Fire safety monitoring system

The fire safety monitoring system, which integrates smoke, temperature and infrared thermal imaging modules, solves the problem of inaccurate detection in the early stages of a fire by traditional fire protection systems, achieving high-precision fire monitoring and accurate positioning, and improving fire response speed and fire extinguishing efficiency.

CN223504764UActive Publication Date: 2025-11-04HEBEI SECURITY ALARM NETWORK CO LTD
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Patent Information

Application Number
CN202422190095.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-06
Publication Date
2025-11-04
Estimated Expiration
2034-09-06

AI Technical Summary

Technical Problem

Traditional fire protection systems struggle to accurately detect and locate fires in their early stages, resulting in delayed fire response and a high false alarm rate.

Method used

It integrates smoke detection, temperature detection, and infrared thermal imaging modules, combined with a control module to achieve multi-dimensional monitoring, and is equipped with a water sprayer, water tank, and self-test module to form an automated control system.

Benefits of technology

It achieves high-precision monitoring of fire hazards, quickly identifies early signs of fire, accurately locates the fire source, reduces false alarm rate, and improves firefighting efficiency and safety.

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Abstract

The utility model provides a fire safety monitoring system, and belongs to the technical field of fire protection. The fire safety monitoring system comprises a smoke detection module, a temperature detection module, an infrared thermal imaging module, a control module, a switch module and a fire extinguishing module, the smoke detection module, the temperature detection module and the infrared thermal imaging module are all connected with the control module; the switch module is connected with the control module and the fire extinguishing module. The smoke detection module is configured to detect the smoke concentration in the environment; the temperature detection module is configured to detect the temperature in the environment; the infrared thermal imaging module is configured to position a fire source; the control module is configured to receive detection information of the smoke detection module, the temperature detection module and the infrared thermal imaging module and control the fire extinguishing module according to the detection information. The fire detection precision can be improved.
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Description

Technical Field

[0001] This disclosure relates to the field of fire protection technology, and in particular to a fire safety monitoring system. Background Technology

[0002] With the acceleration of urbanization and the increase in high-rise buildings and large public places, fire hazards have increased significantly, posing a serious threat to the lives and property of the people. Therefore, improving fire safety management and emergency response capabilities has become an urgent need. However, traditional fire protection systems are difficult to detect fires in their early stages, and alarms and actions are only triggered when the fire has grown to a certain size. Furthermore, they are also difficult to locate and extinguish the fire source. Utility Model Content

[0003] This disclosure provides a fire safety monitoring system to address the problem of low fire detection accuracy.

[0004] This disclosure provides a fire safety monitoring system, including: a smoke detection module, a temperature detection module, an infrared thermal imaging module, a control module, a switch module, and a fire extinguishing module;

[0005] The smoke detection module, temperature detection module, and infrared thermal imaging module are all connected to the control module;

[0006] The switch module is connected to both the control module and the fire extinguishing module.

[0007] The smoke detection module is configured to detect the concentration of smoke in the environment;

[0008] The temperature detection module is configured to detect the temperature in the environment;

[0009] The infrared thermal imaging module is configured to locate the fire source;

[0010] The control module is configured to receive detection information from the smoke detection module, temperature detection module, and infrared thermal imaging module, respectively, and control the fire extinguishing module based on the detection information.

[0011] In one exemplary embodiment of this disclosure, the smoke detection module includes a smoke sensor;

[0012] The smoke sensor is connected to the control module.

[0013] In one exemplary embodiment of this disclosure, the fire extinguishing module includes a sprinkler and a water tank;

[0014] The water sprayer is connected to the switch module and the water tank respectively.

[0015] In one exemplary embodiment of this disclosure, the fire extinguishing module further includes a water level detection unit;

[0016] The water level detection unit is connected to the control module;

[0017] The water level detection unit is configured to detect the water level in the water tank.

[0018] In one exemplary embodiment of this disclosure, the fire safety monitoring system further includes a gas detection module;

[0019] The gas detection module is connected to the control module;

[0020] The gas detection module is configured to detect harmful gases in the air.

