Intelligent management method and system for environmental emergency materials

Through intelligent management systems and technical means, the issues of scientificity and rationality in environmental emergency material management have been resolved, enabling rapid response and efficient allocation, and improving the scientificity and efficiency of emergency material management.

CN120875321APending Publication Date: 2025-10-31SHENZHEN BOWO FUTURE TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510862652.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-25
Publication Date
2025-10-31

AI Technical Summary

Technical Problem

The management of environmental emergency supplies in the current technology relies on human experience, which leads to unscientific and unreliable management, and makes it difficult to achieve rationalization and dynamic allocation.

Method used

An intelligent management system is adopted, including an emergency event acquisition unit, an event processing and analysis unit, a material allocation and execution unit, and an emergency material supervision unit. It utilizes IoT, AI, big data, and GIS technologies to achieve intelligent management and dynamic allocation of environmental emergency materials.

Benefits of technology

It has improved the speed and scientific nature of emergency response, optimized the structure of material reserves, reduced management costs, and enhanced the efficiency of material utilization and emergency support capabilities.

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Abstract

The invention discloses an intelligent management method and system for environmental emergency materials. The system comprises an emergency event acquisition unit, an event processing and analysis unit, a material allocation execution unit and an emergency material supervision unit. Firstly, the emergency event acquisition unit acquires emergency event information related to the environment, then the event processing analysis unit applies an emergency event intelligent processing model to output an environment emergency event processing flow according to the emergency event information, and then the material allocation execution unit executes the environment emergency event processing flow. And the emergency material supervision unit carries out statistics, monitoring and real-time display on material supervision information related to the environment emergency materials. Since the emergency event intelligent processing model is applied to dominate or assist in processing emergencies related to the environment, the response speed of the emergency events is improved, meanwhile, the supervision mode of environmental emergency materials can be optimized, the management cost can be reduced, the material use efficiency can be improved, and the emergency guarantee capability can be enhanced.
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Description

Technical Field

[0001] This application relates to the field of environmental emergency response technology, specifically to an intelligent management method and system for environmental emergency supplies. Background Technology

[0002] Environmental emergency supplies refer to materials that may be used in environmental emergencies. In a narrow sense, the management of environmental emergency supplies includes the daily maintenance and use of absorbents, protective equipment, monitoring equipment, and emergency response equipment for handling chemical spills. In a broader sense, it also includes the allocation and maintenance of available human resources, the allocation of transportation resources (the number, capacity, and speed of vehicles involved in material transportation), and the rational allocation of material storage (distributing different materials to different geographical locations as needed). Furthermore, it involves the maintenance, supervision, and testing of various environmental emergency supplies, and even the dynamic allocation of supplies at different times and in response to different environmental changes (e.g., responding to different high-probability environmental emergencies caused by seasonal changes or sudden severe weather in different regions). Therefore, achieving rational management of environmental emergency supplies is extremely complex and difficult; relying solely on subjective human experience is neither scientific nor reliable. Summary of the Invention

[0003] The main technical problem this invention addresses is how to achieve intelligent management of environmental emergency supplies.

[0004] According to the first aspect, one embodiment provides an intelligent management system for environmental emergency supplies, comprising: Emergency event acquisition unit, used to acquire information on environmental emergencies; An event processing and analysis unit is used to input the emergency event information into a preset emergency event intelligent processing model and obtain at least one environmental emergency event processing procedure output by the emergency event intelligent processing model. The material allocation execution unit is used to execute the environmental emergency response process; the environmental emergency response process includes, in sequence, issuing a material application form, generating a material allocation plan, issuing an allocation instruction, issuing a material outbound notification, and tracking the material outbound process. An emergency supplies monitoring unit is used to collect, monitor, and display in real time the supply monitoring information related to the environmental emergency supplies; wherein, the supply monitoring information includes basic supply information, production and supply information, reserve and warehousing management information, supply logistics information, usage and maintenance information, emergency response-related information, waste disposal information, and / or information management information.

[0005] In one embodiment, the emergency event acquisition unit includes an emergency event reporting module and / or an environmental monitoring feedback module. The emergency event reporting module is used to receive the emergency event information through a preset emergency information reporting platform, and the environmental monitoring feedback module is used to acquire the emergency event information based on a preset environmental impact assessment monitoring platform. The emergency event information includes basic event information, including pollution type, time of occurrence, location of occurrence, and / or event level. And / or, the basic information about the event may also include information on the current situation of the event's cause, environmental impact assessment, emergency response measures, casualty and loss reports, public reports and releases, and / or information to support decision-making.

