Charging shed temperature control anti-explosion flame-retardant control software system
By developing a temperature-controlled, riot-resistant flame retardant control software system in the charging shed, real-time environmental monitoring, automatic temperature control and intelligent fire-fighting equipment management have been solved, and the safety and emergency response capabilities of the charging shed are improved.
Patent Information
- Application Number
- CN202510186704.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-20
- Publication Date
- 2025-06-27
AI Technical Summary
The charging shed is at a high risk of fire due to special environments and high heat, and because it is difficult to realize manual inspection and fire-fighting equipment management in remote locations, the existing technology cannot achieve real-time monitoring, intelligent control and emergency response.
Develop a charging shed temperature control, riot flame retardant control software system, including environmental monitoring sensor module, central processing system, intelligent fire protection equipment module and remote control terminal to realize real-time data acquisition, automatic temperature control, intelligent fire protection equipment management and remote emergency response.
Through intelligent environmental monitoring and automated control, all-weather intelligent monitoring and management of the charging shed is realized, improving the safety and emergency response capabilities of the charging shed, and avoiding safety hazards caused by insufficient manual inspections and equipment failure.
Smart Images

Figure CN120204672A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of intelligent fire protection systems, and particularly to a temperature control, explosion resistance, flame retardancy control software system for charging sheds. Background Art
[0002] In recent years, with the rapid development of electric vehicles and their charging infrastructure, charging sheds, as an important part of electric vehicle charging stations, are responsible for power supply and safety guarantee during the charging process of electric vehicles. However, the special environment of charging sheds and the high heat generated during the charging process increase the potential risk of fire. At the same time, charging sheds are usually located in relatively remote areas, making it difficult to achieve manual regular inspections and effective management of fire protection equipment. Therefore, how to achieve temperature control of charging sheds, fire monitoring, and intelligent management of fire extinguishing equipment through intelligent means has become the key to ensuring the safe operation of charging sheds.
[0003] Currently, the fire protection equipment of most charging sheds mainly relies on manual regular inspections and manual operations. Once a fire occurs, the best fire extinguishing opportunity may be missed. Traditional fire protection systems lack real-time monitoring and automatic control functions, resulting in a relatively high failure rate of equipment such as fire extinguishers and fire alarms, and a slow emergency response speed, unable to effectively avoid the losses caused by charging shed fires to electric vehicles, equipment, and the surrounding environment.
[0004] To solve the above problems, there have been some solutions for intelligent fire protection systems in the prior art. However, most of the solutions can only perform single monitoring and management of fire protection equipment, lacking comprehensive monitoring of the charging shed environment, temperature control management, and emergency response. And when a fire occurs, traditional systems cannot provide functions such as real-time and accurate fire location, intelligent fire extinguishing control, and emergency kit dispatching, unable to ensure the safety in high-risk areas.
[0005] In addition, most existing fire protection control systems rely on manual inspections and manual operations. The inspection cycle of fire protection equipment is not fixed, and the effectiveness of fire protection equipment is uncertain, making it difficult to meet the high standards of fire safety requirements for modern charging shed operation management. To ensure the effectiveness of fire protection equipment and improve safety, there is an urgent need for an intelligent and automated temperature control, explosion resistance, flame retardancy control system for charging sheds, which can real-time monitor the environmental parameters of charging sheds, automatically adjust the temperature, remotely monitor the status of fire protection equipment, and provide an immediate emergency response when a fire occurs.
[0006] Therefore, it is of great practical significance and application value to develop a temperature control, explosion resistance, flame retardancy control software system for charging sheds with automatic detection, real-time monitoring, intelligent control, and emergency response capabilities. Summary of the Invention
[0007] To solve the technical problems in the prior art that the charging shed lacks an intelligent control system, cannot achieve real-time response of temperature regulation, fire monitoring and intelligent fire extinguishing, and relies on manual inspection of fire-fighting equipment and manual operation, unable to ensure the effectiveness of fire-fighting equipment, the present invention provides a temperature control, explosion-proof and flame-retardant control software system for the charging shed.
