IoT Gas Emergency Regulation With Dynamic Response Plans
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Solution Overview
Problem
Existing gas emergency response systems lack real-time data monitoring and adaptability, leading to improper handling of incidents and resource wastage due to the use of pre-established plans that do not account for the specific time, location, and type of gas incidents.
Innovation Solution
An IoT system comprising a government safety supervision service platform, management platform, sensor network platform, and gas equipment object platform, which obtains real-time emergency event information, updates emergency response plans based on traffic, environmental, and resource data, and controls pipeline pressure to manage gas emergencies effectively.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Speed
If a pre-established emergency response plan is used, then the response speed is improved, but the adaptability to different gas incidents deteriorates
Solution Approach 1:
The emergency response plan is transformed from a static pre-established document to a dynamic system that automatically adapts to different gas incident scenarios. The system collects real-time data on incident type, location, and severity, then dynamically generates and updates response plans through the government safety supervision management platform, enabling the plan to evolve with changing conditions while maintaining rapid response capability.
Solution Approach 2:
The system implements feedback mechanisms by continuously monitoring gas incident data, traffic information, and environmental conditions. The government safety supervision management platform receives real-time feedback from sensor networks and updates the emergency response plan accordingly, ensuring the plan reflects current situational requirements while maintaining response speed.
2Measurement precision
If real-time data monitoring is implemented, then the accuracy of emergency response planning is improved, but the system complexity increases
Solution Approach 1:
The government safety supervision management platform serves multiple functions: it collects emergency incident data, retrieves traffic and environmental information, processes gas supply and demand data, and generates updated response plans. By consolidating these diverse functions into a single multi-functional platform, the system achieves high measurement precision without proportionally increasing overall system complexity.
Solution Approach 2:
The government safety supervision management platform acts as an intermediary that coordinates between various data sources (sensor networks, traffic systems, environmental monitoring) and the emergency response planning process. This intermediary role allows the system to integrate multiple data streams and achieve accurate planning while managing complexity through centralized coordination.
3Productivity
If dynamic updating of emergency response plans is performed, then the effectiveness of resource allocation is improved, but the time consumption increases
Solution Approach 1:
The system performs preliminary actions by pre-establishing the emergency response plan database and configuring the government safety supervision management platform to automatically retrieve and process data. When a gas incident occurs, the system already has the infrastructure in place to quickly update plans using pre-defined protocols and data retrieval paths, reducing the time needed for dynamic updating while maintaining high effectiveness in resource allocation.
Data Source
AI summary
Provided are an IoT system and a method for intelligent gas emergency regulation. The IoT system comprises a government safety supervision service platform, a government safety supervision management platform, a government safety supervision sensor network platform, a government safety supervision object platform, and a gas equipment object platform, wherein the government safety supervision object platform includes a gas company management platform. The method includes: obtaining emergency event information; determining an initial emergency response plan by matching in an emergency response plan database; obtaining traffic information and environmental information within an emergency scope; obtaining gas supply and demand data, available personnel information, and available resources information; determining a target emergency response plan by updating the initial emergency response plan; and sending the target emergency response plan to the gas company management platform for execution and obtaining an execution result of the gas company management platform.