[0006] In one embodiment, the emergency supplies monitoring unit includes a supplies tracking platform and a supplies display platform; The material tracking platform is used to statistically analyze and monitor the environmental emergency materials using Internet of Things (IoT) technology. The material display platform is used to display the material supervision information through a preset display terminal.

[0007] In one embodiment, the display terminal is provided with a display interface, which includes a map display area, an inventory list display area, a material quantity statistics display area, and a map legend label area. The map display area is used to display GIS geographic information, the inventory list display area is used to display reserve and warehousing management information in a chart format, the material quantity statistics display area is used to display basic material information in a chart format, and the map legend label area is used to identify the label information of the preset legend in the map display area.

[0008] In one embodiment, the display interface further includes a transfer tracking display area, which is used to display material transfer progress information related to the emergency information; wherein, the material transfer progress information includes information related to the application, warehousing, transportation, receipt and / or completion of material logistics.

[0009] In one embodiment, the intelligent management system further includes a dynamic material allocation management unit; The event processing and analysis unit is also used to input the environmental change characteristics of the region within a preset time period into the emergency event intelligent processing model, and to obtain the environmental change material mobilization process output by the emergency event intelligent processing model. The dynamic material allocation management unit is used to execute the environmental change material allocation process to deal with emergencies caused by environmental changes. The environmental change material allocation process includes issuing a material application form, generating a material allocation plan, issuing an allocation instruction, issuing a material outbound notification, and tracking material inbound and outbound.

[0010] In one embodiment, the intelligent management system further includes an emergency supplies consultation and interaction unit, which is used to answer consultation and inquiry information related to the emergency information through a human-computer interaction interface; The response process of the emergency supplies consultation and interaction unit includes: Obtain consultation and inquiry information in the question input area of ​​the human-computer interaction interface; The emergency event intelligent processing model is used to respond to the inquiries, and the response is displayed in the question response area of ​​the human-computer interaction interface.

[0011] According to the second aspect, one embodiment provides an intelligent management method for environmental emergency supplies, applicable to the intelligent management system described in the first aspect, the intelligent management method comprising: Obtain information on environmental emergencies; The emergency information is input into a preset intelligent emergency response model, and at least one environmental emergency response process output by the intelligent emergency response model is obtained. The environmental emergency response process is executed in sequence, which includes issuing a material application form, generating a material allocation plan, issuing an allocation order, issuing a material outbound notification, and tracking the material outbound process. The system collects, monitors, and displays in real-time material supervision information related to the environmental emergency supplies; wherein the material supervision information includes basic material information, production and supply information, reserve and warehousing management information, material logistics information, usage and maintenance information, emergency response-related information, waste disposal information, and / or information management information.

[0012] According to a third aspect, one embodiment provides a computer-readable storage medium storing a computer program that can be executed by a processor to implement the intelligent management method as described in the second aspect.

[0013] According to the fourth aspect, one embodiment provides a computer program product including a computer program and / or instructions, which, when executed by a processor, implement the intelligent management method as described in the second aspect.

[0014] The intelligent management system described in the above embodiments improves the response speed and the rationality and scientific nature of emergency response by applying an intelligent emergency event handling model to lead or assist in handling environmental emergencies.

[0015] Furthermore, because emergency supplies supervision units utilize Internet of Things (IoT) technology, big data analytics, artificial intelligence algorithms, mobile internet technology, and GIS geographic information management technology, they not only improve the speed of emergency response but also optimize the structure of supplies reserves, reduce management costs, improve the efficiency of supplies use, and enhance emergency support capabilities. Attached Figure Description

[0016] Figure 1 This is a structural block diagram of an intelligent management system in one embodiment; Figure 2 This is an example diagram of a display interface implemented with a material display platform; Figure 3 This is a schematic diagram of a display interface implemented with a material display platform; Figure 4 This is an example diagram of a human-computer interaction interface in one embodiment; Figure 5 This is a flowchart illustrating an intelligent management method in one embodiment. Detailed Implementation

[0017] The present invention will now be described in further detail with reference to specific embodiments and accompanying drawings. Similar elements in different embodiments are referred to by associated similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of this application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to this application are not shown or described in the specification. This is to avoid obscuring the core parts of this application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.