[0008] The technical solution provided by the present invention is as follows:
[0009] The temperature control, explosion-proof and flame-retardant control software system for the charging shed provided by the present invention includes:
[0010] A sensor module for environmental monitoring, a central processing system, an intelligent fire-fighting equipment module and a remote control terminal,
[0011] The sensor module includes a temperature and humidity sensor, a gas sensor and a smoke sensor, and is used for collecting environmental data in the charging shed in real time;
[0012] The central processing system includes a data acquisition and processing unit, which is used for receiving the data of the sensor module and analyzing it based on a preset threshold;
[0013] The intelligent fire-fighting equipment module includes an intelligent fire extinguisher, an intelligent remote fire extinguishing controller and an intelligent emergency kit. The central processing system is communicatively connected with the intelligent fire-fighting equipment module and is used for controlling the state of the equipment;
[0014] The remote control terminal communicates bidirectionally with the central processing system and is used for monitoring the environmental state and providing remote control of the equipment.
[0015] Further, the central processing system further includes a safety assessment unit, which is used for generating a safety level report based on the data of the sensor module and the state of the fire-fighting equipment, and triggering an alarm when the safety level is lower than the preset standard.
[0016] Further, the intelligent fire extinguisher includes a self-check module for regularly detecting the state of the equipment, and the central processing system can receive the self-check result and generate a report on the effectiveness of the equipment.
[0017] Further, a Beidou indoor locator is integrated inside the intelligent emergency kit, which is used for accurately positioning the location of the emergency kit in case of a fire, and the remote control terminal can display the positioning information.
[0018] Further, the data acquisition and processing unit further includes a data analysis module for predicting possible environmental risks based on the historical data of the sensor module.
[0019] Further, the intelligent remote fire extinguishing controller is communicatively connected with a video monitoring unit. The video monitoring unit is used for collecting video data in the charging shed in real time, and the central processing system analyzes the location of the fire source based on the video data and triggers a fire extinguishing instruction.
[0020] Further, the security assessment unit is communicatively connected to the display unit and is configured to display the visualized risk assessment result on the display unit based on the generated security level report.
[0021] Further, the central processing system includes a device status reporting module configured to regularly upload the status of fire-fighting equipment and environmental monitoring data to the remote control terminal.
[0022] Further, the intelligent fire-fighting equipment module further includes high-rise fire extinguishers, and the central processing system is capable of controlling the high-rise fire extinguishers to automatically adjust the spraying angle and fire extinguishing range within a specific height.
[0023] Further, the central processing system is communicatively connected bidirectionally with the intelligent remote fire extinguishing controller and automatically switches to the standby channel in case of equipment failure or communication interruption to ensure the continuity of the fire extinguishing function.
[0024] The beneficial effects brought by the technical solution provided by the present invention at least include:
[0025] (1) In the present invention, through technical means such as intelligent environmental monitoring, automatic temperature control, and intelligent fire-fighting equipment management, all-weather intelligent monitoring and management of the charging shed environment are realized. The system can obtain data such as temperature, humidity, and gas concentration in the shed in real time, and automatically adjust the equipment for temperature control when the safety threshold is exceeded to prevent fires caused by overheating or accumulation of harmful gases. At the same time, through the intelligent fire extinguisher and remote control function, the management personnel can obtain the real-time status of the fire-fighting equipment at any time to ensure that the equipment is always in an effective working state, greatly improving the safety and emergency response ability of the charging shed and avoiding potential safety hazards caused by insufficient manual inspections and equipment failures;
[0026] (2) In the present invention, the temperature control, explosion resistance, and flame retardant control software system of the charging shed can realize the automatic monitoring and intelligent self-checking functions of the equipment. By integrating intelligent emergency kits, fire extinguishers, Beidou indoor locators and other intelligent devices, the system can regularly check the working status of the fire-fighting equipment, automatically perform self-checking and fault diagnosis, send out an alarm in time when a device failure is found, and automatically generate a reminder for maintenance or replacement, avoiding the situation of untimely manual inspections or undetected device failures. This function greatly reduces manual intervention, improves the equipment maintenance efficiency, and ensures that the fire-fighting facilities always maintain the best working state;
[0027] (3) In the present invention, through the real-time monitoring and analysis of the environmental data in the charging shed, intelligent fire warning and efficient emergency response can be achieved. In the initial stage of a fire, the system can, through the linkage of sensors such as temperature and smoke, detect the fire risk in advance and automatically trigger a warning message to notify the management staff for emergency handling. At the same time, the system can automatically dispatch fire extinguishing equipment for intelligent fire extinguishing, and start and adjust the equipment through remote control, shortening the fire emergency response time, reducing the losses caused by delays, and improving the efficiency and accuracy of emergency handling. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0029] Figure 1 It is a schematic structural diagram of the temperature control, explosion-proof and flame-retardant control software system for the charging shed provided by the embodiment of the present invention;
[0030] Figure 2 It is a schematic flow diagram of the temperature control, explosion-proof and flame-retardant control software system for the charging shed provided by the embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0031] The following will describe the technical solutions in the present invention with reference to the drawings.
