Fire safety management system and method suitable for medical places and storage medium
By designing a fire safety management system suitable for medical places, monitoring and maintaining fire protection facilities in real time, and implementing fire extinguishing and escape plans when a fire occurs, the problem of low efficiency of fire safety inspection in medical places is solved and fire safety and inspection efficiency is improved.
Patent Information
- Application Number
- CN202510206991.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-25
- Publication Date
- 2025-05-27
AI Technical Summary
Fire safety inspections in medical places are inefficient and easy to miss, resulting in the inability to respond to fires in a timely manner and cause serious losses.
A fire safety management system suitable for medical places was designed, including information acquisition module, inspection and maintenance module, data analysis module, comprehensive investigation module and fire extinguishing and escape module. By monitoring fire facilities in real time, prompt information is generated, inspection and maintenance is carried out, and fire extinguishing and escape plans are implemented when a fire occurs.
It has improved the fire safety and inspection efficiency of medical places, ensured the normal operation of fire facilities, responded to fires in a timely manner, and ensured the safety of personnel.
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Figure CN120048059A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of fire safety management, and particularly to a fire safety management system, method, and storage medium applicable to medical places. Background Art
[0002] As an area with a dense population, valuable equipment, and special service objects, fire safety in medical places is of utmost importance. Traditional fire inspection methods often rely on manual regular inspections, which are inefficient and prone to omissions. When a fire occurs, existing fire protection systems often cannot respond in a timely manner, resulting in the spread of the fire and causing serious losses.
[0003] Therefore, how to improve the fire safety and inspection efficiency in medical places is an urgent problem to be solved. Summary of the Invention
[0004] Embodiments of this application provide a fire safety management system, method, and storage medium applicable to medical places, which improve the fire safety and inspection efficiency in medical places.
[0005] In a first aspect, embodiments of this application provide a fire safety management system applicable to medical places. The system includes an information acquisition module, an inspection and maintenance module, a data analysis module, a comprehensive inspection module, and a fire extinguishing and evacuation module, where:
[0006] The information acquisition module is used to acquire target fire protection facilities and detector modules corresponding to a target detection area of a target medical place;
[0007] The inspection and maintenance module is used to, when the target fire protection facilities are in an abnormal state, generate a first prompt message according to the abnormal information corresponding to the abnormal state, and prompt the staff of the target medical place to conduct inspections and maintenance according to the first prompt message to ensure that the target fire protection facilities are in a normal state;
[0008] The data analysis module is used to obtain detection data of the target detection area through the detector module to obtain target detection data; analyze the target detection data to obtain a target analysis result;
[0009] The comprehensive inspection module is used to, when the target analysis result indicates the existence of a fire hazard, generate a second prompt message according to the target detection data; the second prompt message is used to prompt the staff to conduct a comprehensive inspection of the target detection area;
[0010] The fire extinguishing and evacuation module is used to, when the target analysis result indicates a fire, generate and execute a fire extinguishing and evacuation plan according to the target detection data to ensure the safety of the personnel in the target medical place.
[0011] Second aspect, an embodiment of the present application provides a fire safety management method applicable to medical facilities, which is applied to the fire safety management system applicable to medical facilities as described in the first aspect. The method includes:
[0012] Obtain the target fire protection facilities and detector modules corresponding to the target detection area of the target medical facility;
[0013] When the target fire protection facility is in an abnormal state, generate a first prompt message according to the abnormal information corresponding to the abnormal state, and prompt the staff of the target medical facility to check and maintain according to the first prompt message to ensure that the target fire protection facility is in a normal state;
[0014] Obtain the detection data of the target detection area through the detector module to obtain target detection data; analyze the target detection data to obtain a target analysis result;
[0015] When the target analysis result is that there is a fire hazard, generate a second prompt message according to the target detection data; the second prompt message is used to prompt the staff to conduct a comprehensive investigation of the target detection area;
[0016] When the target analysis result is that a fire has occurred, generate and execute a fire extinguishing and evacuation plan according to the target detection data to ensure the safety of the personnel in the target medical facility.
[0017] Third aspect, the present application provides a computer-readable storage medium. The computer-readable storage medium stores a computer program for electronic data exchange. The computer program enables a computer to execute some or all of the steps described in the second aspect of the present application.
[0018] Fourth aspect, the present application provides an electronic device, including: a processor and a memory. The memory is used to store one or more programs. The one or more programs are stored in the memory and are configured to be executed by the processor. The programs include instructions for executing the steps in the second aspect of the present application.
[0019] Fifth aspect, the present application provides a computer program product. The computer program product includes a non-transitory computer-readable storage medium storing a computer program. The computer program is operable to cause a computer to execute some or all of the steps described in the second aspect of the present application. The computer program product can be a software installation package.
[0020] The fire safety management system applicable to medical sites provided by this application includes: an information acquisition module, an inspection and maintenance module, a data analysis module, a comprehensive inspection module, and a fire extinguishing and evacuation module. Among them, the information acquisition module is used to acquire the target fire-fighting facilities and detector modules corresponding to the target detection area of the target medical site; the inspection and maintenance module is used to generate a first prompt message according to the abnormal information corresponding to the abnormal state when the target fire-fighting facilities are in an abnormal state, and prompt the staff of the target medical site to conduct inspections and maintenance according to the first prompt message to ensure that the target fire-fighting facilities are in a normal state; the data analysis module is used to obtain the detection data of the target detection area through the detector module to obtain the target detection data; analyze the target detection data to obtain the target analysis result; the comprehensive inspection module is used to generate a second prompt message according to the target detection data when the target analysis result is that there is a fire hazard; the second prompt message is used to prompt the staff to conduct a comprehensive inspection of the target detection area; the fire extinguishing and evacuation module is used to generate and execute a fire extinguishing and evacuation plan according to the target detection data when the target analysis result is that a fire has occurred to ensure the safety of the personnel in the target medical site, thereby improving the fire safety and inspection efficiency of the medical site. Description of the Drawings
[0021] In order to more clearly illustrate the technical solutions of the embodiments of this application, the drawings required for the description of the embodiments will be briefly introduced below. Obviously, the drawings below are some embodiments of this application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained according to these drawings.
[0022] Figure 1 It is a block diagram of the module composition of a fire safety management system applicable to medical sites provided by an embodiment of this application;
[0023] Figure 2 It is a schematic flowchart of an inspection and maintenance module provided by an embodiment of this application;
[0024] Figure 3 It is a flowchart of a fire safety management method applicable to medical sites provided by an embodiment of this application;
[0025] Figure 4 It is a schematic structural diagram of an electronic device provided by an embodiment of this application. Detailed Embodiments
[0026] To enable those skilled in the art to better understand the solution of this application, the following will clearly and completely describe the technical solutions in the embodiments of this application with reference to the accompanying drawings in the embodiments of this application. Obviously, the described embodiments are only a part of the embodiments of this application, rather than all the embodiments. Based on the embodiments in this application, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of this application.
