the high-voltage electrotherapy device, ultraviolet light therapy device, and ultrashort wave therapy device;
[0051] The second power supply module provides power to the magnetic therapy device and the medium and low frequency electrotherapy device.
[0052] Specifically, the first power module, high-voltage electrotherapy device, ultraviolet light therapy device, and ultrashort wave therapy device are integrated in an electrical cabinet, and the second power module, magnetic therapy device, and medium and low frequency electrotherapy device are integrated in an electrical cabinet.
[0053] Furthermore, the first power module and the second power module have the same settings and parameters and are interchangeable when used.
[0054] Furthermore, it also includes a data monitoring and feedback module (not shown in the figure), which is communicated with the processing module and is used to collect the working data of the treatment instrument in real time during the treatment process, and feed the collected working data back to the processing module. The processing module adjusts the working parameters of each treatment instrument in real time based on the fed-back working data to ensure that the treatment process is safe and effective.
[0055] Furthermore, it also includes a first sensor module and a second sensor module, both of which are communicatively connected to the processing module;
[0056] The first sensor module and the second sensor module both include a temperature sensor and a humidity sensor for detecting the temperature and humidity of the control system.
[0057] Furthermore, it also includes an automatic camouflage protection system, which is communicated with the processing module and has a visible light / infrared stealth rate of ≥90%.
[0058] Furthermore, it also includes a remote communication module (not shown in the figure) for sending equipment control data and feedback data to the cloud platform.
[0059] Furthermore, the operating terminal is provided with an intelligent diagnosis and recommendation function module, which is used for automatically analyzing and recommending treatment instrument combination plans after medical staff input the patient's condition information, including the specific working parameter settings of the treatment instruments.
[0060] In a specific embodiment, see Figure 2 As shown, a block diagram of the control system structure of a new type of integrated physical medical intelligent equipment is disclosed. The first power module, high-voltage electrotherapy device, ultraviolet light therapy device, and ultrashort wave therapy device are integrated into one electrical cabinet, and the second power module, magnetic therapy device, and medium- and low-frequency electrotherapy device are integrated into one electrical cabinet. Each electrical cabinet is equipped with sensors, namely the first sensor module and the second sensor module; the first sensor module and the second sensor module each include a temperature sensor, a humidity sensor, etc. The specific settings are as follows:
[0061] Therapeutic instrument interface module:
[0062] High-Voltage Electrotherapy Device Interface Module: Custom-designed for the device's communication protocol and electrical interface, it accurately collects operating parameters such as the device's output voltage, current intensity, treatment duration, and pulse frequency, as well as operating status information such as whether the device is operating properly and whether there are any fault alarms. This data is then transmitted to the processing module in real time. The module also receives control commands from the processing module and adjusts the device's operating mode and parameters.
[0063] UV phototherapy device interface module: Adapts to the characteristics of UV phototherapy devices and can obtain operating data such as light intensity, wavelength type, irradiation time, irradiation area, and device status. It enables two-way data transmission with the central control unit, ensuring that the processing module can control the operating status and parameters of the UV phototherapy device according to treatment needs, such as adjusting light intensity, switching wavelengths, and starting and stopping the device.
[0064] Ultrashort Wave Therapy Device Interface Module: This module collects key parameters of the device, including output power, oscillation frequency, treatment time, treatment site, and operating status. By communicating with the processing module, it enables remote control of the device, such as adjusting power, changing oscillation frequency, and setting treatment time.
[0065] Magnetic therapy device interface module: Based on the characteristics of the magnetic therapy device, it obtains its operating parameters and device status, such as magnetic field strength, magnetic field frequency, treatment duration, and treatment area. It interacts with the processing module to achieve effective control of the magnetic therapy device, including adjusting magnetic field parameters and starting and stopping treatment.
[0066] The low- and medium-frequency electrotherapy device interface module accurately captures the device's operating parameters, including output waveform, frequency range, current intensity, treatment time, and operating status. This data is then transmitted to the processing module, which then executes the device's control commands, such as changing the output waveform and adjusting the current intensity.
[0067] The operation terminal is equipped with a high-resolution touchscreen display and communicates with the processing module via a stable and reliable wireless communication module. It facilitates operation by medical staff and displays detailed real-time operating status of each medical instrument, including operating parameters, proper functioning, and various instrument combination options. Medical staff can set instrument parameters and adjust combination options on the operation terminal. The operation terminal features a portable design and a built-in high-capacity battery for long-term battery life, while also supporting fast charging.