[0032] In the embodiments of the present invention, words such as "exemplarily" and "for example" are used to represent examples, illustrations or explanations. Any embodiment or design solution described as an "example" in the present invention should not be construed as being more preferred or having more advantages than other embodiments or design solutions. Exactly speaking, the use of the word "example" is intended to present concepts in a specific way. In addition, in the embodiments of the present invention, the meaning expressed by "and / or" can be both, or either one of the two.
[0033] In the embodiments of the present invention, "image" and "picture" can sometimes be used interchangeably. It should be noted that when the difference is not emphasized, the meaning they express is the same. "(of)", "corresponding" and "corresponding" can sometimes be used interchangeably. It should be noted that when the difference is not emphasized, the meaning they express is the same.
[0034] In the embodiments of the present invention, sometimes subscripts such as W1 may be miswritten as non-subscript forms such as W1. When the difference is not emphasized, the meaning they express is the same.
[0035] To make the technical problems, technical solutions, and advantages to be solved by the present invention clearer, the following will describe them in detail with reference to the accompanying drawings and specific embodiments.
[0036] Refer to the attached Figure 1 description, which shows a schematic structural diagram of the temperature control, explosion resistance, and flame retardant control software system for a charging shed provided by an embodiment of the present invention.
[0037] An embodiment of the present invention provides a temperature control, explosion resistance, and flame retardant control software system for a charging shed, which may include:
[0038] A sensor module for environmental monitoring, a central processing system, an intelligent fire protection equipment module, and a remote control terminal. The sensor module includes a temperature and humidity sensor, a gas sensor, and a smoke sensor, which are used to collect environmental data in the charging shed in real time. The central processing system includes a data acquisition and processing unit, which is used to receive the data from the sensor module and analyze it based on a preset threshold. The intelligent fire protection equipment module includes an intelligent fire extinguisher, an intelligent remote fire extinguishing controller, and an intelligent emergency kit. The central processing system is communicatively connected to the intelligent fire protection equipment module to control the state of the equipment. The remote control terminal communicates bidirectionally with the central processing system to monitor the environmental state and provide remote control of the equipment.
[0039] The central processing system further includes a safety assessment unit, which is used to generate a safety level report based on the data from the sensor module and the state of the fire protection equipment, and trigger an alarm when the safety level is lower than a preset standard.
[0040] The intelligent fire extinguisher includes a self-check module, which is used to regularly detect the state of the equipment. The central processing system can receive the self-check result and generate an equipment effectiveness report.
[0041] The intelligent emergency kit is internally integrated with a Beidou indoor locator, which is used to accurately locate the position of the emergency kit in case of a fire. The remote control terminal can display the positioning information.
[0042] The data acquisition and processing unit further includes a data analysis module, which is used to predict possible environmental risks based on the historical data of the sensor module.
[0043] The intelligent remote fire extinguishing controller is communicatively connected to a video monitoring unit. The video monitoring unit is used to collect video data in the charging shed in real time. The central processing system analyzes the position of the fire source based on the video data and triggers a fire extinguishing instruction.
[0044] The safety assessment unit is communicatively connected to a display unit, which is used to display the visual risk assessment result on the display unit based on the generated safety level report.
[0045] The central processing system includes an equipment status reporting module, which is used to regularly upload the state of the fire protection equipment and the environmental monitoring data to the remote control terminal.
[0046] The intelligent fire-fighting equipment module also includes high-rise fire extinguishers, and the central processing system can control the high-rise fire extinguishers to automatically adjust the spraying angle and fire-extinguishing range within a specific height.
[0047] The central processing system is bidirectionally communicatively connected to the intelligent remote fire extinguishing controller and automatically switches to the backup channel in case of equipment failure or communication interruption to ensure the continuity of the fire-extinguishing function.