[0027] The terms "first", "second", etc. in the specification and claims of this application and the above-mentioned drawings are used to distinguish different objects, rather than to describe a specific order. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, system, product or device that includes a series of steps or units is not limited to the listed steps or units, but optionally further includes steps or units not listed, or optionally further includes other steps or units inherent to these processes, methods, products or devices.
[0028] It should be understood that the term "and / or" in this article is only an association relationship describing associated objects, indicating that three relationships can exist. For example, A and / or B can represent: A exists alone, A and B exist simultaneously, and B exists alone. In addition, the character " / " in this article indicates that the associated objects before and after are in an "or" relationship. The "multiple" that appears in the embodiments of this application refers to two or more.
[0029] The "at least one (item)" or its similar expression in the embodiments of this application refers to any combination of these items, including any combination of single item (item) or plural items (items), which means one or more, and multiple means two or more. For example, at least one (item) of a, b or c can represent the following seven situations: a, b, c, a and b, a and c, b and c, a, b and c. Among them, each of a, b, c can be an element or a set containing one or more elements.
[0030] The "connection" that appears in the embodiments of this application refers to various connection methods such as direct connection or indirect connection to achieve communication between devices, and this application does not make any limitation on this.
[0031] Referring to "embodiment" in this article means that the specific features, structures or characteristics described in combination with the embodiment can be included in at least one embodiment of this application. The appearance of this phrase in various positions in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment mutually exclusive with other embodiments. Those skilled in the art explicitly and implicitly understand that the embodiments described herein can be combined with other embodiments.
[0032] As a densely populated area with valuable equipment and special service targets, fire safety in medical facilities is of utmost importance. Traditional fire inspection methods often rely on manual regular inspections, which are inefficient and prone to omissions. When a fire occurs, existing fire protection systems often fail to respond in a timely manner, leading to the spread of the fire and causing serious losses. Therefore, how to improve fire safety and inspection efficiency in medical facilities urgently needs to be solved.
[0033] To solve the above problems, the embodiments of the present application provide a fire safety management system, method, and storage medium applicable to medical facilities. The system includes an information acquisition module, an inspection and maintenance module, a data analysis module, a comprehensive inspection module, and a fire extinguishing and evacuation module, where: The information acquisition module is used to acquire the target fire protection facilities and detector modules corresponding to the target detection area of the target medical facility; The inspection and maintenance module is used to generate a first prompt message according to the abnormal information corresponding to the abnormal state when the target fire protection facility is in an abnormal state, and prompt the staff of the target medical facility to conduct inspections and maintenance according to the first prompt message to ensure that the target fire protection facility is in a normal state; The data analysis module is used to obtain the detection data of the target detection area through the detector module to obtain the target detection data; analyze the target detection data to obtain the target analysis result; The comprehensive inspection module is used to generate a second prompt message according to the target detection data when the target analysis result is that there are fire hazards; The second prompt message is used to prompt the staff to conduct a comprehensive inspection of the target detection area; The fire extinguishing and evacuation module is used to generate and execute a fire extinguishing and evacuation plan according to the target detection data when the target analysis result is that a fire has occurred, so as to ensure the safety of the personnel in the target medical facility and improve the fire safety and inspection efficiency of the medical facility.
[0034] Please refer to Figure 1 , Figure 1 is a block diagram of the module composition of a fire safety management system applicable to medical facilities provided by the embodiments of the present application. The system includes: an information acquisition module, an inspection and maintenance module, a data analysis module, a comprehensive inspection module, and a fire extinguishing and evacuation module.
[0035] In the embodiments of the present application, the information acquisition module is used to acquire the target fire protection facilities and detector modules corresponding to the target detection area of the target medical facility.
[0036] Among them, the target medical facilities include, but are not limited to, general hospitals, specialized hospitals, and township health centers. The target detection areas include, but are not limited to, outpatient departments, inpatient departments, emergency departments, operating rooms, pharmacies, and logistics support areas, which are not specifically defined here. The target fire-fighting facilities include, but are not limited to, fire doors, fire hydrants, and sprinkler heads. The detector modules include, but are not limited to, smoke detectors, temperature detectors, and flame detectors, which are not specifically defined here. Among them, fire doors can effectively isolate the fire area from other safe areas, prevent the rapid spread of fire and smoke, and gain time for personnel evacuation and fire fighting and rescue. Fire hydrants are connected to fire hoses and water guns, and can provide a large amount of fire-fighting water when a fire occurs. Moreover, fire hydrants are equipped in various areas of the medical facility, such as wards, corridors, and lobbies. They are widely distributed and can provide fire-fighting support to nearby areas in a timely manner when a fire occurs. The sprinkler head is equipped with a temperature-sensing element inside. When the temperature around it rises to a certain level due to a fire, the glass bulb of the sprinkler head will burst or the fusible alloy will melt, thus automatically starting to spray water for fire extinguishing.
[0037] In the embodiment of the present application, the inspection and maintenance module is used to generate a first prompt message according to the abnormal information corresponding to the abnormal state when the target fire-fighting facility is in an abnormal state, and prompt the staff of the target medical facility to conduct inspections and maintenance according to the first prompt message to ensure that the target fire-fighting facility is in a normal state.
[0038] Among them, the fire safety management system can be connected to target fire-fighting facilities such as fire doors, fire hydrants, and sprinkler heads, and can monitor the operating states of these facilities in real time. For example, for fire doors, the monitoring system can detect the opening and closing state of the door, whether the door closer works properly, and the sealing condition between the door and the door frame; for fire hydrants, it can monitor the opening and closing state of the valve, whether the water pressure is normal, and whether the fire hose and water gun are in good condition and in place; for sprinkler heads, it can detect whether they are blocked and whether the temperature-sensing element is normal. When it is detected that the target fire-fighting facility is in an abnormal state, the abnormal information corresponding to the abnormal state is immediately recorded. For example, the fire door cannot be closed normally, the water pressure of the fire hydrant is too low, the sprinkler head is blocked, etc. Then, a first prompt message is generated according to the abnormal information. For example, the first prompt message can be "The water pressure of the fire hydrant in the east corridor on the third floor of the hospital is too low, which may affect the fire extinguishing effect during a fire. Please check and repair it immediately", which is not specifically defined here. Finally, according to the pre-set work process and personnel responsibilities, the staff responsible for inspecting and maintaining the target fire-fighting facility is determined, and the staff is prompted to conduct inspections and maintenance according to the first prompt message to ensure that the target fire-fighting facility is in a normal state.
