一种基于沉积层代谢热偏差的硫化氢浓度超前预警方法、系统、设备及介质

By extracting the metabolic thermal deviation field from the sediment layer and applying thermal micro-perturbations, a nonlinear instability coefficient and a biomagnification factor were constructed, enabling early warning of hydrogen sulfide concentration. This solves the problem of the inability to provide early warning in existing technologies and ensures the timing-leading nature and physical causal support of the warning.

CN122084841BActive Publication Date: 2026-07-17NANJING NORMAL UNIVERSITY

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
NANJING NORMAL UNIVERSITY
Filing Date
2026-04-22
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

Existing technologies cannot adaptively separate metabolic heat signals in heterogeneous porous structures of sedimentary layers, and lack continuous monitoring methods for the driving mechanical characteristics before interface instability, resulting in the inability to provide early warning of dangerous hydrogen sulfide accumulation events.

Method used

By extracting the metabolic thermal deviation field of the sediment layer, the physical center of the interface is determined, and thermal micro-perturbations are applied to it to construct a nonlinear instability coefficient. Combined with the biological amplification factor and hydrodynamic pulse, an early warning of the interface structure is achieved.

Benefits of technology

Continuous monitoring of critical deceleration was achieved under the heterogeneous porous structure of the sedimentary layer, providing a driving force signal for interface instability and ensuring the temporal leading and physical causal support of the early warning.

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Abstract

本发明公开了一种基于沉积层代谢热偏差的硫化氢浓度超前预警方法、系统、设备及介质,属于沉积层气体监测技术领域,包括:向界面物理中心依序施加第一热微扰动与第二热微扰动,构建非线性失稳系数,记录临界减速判定时刻;响应于界面物理中心满足预设演化条件,锁存参考态,记录界面结构触发时刻;基于参考态施加等参数热脉冲构建生物放大因子,判定活性增强型界面侵蚀;施加受控水动力脉冲以梯度峰位迁移特征诊断储量驱动类型;满足因果先导时序条件时依据储量驱动类型输出分级预警。本发明通过双幅度热微扰动消除孔隙结构干扰,以自参照成因判别区分界面侵蚀成因,以动态热扩散参照周期数自适应识别储量驱动机制,实现超前分级预警。
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