[0048] The temperature control, explosion-proof and flame-retardant control software system of the charging shed in the embodiment of the present invention adopts a modular architecture design. The core modules include a data acquisition module, a data processing module, a safety assessment module, an equipment monitoring module, a video monitoring module, a fire extinguishing control module, a remote control module and a user interface module. When designing the system architecture, the interconnection and interoperability of each module are fully considered to ensure the efficiency, reliability and scalability of the system. The entire system is managed by a unified central processing system (CPS), and all data and instructions are exchanged and processed through the CPS. The following is the detailed architecture of the system:
[0049] Central Processing System (CPS): As the core of the system, the CPS is mainly responsible for data reception, analysis, processing and instruction distribution. The CPS can be deployed on a cloud platform or a local server to provide efficient computing and storage capabilities. The CPS consists of the following sub-modules:
[0050] Data Acquisition and Processing Unit: Responsible for receiving data from sensors, intelligent fire-fighting equipment and other monitoring devices. The collected data includes temperature and humidity, smoke concentration, harmful gas concentration, the status of fire-fighting equipment, etc. These data are uploaded to the central processing system in real time and processed and filtered.
[0051] Safety Assessment Unit: Based on the real-time data transmitted by the Data Acquisition and Processing Unit, assess the safety level of the charging shed. The Safety Assessment Unit combines preset thresholds to determine whether to trigger an alarm or activate the fire-fighting equipment.
[0052] Instruction Scheduling Module: After receiving the instruction from the Safety Assessment Unit, determine whether to activate the fire extinguisher, adjust the temperature or send an alarm. The Instruction Scheduling Module can make intelligent judgments based on real-time data and send control instructions to each sub-module through network protocols.
[0053] Sensor Management Module: This module is responsible for communicating with all sensors connected to the system. The Sensor Management Module ensures the real-time upload of sensor data and filters out invalid information through data cleaning and preprocessing. Sensor data includes environmental data (temperature and humidity, gas, smoke, etc.) and equipment status data (the battery level, pressure, position of the fire extinguisher, etc.). This module exchanges data with the Data Acquisition and Processing Unit.
[0054] Device Management Module: Responsible for managing and monitoring various fire-fighting devices, including intelligent fire extinguishers, emergency kits, intelligent remote fire controllers, etc. The device management module communicates with intelligent devices through standardized interfaces, monitors their working status in real time, and regularly obtains self-check results to ensure that the devices are always in normal working condition. This module is also responsible for reporting the device status to the remote control terminal.
[0055] Video Surveillance Module: The video surveillance module obtains real-time image data inside the charging shed by connecting to cameras. The video data of the cameras is transmitted through the network to the CPS for processing. The video surveillance module can also work in coordination with the intelligent fire extinguishing system to provide a basis for fire extinguishing control during a fire.
[0056] Intelligent Fire Extinguishing Module: The core of the intelligent fire extinguishing module is the control and scheduling of fire extinguishing devices (such as intelligent fire extinguishers, high-rise fire extinguishers, etc.). The status of the fire extinguishing devices (whether online, whether maintenance is required, etc.) is reported by the device management module, and the system automatically activates the fire extinguishers for fire extinguishing according to the determination of the safety assessment unit. During a fire, the intelligent fire extinguishing module can cooperate with the video surveillance module to determine the fire location and prescribe the right remedy.
[0057] Remote Control Module: The remote control module allows administrators to monitor the environmental status, device operation status, and video surveillance content of the charging shed in real time through a Web interface or a mobile APP. Administrators can remotely activate fire extinguishing devices, adjust temperature settings, or view device status through this module. When the system detects a danger, the remote control module can send an alarm notification and allow administrators to intervene in the system operation.
[0058] User Interface Module: This module provides a visual interface for system users, including real-time display of environmental status, fire-fighting device monitoring, historical data query, alarm information, etc. The user interface module supports access by multiple devices, such as PCs, mobile devices, etc., facilitating managers to monitor and operate the system in real time.
[0059] Data Storage and Analysis Module: The system uses cloud storage or local storage methods to save historical data and alarm records. The stored data includes sensor data, device status, alarm information, etc. The data analysis module conducts in-depth analysis of historical data through big data analysis and artificial intelligence algorithms to provide support for device maintenance, environmental optimization, etc.