[0039] Optionally, please refer to Figure 2 , Figure 2It is a schematic flowchart of an inspection and maintenance module provided by an embodiment of the present application. In terms of prompting the staff of the target medical facility to perform inspections and maintenance according to the first prompt information to ensure that the target fire protection facilities are in a normal state, the inspection and maintenance module specifically is used for:
[0040] A1. Guide the staff to inspect the target fire protection facilities according to the abnormal information in the first prompt information to obtain a first inspection result;
[0041] A2. Obtain first image information of the staff for the first inspection result;
[0042] A3. Determine a first standard degree according to the first image information;
[0043] A4. If the first standard degree is greater than or equal to a preset reference standard degree, determine the first inspection result as the target inspection result;
[0044] A5. If the first standard degree is less than the reference standard degree, prompt the staff that their operation is not standard and re-inspect the target fire protection facilities until a second inspection result is obtained; the second standard degree corresponding to the second inspection result is greater than or equal to the reference standard degree;
[0045] A6. Determine the second inspection result as the target inspection result;
[0046] A7. Perform maintenance on the target fire protection facilities according to the target inspection result to ensure that the target fire protection facilities are in a normal state.
[0047] In a specific embodiment, according to the abnormal information in the first prompt information, the specific aspects where problems occur in the target fire protection facilities can be clearly pointed out. For example, if the abnormal information indicates that the water pressure of the fire hydrant on this floor is too low, the staff will be guided to focus on checking whether the inlet valve of the fire hydrant is fully opened, whether the fire hose is damaged and leaking, whether the pipeline connected to the fire hydrant is blocked or ruptured, and whether the fire pump is operating normally and other related links. During the inspection process, the staff truthfully record various situations found, form a first inspection result and upload it to the system, and obtain first image information corresponding to the inspection operation of the staff through a camera, and then determine the first standard degree of the staff according to the first image information.
[0048] Next, when the first standard degree is greater than or equal to the preset reference standard degree, it indicates that the inspection process of the staff basically meets the standard requirements and can comprehensively and accurately inspect the abnormal conditions of the target fire protection facilities. For example, if the preset reference standard degree is 0.8, and the calculated first standard degree is equal to 0.8 or higher, such as 0.9, then the first inspection result can be determined as the target inspection result. When the first standard degree is less than the reference standard degree, it indicates that there are non-standard situations such as missing steps and incomplete inspection of key parts in the inspection process of the staff. For example, the reference standard degree is set to 0.8, while the actually calculated first standard degree is only 0.6. At this time, the fire safety management system will give a clear prompt to the staff, informing that some operations do not meet the standard requirements, such as "When inspecting the fire hydrant, the starting test of the fire pump was not carried out according to the regulations, and the operation is not standard. Please re-inspect", and require the staff to re-inspect the target fire protection facilities. This inspection process can be repeated until the second inspection result is obtained, ensuring that the second standard degree corresponding to the second inspection result is greater than or equal to the reference standard degree, and then determining the second inspection result as the target inspection result. According to the target inspection result, analyze the specific problems existing in the target fire protection facilities, formulate corresponding maintenance plans and prompt the staff. For example, if the target inspection result shows that the inlet valve of the fire hydrant is faulty and cannot be fully opened, the maintenance plan is to repair or replace the valve to ensure that it can be normally opened and the normal water pressure of the fire hydrant is restored. After the maintenance is completed, the target fire protection facilities can be tested and inspected again to confirm that all its parameters and functions have returned to normal, such as the water pressure of the fire hydrant reaches the specified normal range, the fire door can be normally opened and closed and is well sealed, etc., so as to ensure that the target fire protection facilities can play their due role in fire safety and guarantee the safety of medical places.
[0049] It can be seen that through refined inspection and standard degree evaluation, the good condition of the target fire protection facilities is ensured, the operation standardization and inspection quality are improved, and ultimately the fire safety is guaranteed.
[0050] Optionally, in terms of determining the first standard degree according to the first image information, the inspection and maintenance module is specifically used for:
[0051] B1. Obtain a standard inspection steps corresponding to the target fire protection facilities; the standard inspection steps are the steps in the standard process for inspecting the target fire protection facilities; a is a positive integer;
[0052] B2. Identify the inspection process of the staff in the first image information according to the a standard inspection steps to obtain b first inspection steps; the b first inspection steps correspond to b standard inspection steps in the a standard inspection steps; b is a positive integer less than or equal to a;
[0053] B3. Determine the first specification degree according to the ratio between b and a.
[0054] In a specific embodiment, different types of target fire protection facilities have a corresponding set of standard inspection procedures due to their different structures, functions, and roles in fire safety protection. For example, for a fire hydrant, the steps in its standard inspection procedure may include: First, check whether the appearance of the fire hydrant box is intact, without deformation, damage, etc.; Second, check the opening and closing state of the fire hydrant valve to confirm whether the valve can be operated normally and is in an appropriate opening degree; Third, check whether the fire hose is complete, without mildew, damage, and whether the interface is firm; Fourth, check whether the matching water gun is complete, without blockage or damage; Fifth, test whether the water pressure of the fire hydrant is normal, which can be detected by connecting a water test device, etc. Therefore, 5 standard inspection steps corresponding to the fire hydrant can be obtained, that is, a = 5.
[0055] Next, take the a standard inspection steps as the reference standard, and identify each operation link performed by the staff in the first image information one by one. For example, determine whether the staff has the action of checking the appearance of the fire hydrant box. If so, it corresponds to the 1st standard inspection step; then see if they have operated the valve to check the opening and closing state. If there is such an operation, it corresponds to the 2nd standard inspection step, and so on. Finally, sort out the inspection steps actually carried out by the staff, and the actually completed steps are b first inspection steps. Determine the first specification degree according to the ratio between b and a. This ratio can reflect the proportion of the inspection steps actually performed by the staff to the standard inspection steps. The higher the ratio, the closer the inspection process is to the standard requirements and the more standardized the operation; on the contrary, it means there are more non-standard places. For example, if the fire hydrant corresponds to 5 standard inspection steps, that is, a = 5, and the staff actually completed 3 first inspection steps, that is, b = 3, then the first specification degree is the ratio of b to a, that is, 0.6.
[0056] It can be seen that by combining image recognition technology with standardized inspection steps, not only can the standardization and accuracy of fire protection facility inspection be improved, reducing human errors and deviations, but also the work efficiency and inspection quality can be enhanced, non-standard operations can be discovered and corrected in a timely manner, and finally the refinement, standardization, and intelligentization of fire safety management can be realized.