[0068] Container (electrical cabinet) integrated design:
[0069] The first container (the first electrical cabinet) is specifically designed to carry the first combination consisting of a high-voltage electrotherapy device, an ultraviolet light therapy device, and an ultrashort wave therapy device. The container is made of high-strength, lightweight materials and has good shock resistance, waterproofness, and dustproofness. The interior is designed with special instrument placement slots, in which each instrument can be placed firmly and will not shift during transportation. The slots are surrounded by shock-absorbing materials to further protect the instruments. The first host power supply is integrated in the first container to provide a stable and reliable power supply for the instruments in the first combination. The first host power supply has overvoltage, overcurrent, and leakage protection functions to ensure that the instruments can operate safely and stably in different working scenarios. At the same time, intelligent power distribution and adjustment can be carried out according to the actual power requirements of each instrument to improve energy utilization efficiency. Sensors are also provided to detect the temperature and humidity in the cabinet.
[0070] The second container (second electrical cabinet) is used to carry the second combination of magnetic therapy devices and medium- and low-frequency electrotherapy devices. It also uses high-strength, lightweight materials and has comprehensive protective performance. The internal instrument placement and protection design are similar to those of the first container. The second container is equipped with a second main power supply, which provides an independent power supply for the second combination of instruments and has the same safety protection and power regulation functions as the first main power supply. The second container also has an accessories box for storing accessories required for the treatment device and a sensor for detecting the temperature and humidity inside the cabinet.
[0071] Connection structure: A special connection structure is set between the first container and the second container. The connection structure adopts a modular design and includes mechanical connection components and electrical connection components. The mechanical connection components can quickly and firmly connect the two containers together to ensure stability during transportation and use. The electrical connection components realize data communication and power coordination of the equipment in the two containers. For example, when the two containers are connected, the processing module can uniformly manage the data and control instructions of all therapeutic devices in the two combinations. At the same time, the two host power supplies (power modules) can perform intelligent power allocation according to actual power demand to avoid power shortages or overloads. The connection structure also has automatic docking and locking functions, which is easy to operate and can complete the connection and system integration of the two containers in a short time.
[0072] Software system:
[0073] Instrument Combination Management Module: Medical staff can flexibly select a combination of high-voltage electrotherapy devices, ultraviolet light therapy devices, and ultrashort-wave therapy devices based on the patient's condition. Alternatively, they can combine two combinations. They can also set the order in which each device operates within the combination. For example, in the first combination, 15 minutes of ultrashort-wave therapy is performed, followed by 20 minutes of ultraviolet light therapy, and then 10 minutes of high-voltage electrotherapy. In the second combination, 12 minutes of medium- and low-frequency electrotherapy is performed, followed by 8 minutes of magnetic therapy. Furthermore, precise and personalized settings can be made for each device's operating time and output parameters. When two combinations are used together, this module enables unified and coordinated management of all devices, ensuring smooth implementation of the treatment plan.
[0074] Intelligent diagnosis and recommendation function module: This module has a built-in rich medical knowledge base, combined with big data analysis algorithms and clinical treatment cases. After the medical staff enters the patient's condition information, the system can automatically analyze and recommend the most appropriate medical equipment combination plan, including the specific working parameter settings of each treatment instrument. For example, for a certain type of skin inflammation, the system recommends the use of the first combination, and gives the specific working sequence and parameter recommendations for ultrashort wave therapy devices, ultraviolet light therapy devices, and high-voltage electrotherapy devices; for muscle strain diseases, the second combination is recommended, and optimized treatment plans for magnetic therapy devices and medium and low frequency electrotherapy devices are provided. When the two combinations are used in combination, the module can comprehensively recommend a more comprehensive combination of instruments and treatment processes based on the complexity of the disease.
[0075] Data Monitoring and Feedback Module: During treatment, this module collects real-time operating data from various devices, including high-voltage electrotherapy devices, ultraviolet light therapy devices, ultrashort wave therapy devices, magnetic therapy devices, and medium- and low-frequency electrotherapy devices, to monitor the accuracy of treatment dosages and the proper functioning of the devices. This data is quickly fed back to the processing unit, which then adjusts the operating parameters of each device in real time to ensure safe and effective treatment. Whether the two devices are used separately or in combination, this module continuously monitors data from all devices and provides timely processing and feedback, ensuring the stability and reliability of treatment.
[0076] The specific operation is as follows:
[0077] System construction: Assemble and connect the processing module, medical instrument interface modules, operation terminals and corresponding host power supplies in the first and second containers according to the design requirements. Install the corresponding interface modules for different instruments such as high-voltage electrotherapy devices, ultraviolet light therapy devices, ultrashort wave therapy devices, magnetic therapy devices, medium and low frequency electrotherapy devices, and ensure that the interface modules are firmly and stably connected to the instruments. Install the integrated intelligent control software in the processing module and perform initialization settings, including identification and parameter configuration of each instrument interface module, as well as parameter setting of the host power supply. At the same time, place each medical instrument in the corresponding slot in the container and secure it to ensure stability during transportation. When two containers need to be used in combination, mechanically and electrically connect the first and second containers through the connecting structure to complete the overall construction of the system.