[0018] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can be rearranged or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.

[0019] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).

[0020] The management of environmental emergency supplies is a complex and dynamic systemic issue, requiring the management of the current status and existing problems of all relevant parties and their interactions in the stages of storage, management, allocation, and use of environmental emergency supplies. The intelligent management method disclosed in this application applies an intelligent emergency event processing model (AI model) to establish a framework for environmental emergency supply management, breaking down information silos, strengthening overall coordination, optimizing layout structure, and improving management efficiency, thereby constructing an environmental emergency supply support system characterized by "information sharing, resource sharing, rapid response, and efficient collaboration." Because the intelligent emergency event processing model has self-learning capabilities, it can provide a scientific management system for continuous improvement and self-perfection in the management of environmental emergency supplies.

[0021] Example 1: Please refer to Figure 1 The diagram below illustrates the structure of an intelligent management system in one embodiment. The intelligent management system includes an emergency event acquisition unit 10, an event processing and analysis unit 20, a material allocation and execution unit 30, and an emergency material supervision unit 40. The emergency event acquisition unit 10 acquires information on environmental emergencies. The event processing and analysis unit 20 inputs the emergency event information into a preset intelligent emergency event processing model and acquires at least one environmental emergency event processing procedure output by the intelligent emergency event processing model. The material allocation and execution unit 30 executes the environmental emergency event processing procedure, which sequentially includes issuing a material application form, generating a material allocation plan, issuing an allocation instruction, issuing a material outbound notification, and tracking the material outbound. The emergency material supervision unit 40 statistically analyzes, monitors, and displays in real-time material supervision information related to environmental emergency materials.

[0022] Material supervision information includes basic material information, production and supply information, reserve and warehousing management information, material logistics information, usage and maintenance information, emergency response-related information, waste disposal information, and / or information management information. Basic material information includes material name and type (e.g., absorbent materials, oil booms, chemical neutralizers, etc.), specifications (involving technical parameters and applicable scenarios, such as adsorption capacity and corrosion resistance), production batch, and expiration date (ensuring materials are within their expiration period and avoiding deterioration). Production and supply information includes manufacturer qualifications (manufacturer's licenses, environmental certifications, product quality inspection reports, etc.), supplier information (supplier qualifications, supply agreements, legality of material sources, etc.), and material standards (whether they comply with industry standards). Reserve and warehousing management includes reserve quantity and location (material inventory and distribution at all levels of reserves), warehousing conditions (temperature, humidity, ventilation, leak prevention requirements, and regular inspection records), and rotation and renewal mechanisms (replacement or disposal plans for materials nearing their expiration date). Usage and maintenance information includes usage records (material requisition time, event type, usage amount, remaining quantity, etc.), maintenance (regular inspections, repairs, and performance test reports, such as sealing checks on chemical protective suits), and consumption and replenishment (referring to ledger management for timely replenishment after use). Information management includes electronic ledgers (a dynamic management system for material warehousing, outbound, and inventory) and traceability systems (e.g., full lifecycle tracking via QR codes or RFID technology). Furthermore, information management also includes regulatory and compliance information, specifically involving regulatory department filings (material lists submitted to the ecological environment department or emergency management department), supervision and inspection records (spot checks by third-party departments, rectification requirements), and legal and regulatory compliance (e.g., compliance with relevant environmental regulations or rules). Emergency response-related information refers to the requisition process (approval, allocation instructions, and transportation methods in emergency events), training and drills (training records for relevant personnel operating materials, emergency drill information, etc.), and effectiveness assessment (the effectiveness of materials in actual events, improvement suggestions, etc.). Waste disposal information includes waste disposal (methods for the harmless treatment of expired or damaged materials, such as hazardous waste transfer manifests). Materials used for handling environmental emergencies are a key focus of supervision. This requires not only dynamic information updates (ensuring real-time accuracy and avoiding situations where materials are available but not actually used) but also collaborative support across multiple departments (environmental protection, emergency response, and transportation, among others). Through the systematic management of the aforementioned material supervision information by the emergency material supervision unit 40, it is possible to ensure that environmental emergency materials are adequately stored, quickly deployed, and readily available, effectively responding to environmental pollution incidents.