[0057] In the embodiment of the present application, the data analysis module is used to obtain the detection data of the target detection area through the detector module to obtain target detection data; analyze the target detection data to obtain a target analysis result.
[0058] Among them, the target detection area can be detected by a pre-set detector module to obtain corresponding target detection data, and through comprehensive analysis of the target detection data, a corresponding target analysis result can be obtained, providing a basis for subsequent implementation of corresponding processing measures.
[0059] Optionally, the detector module includes a smoke detector, a temperature detector and a flame detector; the target detection data includes smoke concentration, target temperature and flame information; in terms of analyzing the target detection data to obtain a target analysis result, the data analysis module is specifically used for:
[0060] C1. When the flame information indicates no flame, if the smoke concentration is less than or equal to a preset concentration threshold and the target temperature is less than or equal to a preset temperature threshold, it is determined that the target analysis result is normal.
[0061] C2. If the smoke concentration is greater than the preset concentration threshold and / or the target temperature is greater than the preset temperature threshold, it is determined that the target analysis result is that there is a fire hazard.
[0062] C3. When the flame information indicates the existence of flame, if the smoke concentration is greater than the preset concentration threshold and / or the target temperature is greater than the preset temperature threshold, it is determined that the target analysis result is that a fire has occurred.
[0063] In a specific embodiment, the preset concentration threshold and the preset temperature threshold refer to reference standard values set after a large amount of practical experience and analysis of normal environmental parameters in different scenarios. On the premise that the flame information shows no flame, if the smoke concentration is less than or equal to the preset concentration threshold, it indicates that the smoke content in the air is within the normal and acceptable range, and there is no phenomenon of smoke accumulation caused by abnormal combustion or the like; at the same time, if the target temperature is less than or equal to the preset temperature threshold, it indicates that the environmental temperature also remains within the normal range, and there is no abnormal temperature increase caused by fire or other abnormal heat sources. Therefore, it can be determined that the state of the target detection area is normal, that is, the target analysis result is normal, indicating that there is no sign of fire at this time, and the fire-related risks are at a relatively low level. On the contrary, if at least one of the smoke concentration or the target temperature exceeds its corresponding reference standard value, it indicates that an abnormal situation has occurred in the target detection area, that is, the target analysis result is that there is a fire hazard. For example, it may be that a certain electrical equipment fails and starts to smoke, resulting in an increase in smoke concentration, but no obvious temperature change has occurred yet; or the electrical circuit in a certain area has been overloaded for a long time, causing the surrounding temperature to rise, both indicating the potential risk of fire.
[0064] Among them, when the flame information indicates the presence of a flame, it means that there is an obvious combustion phenomenon in the target detection area. On this basis, the state of the fire can be further confirmed by combining the smoke concentration and the target temperature. When at least one of the smoke concentration or the target temperature exceeds its corresponding reference standard value, it means that a fire has occurred, that is, the target analysis result is that a fire has occurred and is spreading, and a series of emergency response measures such as extinguishing the fire and evacuating personnel need to be immediately initiated to deal with it.
[0065] It can be seen that by comprehensively using multiple parameters such as flame information, smoke concentration, and temperature, and combining the analysis mechanism with preset thresholds, the fire hazards, the occurrence of a fire, and the normal state can be accurately identified. It not only improves the accuracy of fire monitoring and the reliability of the system, but also effectively reduces the false alarm rate, enhances the fire warning and emergency response capabilities, and provides strong data support for the fire safety management of medical facilities.
[0066] In the embodiment of the present application, the comprehensive inspection module is used to generate a second prompt message according to the target detection data when the target analysis result is that there is a fire hazard; the second prompt message is used to prompt the staff to conduct a comprehensive inspection of the target detection area.
[0067] Among them, when the target analysis result is that there is a fire hazard, the corresponding target detection data is integrated and processed, and based on the integrated data, a second prompt message is generated. This second prompt message will clearly indicate that there is a fire hazard in the target detection area and describe in detail the data situation related to the fire hazard, such as "the smoke concentration in the target detection area is 6% obs / m, the temperature is 45°C, which has exceeded the normal threshold, and there is a fire hazard. Please conduct a comprehensive inspection immediately". At the same time, it may also mention the key directions for inspection, such as "focus on checking whether there is abnormal heating and smoking in electrical equipment, and check whether there are potential fire sources or smoke generation sources in the flammable material storage areas" and other contents, so that the staff can carry out the inspection work more targeted.
[0068] It should be noted that the second prompt message can be conveyed to the staff through various channels, which is not specifically limited here. In a medical facility, the fire alarm system can be used for voice announcements, repeated every once in a while to ensure that the staff in each area can hear. At the same time, the second prompt message can also be scrolled and displayed on the information display screens inside the hospital, such as the display screens in areas such as nurse stations and doctor's offices, with the text display set to a larger font and a bright color to attract the attention of the staff. In addition, for relevant fire safety responsible persons or maintenance personnel, the second prompt message can be sent to their personal terminal devices through text messages or a dedicated fire work communication software to ensure the timeliness and accuracy of information transmission. The terminal device can be a mobile phone, a tablet, or a computer, which is not specifically limited here.
[0069] In the embodiment of the present application, the fire extinguishing and escape module is used to generate and execute a fire extinguishing and escape plan according to the target detection data when the target analysis result indicates a fire, so as to ensure the safety of the personnel in the target medical facility.
[0070] Among them, when the target analysis result indicates a fire, the target detection data can be deeply evaluated to generate and execute a fire extinguishing and escape plan, so as to ensure the safety of the personnel in the target medical facility.
[0071] Optionally, the target fire protection facilities include fire doors, fire hydrants and sprinkler heads; in terms of generating and executing a fire extinguishing and escape plan according to the target detection data to ensure the safety of the personnel in the target medical facility, the fire extinguishing and escape module is specifically used for:
[0072] D1. Determine the fire danger level according to the smoke concentration and the target temperature;
[0073] D2. Determine the first parameter and the second parameter corresponding to the fire danger level; the first parameter includes the sprinkler intensity and the duration; the second parameter includes the water outlet pressure and the water outlet flow rate; the higher the fire danger level, the greater the first parameter and the second parameter;
[0074] D3. Spray the target detection area through the sprinkler head according to the sprinkler intensity and the duration for preliminary fire extinguishing;
[0075] D4. Configure the fire hydrant according to the water outlet pressure and the water outlet flow rate to ensure the fire extinguishing effect;
[0076] D5. Control the fire door to remain closed until the fire is extinguished;
[0077] D6. Obtain the flame position in the flame information, formulate escape route information according to the flame position, and broadcast the escape route information to ensure the safety of the personnel in the target medical facility.