[0021] In one exemplary embodiment of this disclosure, the fire safety monitoring system further includes a self-test module;

[0022] The self-test module is connected to the control module;

[0023] The self-test module includes an infrared emitter and a control switch unit;

[0024] The control switch unit is connected to the infrared emitting tube and the control module respectively.

[0025] In one exemplary embodiment of this disclosure, the fire safety monitoring system further includes an audible and visual alarm module;

[0026] The audible and visual alarm module is connected to the control module.

[0027] In one exemplary embodiment of this disclosure, the fire safety monitoring system further includes a communication module and a remote monitoring platform;

[0028] The control module is connected to the remote monitoring platform via the communication module.

[0029] The beneficial effects of the fire safety monitoring system provided in this embodiment are as follows:

[0030] This embodiment of the invention integrates a smoke detection module, a temperature detection module, and an infrared thermal imaging module to achieve multi-dimensional and high-precision monitoring of fire hazards.

[0031] On the one hand, it can quickly and accurately identify early signs of a fire, such as faint smoke or abnormal temperature rise, effectively shortening the fire response time and buying valuable time for personnel evacuation and initial firefighting.

[0032] On the other hand, the addition of an infrared thermal imaging module enables the embodiments of this disclosure to accurately locate the fire source, providing clear guidance for firefighting operations and improving firefighting efficiency and targeting. Simultaneously, the automated control process reduces human intervention, lowers the false alarm rate, and enhances the stability and reliability of the embodiments of this disclosure.

[0033] Therefore, the embodiments disclosed herein not only improve the level of fire safety, but also promote the intelligence and precision of fire prevention and control, which is of great significance for protecting life and property safety. Attached Figure Description

[0034] To more clearly illustrate the technical solutions in the embodiments of this disclosure, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this disclosure. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0035] Figure 1 This is a schematic diagram of the structure of a fire safety monitoring system provided in an embodiment of this disclosure;

[0036] Figure 2 This is a schematic diagram of another fire safety monitoring system provided in this embodiment;

[0037] Figure 3 This is a schematic diagram of the structure of another fire safety monitoring system provided in the embodiments of this disclosure. Detailed Implementation

[0038] To enable those skilled in the art to better understand this solution, the technical solutions in the embodiments of this solution will be clearly described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this solution, not all of them. Based on the embodiments of this solution, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of this solution.

[0039] The term "comprising" and any other variations thereof in the specification, claims, and accompanying drawings of this invention mean "including but not limited to," and are intended to cover a non-exclusive inclusion, not limited to the examples listed herein. Furthermore, the terms "first" and "second," etc., are used to distinguish different objects, not to describe a specific order.

[0040] The implementation of this disclosure will be described in detail below with reference to the specific accompanying drawings:

[0041] Figure 1 This is a structural schematic diagram of a fire safety monitoring system provided in an embodiment of this disclosure. (Refer to...) Figure 1 The fire safety monitoring system includes:

[0042] Smoke detection module 101, temperature detection module 102, infrared thermal imaging module 103, control module 104, switch module 105, and fire extinguishing module 106;

[0043] The smoke detection module 101, the temperature detection module 102, and the infrared thermal imaging module 103 are all connected to the control module 104.

[0044] The switch module 105 is connected to the control module 104 and the fire extinguishing module 106 respectively;

[0045] Smoke detection module 101 is configured to detect the smoke concentration in the environment;

[0046] Temperature detection module 102 is configured to detect the temperature in the environment;

[0047] Infrared thermal imaging module 103 is configured to locate fire sources;

[0048] The control module 104 is configured to receive detection information from the smoke detection module 101, the temperature detection module 102 and the infrared thermal imaging module 103 respectively, and control the fire extinguishing module 106 according to the detection information.

[0049] In this embodiment, the smoke detection module 101 is primarily responsible for detecting the presence and concentration changes of smoke in the environment. Through its built-in components, it can sensitively sense changes in the concentration of smoke particles in the environment. For example, in a room, if a fire occurs and smoke is generated, the smoke detection module 101 can quickly detect the increase in smoke concentration and issue an alarm in the early stages of a fire, buying valuable time for timely firefighting measures.