[0023] In one embodiment, the emergency event acquisition unit 10 includes an emergency event reporting module and / or an environmental monitoring feedback module. The emergency event reporting module receives emergency event information through a preset emergency information reporting platform, and the environmental monitoring feedback module acquires emergency event information based on a preset environmental impact assessment monitoring platform. The emergency event information includes basic event information, such as pollution type, time of occurrence, location of occurrence, and / or event level. In one embodiment, the basic event information also includes information on the cause and current status of the event, environmental impact assessment, emergency response measures, casualty and loss reports, public reports and releases, and / or decision support information.

[0024] Information on environmental emergencies is the core basis for emergency response and must be reported and shared comprehensively, accurately, and promptly. The event type in the basic event information refers to the type of pollution (e.g., chemical spill, oil spill, air pollution, water pollution, etc.) or a secondary environmental event resulting from a natural disaster (e.g., a chemical plant leak caused by an earthquake). The more precise the time of occurrence, the better. The location should ideally include specific coordinates (latitude and longitude), administrative region (province / city / county), and surrounding sensitive targets (schools, residential areas, water sources, etc.). The event severity level should be determined according to the relevant regulations and standards, such as general, significant, major, and extremely serious. Information on the cause and current status of the incident includes the direct cause (e.g., human error, equipment failure, traffic accident, natural disaster, etc.), pollution source information (referring to the name, quantity, concentration, and diffusion range of the material, such as a leak of 10 tons of benzene spreading to a downstream water body within 5 kilometers), and the current status (whether the pollution is under control, the diffusion trend, whether it will trigger a chain reaction, etc.). The environmental impact assessment includes the affected media (air, surface water, groundwater, soil, etc.), sensitive targets (surrounding population density, drinking water sources, ecological protection areas, farmland, etc.), and monitoring data (real-time monitoring values ​​of pollutants, exceedance multiples, and diffusion model prediction results, etc.). Emergency response measures include actions already taken (whether on-site sealing, personnel evacuation, and pollutant containment have been implemented, such as setting up oil booms and absorbent materials), emergency material deployment (e.g., 5 tons of activated carbon and 10 gas masks have been deployed), technical treatment (e.g., neutralization, dilution, combustion), and participating departments (environmental protection, fire protection, safety). (This involves collaboration with departments such as monitoring and medical services). Casualty and loss reports include casualty details (number of injured / dead, symptoms of poisoning), economic losses (direct property damage, such as equipment damage), potential ecological compensation (such as fishery losses), and social impact (public opinion attention, public complaints, etc.). Public reporting and information dissemination include reporting processes (initial reports, follow-up reports, and final reports / summaries) and information disclosure (official announcements and media communication records, etc.). Decision-making support information includes meteorological and hydrological data (wind speed and direction, rainfall, river flow velocity), geographic information (topographic maps, underground pipeline layout, locations of emergency material reserve points), and professional advice (emergency response technical solutions). In one embodiment, post-event follow-up and debriefing are also conducted for completed emergency events, specifically including pollution cleanup progress (methods for treating residual pollutants), long-term monitoring plans (frequency of subsequent environmental quality monitoring), and event investigation reports (identification of responsibility, corrective measures, and lessons learned, etc.).

[0025] In one embodiment, the emergency supplies monitoring unit 40 includes a supplies tracking platform and a supplies display platform. The supplies tracking platform is used to statistically analyze and monitor environmental emergency supplies using Internet of Things (IoT) technology. In one embodiment, the IoT involves sensing layer technology (for data acquisition), network layer technology (for data transmission), platform layer technology (for data processing and management), and other auxiliary technologies. Sensing layer technologies include RFID (attaching RFID tags to supplies for contactless batch identification, such as inventory counting and automated warehousing), GPS / BeiDou modules (tracking supplies transportation trajectories, such as emergency vehicle locations), sensor networks (including environmental sensors and weight sensors), and QR codes / NFC (for supplies identification statistics and quick scanning to obtain supplies information). Network layer technologies include low-power wide-area networks (LPWAN), LoRa / NB-IoT (supporting long-distance, low-power transmission of sensor data, suitable for remote areas), 5G / 4G (real-time backhaul for high-bandwidth scenarios such as high-definition video surveillance and drone inspections), and Mesh self-organizing networks (maintaining local communication through self-organizing networks between devices, such as ZigBee, when communication is interrupted at disaster sites). Platform-layer technologies include IoT Platform, Edge Computing, and Blockchain (which records information throughout the entire material flow chain to ensure transparency and trustworthiness). Application-layer technologies include intelligent warehouse management (automated inventory early warning, predicting material shortages through RFID+AI algorithms, such as dynamic replenishment of epidemic prevention materials), emergency dispatch systems (combined with GIS maps to display material distribution in real time and optimize allocation routes, such as drone delivery in typhoon relief), and AI and big data analysis (predicting disaster needs and video analysis, intelligently pre-positioning materials based on historical data, and identifying the compliance of material stacking through cameras). Other auxiliary technologies include drone / robot inspection (inspecting dangerous areas, such as radiation monitoring robots at nuclear leak sites), digital twins (building virtual material warehouses and simulating dispatch strategies in emergency scenarios), and voice / AR interaction (quickly accessing material operation guides through smart glasses or voice assistants, such as the steps for using first aid equipment). Through the integrated application of the above technologies, the Internet of Things can achieve full lifecycle supervision of environmental emergency materials, from warehousing and transportation to distribution and recycling, ensuring that they are "findable, quickly deployed, and usable in critical moments." In actual deployment, appropriate solutions can be set and selected according to cost and scenario requirements (such as real-time performance and coverage).