[0078] In specific embodiments, the fire danger level can be determined based on the smoke concentration and the target temperature. The fire danger level includes three levels: low, medium, and high. Then, the first parameter and the second parameter corresponding to the fire danger level are determined. The first parameter includes the sprinkler intensity and the duration, and the second parameter includes the outlet pressure and the outlet flow rate. The higher the fire danger level, the fiercer the fire, the faster the spread speed, and the greater the extinguishing difficulty. Correspondingly, the parameter values of the first parameter and the second parameter are larger to cope with the fire of corresponding intensity. For example, for the case of a low fire danger level, the sprinkler intensity may only need to be set to a spraying amount of 5 liters of water per square meter per minute, and the duration may be set to about 5 minutes. The outlet pressure and the outlet flow rate are configured to relatively low values. For example, the outlet pressure is set to 0.3 MPa, and the outlet flow rate is 10 liters per second to cope with the initial small-scale fire situation. In this way, the fire can be controlled, and resource waste and unnecessary water stains can be avoided. When the fire danger level is high, the sprinkler intensity can be increased to 15 liters of water per square meter per minute or even higher, the duration is set to more than 15 minutes, the outlet pressure is increased to 0.8 MPa, and the outlet flow rate reaches 20 liters per second. High-intensity fire extinguishing parameters are used to combat the fierce fire and minimize the losses caused by the fire as much as possible.
[0079] Next, according to the set sprinkler intensity, adjust the nozzle aperture size, spraying angle, etc. of the sprinkler head to ensure that the target detection area is sprayed with the predetermined water output per unit time and the water is sprayed continuously for the set duration to ensure that there is enough water acting on the fire site. On the one hand, it can directly extinguish the flame, and on the other hand, it can cool down the surrounding environment, reduce the heat radiation of the fire, prevent the spread of the fire, and play a role in initial fire extinguishing and controlling the development of the fire. Then, configure the fire hydrant according to the set outlet pressure and outlet flow rate so that the sprayed water flow has both enough water coverage area and appropriate impact force to effectively cope with the fire situation of the corresponding fire danger level and ensure the fire extinguishing effect. Among them, when a fire occurs, the fire door can be automatically closed and locked to prevent people from accidentally opening it. At the same time, it also prevents the fire from breaking through the barrier of the fire door due to factors such as air flow and spreading to other areas. When the fire extinguishing is over, the locking control of the fire door is released to restore its normal openable and closable state.
[0080] Finally, real-time feedback on flame information is obtained through a flame detector, and accurate data on the flame position is determined based on the flame information, such as the specific floor, room number, azimuth coordinates within the area, etc. By analyzing the flame position, the core area of the fire and the possible spreading direction are identified. For example, if the flame is located in the east ward area on a certain floor of a hospital and has a tendency to spread westward, when formulating an escape route, people are guided to stay away from the flame position and the direction of fire spread, and evacuate towards safety exits, evacuation stairways, etc. For example, for the people on the floor where the flame is located and the adjacent floors, it is planned to evacuate through the evacuation stairway on the other side away from the flame, using the evacuation channels, corridors, etc. within the building to avoid the flame area and ensure the safety and feasibility of the escape route. Then, the escape route information is repeatedly broadcast through various means such as fire alarms and electronic displays to ensure that people in each area can obtain the escape route information in a timely manner. For example, the escape route information is "Attention everyone, a fire has occurred in the east ward area on the third floor, and the flame is spreading westward. Please evacuate immediately through the west evacuation stairway in an orderly manner for the people on the third floor and the adjacent floors, and proceed according to the evacuation signs. Do not take the elevator", and it is repeated every preset time interval to guide people to evacuate safely and orderly and ensure the safety of the people in the target medical facility.
[0081] It can be seen that through intelligent and precise fire handling, the timeliness and effectiveness of fire prevention and control are significantly improved, human errors are reduced, and at the same time, the safety of people is ensured. Especially in key environments such as medical facilities, a higher level of safety guarantee is provided.
[0082] Optionally, in terms of determining the fire danger level according to the smoke concentration and the target temperature, the fire extinguishing and escape module is specifically used for:
[0083] E1. Obtain the first weight corresponding to the smoke concentration and the second weight corresponding to the target temperature;
[0084] E2. Calculate the difference between the smoke concentration and the preset concentration threshold to obtain a first difference;
[0085] E3. Calculate the difference between the target temperature and the preset temperature threshold to obtain a second difference;
[0086] E4. Determine the fire danger value according to the first difference, the first weight, the second difference, and the second weight;
[0087] E5. If the fire danger value is less than a preset first value, determine that the fire danger level is low;
[0088] E6. If the fire danger value is greater than or equal to the first value and less than or equal to a preset second value, determine that the fire danger level is medium;
[0089] E7. If the fire risk value is greater than the second value, determine that the fire risk level is high.
[0090] In a specific embodiment, based on a large number of fire studies, actual case analyses, and professional judgments on the influence of various factors during the fire development process, the first weight corresponding to the smoke concentration and the second weight corresponding to the target temperature are determined. For example, if the smoke concentration is more sensitive in the early fire warning and can reflect potential dangers earlier, a relatively higher weight may be assigned to the smoke concentration; while the target temperature also plays a key role in judging the fire risk level after the fire develops to a certain stage, and there will also be a corresponding reasonable weight allocation. Then, calculate the difference between the smoke concentration and the preset concentration threshold to obtain the first difference. The larger the first difference, the more serious the deviation of the smoke concentration from the normal situation, and the higher the potential fire risk. Next, calculate the difference between the target temperature and the preset temperature threshold to obtain the second difference. The larger the second difference, the more serious the fire development or the greater the fire hazard. A weighted calculation is performed based on the first difference, the first weight, the second difference, and the second weight to obtain the fire risk value. If the fire risk value is less than the preset first value, determine that the fire risk level is low, indicating that the fire is in its infancy and has not developed to a more serious level; if the fire risk value is within the range between the first value and the second value, it means that the fire is relatively large and there is a possibility of further spreading, then determine that the fire risk level is medium; if the fire risk value is greater than the second value, it means that the fire is fierce and spreading rapidly, posing a major threat to the safety of personnel and medical facilities, and determine that the fire risk level is high.
[0091] It can be seen that by dynamically evaluating the fire risk, human errors are reduced, and the accuracy and timeliness of fire emergency response are improved. At the same time, through reasonable resource scheduling, accurate fire level classification, and automated response, the fire loss can be effectively reduced, the safety of personnel can be ensured, and the overall efficiency and safety of fire safety management can be enhanced.
