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首页> 外文期刊>Journal of Hydrology >Phase difference between groundwater storage changes and groundwater level fluctuations due to compaction of an aquifer-aquitard system
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Phase difference between groundwater storage changes and groundwater level fluctuations due to compaction of an aquifer-aquitard system

机译:由于含水层 - 水流系统的压实,地下水储存变化与地下水位波动的相位差

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摘要

Drainage and deformation of intercalated confining layers due to internal stress change (discharge/recharge cycle) in an aquifer-aquitard system not only can have great effects on the groundwater storage (GWS), but also can cause unsynchronized water level (WL) fluctuations. The phase relationship between GWS and WL is crucial for the accuracy and attribution of GWS changes. We identify the dominating episodic components of GWS and WL through the Singular Spectrum Analysis (SSA) analysis and Harmonic analysis. First, we analyzed a generic aquifer-aquitard system using numerical simulations which showed that the dissipation of overpressure from the aquitard and flow from it is the inherent cause of a phase shift between the GWS and WL observations. Water released from confining layers with compaction time constant of zero (no-delay) to century time scale results in detected phase shift between total GWS and WL in the aquifer. Then, we analyzed the complex and varied phase relationship between GWS derived using the Gravity Recovery and Climate Experiment (GRACE) data and measured WL time series in the subsiding North China Plain (NCP) aquifer. The spatially varied phase relationship between GWS and measured WL is reasonably related to varied land subsidence development features and may be related with the compaction time constant and thickness of the confining layers. Results of the generic numerical model and the NCP observations suggest that elastic/inelastic response need to be considered in the interpretation and correction of GWS changes for a compacted aquifer-aquitard system.
机译:含水层 - 水流系统中的内部应力变化(放电/再充电循环)引起的插入限制层的排水和变形不仅可以对地下水储存(GWS)产生很大影响,而且可能导致非同步水位(WL)波动。 GWS和WL之间的相位关系对于GWS变化的准确性和归属至关重要。我们通过奇异频谱分析(SSA)分析和谐波分析来识别GWS和WL的主导集中组分。首先,我们分析了一种使用数值模拟的通用含水层 - 水流系统,该系统表明,从水管和流量的流量耗散过压和流量的固有原因是GWS和WL观察结果之间的相移的固有原因。从密集的层释放的水与压实时间常数为零(禁止)到世纪时间尺度导致含水层中总GWS和WL之间的检测相移。然后,我们分析了使用重力恢复和气候实验(Grace)数据的GWS之间的复杂和不同的相位关系,并测量了北方中国平原(NCP)含水层的WL时间序列。 GWS和测量WL之间的空间变化相位关系与各种土地沉降开发特征合理相关,并且可以与限制层的压实时间常数和厚度有关。通用数值模型的结果和NCP观察表明,在压实含水层 - 水产系统的诠释和校正中需要考虑弹性/非弹性响应。

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