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Time-window-based filtering method for near-surface detection of leakage from geologic carbon sequestration sites

机译:基于时间窗口的地质固碳现场渗漏近地表检测方法

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摘要

We use process-based modeling techniques to characterize the temporal features of natural biologically controlled surface CO2 fluxes and the relationships between the assimilation and respiration fluxes. Based on these analyses, we develop a signal-enhancing technique that combines a novel time-window splitting scheme, a simple median filtering, and an appropriate scaling method to detect potential signals of leakage of CO2 from geologic carbon sequestration sites from within datasets of net near-surface CO2 flux measurements. The technique can be directly applied to measured data and does not require subjective gap filling or data-smoothing preprocessing. Preliminary application of the new method to flux measurements from a CO2 shallow-release experiment appears promising for detecting a leakage signal relative to background variability. The leakage index of ±2 was found to span the range of biological variability for various ecosystems as determined by observing CO2 flux data at various control sites for a number of years.
机译:我们使用基于过程的建模技术来表征自然生物控制表面CO 2 通量的时间特征以及同化和呼吸通量之间的关系。在这些分析的基础上,我们开发了一种信号增强技术,该技术结合了新颖的时间窗口分割方案,简单的中值滤波和适当的缩放方法,可从地质学中检测出潜在的CO 2 泄漏信号。净近地CO 2 通量测量数据集中的碳固存位点。该技术可以直接应用于测量数据,不需要主观的间隙填充或数据平滑预处理。将该新方法初步应用于CO 2 浅释放实验的通量测量中,有望用于检测相对于背景变化的泄漏信号。通过多年观察各控制点的CO 2 通量数据,确定了±2的泄漏指数涵盖了各种生态系统的生物变异范围。

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