[0092] Optionally, in terms of formulating the escape route information according to the flame position and broadcasting the escape route information, the fire extinguishing and escape module is specifically used for:
[0093] F1. Obtain the first escape route corresponding to the reference evacuation passage of the target medical facility;
[0094] F2. Adjust the first escape route according to the flame position to obtain a second escape route; the second escape route is away from the flame position;
[0095] F3. Obtain the reference position of the barrier-free passage of the target medical facility; the barrier-free passage facilitates the safe passage of people with limited mobility in the target medical facility;
[0096] F4. Determine the intersection of the reference position and the second escape route;
[0097] F5. Adjust the second escape route according to the intersection to obtain the third escape route;
[0098] F6. Determine the escape route information based on the second escape route and the third escape route, and broadcast the escape route information.
[0099] In a specific embodiment, the reference evacuation routes include but are not limited to evacuation stairways and evacuation corridors, and no specific limitation is made here. According to the specific positions of the reference evacuation routes in the target medical facility, the corresponding first escape route is determined. Then, the first escape route is optimized and adjusted according to the position of the fire to ensure that the adjusted second escape route is far from the fire position. For example, if the fire position is at one end of a certain evacuation corridor, the original first escape route passing through this corridor needs to change direction to guide people around the area where the fire is located. One can choose to pass through other corridors parallel to it or use the passages connecting different areas to reconstruct the second escape path to avoid the fire threat and improve the safety of escape.
[0100] Among them, the persons with limited mobility in the target medical facility include patients in wheelchairs, elderly people with crutches, critically ill patients on stretchers, etc. The reference position of the barrier-free passage in the target medical facility can be obtained, and then the intersection of the reference position and the second escape route is determined, that is, whether there is an overlapping part or a connectable node between the two is determined. For example, when the second escape route passes through a certain area on a certain floor, it is adjacent to or has an intersection point with a barrier-free passage, and this intersection point is the overlapping part of the two. Then, the second escape route is adjusted according to the intersection to obtain the third escape route, ensuring that the persons with limited mobility can smoothly reach the safety exit along the third escape route.
[0101] Next, based on the specific situations of the second escape route and the third escape route, clear, accurate and easy-to-understand escape route information is generated. For example, the escape route information is "A fire has occurred in the east ward area on the third floor. Persons in the west ward on the third floor please turn right through the corridor, and after reaching the barrier-free passage, walk along the passage to the west evacuation stairway, go downstairs through the stairway to the first floor and evacuate to the outdoor safe area through the north gate; other persons with normal mobility can choose to turn left directly through the corridor and go downstairs through the ordinary evacuation stairway to evacuate". Then, the escape route information is broadcast repeatedly through the fire alarm to ensure that all personnel in the medical facility can obtain the escape route information in time and evacuate orderly according to the correct escape route, protecting the lives of the personnel in the target medical facility in case of a fire.
[0102] It can be seen that the fire safety management system applicable to medical places provided by this application includes: an information acquisition module, an inspection and maintenance module, a data analysis module, a comprehensive investigation module, and a fire extinguishing and escape module. Among them, the information acquisition module is used to acquire the target fire protection facilities and detector modules corresponding to the target detection area of the target medical place; the inspection and maintenance module is used to generate a first prompt message according to the abnormal information corresponding to the abnormal state when the target fire protection facilities are in an abnormal state, and prompt the staff of the target medical place to conduct inspections and maintenance according to the first prompt message to ensure that the target fire protection facilities are in a normal state; the data analysis module is used to obtain the detection data of the target detection area through the detector module to obtain the target detection data; analyze the target detection data to obtain the target analysis result; the comprehensive investigation module is used to generate a second prompt message according to the target detection data when the target analysis result is that there are potential fire hazards; the second prompt message is used to prompt the staff to conduct a comprehensive investigation of the target detection area; the fire extinguishing and escape module is used to generate and execute a fire extinguishing and escape plan according to the target detection data when the target analysis result is that a fire has occurred to ensure the safety of the personnel in the target medical place, thereby improving the fire safety and inspection efficiency of the medical place.
[0103] Please refer to Figure 3 , Figure 3 is a flowchart of a fire safety management method applicable to medical places provided by an embodiment of this application, which is applied to the fire safety management system applicable to medical places described in the above embodiment. The method includes but is not limited to the following steps:
[0104] S301. Acquire the target fire protection facilities and detector modules corresponding to the target detection area of the target medical place;
[0105] S302. When the target fire protection facilities are in an abnormal state, generate a first prompt message according to the abnormal information corresponding to the abnormal state, and prompt the staff of the target medical place to conduct inspections and maintenance according to the first prompt message to ensure that the target fire protection facilities are in a normal state;
[0106] S303. Obtain the detection data of the target detection area through the detector module to obtain the target detection data; analyze the target detection data to obtain the target analysis result;
[0107] S304. When the target analysis result is that there are potential fire hazards, generate a second prompt message according to the target detection data; the second prompt message is used to prompt the staff to conduct a comprehensive investigation of the target detection area;
[0108] S305. When the target analysis result is that a fire has occurred, generate and execute a fire extinguishing and escape plan according to the target detection data to ensure the safety of the personnel in the target medical place.
[0109] In specific implementation, the fire safety management method applicable to medical places described in the embodiments of the present invention may further include other implementation manners described in the fire safety management system applicable to medical places provided in the embodiments of the present invention, which will not be elaborated here.
[0110] Next, in conjunction with Figure 4 the electronic device in the embodiments of the present application will be described. Figure 4 FIG. is a schematic structural diagram of an electronic device provided in an embodiment of the present application. As Figure 4 shown, the electronic device includes one or more processors, a memory, a communication interface, and one or more programs. The processor is communicatively connected to the memory and the communication interface through an internal communication bus.
[0111] Among them, the processor is mainly used for:
[0112] Obtain the target fire-fighting facilities and detector modules corresponding to the target detection area of the target medical place;
[0113] When the target fire-fighting facility is in an abnormal state, generate a first prompt message according to the abnormal information corresponding to the abnormal state, and prompt the staff of the target medical place to check and maintain according to the first prompt message to ensure that the target fire-fighting facility is in a normal state;
[0114] Obtain the detection data of the target detection area through the detector module to obtain target detection data; analyze the target detection data to obtain a target analysis result;
[0115] When the target analysis result is that there is a fire hazard, generate a second prompt message according to the target detection data; the second prompt message is used to prompt the staff to conduct a comprehensive inspection of the target detection area;
[0116] When the target analysis result is that a fire has occurred, generate and execute a fire extinguishing and escape plan according to the target detection data to ensure the safety of the personnel in the target medical place.
[0117] Among them, the one or more programs are stored in the above-mentioned memory and are configured to be executed by the above-mentioned processor. The one or more programs include instructions for executing any step in the above-mentioned embodiments.