[0050] The temperature detection module 102 is primarily responsible for monitoring changes in ambient temperature, enabling it to perceive the surrounding environment's temperature in real time. For example, in a warehouse, if an item spontaneously combusts, causing the temperature to rise, the temperature detection module 102 can promptly detect this and transmit the temperature data to the control module 104. The temperature detection module 102 can accurately reflect subtle changes in ambient temperature, providing crucial information for determining whether a fire has occurred.

[0051] The infrared thermal imaging module 103 uses infrared technology to locate the fire source. When a fire occurs, the fire source generates heat, and the infrared thermal imaging module 103 can capture the distribution of this heat and accurately determine the location of the fire source. In complex environments, such as large factories or shopping malls, it can help rescue personnel quickly find the fire point and take effective firefighting actions. For example, in the event of a fire in a multi-story building, the infrared thermal imaging module 103 can penetrate smoke and obstacles to accurately indicate the floor and specific location of the fire source. Simultaneously, after locating the fire source, the infrared thermal imaging module 103 can send this information to the control module 104, which will then send instructions to the fire extinguishing module 106 to initiate firefighting operations.

[0052] The control module 104 is responsible for receiving detection information from the smoke detection module 101, temperature detection module 102, and infrared thermal imaging module 103, and for comprehensively analyzing and processing the received information. Based on preset control logic, the control module 104 can determine the severity and development trend of the fire and automatically make corresponding decisions. For example, if both the smoke concentration and temperature exceed set thresholds, the control module 104 can immediately activate the fire extinguishing module 106.

[0053] The switch module 105 can control the start and stop of the fire extinguishing module 106 according to the instructions of the control module 104, so as to ensure that the fire extinguishing module 106 can be put into operation in time when needed, and can stop operation when the fire is under control or a false alarm is triggered, thereby avoiding unnecessary waste of resources and losses.

[0054] The fire extinguishing module 106 can employ various fire extinguishing methods, such as water spray and gas extinguishing. Once it receives an activation command from the control module 104 via the switch module 105, the fire extinguishing module 106 can quickly release the extinguishing medium to extinguish the fire source and reduce the losses caused by the fire.

[0055] As can be seen from the above, this embodiment, by integrating the smoke detection module 101, the temperature detection module 102, and the infrared thermal imaging module 103, achieves multi-dimensional and high-precision monitoring of fire hazards. On the one hand, it can quickly and accurately identify initial signs of a fire, such as faint smoke or abnormal temperature rise, effectively shortening the fire response time and buying valuable time for personnel evacuation and initial firefighting. On the other hand, the addition of the infrared thermal imaging module 103 enables this embodiment to accurately locate the fire source, providing clear guidance for firefighting operations and improving firefighting efficiency and targeting. At the same time, the automated control process reduces human intervention, lowers the false alarm rate, and enhances the stability and reliability of this embodiment. Therefore, this embodiment not only improves the level of fire safety but also promotes the intelligent and precise nature of fire prevention and control, which is of great significance for protecting life and property safety.

[0056] In one embodiment of this disclosure, reference is made to Figure 2 The smoke detection module 101 includes a smoke sensor 201;

[0057] The smoke sensor 201 is connected to the control module 104.

[0058] In this embodiment, the smoke sensor 201 can use infrared light or laser to illuminate the environment, and then determine the presence and concentration of smoke by detecting the scattering or absorption of light by smoke particles.

[0059] When the smoke sensor 201 detects smoke, it can immediately transmit the relevant signals and data to the control module 104. After receiving the relevant information, the control module 104 can analyze and process it to determine the severity of the smoke and whether corresponding measures need to be taken, such as activating the audible and visual alarm device or triggering the fire extinguishing module 106.