[0060] Network Communication Module: To achieve efficient communication between modules, the system uses a data transmission method based on the TCP / IP protocol. The network communication module supports connections to local area networks and the Internet, ensuring that the system can operate stably in different network environments.
[0061] The working process of the system is as follows: First, the sensor module in the device management layer is responsible for real-time monitoring of the environmental data of the charging shed (such as temperature, humidity, smoke concentration, etc.) and transmitting this data to the data acquisition and processing layer. The data acquisition and processing layer cleans and filters the received data, and conducts a safety assessment according to preset rules to generate corresponding safety level information. When the safety assessment result reaches the preset threshold, the instruction scheduling layer will automatically trigger safety response measures, such as activating a fire extinguisher or adjusting the temperature and humidity. The user interaction layer allows the administrator to view the environmental data of the charging shed and the video surveillance footage in real time and perform remote control as needed. The video surveillance layer is responsible for processing the real-time video data from the cameras and transmitting the video stream to the user side. At the same time, all information such as sensor data, device status, and alarm records will be stored in the storage layer for subsequent query and analysis. Finally, the system can also conduct data exchange with external devices or platforms, such as emergency response docking with the system of the fire department. As Figure 2 shown, the specific operation process of this embodiment is as follows:
[0062] S101: Data acquisition and environmental monitoring: At the initial stage of system operation, each sensor starts to collect the environmental data inside the charging shed, including temperature, humidity, smoke concentration, gas concentration, pressure, etc. The sensor transmits the collected real-time data to the central processing system (CPS). The data acquisition and processing unit will conduct preliminary cleaning and filtering on this data, remove invalid data and transmit it to the safety assessment unit.
[0063] S102: Safety assessment and alarm judgment: The safety assessment unit conducts analysis and judgment based on the sensor data received in real time. The system sets thresholds (such as too high temperature, too large smoke concentration, etc.). Once it detects that the data exceeds the set threshold, the system will judge it as a potential safety hazard and immediately activate the alarm mechanism. The alarm can send a notification to the administrator through the remote control module and activate the local alarm device (such as sound alarm, light flashing, etc.).
[0064] S103: Intelligent fire extinguishing and emergency response: In case of a fire or dangerous situation, the system will make an intelligent judgment based on the real-time monitoring data. If the video surveillance module detects a fire source, the system will automatically activate the fire extinguisher through the intelligent fire extinguishing module to extinguish the fire. The system will also coordinate with the fire extinguishers on the high floors to ensure that the fire source can be effectively controlled. At the same time, the intelligent fire extinguisher will report the status of the fire extinguisher (whether it is successful, whether it needs to be replaced, etc.) to the CPS through the device management module.
[0065] S104: Equipment Self-check and Status Monitoring: All fire-fighting equipment (such as intelligent fire extinguishers, emergency kits, etc.) in the system will conduct self-checks regularly. The equipment management module will collect the self-check results and generate reports based on the working status of the equipment. If there are faults or maintenance requirements for the equipment, the system will automatically send out maintenance requests to remind the administrator to repair or replace the equipment.
[0066] S105: Remote Control and Manual Intervention: The administrator can view the real-time data, equipment status, and video surveillance content in the charging shed through the remote control module. In case of a fire or other abnormalities, the administrator can start the fire extinguishing equipment, adjust the temperature, or turn off the equipment through the remote control terminal. The communication between the remote control terminal and the CPS uses standard network protocols to ensure the instant transmission and execution of instructions.
[0067] S106: Data Storage and Historical Query: All collected environmental data, equipment status, and alarm records will be stored in the data storage module. The system supports the query function for historical data. Users can view past alarm records, equipment operation status, and environmental change trends, providing data support for subsequent maintenance and management.
[0068] S107: Video Surveillance and Real-time Feedback: The video surveillance module obtains the image data in the charging shed in real time. When the system detects an abnormality, it uses image recognition technology (such as fire source detection) to confirm the occurrence of a fire and provide feedback. The video surveillance module coordinates with the fire extinguishing control system to ensure that the fire extinguishing operation matches the location of the fire source.
[0069] To further illustrate the technical solution of the present invention, the temperature control, explosion-proof, and flame-retardant control software system for the charging shed will be described in detail below in combination with specific embodiments. In the embodiments, actual hardware and software configurations are used to implement the functions of the technical solution.