[0118] Among them, the processor can be, for example, a Central Processing Unit (CPU), a general-purpose processor, a Digital Signal Processor (DSP), an Application-Specific Integrated Circuit (ASIC), a Field Programmable Gate Array (FPGA), or other programmable logic devices, transistor logic devices, hardware components, or any combination thereof. It can implement or execute various exemplary logical blocks, units, and circuits described in connection with the disclosure of this application. The processor can also be a combination that implements computing functions, such as a combination of one or more microprocessors, a combination of a DSP and a microprocessor, and so on. The communication unit can be a communication interface, a transceiver, a transceiver circuit, etc., and the storage unit can be a memory.
[0119] The memory can be a volatile memory or a non-volatile memory, or can include both volatile and non-volatile memories. Among them, the non-volatile memory can be a read-only memory (ROM), a programmable ROM (PROM), an erasable PROM (EPROM), an electrically erasable PROM (EEPROM), or a flash memory. The volatile memory can be a random access memory (RAM), which is used as an external cache. By way of example but not limitation, many forms of random access memory (RAM) are available, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDR SDRAM), enhanced SDRAM (ESDRAM), synchlink DRAM (SLDRAM), and direct rambus RAM (DR RAM).
[0120] It can be understood that the electronic device may include more or fewer structural elements than those shown in the above structural block diagram. For example, it may include a power module, physical buttons, a Wi-Fi module, a speaker, a Bluetooth module, sensors, a display module, etc., which are not limited herein.
[0121] An embodiment of the present application also provides a computer-readable storage medium. The computer-readable storage medium stores a computer program for electronic data exchange, and the computer program causes a computer to execute some or all of the steps of the fire safety management method applicable to medical sites as described in the above embodiments. The above computer includes an electronic device.
[0122] An embodiment of the present application also provides a computer program product. The computer program product includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to execute some or all of the steps of the fire safety management method applicable to medical sites as described in the above embodiments. The computer program product can be a software installation package, and the above computer includes an electronic device.
[0123] It should be noted that for the above embodiments, for the sake of simple description, they are all expressed as a series of action combinations. Those skilled in the art should know that the present application is not limited by the described action sequence, because some steps in the embodiments of the present application can be performed in other sequences or simultaneously. In addition, those skilled in the art should also know that the embodiments described in the specification are all preferred embodiments, and the actions, steps, modules, or units involved are not necessarily essential to the embodiments of the present application.
[0124] In the above embodiments, each embodiment of the present application is described with emphasis. For the parts not detailed in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.
[0125] Those of ordinary skill in the art can understand all or part of the processes of implementing the methods in the above embodiments. The processes can be completed by relevant hardware instructed by a computer program. The program can be stored in a computer-readable storage medium. When the program is executed, it can include the processes of the above embodiments. The foregoing storage medium includes: ROM or random access memory RAM, magnetic disk, or optical disk and other media that can store program codes.
[0126] The steps of the methods or algorithms described in the embodiments of this application can be implemented in hardware or by a processor executing software instructions. The software instructions can be composed of corresponding software modules, and the software modules can be stored in RAM, flash memory, ROM, EPROM, electrically erasable programmable read-only memory (EEPROM), registers, hard disks, removable hard disks, compact disc read-only memory (CD-ROM), or any other form of storage medium well-known in the art. An exemplary storage medium is coupled to the processor, enabling the processor to read information from and write information to the storage medium. Of course, the storage medium can also be a component of the processor. The processor and the storage medium can be located in an ASIC. Additionally, the ASIC can be located in a terminal device or a management device. Of course, the processor and the storage medium can also exist as discrete components in the terminal device or the management device.
[0127] Those skilled in the art should be able to realize that in one or more of the above examples, the functions described in the embodiments of this application can be implemented in whole or in part by software, hardware, firmware, or any combination thereof. When implemented using software, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, the processes or functions described in the embodiments of this application are generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another. For example, the computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via wired (such as coaxial cable, fiber optic, digital subscriber line (DSL)) or wireless (such as infrared, wireless, microwave, etc.) means. The computer-readable storage medium can be any available medium that the computer can access or a data storage device such as a server, data center, etc. that includes one or more integrated available media. The available medium can be a magnetic medium (such as a floppy disk, hard disk, magnetic tape), an optical medium (such as a digital video disc (DVD)), or a semiconductor medium (such as a solid state disk (SSD)), etc.
[0128] Each device and product described in the above embodiments, and each module / unit included therein, can be a software module / unit, a hardware module / unit, or can be partially a software module / unit and partially a hardware module / unit. For example, for each device and product applied to or integrated into a chip, each module / unit included therein can be implemented in a hardware manner such as a circuit, or at least some of the modules / units can be implemented in the form of a software program that runs on a processor integrated inside the chip, and the remaining (if any) part of the modules / units can be implemented in a hardware manner such as a circuit; for each device and product applied to or integrated into a chip module, each module / unit included therein can be implemented in a hardware manner such as a circuit, and different modules / units can be located in the same component (such as a chip, a circuit module, etc.) or different components of the chip module, or at least some of the modules / units can be implemented in the form of a software program that runs on a processor integrated inside the chip module, and the remaining (if any) part of the modules / units can be implemented in a hardware manner such as a circuit; for each device and product applied to or integrated into a terminal device, each module / unit included therein can be implemented in a hardware manner such as a circuit, and different modules / units can be located in the same component (such as a chip, a circuit module, etc.) or different components inside the terminal device, or at least some of the modules / units can be implemented in the form of a software program that runs on a processor integrated inside the terminal device, and the remaining (if any) part of the modules / units can be implemented in a hardware manner such as a circuit.
[0129] The specific embodiments described above further elaborate on the objectives, technical solutions, and beneficial effects of the embodiments of the present application. It should be understood that the above description is only the specific embodiments of the embodiments of the present application and is not used to limit the protection scope of the embodiments of the present application. Any modifications, equivalent replacements, improvements, etc. made on the basis of the technical solutions of the embodiments of the present application should be included in the protection scope of the embodiments of the present application.
Claims
1. A fire safety management system applicable to medical places, characterized in that: The system includes an information acquisition module, an inspection and maintenance module, a data analysis module, a comprehensive investigation module, and a fire extinguishing and escape module, wherein: The information acquisition module is used to acquire the target firefighting facilities and detector modules corresponding to the target detection area of the target medical site; The inspection and maintenance module is used to generate a first prompt message according to abnormal information corresponding to the abnormal state when the target fire-fighting facility is in an abnormal state, and prompt the staff of the target medical site to perform inspection and maintenance according to the first prompt message to ensure that the target fire-fighting facility is in a normal state; The data analysis module is used to obtain the detection data of the target detection area through the detector module to obtain target detection data; analyze the target detection data to obtain a target analysis result; The comprehensive inspection module is used to generate a second prompt information according to the target detection data when the target analysis result shows that there is a fire hazard; the second prompt information is used to prompt the staff to conduct a comprehensive inspection of the target detection area; The fire extinguishing and escape module is used to generate and execute a fire extinguishing and escape plan according to the target detection data when the target analysis result is a fire, so as to ensure the safety of personnel in the target medical site.