[0060] For example, suppose a small amount of smoke is generated in a warehouse environment due to an electrical fault. The smoke sensor 201 can quickly detect these changes in smoke and transmit the information to the control module 104. Based on preset thresholds and logic, the control module 104 determines that the smoke situation has not yet reached a serious level, but will issue a warning signal to alert relevant personnel.

[0061] For example, in another scenario, such as a severe fire occurring in a room of a residential building, producing a large amount of dense smoke, the smoke sensor 201 can sensitively detect high concentrations of smoke and quickly send an emergency signal to the control module 104. The control module 104 then initiates more powerful countermeasures, such as triggering an audible and visual alarm and simultaneously activating the fire extinguishing module 106 to perform fire suppression operations.

[0062] As can be seen from the above, the introduction of the smoke sensor 201 greatly improves the sensitivity and accuracy of fire early warning, enabling this embodiment to respond quickly in the early stages of smoke, promptly triggering the alarm and initiating subsequent emergency measures. By accurately capturing smoke signals, the spread of fire is effectively prevented, buying more time for personnel evacuation and initial firefighting work, and significantly enhancing fire safety capabilities.

[0063] In one embodiment of this disclosure, reference is made to Figure 2 The fire extinguishing module 106 includes a sprinkler 203 and a water tank 202;

[0064] The water sprayer 203 is connected to the switch module 105 and the water tank 202 respectively.

[0065] In this embodiment, the sprinkler 203 is a key component of the fire extinguishing module 106, responsible for spraying fire-extinguishing water onto the fire area. The sprinkler 203 ensures effective coverage of the fire area and sprays water at appropriate pressure and flow rate. Furthermore, the design of the sprinkler 203 affects the angle, range, and atomization of the spray.

[0066] For example, in a relatively open warehouse, a water sprayer 203 with a wide-angle nozzle can be used to quickly cover a large area; while in some narrow passages or equipment rooms, a water sprayer 203 with a directional nozzle can be used to accurately spray water onto a specific fire source.

[0067] Water tank 202 is a crucial component of the fire extinguishing module 106, storing water for firefighting. The capacity of water tank 202 can be configured according to the specific application scenario and firefighting requirements. Generally, large venues such as shopping malls and factories require larger capacity water tanks 202 to ensure sufficient water supply for firefighting in the event of a fire. Water tank 202 can be made of robust and durable materials to prevent leaks and damage. Furthermore, to ensure the water in water tank 202 remains readily available, it can be equipped with water level monitoring devices, water purification equipment, and anti-corrosion treatments.

[0068] For example, suppose a fire occurs in a high-rise office building. After receiving an instruction from the control module 104, the switch module 105 opens, and the sprinkler 203 immediately draws water from the water tank 202 connected to it and sprays it out with strong pressure and in a suitable manner.

[0069] For example, in a small commercial shop, where space is limited, a smaller capacity water tank 202 can be configured, but the sprinkler 203 can still respond quickly and effectively control the initial fire.

[0070] As can be seen from the above, the sprinkler 203 and water tank 202 work together and play a crucial role in the fire extinguishing module 106. Once a fire is detected and confirmed, the control module 104 can quickly activate the sprinkler 203 through the switch module 105, releasing water from the water tank 202 to extinguish the fire. Therefore, this embodiment not only shortens the fire extinguishing response time but also ensures accurate spraying to specific fire source locations, effectively curbing the spread of fire and protecting the surrounding environment and property. At the same time, the timely response of the sprinkler 203 also reduces the threat of fire to personnel safety and improves the overall fire safety level.

[0071] In one embodiment of this disclosure, reference is made to Figure 2 The fire extinguishing module 106 also includes a water level detection unit 204;

[0072] The water level detection unit 204 is connected to the control module 104;

[0073] The water level detection unit 204 is configured to detect the water level in the water tank 202.

[0074] In this embodiment, the water level detection unit 204 is mainly responsible for accurately detecting the water level in the water tank 202. The water level detection unit 204 can use an ultrasonic sensor to measure the water level, and the ultrasonic sensor calculates the water level by utilizing the time it takes for ultrasonic waves to travel through water.