[0026] In one embodiment, the material display platform is used to display material supervision information through a preset display terminal.

[0027] Please refer to Figure 2 and Figure 3The images show an example diagram and a schematic diagram of a display interface for an implemented material display platform. The display terminal is equipped with a display interface, which includes a map display area, an inventory list display area, a material quantity statistics display area, and a map legend label area. The map display area is used to display GIS geographic information, the inventory list display area is used to display reserve and warehousing management information in a chart format, the material quantity statistics display area is used to display basic material information in a chart format, and the map legend label area is used to identify the preset legend information in the map display area. In one embodiment, the display interface also includes a transfer tracking display area, which is used to display material transfer progress information related to emergencies. The material transfer progress information includes information related to the application, warehousing, transportation, receipt, and / or completion of material logistics. In one embodiment, the display interface further includes a search input area, a related application selection area, and a collaborative application selection area. The search input area is used to input material search information, the related application selection area is used to set operation function keys (e.g., demand reporting, demand review, material warehouse management, material warehousing, material allocation, material inventory, material scrapping, and material maintenance), and the collaborative application selection area is used to connect the material warehouse and MSDS (Material Safety Data Sheet) of the collaborating department.

[0028] like Figure 1 As shown, the intelligent management system also includes a dynamic material allocation management unit 50. The event processing and analysis unit 20 is further used to input the environmental change characteristics of the region within a preset time period into the emergency event intelligent processing model and obtain the environmental change material allocation process output by the emergency event intelligent processing model. The dynamic material allocation management unit 50 is used to execute the environmental change material allocation process to respond to emergencies caused by environmental changes. The environmental change material allocation process includes, in sequence, issuing a material application form, generating a material allocation plan, issuing an allocation instruction, issuing a material outbound notification, and tracking material inbound and outbound movements. Environmental change characteristics within a preset time period refer to events such as typhoons, seasonal changes, and drought / flood variations. Based on different risk levels in different regions and different natural environments, environmental emergency materials are rationally and scientifically redistributed to address the occurrence of different high-risk environmental emergency events in different environments and regions.

[0029] In one embodiment, the intelligent management system further includes an emergency supplies consultation and interaction unit 60, used to answer inquiries related to emergency information through a human-computer interaction interface. Please refer to... Figure 4 The diagram below is an example of a human-computer interaction interface in one embodiment. The response process of the emergency supplies consultation interaction unit includes: first, obtaining consultation information in the question input area of ​​the human-computer interaction interface; then, applying the emergency event intelligent processing model to respond to the consultation information; and displaying the response in the question response area of ​​the human-computer interaction interface.

[0030] Please refer to Figure 5 This is a flowchart illustrating an intelligent management method in one embodiment. This application also discloses an intelligent management method for application to the intelligent management system described above. The intelligent management method includes: Step 101: Obtain information about the emergency.

[0031] Obtain information on environmental emergencies.

[0032] Step 102: Obtain the environmental emergency response procedure.

[0033] Input emergency information into a preset intelligent emergency response model and obtain at least one environmental emergency response process output by the intelligent emergency response model.

[0034] Step 103: Execute the environmental emergency response procedure.

[0035] The environmental emergency response process includes issuing a material application form, generating a material allocation plan, issuing allocation instructions, issuing a material release notice, and tracking the material release.

[0036] Step 104: Monitor and display environmental emergency supplies.