[0070] In this embodiment, the temperature control, explosion-proof, and flame-retardant control software system for the charging shed is jointly composed of a hardware part and a software part. The hardware part includes temperature and humidity sensors, smoke sensors, smoke detectors, intelligent fire extinguishers, intelligent remote fire extinguishing control systems, Beidou indoor locators, high-rise fire extinguishers, video surveillance devices, etc. The software part adopts a multi-layer architecture design, including a data acquisition and processing layer, a safety assessment layer, an equipment control layer, a video surveillance layer, a remote control layer, and a user interaction layer. The implementation of the system will be described in detail below.
[0071] In terms of hardware, the temperature and humidity sensor adopted by this system is the DHT22 model, which supports the collection of temperature and humidity data and transmits the data to the Central Processing System (CPS) through the I2C interface. The smoke sensor uses the MQ-2 model, which can detect changes in the smoke concentration in the air and communicates with the CPS for data through the GPIO interface. The smoke detector uses the CCS811 type device, which supports the detection of CO2 concentration and TVOCs and transmits real-time data to the central processing system through the I2C interface. In addition, the Beidou indoor locator uses the BD-06 model, which can accurately locate the fire occurrence area inside the charging shed, and the data is connected to the main control unit in the system through the serial port (UART) to provide positioning data support.
[0072] Both the intelligent fire extinguisher and the intelligent remote fire extinguishing control system adopt communication protocols compatible with the CPS system and transmit data through the CAN bus to ensure real-time response to fire extinguishing instructions. The high-rise fire extinguishers are connected to the CPS through Ethernet to achieve remote control and status feedback. The video surveillance device uses the network camera model Hikvision DS-2CD2132-I, which can provide high-definition real-time surveillance images and transmit the video stream to the video surveillance module in the central processing system through the RTSP protocol.
[0073] The software system architecture is divided into multiple layers, including the data collection and processing layer, the security assessment layer, the instruction scheduling layer, the video surveillance layer, the remote control layer, the device management layer, the user interaction layer, and the storage layer.
[0074] In the data collection and processing layer, the system collects environmental data in real time through various sensors and uploads this data to the central processing system. Information such as temperature and humidity data, smoke concentration, and CO2 concentration is transmitted from the data collection unit to the CPS through the I2C, UART, or CAN bus interface. Each data packet contains information such as the sensor ID, sampling time, and data value. After being preprocessed by the data collection and processing unit, it is transmitted to the subsequent module for analysis.
[0075] The security assessment layer is responsible for real-time analysis of the data collected by the sensors. This module determines whether there is a fire risk by setting security thresholds (such as the temperature exceeding 50°C and the smoke concentration exceeding the set value). If the system detects danger, the security assessment unit will immediately trigger the alarm mechanism and issue instructions through the instruction scheduling layer to activate the fire extinguishing equipment. The core algorithm of the security assessment is a multi-condition assessment algorithm based on threshold judgment and data fitting, which ensures timely response to various abnormal situations through close cooperation with the device interface.
[0076] The instruction scheduling layer controls fire extinguishing equipment, video surveillance equipment, etc. according to the instructions issued by the security assessment layer. The fire extinguishing instructions will automatically control devices such as intelligent fire extinguishers and high-rise fire extinguishers to extinguish fires, and feedback the execution status to the devices through the device control layer. The instruction scheduling layer will determine the fire extinguishing plan based on the results of the security assessment. For example, local fire extinguishers are used in the initial stage of the fire, and high-rise fire extinguishers are activated after the fire spreads.
[0077] The video surveillance layer conducts real-time monitoring of the interior of the charging shed through the integrated video stream data. When the system triggers a fire alarm, the video surveillance module will upload real-time images or videos to the central processing system, and the administrator can view the video content through the interface to judge the specific location and development status of the fire. The image data of the camera is transmitted through the RTSP protocol, and the central processing system stores or views the images in real time according to the needs.
[0078] The remote control layer provides an operable control interface for the administrator. This layer adopts a Web-based management platform, supporting operations on both the PC side and the mobile side. The administrator can view sensor data, device status, real-time video stream through the remote control interface, manually start or stop the fire extinguishing equipment, and adjust the temperature and humidity inside the charging shed. The platform communicates with the central processing system through the HTTPS protocol to ensure the encrypted transmission of data and the security of the system.