[0075] The connection between the water level detection unit 204 and the control module 104 enables the water level information to be transmitted to the control module 104 in real time, ensuring that the control module 104 can promptly understand the water level status of the water tank 202. When the water level is lower than the preset safety threshold, the control module 104 can issue an alarm to remind relevant personnel to replenish water in time, so as to ensure that the fire extinguishing module 106 can work normally when needed.

[0076] For example, suppose a fire safety monitoring system is operating in a large factory, and the water level detection unit 204 continuously monitors the water level in the water tank 202. If the water level drops to a dangerous level due to prolonged water spraying, the water level detection unit 204 can immediately transmit this information to the control module 104. The control module 104 then activates an early warning mechanism, notifying the factory's maintenance personnel to replenish the water in the water tank 202 as soon as possible. Simultaneously, it can adjust the spraying strategy of the sprinkler 203 to extend the usage time of the existing water supply until a new water source is added.

[0077] For example, in a fire safety monitoring system in a residential community, the water level detection unit 204 periodically sends water level reports to the control module 104. Even in the absence of a fire, the control module 104 can arrange reasonable maintenance and water replenishment plans based on the water level information to ensure that the fire extinguishing module 106 is always in optimal working condition.

[0078] As can be seen from the above, the water level detection unit 204 added to the fire extinguishing module 106 is closely connected to the control module 104 and focuses on real-time monitoring of the water level in the water tank 202, further enhancing the intelligence and reliability of this embodiment. By timely sensing water level changes, this embodiment can ensure a sufficient water supply during fire extinguishing, avoiding delays in fire extinguishing due to water shortage. At the same time, water level detection also facilitates daily maintenance, enabling early warning and replenishment of water, thereby ensuring the continuous and effective operation of the fire extinguishing module 106 and providing a more solid guarantee for fire safety.

[0079] In one embodiment of this disclosure, reference is made to Figure 2 The fire safety monitoring system also includes a gas detection module 107;

[0080] Gas detection module 107 is connected to control module 104;

[0081] The gas detection module 107 is configured to detect harmful gases in the air.

[0082] In this embodiment, the gas detection module 107 can detect different types of harmful gases. Harmful gases include, but are not limited to, flammable, explosive, or toxic gases such as carbon monoxide, hydrogen sulfide, and methane. The connection between the gas detection module 107 and the control module 104 enables real-time transmission and processing of detection data.

[0083] When a fire occurs, some toxic gases are easily produced. At this time, the gas detection module 107 can detect whether the gases in the air are harmful. When the gas detection module 107 detects that the concentration of a harmful gas exceeds a safety threshold, it can immediately transmit the relevant data to the control module 104. After receiving this information, the control module 104 can take corresponding measures, such as triggering the audible and visual alarm module 109. Especially when firefighters are needed to fight a fire, it can remind firefighters or other personnel to take safety precautions to prevent harm to their health.

[0084] For example, in a workshop of a chemical plant, the gas detection module 107 detects a hydrogen sulfide gas leak at a concentration exceeding the danger level. The control module 104 can immediately issue an alarm, notify personnel to evacuate quickly, and take emergency measures to prevent further gas leakage and potential fire or explosion accidents.

[0085] As can be seen from the above, by introducing the gas detection module 107, which works closely with the control module 104, the concentration of harmful gases in the air can be detected in real time. This not only provides early warning of potential toxic gas leaks, giving valuable time to take timely protective measures, but also enhances the comprehensiveness of fire safety monitoring and significantly improves the safety of relevant personnel in hazardous environments.

[0086] In one embodiment of this disclosure, reference is made to Figure 2 and Figure 3 The fire safety monitoring system also includes a self-test module 108;

[0087] The self-test module 108 is connected to the control module 104;

[0088] The self-test module 108 includes an infrared emitting tube 302 and a control switch unit 301;

[0089] The control switch unit 301 is connected to the infrared emitting tube 302 and the control module 104 respectively.