[0037] The system collects, monitors, and displays in real time information related to environmental emergency supplies, including basic information about the supplies, production and supply information, reserve and warehousing management information, logistics information, usage and maintenance information, emergency response-related information, waste disposal information, and / or information management information.

[0038] The intelligent management of environmental emergency supplies should adhere to the principles of "tiered and categorized management, diversified reserves, collaborative efficiency, and holistic intelligent governance," focusing on addressing seven major categories of problems in the construction, management, and use of environmental emergency supplies (unclear standards, regional imbalances, lack of overall coordination, unclear inventory, non-standardized management, unintelligent application, and inefficient dispatch). It should innovate and improve material management methods around key aspects such as the storage, transportation, and use of environmental emergency supplies, forming a complete set of standardized environmental emergency supply management systems, and promoting the establishment of an intelligent and efficient environmental emergency supply reserve and dispatch system adapted to the needs of emergency response to sudden environmental incidents. This will achieve a clear understanding of the province's environmental emergency supply needs, forming a comprehensive inventory of material requirements; establish and improve a tiered and categorized environmental emergency supply reserve system, forming a unified reserve system; and plan and construct a digital intelligent platform for environmental emergency supply reserve and dispatch, forming a unified network for material management. The intelligent management system disclosed in this application embodiment, based on AI and intelligent algorithms, intelligently recommends material needs based on dynamic information of environmental emergency incidents, matches optimal material sources, generates dispatch plans, reduces dispatch time and costs, and achieves intelligent and automated dispatch of environmental emergency supplies. The material display platform provides a comprehensive overview on a single screen, integrating multi-source business data, analyzing all environmental emergency material information across the province, and establishing a centralized, visualized display platform for environmental emergency material management. It analyzes the reserve status of various environmental emergency materials across the province from multiple dimensions, visually displaying information such as material reserves and warehouse distribution in various regions through GIS maps, and dynamically monitoring the current status of various environmental emergency materials. Furthermore, the intelligent management system implements a material catalog, maintains standardized specifications for the environmental emergency material catalog, generates a unique identification code for each type of material, comprehensively assesses regional environmental emergency material needs, and enables tiered reporting and step-by-step review of different levels of environmental emergency material needs. In particular, it provides statistical management of material warehouses, establishing a diversified environmental emergency material reserve system with real-time physical reserves as the core and supplemented by contractual reserves, production capacity reserves, and information reserves. This achieves full lifecycle management of materials, including warehousing, regular inventory checks, daily maintenance, and disposal applications.

[0039] The intelligent management method disclosed in this application first involves an emergency event acquisition unit acquiring information on environmental emergencies. Then, an event processing and analysis unit applies an intelligent emergency event processing model to output an environmental emergency event handling procedure based on the emergency event information. Next, a material allocation and execution unit executes this environmental emergency event handling procedure, and an emergency material supervision unit statistically analyzes, monitors, and displays real-time information related to environmental emergency materials. By using an intelligent emergency event processing model to lead or assist in handling environmental emergencies, the response speed to emergency events is improved. Simultaneously, it optimizes the supervision model for environmental emergency materials, reduces management costs, improves material utilization efficiency, and enhances emergency support capabilities.

[0040] Those skilled in the art will understand that all or part of the functions of the various methods in the above embodiments can be implemented by hardware or by computer programs. When all or part of the functions in the above embodiments are implemented by computer programs, the program can be stored in a computer-readable storage medium, which may include: read-only memory, random access memory, disk, optical disk, hard disk, etc., and the program is executed by a computer to achieve the above functions. For example, the program can be stored in the memory of a device, and when the program in the memory is executed by the processor, all or part of the above functions can be achieved. In addition, when all or part of the functions in the above embodiments are implemented by computer programs, the program can also be stored in a server, another computer, disk, optical disk, flash drive, or external hard drive, etc., and can be downloaded or copied to the memory of a local device, or the system of the local device can be updated. When the program in the memory is executed by the processor, all or part of the functions in the above embodiments can be achieved.

[0041] The above examples illustrate the present invention only to aid in understanding it and are not intended to limit the scope of the invention. Those skilled in the art can make various simple deductions, modifications, or substitutions based on the principles of this invention.