[0078] Usage process:
[0079] Scenario Deployment and Preparation: Based on medical needs, the first container, the second container, or a combination of the two is transported to the desired medical scenario, such as an emergency rescue site or a remote medical location. Upon arrival, the container is opened, connected to the power source (mains power if available, or using the built-in battery if not), and the system is started. Medical staff then enter the patient's condition information on the operation terminal.
[0080] Plan Development: The intelligent diagnosis and recommendation module analyzes the patient's condition and recommends appropriate medical device combinations. Medical staff can also manually select the desired device combination based on their own experience through the device combination management module. If the first combination is selected, operating parameters for the high-voltage electrotherapy device, ultraviolet light therapy device, and ultrashort wave therapy device can be set; if the second combination is selected, operating parameters for the magnetic therapy device and medium- and low-frequency electrotherapy devices can be set; if a combination is selected, the operating parameters and sequence of all devices can be comprehensively configured.
[0081] Treatment Execution: Once setup is complete, the treatment plan is initiated. The central control unit sends control instructions to the corresponding instruments through the medical instrument interface modules, and the corresponding combination of instruments begins operating in the set order and parameters. During operation, the data monitoring and feedback module collects data from each instrument in real time and transmits it to the processing module. The processing module dynamically adjusts the operating parameters of each instrument based on this feedback. Whether operating individually or in combination, the system monitors and adjusts the instrument status in real time to ensure smooth treatment.
[0082] Data Recording and Subsequent Processing: After treatment, the system automatically records the medical device combination used, operating parameters, and treatment results, storing this data in the processing module's database. If network connectivity is available, this data can be uploaded to the cloud for long-term storage and analysis. If network connectivity is unavailable, the data is temporarily stored locally and automatically uploaded once the network is restored. Afterward, each medical device is returned to its corresponding slot within the container, and the container is closed. If two containers were used together, they can be separated as needed for future transport and use.
[0083] The present invention is also applicable to scenarios such as national medical assistance and military medical support. The electromagnetic shielding cabin of the container meets the 30dB attenuation requirement specified in the GJB 1389A-2006 standard.
[0084] With reference to the GJB 150-2009 series of standards, the hardware design of this invention fully considers various harsh environmental factors. The container and equipment casing are made of special materials and processes, which can effectively cope with environmental challenges such as high and low temperatures, humidity, salt spray, sand and dust. In the extremely hot environment simulated by the high temperature test (GJB 150.3A-2009), the system heat dissipation design ensures the stable operation of the instrument and will not cause performance degradation or failure due to overheating. Facing the severe cold conditions in the low temperature test (GJB 150.4A-2009), the internal insulation measures of the equipment and the low-temperature adaptability circuit design ensure that the instrument can start and operate normally at low temperatures. For example, in extremely cold field rescue scenarios, it can still provide stable treatment for patients. In the humid environment simulated by the wet heat test (GJB 150.9A-2009), the moisture-proof and mildew-proof treatment prevents the internal electronic components of the instrument from being corroded by water vapor, extending the service life of the equipment and avoiding problems such as short circuits caused by humidity, ensuring that the system can operate normally in humid field environments, such as rainforest rescue. In addition, the equipment has excellent protection performance for salt spray tests (GJB 150.11A-2009) and sand and dust tests (GJB 150.12A-2009), effectively blocking salt spray and sand and dust from entering the interior, maintaining the normal working state of the instrument, and is suitable for field operation scenarios such as seaside or desert.
[0085] Based on the requirements of the GJB 150-2009 series of standards for vibration testing (GJB 150.16A-2009) and impact testing (GJB 150.18A-2009), the system of the present invention has been optimized in terms of structural design and internal component installation. The device's internal structure is designed to be shock-resistant and impact-resistant. Key components, such as the central control unit and medical instrument interface module, are reinforced with shock-absorbing materials and a reinforced structure to withstand the bumps, vibrations, and unexpected impacts encountered during field transportation and operation. This ensures that the equipment will not be damaged by vibration or impact during transportation over complex road conditions or during field emergency rescue operations, thus ensuring the continuity of medical operations. Furthermore, the system's power management and communication modules are specially designed for high reliability. In the event of unstable power supply in the field, the power module automatically adjusts its output to ensure stable operation of the equipment and prevent damage caused by voltage fluctuations. The communication module maintains stable data transmission even in complex electromagnetic environments, ensuring smooth information exchange between medical staff and the system, and enhancing the reliability and stability of field medical operations.