[0090] In this embodiment, the self-test module 108 is responsible for periodically checking whether the fire safety monitoring system can operate normally. The self-test module 108 is connected to the control module 104, and the control module 104 can periodically send signals to the self-test module 108 to start the self-test module 108 to perform self-test operations, ensuring the normal operation and reliability of the entire fire safety monitoring system.

[0091] The infrared emitting diode 302 is one of the key components in the self-test module 108, capable of emitting infrared light of a specific wavelength. During the self-test, the infrared light emitted by the infrared emitting diode 302 can be used to detect the response of the infrared thermal imaging module 103. If the infrared thermal imaging module 103 responds normally, it will send a signal to the control module 104, and the control module 104 can simultaneously activate the audible and visual alarm module 109 to sound an alarm. At this point, it indicates that the fire safety monitoring system is functioning normally.

[0092] The control switch unit 301 is connected to the infrared emitting tube 302 and the control module 104 respectively. It can turn the infrared emitting tube 302 on or off according to the instructions of the control module 104, thereby controlling the start and stop of the self-test module 108.

[0093] For example, suppose that during the periodic self-test of the fire safety monitoring system, the control switch unit 301 receives a high-level signal from the control module 104. At this time, the control switch unit 301 is turned on, thereby turning on the infrared emitting tube 302. Infrared light shines on the receiving end of the infrared thermal imaging module 103. If the infrared thermal imaging module 103 can normally receive and feed back the signal to the control module 104, it indicates that it is working normally; otherwise, if there is no feedback or the feedback is abnormal, it indicates that there is a fault.

[0094] When the self-test module 108 is started, the control module 104 can send a disconnect command to the switch module 105 to stop the fire extinguishing module 106 from working; when the self-test of the self-test module 108 is completed, the control module 104 can send a close command to the switch module 105 to ensure that the control module can start the fire extinguishing module 106 normally in the event of a fire.

[0095] As can be seen from the above, the self-test module 108, through the coordinated operation of the infrared emitting tube 302 and the control switch unit 301, is connected to the control module 104 to realize self-testing and fault diagnosis of the fire safety monitoring system, ensuring that this embodiment can reliably play its role at critical moments.

[0096] In one embodiment of this disclosure, reference is made to Figure 2 The fire safety monitoring system also includes an audible and visual alarm module 109;

[0097] The audible and visual alarm module 109 is connected to the control module 104.

[0098] In this embodiment, the audible and visual alarm module 109 serves as a warning, responsible for alerting relevant personnel to the occurrence of a fire and other situations. The audible and visual alarm module 109 includes a buzzer and a flashing light, capable of attracting the attention of relevant personnel over a wide area. The flashing light can use a bright, flashing light; a red flashing light indicates a fire, a yellow flashing light indicates the presence of toxic gas, a blue flashing light indicates that the water tank 202 is low on water, and a green flashing light indicates a malfunction in the fire safety monitoring system.

[0099] The audible and visual alarm module 109 is closely connected to the control module 104. When the control module 104 determines that a fire or dangerous situation has occurred based on the information from the smoke detection module 101, temperature detection module 102, gas detection module 107, etc., it can immediately send a command to the audible and visual alarm module 109.

[0100] For example, in a large shopping mall, if the smoke concentration exceeds a set threshold, it means a fire has occurred, and the control module 104 can activate the audible and visual alarm module 109. A loud siren will sound instantly, and at the same time, flashing red lights will alert people and remind them to take swift action, such as evacuating or finding a safe exit.

[0101] As can be seen from the above, when the fire safety monitoring system detects a fire or abnormal situation, the audible and visual alarm module 109 can be activated quickly, emitting a strong sound and flashing light to attract the attention of relevant personnel immediately, effectively shortening the time from fire detection to action. Therefore, this embodiment not only enhances the rapid response capability in the early stages of a fire, but also greatly improves the safety awareness and emergency evacuation efficiency of people in public places and buildings.

[0102] In one embodiment of this disclosure, reference is made to Figure 2 The fire safety monitoring system also includes a communication module 110 and a remote monitoring platform 111;

[0103] The control module 104 is connected to the remote monitoring platform 111 via the communication module 110.