Claims

1. An intelligent management system for environmental emergency supplies, characterized in that, include: Emergency event acquisition unit, used to acquire information on environmental emergencies; An event processing and analysis unit is used to input the emergency event information into a preset emergency event intelligent processing model and obtain at least one environmental emergency event processing procedure output by the emergency event intelligent processing model. The material allocation execution unit is used to execute the environmental emergency response process; the environmental emergency response process includes, in sequence, issuing a material application form, generating a material allocation plan, issuing an allocation instruction, issuing a material outbound notification, and tracking the material outbound process. An emergency supplies monitoring unit is used to collect, monitor, and display in real time the supply monitoring information related to the environmental emergency supplies; wherein, the supply monitoring information includes basic supply information, production and supply information, reserve and warehousing management information, supply logistics information, usage and maintenance information, emergency response-related information, waste disposal information, and / or information management information.

2. The intelligent management system as described in claim 1, characterized in that, The emergency event acquisition unit includes an emergency event reporting module and / or an environmental monitoring feedback module. The emergency event reporting module is used to receive the emergency event information through a preset emergency information reporting platform. The environmental monitoring feedback module is used to acquire the emergency event information based on a preset environmental impact assessment monitoring platform. The emergency event information includes basic event information, including pollution type, time of occurrence, location of occurrence, and / or event level. And / or, the basic information about the event may also include information on the current situation of the event's cause, environmental impact assessment, emergency response measures, casualty and loss reports, public reports and releases, and / or information to support decision-making.

3. The intelligent management system as described in claim 1, characterized in that, The emergency supplies supervision unit includes a supplies tracking platform and a supplies display platform; The material tracking platform is used to statistically analyze and monitor the environmental emergency materials using Internet of Things (IoT) technology. The material display platform is used to display the material supervision information through a preset display terminal.

4. The intelligent management system as described in claim 3, characterized in that, The display terminal is equipped with a display interface, which includes a map display area, an inventory list display area, a material quantity statistics display area, and a map legend label area. The map display area is used to display GIS geographic information, the inventory list display area is used to display reserve and warehousing management information in a chart format, the material quantity statistics display area is used to display basic material information in a chart format, and the map legend label area is used to identify the label information of the preset legend in the map display area.

5. The intelligent management system as described in claim 4, characterized in that, The display interface also includes a transfer tracking display area, which is used to display the progress information of material transfer related to the emergency information; wherein, the progress information of material transfer includes information on the application, warehousing, transportation, receipt and / or completion of material logistics.

6. The intelligent management system as described in claim 1, characterized in that, It also includes a dynamic allocation management unit for materials; The event processing and analysis unit is also used to input the environmental change characteristics of the region within a preset time period into the emergency event intelligent processing model, and to obtain the environmental change material mobilization process output by the emergency event intelligent processing model. The dynamic material allocation management unit is used to execute the environmental change material allocation process to deal with emergencies caused by environmental changes. The environmental change material allocation process includes issuing a material application form, generating a material allocation plan, issuing an allocation instruction, issuing a material outbound notification, and tracking material inbound and outbound.

7. The intelligent management system as described in claim 1, characterized in that, It also includes an emergency supplies consultation and interaction unit, which is used to answer consultation and inquiry information related to the emergency information through a human-computer interaction interface; The response process of the emergency supplies consultation and interaction unit includes: Obtain consultation and inquiry information in the question input area of ​​the human-computer interaction interface; The emergency event intelligent processing model is used to respond to the inquiries, and the response is displayed in the question response area of ​​the human-computer interaction interface.

8. An intelligent management method for environmental emergency supplies, characterized in that, For use in an intelligent management system as described in any one of claims 1 to 7, the intelligent management method includes: Obtain information on environmental emergencies; The emergency information is input into a preset intelligent emergency response model, and at least one environmental emergency response process output by the intelligent emergency response model is obtained. The environmental emergency response process is executed in sequence, which includes issuing a material application form, generating a material allocation plan, issuing an allocation order, issuing a material outbound notification, and tracking the material outbound process. The system collects, monitors, and displays in real-time material supervision information related to the environmental emergency supplies; wherein the material supervision information includes basic material information, production and supply information, reserve and warehousing management information, material logistics information, usage and maintenance information, emergency response-related information, waste disposal information, and / or information management information.

9. A computer-readable storage medium, characterized in that, The medium stores a computer program that can be executed by a processor to implement the intelligent management method as described in claim 8.

10. A computer program product comprising a computer program and / or instructions, characterized in that, When the computer program and / or instructions are executed by the processor, the intelligent management method described in claim 8 is implemented.