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Monitoring hillslope moisture dynamics with surface ERT for enhancing spatial significance of hydrometric point measurements

机译:用表面偏置监测Hillslope水分动态,以提高水雨点测量的空间意义

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Besides floodplains, hillslopes are basic units that mainly control water movement and flow pathways within catchments of subdued mountain ranges. The structure of their shallow subsurface affects water balance, e.g. infiltration, retention, and runoff. Nevertheless, there is still a gap in the knowledge of the hydrological dynamics on hillslopes, notably due to the lack of generalization and transferability. This study presents a robust multi-method framework of electrical resistivity tomography (ERT) in addition to hydrometric point measurements, transferring hydrometric data into higher spatial scales to obtain additional patterns of distribution and dynamics of soil moisture on a hillslope. A geoelectrical monitoring in a small catchment in the eastern Ore Mountains was carried out at weekly intervals from May to December 2008 to image seasonal moisture dynamics on the hillslope scale. To link water content and electrical resistivity, the parameters of Archie's law were determined using different core samples. To optimize inversion parameters and methods, the derived spatial and temporal water content distribution was compared to tensiometer data. The results from ERT measurements show a strong correlation with the hydrometric data. The response is congruent to the soil tension data. Water content calculated from the ERT profile shows similar variations as that of water content from soil moisture sensors. Consequently, soil moisture dynamics on the hillslope scale may be determined not only by expensive invasive punctual hydrometric measurements, but also by minimally invasive time-lapse ERT, provided that pedo-/petrophysical relationships are known. Since ERT integrates larger spatial scales, a combination with hydrometric point measurements improves the understanding of the ongoing hydrological processes and better suits identification of heterogeneities.
机译:除了洪泛平坦之外,Hillslopes还是基本单位,主要控制水中山脉内部的水运动和流动途径。浅层地下的结构影响水平衡,例如水平衡。渗透,保留和径流。尽管如此,山坡上的水文动力学知识仍然存在差距,特别是由于缺乏泛化和可转移性。本研究除了液度点测量外,该研究还具有稳健的电阻率断层扫描(ERT)的多方法框架,将水学数据转移到更高的空间尺度,以获得山坡上土壤水分的额外分布和动态模式。从2008年5月到2008年5月的每周间隔进行了一小部分内部的电影电流监测,以在山坡秤上以图像季节性水分动态进行。为了链接含水量和电阻率,使用不同的核心样本确定Archie定律的参数。为了优化反转参数和方法,将衍生的空间和颞含水量分布与张力计数据进行比较。来自ert测量结果的结果显示出与水学数据的强相关。响应是土壤张力数据的一致性。从ert型谱计算的水含量显示出与土壤湿度传感器的水含量类似的变化。因此,山坡尺度上的土壤水分动力学不仅可以通过昂贵的侵入性准时的液度测量来确定,而且还可以通过微创时间流逝ORT来确定,只要众所周知的宠物和物理关系。由于ERT整合了较大的空间尺度,因此与液度点测量的组合改善了对持续的水文过程的理解,并且更好地诉诸异质性的鉴定。

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