[0104] In this embodiment, the communication module 110 can employ various communication technologies, such as wireless networks (e.g., Wi-Fi, 4G / 5G) and wired networks (e.g., Ethernet). The communication module 110 is responsible for encoding and transmitting various monitoring data collected by the control module 104, such as smoke concentration, temperature, gas concentration, and equipment status.

[0105] For example, in a multi-story office building, the communication module 110 can integrate the fire monitoring data of each floor and send it to the remote monitoring platform 111 in a stable and efficient manner.

[0106] The remote monitoring platform 111 is responsible for the centralized management and monitoring of fire safety conditions, and can consist of a server, a database, and a user interface. Through its connection with the control module 104, the remote monitoring platform 111 can receive information from various monitoring points in real time, and store, analyze, and display it.

[0107] Managers can access the remote monitoring platform 111 via computers, mobile phones, and other terminal devices to monitor the fire safety situation in various locations anytime, anywhere. The platform can present information in the form of charts, maps, and real-time data, allowing managers to have a clear and intuitive grasp of the overall situation.

[0108] For example, suppose that in a chain hotel group, the headquarters managers can simultaneously view the fire safety status of hotels located in different cities through the remote monitoring platform 111. Once the fire safety monitoring system of a hotel issues an alarm, the control module 104 transmits the information to the remote monitoring platform 111 through the communication module 110, and the managers can respond quickly, such as notifying local hotel staff to take emergency measures or contacting the fire department.

[0109] As can be seen from the above, by adding the communication module 110 and the remote monitoring platform 111, remote and intelligent management of fire monitoring is achieved. In the event of a fire or abnormal situation, the control module 104 can promptly transmit alarm information to the remote monitoring platform 111 via the communication module 110, enabling 24 / 7 uninterrupted remote monitoring and real-time response. Therefore, this embodiment not only greatly improves the efficiency and accuracy of fire handling but also facilitates managers in quickly grasping the on-site situation and making informed decisions.

[0110] The above embodiments are only used to illustrate the technical solutions of this disclosure, and are not intended to limit it. Although this disclosure has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this disclosure.

Claims

1. A fire safety monitoring system, characterized in that, It includes a smoke detection module, a temperature detection module, an infrared thermal imaging module, a control module, a switch module, and a fire extinguishing module; The smoke detection module, the temperature detection module, and the infrared thermal imaging module are all connected to the control module; The switch module is connected to both the control module and the fire extinguishing module. The smoke detection module is configured to detect the smoke concentration in the environment; The temperature detection module is configured to detect the temperature in the environment; The infrared thermal imaging module is configured to locate the fire source; The control module is configured to receive detection information from the smoke detection module, the temperature detection module, and the infrared thermal imaging module, respectively, and control the fire extinguishing module according to the detection information; The fire extinguishing module includes a sprinkler and a water tank; The water sprayer is connected to the switch module and the water tank respectively; The fire extinguishing module also includes a water level detection unit; The water level detection unit is connected to the control module; The water level detection unit is configured to detect the water level in the water tank.

2. The fire safety monitoring system as described in claim 1, characterized in that, The smoke detection module includes a smoke sensor; The smoke sensor is connected to the control module.

3. The fire safety monitoring system as described in claim 1, characterized in that, It also includes a gas detection module; The gas detection module is connected to the control module; The gas detection module is configured to detect harmful gases in the air.

4. The fire safety monitoring system as described in claim 1, characterized in that, It also includes a self-test module; The self-test module is connected to the control module; The self-test module includes an infrared emitting tube and a control switch unit; The control switch unit is connected to the infrared emitting tube and the control module, respectively.

5. The fire safety monitoring system as described in claim 1, characterized in that, It also includes an audible and visual alarm module; The audible and visual alarm module is connected to the control module.

6. The fire safety monitoring system as described in claim 1, characterized in that, It also includes a communication module and a remote monitoring platform; The control module is connected to the remote monitoring platform through the communication module.

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