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Spatiotemporal monitoring of soil water content profiles in an irrigated field using probabilistic inversion of time-lapse EMI data

机译:利用时移EMI数据的概率反演对灌溉田土壤含水量进行时空监测

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摘要

Monitoring spatiotemporal variations of soil water content (theta) is important across a range of research fields, including agricultural engineering, hydrology, meteorology and climatology. Low frequency electromagnetic induction (EMI) systems have proven to be useful tools in mapping soil apparent electrical conductivity (sa) and soil moisture. However, obtaining depth profile water content is an area that has not been fully explored using EMI. To examine this, we performed time-lapse EMI measurements using a CMD mini-Explorer sensor along a 10m transect of a maize field over a 6 day period. Reference data were measured at the end of the profile via an excavated pit using 5TE capacitance sensors. In order to derive a time-lapse, depth-specific subsurface image of electrical conductivity (sigma), we applied a probabilistic sampling approach, DREAM((ZS)), on the measured EMI data. The inversely estimated sigma values were subsequently converted to theta using the Rhoades et al. (1976) petrophysical relationship. The uncertainties in measured sigma(a), as well as inaccuracies in the inverted data, introduced some discrepancies between estimated s and reference values in time and space. Moreover, the disparity between the measurement footprints of the 5TE and CMD Mini-Explorer sensors also led to differences. The obtained theta permitted an accurate monitoring of the spatiotemporal distribution and variation of soil water content due to root water uptake and evaporation. The proposed EMI measurement and modeling technique also allowed for detecting temporal root zone soil moisture variations. The time-lapse theta monitoring approach developed using DREAM( ZS) thus appears to be a useful technique to understand spatiotemporal patterns of soil water content and provide insights into linked soil moisture vegetation processes and the dynamics of soil moisture/infiltration processes.
机译:在包括农业工程,水文学,气象学和气候学在内的一系列研究领域中,监测土壤水分(theta)的时空变化非常重要。事实证明,低频电磁感应(EMI)系统是绘制土壤表观电导率(sa)和土壤湿度的有用工具。但是,获得深度剖面含水量是一个尚未使用EMI进行全面研究的领域。为了检查这一点,我们使用CMD mini-Explorer传感器在6天的时间内沿着玉米田的10m横断面进行了EMI延时测量。参考数据是在轮廓的末端使用5TE电容传感器通过开挖的凹坑测量的。为了获得随时间推移的深度特定深度的电导率地下图像(sigma),我们对测量的EMI数据应用了概率采样方法DREAM((ZS))。随后使用Rhoades等人将反估计的sigma值转换为theta。 (1976)岩石物理关系。测量的sigma(a)的不确定性以及倒置数据的不准确性导致了s估计值与参考值在时间和空间上的某些差异。此外,5TE和CMD Mini-Explorer传感器的测量尺寸之间的差异也导致差异。所获得的θ允许对根水吸收和蒸发引起的土壤水分的时空分布和变化进行精确监测。拟议的EMI测量和建模技术还允许检测根部时域土壤水分的变化。因此,使用DREAM(ZS)开发的延时theta监测方法似乎是了解土壤水分时空格局并提供有关土壤水分植被过程和土壤水分/入渗过程动力学的见解的有用技术。

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  • 来源
    《Advances in Water Resources》 |2017年第12期|238-248|共11页
  • 作者单位

    Brandenburg Tech Univ Cottbus, Res Ctr Landscape Dev & Min Landscapes, D-03046 Cottbus, Germany;

    Int Islamic Univ, Dept Civil Engn, Islamabad 44000, Pakistan;

    King Abdullah Univ Sci & Technol, Water Desalinat & Reuse Ctr, Thuwal 239556900, Saudi Arabia;

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