[0079] The device management layer is responsible for managing all devices connected to the system, including sensors, fire extinguishing equipment, and video surveillance equipment. Each device has a unique device ID and conducts self-checks regularly, uploading the self-check results to the central processing system. During the operation of the system, the device management module is responsible for monitoring the operation status of the devices to ensure their normal operation. If a device has a fault or is approaching the end of its service life, the device management module will automatically send a maintenance or replacement notice to the administrator.
[0080] The user interaction layer provides a graphical user interface (GUI) to display sensor data, device status, alarm information, historical records, etc. This layer is developed based on Web technology, supporting multi-platform operations, and the administrator can access and control the system on any device. The user interaction layer conducts data interaction with other systems through RESTful APIs, supporting interactions through touchscreens, mice, or voice commands, etc.
[0081] The storage layer is responsible for storing all data in the system, including real-time collected environmental data, device status, alarm records, video surveillance videos, etc. The storage system adopts a distributed storage architecture, and the data is backed up regularly to ensure the security and integrity of the data. All data is available for the administrator to view and analyze, supporting the data export function for facilitating historical data analysis.
[0082] When the system is running, various sensors in the charging shed continuously collect environmental data, which is transmitted to the central processing system through various interfaces. The central processing system analyzes these data in real time and determines whether there is a fire risk through the security assessment layer. Once the system determines that a fire has occurred, the command and dispatch layer automatically issues a fire extinguishing command, and devices such as intelligent fire extinguishers are immediately activated to perform fire extinguishing operations. At the same time, the video monitoring module uploads the real-time video to the administrator's terminal, and the administrator monitors through the remote control platform to ensure that the fire is extinguished in a timely manner.
[0083] The system provides a comprehensive control interface for the administrator through the Web platform. The administrator can view real-time data, videos, alarm information, and operate the devices to ensure the environmental safety of the charging shed. Each device conducts self-checks regularly, and the status and self-check results of the devices are fed back to the administrator in real time to ensure the reliability and effectiveness of the devices.
[0084] The hardware devices and software architecture adopted in this embodiment can effectively implement the functions of the temperature control, explosion resistance, and flame retardancy control software system for the charging shed, and have strong scalability and flexibility. The system can be adjusted according to different application scenarios, and supports a series of functions such as remote management, real-time monitoring, and intelligent fire extinguishing, providing comprehensive security protection.
[0085] The beneficial effects brought by the technical solution provided by the embodiment of the present invention at least include:
[0086] (1) In the present invention, through technical means such as intelligent environmental monitoring, automatic temperature control, and intelligent fire equipment management, all-weather intelligent monitoring and management of the charging shed environment are realized. The system can obtain data such as temperature, humidity, and gas concentration in the shed in real time, and automatically adjust the equipment for temperature control when the safety threshold is exceeded to prevent fires caused by overheating or the accumulation of harmful gases. At the same time, through the intelligent fire extinguisher and remote control function, the management personnel can obtain the real-time status of the fire protection equipment at any time to ensure that the equipment is always in an effective working state, greatly improving the safety and emergency response ability of the charging shed, and avoiding potential safety hazards caused by insufficient manual inspections and equipment failures;
[0087] (2) In the present invention, the temperature control, explosion resistance, and flame retardancy control software system for the charging shed can realize the automatic monitoring and intelligent self-check function of the equipment. By integrating intelligent emergency kits, fire extinguishers, Beidou indoor locators and other intelligent devices, the system can regularly check the working status of the fire protection equipment, and automatically conduct self-checks and fault diagnoses. When equipment failures are found, alarms are issued in a timely manner, and maintenance or replacement reminders are automatically generated, avoiding situations where manual inspections are not timely or equipment failures are not discovered in a timely manner. This function greatly reduces manual intervention, improves equipment maintenance efficiency, and ensures that the fire protection facilities always maintain the best working state;
[0088] (3) In the present invention, through the real-time monitoring and analysis of the environmental data in the charging shed, intelligent fire warning and efficient emergency response can be achieved. In the initial stage of a fire, the system can, through the linkage of sensors such as temperature and smoke, detect the fire risk in advance and automatically trigger warning information to notify the management personnel for emergency handling. At the same time, the system can automatically dispatch fire extinguishing equipment for intelligent fire extinguishing, and start and adjust the equipment through remote control, shortening the fire emergency response time, reducing the losses caused by delays, and improving the efficiency and accuracy of emergency handling.
