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Role of Climate Variability in Groundwater-Surface Water Interactions over the Southeast United States.

机译:气候变化在美国东南部地下水与地表水相互作用中的作用。

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摘要

Groundwater-surface water interaction is a complex process that is controlled by several hydroclimatic attributes and basin characteristics. The complexity of this interaction originates from the temporal and spatial variability of hydrogeologic system and from the external forces such as climatic variations. This research seeks to understand the role of climate in modulating groundwater-surface water interactions and to better utilize this relationship in predicting seasonal to interannual streamflow and groundwater availability. To investigate this, we selected 20 basins with limited anthropogenic influences within the Southeast United States to represent the broad climate, surface and subsurface hydroclimatic over the selected region.;The study performs a detailed dependency analysis among basin-level precipitation, temperature, streamflow and groundwater to identify recharge and discharge periods that influence the seasonal streamflow and groundwater interaction. Based on this analysis, the most dominant variable for each season is identified using singular spectrum analysis (SSA) on the recharging months of precipitation, and discharging months of streamflow along with groundwater and temperature. Findings from SSA clearly indicate that groundwater and streamflow are the two critical variables influencing the basin hydroclimatic variability in comparison to precipitation and temperature. Relating the eigenvalues with baseflow index shows that significant groundwater discharges are associated with larger eigenvalues which indicate the role of groundwater as a spatial integrator of hydroclimatic process. Further, basins with higher Baseflow Index (BFI) show higher eigenvalues, which indicate that groundwater is a spatial integrator of hydroclimatic processes. On the other hand, relating groundwater levels to El Nino Southern Oscillation (ENSO) index, Nino3.4, shows that the interannual variability in winter groundwater levels can be partially explained by the ENSO conditions. Associating precipitation forecasts from ECHAM4.5 General Circulation Model with winter groundwater levels indicates that forecasted precipitation and ENSO conditions can be used to quantify groundwater availability during the winter season over the Southeast U.S.;To evaluate the potential in predicting groundwater and streamflow using precipitation forecast at seasonal and monthly time scales, we consider Flint River Basin, Georgia. For this purpose, we developed statistical and physical prediction models to examine the potential in using precipitation forecasts as a primary predictor in predicting streamflow and groundwater. Results show that incorporating precipitation forecasts can significantly improve the skill of the developed prediction models at seasonal and monthly time scales. Collectively, this research summarizes the relationship between climate and groundwater over the Southeast U.S. and demonstrates the utilization of precipitation forecasts in predicting seasonal groundwater.
机译:地下水与地表水的相互作用是一个复杂的过程,受几个水文气候属性和流域特征的控制。这种相互作用的复杂性源于水文地质系统的时间和空间变异性,以及诸如气候变化等外力。这项研究旨在了解气候在调节地下水与地表水相互作用中的作用,并更好地利用这种关系来预测季节至年际的流量和地下水的可利用量。为了对此进行调查,我们选择了美国东南部20个受人为影响有限的盆地,以代表选定区域的广泛气候,地表和地下水文气候条件;该研究对流域级降水,温度,水流和水流进行了详细的相关性分析。识别地下水的补给和排放期,这些补给和排放期会影响季节性流量和地下水相互作用。基于此分析,可以使用奇异频谱分析(SSA)来确定每个季节的最大支配变量,以计算降水的补给月份,以及与地下水和温度一起流出的水流月份。 SSA的发现清楚地表明,与降水和温度相比,地下水和水流是影响流域水文气候变异性的两个关键变量。将特征值与​​基流指数相关联表明,大量的地下水排放与较大的特征值相关联,这表明地下水在水文气候过程的空间积分中的作用。此外,具有较高基础流量指数(BFI)的盆地显示出较高的特征值,这表明地下水是水文气候过程的空间积分器。另一方面,将地下水位与厄尔尼诺南方涛动(ENSO)指数Nino3.4相关联,表明冬季地下水位的年际变化可以部分由ENSO条件来解释。将ECHAM4.5总循环模型中的降水预测与冬季地下水水位相关联,表明可以使用预测的降水和ENSO条件来量化美国东南部冬季冬季的地下水可利用量;使用降水预测来评估预测地下水和水流的潜力季节性和月度时间尺度,我们考虑佐治亚州弗林特河流域。为此,我们开发了统计和物理预测模型,以检验将降水预测用作预测流量和地下水的主要预测指标的潜力。结果表明,结合降水预测可以在季节和月度尺度上显着提高已开发的预测模型的技能。总的来说,这项研究总结了美国东南部气候与地下水之间的关系,并证明了降水预报在预测季节性地下水中的应用。

著录项

  • 作者单位

    North Carolina State University.;

  • 授予单位 North Carolina State University.;
  • 学科 Hydrology.;Water Resource Management.;Engineering Civil.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 129 p.
  • 总页数 129
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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