2. The system according to claim 1, characterized in that In terms of prompting the staff of the target medical site to perform inspection and maintenance according to the first prompt information to ensure that the target fire-fighting facilities are in a normal state, the inspection and maintenance module is specifically used to: Instructing the staff to inspect the target fire-fighting facility according to the abnormal information in the first prompt information to obtain a first inspection result; Obtaining first image information of the staff member regarding the first inspection result; determining a first standardization level according to the first image information; If the first standard level is greater than or equal to a preset reference standard level, determining the first inspection result as a target inspection result; If the first standard degree is less than the reference standard degree, the staff is prompted that the operation is not standard, and the target fire protection facility is inspected again until a second inspection result is obtained; the second standard degree corresponding to the second inspection result is greater than or equal to the reference standard degree; Determining the second inspection result as the target inspection result; The target fire-fighting facilities are maintained according to the target inspection results to ensure that the target fire-fighting facilities are in normal condition.
3. The system according to claim 2, characterized in that In determining the first standardization level according to the first image information, the inspection and maintenance module is specifically used to: Obtain a standard inspection steps corresponding to the target fire-fighting facility; the standard inspection steps are steps in the standard process for inspecting the target fire-fighting facility; a is a positive integer; The inspection process of the staff member in the first image information is identified according to the a standard inspection steps to obtain b first inspection steps; the b first inspection steps correspond to the b standard inspection steps in the a standard inspection steps; b is a positive integer less than or equal to a; The first degree of normalization is determined according to the ratio between b and a.
4. The system according to any one of claims 1 to 3, characterized in that: The detector module includes a smoke detector, a temperature detector and a flame detector; the target detection data includes smoke concentration, target temperature and flame information; in analyzing the target detection data to obtain the target analysis result, the data analysis module is specifically used for: When the flame information indicates that there is no flame, if the smoke concentration is less than or equal to a preset concentration threshold, and the target temperature is less than or equal to a preset temperature threshold, it is determined that the target analysis result is normal; If the smoke concentration is greater than the preset concentration threshold, and / or the target temperature is greater than the preset temperature threshold, determining that the target analysis result is that there is a fire hazard; When the flame information indicates that a flame exists, if the smoke concentration is greater than the preset concentration threshold, and / or the target temperature is greater than the preset temperature threshold, then it is determined that the target analysis result is that a fire has occurred.
5. The system according to claim 4, characterized in that The target fire-fighting facilities include fire doors, fire hydrants and sprinkler heads; in terms of generating and executing a fire-fighting escape plan based on the target detection data to ensure the safety of personnel in the target medical site, the fire-fighting escape module is specifically used to: determining a fire hazard level according to the smoke concentration and the target temperature; Determine a first parameter and a second parameter corresponding to the fire hazard level; the first parameter includes spray intensity and duration; The second parameter includes water outlet pressure and water outlet flow rate; the higher the fire risk level, the greater the first parameter and the second parameter; Spraying the target detection area through the sprinkler head according to the spray intensity and the duration to perform preliminary fire extinguishing; The fire hydrant is configured according to the water outlet pressure and the water outlet flow rate to ensure the fire extinguishing effect; Control the fire door to remain closed until the fire is extinguished; The flame position in the flame information is obtained, and escape route information is formulated according to the flame position, and the escape route information is broadcast to ensure the safety of personnel in the target medical site.
6. The system according to claim 5, characterized in that In determining the fire hazard level according to the smoke concentration and the target temperature, the fire extinguishing and escape module is specifically used for: Obtaining a first weight corresponding to the smoke concentration and a second weight corresponding to the target temperature; Calculating the difference between the smoke concentration and the preset concentration threshold to obtain a first difference; Calculating a difference between the target temperature and the preset temperature threshold to obtain a second difference; determining a fire risk value according to the first difference, the first weight, the second difference, and the second weight; If the fire hazard value is less than a preset first value, determining that the fire hazard level is low; If the fire hazard value is greater than or equal to the first value and less than or equal to a preset second value, the fire hazard level is determined to be medium; If the fire risk value is greater than the second value, the fire risk level is determined to be high.
7. The system according to claim 5, characterized in that In terms of formulating escape route information according to the flame position and broadcasting the escape route information, the fire extinguishing and escape module is specifically used for: Obtaining a first escape route corresponding to a reference evacuation passage of the target medical site; The first escape route is adjusted according to the flame position to obtain a second escape route; the second escape route is far away from the flame position; Acquire a reference position of a barrier-free passage of the target medical facility; the barrier-free passage facilitates safe passage for people with limited mobility in the target medical facility; determining an intersection of the reference position and the second escape route; adjusting the second escape route according to the intersection to obtain a third escape route; The escape route information is determined according to the second escape route and the third escape route, and the escape route information is broadcasted.
8. A fire safety management method applicable to medical facilities, characterized in that: Applied to the fire safety management system applicable to a medical facility as claimed in any one of claims 1 to 7, the method comprising: Obtain target firefighting facilities and detector modules corresponding to the target detection area of the target medical site; When the target fire-fighting facility is in an abnormal state, generating first prompt information according to abnormal information corresponding to the abnormal state, and prompting the staff of the target medical site to perform inspection and maintenance according to the first prompt information to ensure that the target fire-fighting facility is in a normal state; Acquire detection data of the target detection area through the detector module to obtain target detection data; analyze the target detection data to obtain a target analysis result; When the target analysis result indicates that there is a fire hazard, a second prompt information is generated according to the target detection data; the second prompt information is used to prompt the staff to conduct a comprehensive inspection of the target detection area; When the target analysis result indicates that a fire has occurred, a fire extinguishing and escape plan is generated and executed according to the target detection data to ensure the safety of personnel in the target medical site.
9. An electronic device, characterized in that: include: A processor, a memory, a communication interface, and one or more programs; The one or more programs are stored in the memory and configured to be executed by the processor, the programs comprising instructions for executing the steps in the method of claim 8.
10. A computer-readable storage medium, characterized in that: The computer-readable storage medium stores a computer program, which includes program instructions. When the program instructions are executed by a processor, the processor is caused to perform the method according to claim 8.