[0089] The above content is only the specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention can easily think of changes or substitutions, which should all be covered within the protection scope of the present invention. Therefore, the protection scope of the present invention should be subject to the protection scope of the claims.
[0090] The following points need to be explained:
[0091] (1) The drawings of the embodiments of the present invention only relate to the structures involved in the embodiments of the present invention, and other structures can refer to the general design.
[0092] (2) For clarity, in the drawings used to describe the embodiments of the present invention, the thickness of layers or regions is enlarged or reduced, that is, these drawings are not drawn according to the actual scale. It can be understood that when an element such as a layer, film, region, or substrate is referred to as being "on" or "under" another element, the element can be "directly" on or under the other element or there can be intermediate elements.
[0093] (3) Without conflict, the embodiments of the present invention and the features in the embodiments can be combined with each other to obtain new embodiments.
[0094] The above is only the specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. The protection scope of the embodiments of the present invention should be subject to the protection scope of the claims.
Claims
1. The charging shed temperature control, explosion resistance and flame retardant control software system includes a sensor module for environmental monitoring, a central processing system, an intelligent fire fighting equipment module and a remote control terminal, which is characterized by: The sensor module includes a temperature and humidity sensor, a gas sensor, and a smoke sensor, which are used to collect environmental data in the charging shed in real time; The central processing system includes a data acquisition and processing unit for receiving data from the sensor module and analyzing it based on a preset threshold; The intelligent fire fighting equipment module includes an intelligent fire extinguisher, an intelligent remote fire fighting controller and an intelligent emergency kit, and the central processing system is connected to the intelligent fire fighting equipment module for controlling the status of the equipment; The remote control terminal communicates bidirectionally with the central processing system to monitor environmental conditions and provide remote control of equipment.
2. The temperature control, explosion-proof and flame-retardant control software system for the charging shed according to claim 1 is characterized in that: include: The central processing system also includes a safety assessment unit for generating a safety level report based on the data of the sensor module and the status of the fire-fighting equipment, and triggering an alarm when the safety level is lower than a preset standard.
3. The temperature control, explosion-proof and flame-retardant control software system for the charging shed according to claim 2 is characterized in that: include: The intelligent fire extinguisher includes a self-check module for regularly checking the status of the device, and the central processing system is capable of receiving the self-check result and generating a device effectiveness report.
4. The temperature control, explosion resistance and flame retardant control software system for the charging shed according to claim 3 is characterized in that: include: The smart emergency bag is integrated with a Beidou indoor locator for accurately locating the emergency bag in the event of a fire, and the remote control terminal can display the positioning information.
5. The temperature control, explosion-proof and flame-retardant control software system for the charging shed according to claim 4 is characterized in that: include: The data acquisition and processing unit also includes a data analysis module for predicting possible environmental risks based on historical data of the sensor module.
6. The temperature control, explosion resistance and flame retardant control software system for the charging shed according to claim 5 is characterized in that: include: The intelligent remote fire extinguishing controller is communicatively connected with a video monitoring unit, and the video monitoring unit is used to collect video data in the charging shed in real time. The central processing system analyzes the location of the fire source based on the video data and triggers a fire extinguishing instruction.
7. The temperature control, explosion resistance and flame retardant control software system for the charging shed according to claim 6 is characterized in that: include: The safety assessment unit is in communication connection with the display unit, and is used to display a visual risk assessment result on the display unit based on the generated safety level report.
8. The temperature control, explosion resistance and flame retardant control software system for the charging shed according to claim 7 is characterized in that: include: The central processing system includes an equipment status reporting module, which is used to regularly upload fire equipment status and environmental monitoring data to the remote control terminal.
9. The temperature control, explosion resistance and flame retardant control software system for the charging shed according to claim 8 is characterized in that: include: The intelligent fire fighting equipment module also includes a high-rise fire extinguisher, and the central processing system can control the high-rise fire extinguisher to automatically adjust the spray angle and fire extinguishing range within a specific height.
10. The charging shed temperature control, explosion resistance and flame retardant control software system according to claim 9 is characterized in that: include: The central processing system is connected to the intelligent remote fire extinguishing controller in a two-way communication manner and automatically switches to a backup channel in the event of equipment failure or communication interruption to ensure the continuity of the fire extinguishing function.