[0086] The design of this integrated intelligent equipment control system fully considers the needs of field operations and transportation, and is in line with the potential requirements of the GJB150-2009 series of standards for equipment transportability and applicability in special scenarios. The modular design of the equipment and the reasonable layout of the container make the entire system easy to load, unload and fix during transportation. When conducting a transportation state simulated by the tilt and swing test (GJB 150.23A-2009), the system can remain stable and the connections between the modules will not loosen due to tilting or swinging. In addition, the system's operating interface and functional design take into account the actual needs of field workers. Under conditions such as large changes in light in the field and limited operating space, the high-resolution display screen and simple and intuitive operating interface of the operating terminal facilitate medical staff to operate the instrument quickly and accurately in different lighting environments, ensuring that medical work can be carried out efficiently in special scenarios in the field.
[0087] Each embodiment in this specification is described in a progressive manner. The same or similar parts between the embodiments can be referred to each other. Each embodiment focuses on the differences from other embodiments. In particular, for system or system embodiments, since they are basically similar to method embodiments, the description is relatively simple. For relevant parts, refer to the partial description of the method embodiment. The system and system embodiments described above are merely schematic, wherein the units described as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they may be located in one place, or they may be distributed on multiple network units. Some or all of the modules can be selected according to actual needs to achieve the purpose of the solution of this embodiment. A person of ordinary skill in the art can understand and implement it without expending creative work.
[0088] The above description of the disclosed embodiments is intended to enable one skilled in the art to implement or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not limited to the embodiments shown herein but is intended to conform to the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A new type of physical medical integrated intelligent equipment control system, characterized by: include: An operation terminal, a processing module, multiple therapeutic devices, a therapeutic device interface module corresponding to the multiple therapeutic devices, and a power supply module; The operation terminal is connected to the processing module and is used by medical staff to set parameters and adjust combination plans for each instrument on the operation terminal, as well as to display the detailed working status of each medical instrument in real time; A processing module, communicating with multiple therapeutic instrument interface modules, for coordinating and controlling the operation of each instrument; The therapeutic device interface module is connected to the corresponding therapeutic device for data interaction and control of the therapeutic device; The therapeutic device is electrically connected to the output terminal of the power module and is used by medical staff to select the corresponding therapeutic device based on the patient's condition on the operation terminal; The power module is used to provide electrical energy to the therapeutic device.
2. A novel integrated intelligent physical medical equipment control system according to claim 1, characterized in that: Multiple therapeutic devices include: high-voltage electrotherapy devices, ultraviolet light therapy devices, ultrashort wave therapy devices, magnetic therapy devices and medium and low frequency electrotherapy devices.
3. A novel integrated intelligent physical medical equipment control system according to claim 2, characterized in that: The therapeutic instrument interface modules corresponding to multiple therapeutic instruments include a high-voltage electrotherapy instrument interface module, an ultraviolet therapy instrument interface module, an ultrashort wave therapy instrument interface module, a magnetic therapy instrument interface module and a medium and low frequency electrotherapy instrument interface module arranged in parallel with the processing module.
4. A novel integrated intelligent physical medical equipment control system according to claim 3, characterized in that: The power supply module includes a first power supply module and a second power supply module; The first power supply module provides power to the high-voltage electrotherapy device, ultraviolet light therapy device, and ultrashort wave therapy device; The second power supply module provides power to the magnetic therapy device and the medium and low frequency electrotherapy device.
5. A novel integrated intelligent physical medical equipment control system according to claim 4, characterized in that: The first power module and the second power module have the same settings and parameters and are interchangeable when used.
6. A novel integrated intelligent physical medical equipment control system according to claim 5, characterized in that: It also includes a data monitoring and feedback module, which is communicated with the processing module and is used to collect the working data of the treatment instrument in real time during the treatment process, and feed the collected working data back to the processing module. The processing module adjusts the working parameters of each treatment instrument in real time based on the feedback working data to ensure that the treatment process is safe and effective.
7. A novel integrated intelligent physical medical equipment control system according to claim 6, characterized in that: Also included is a first sensor module and a second sensor module, both of which are communicatively connected to the processing module; The first sensor module and the second sensor module both include a temperature sensor and a humidity sensor for detecting the temperature and humidity of the control system.
8. A novel integrated intelligent physical medical equipment control system according to claim 7, characterized in that: It also includes an automatic camouflage protection system, which is connected to the processing module in communication, and has a visible light / infrared stealth rate of ≥90%.
9. A novel integrated intelligent physical medical equipment control system according to claim 8, characterized in that: It also includes a remote communication module for sending equipment control data and feedback data to the cloud platform.
10. A novel integrated physical medical intelligent equipment control system according to any one of claims 1 to 9, characterized in that: The operating terminal is equipped with an intelligent diagnosis and recommendation function module, which is used to automatically analyze and recommend treatment equipment combination plans after medical staff input the patient's condition information, including the specific working parameter settings of the treatment equipment.