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DOE OSTI · 1977308

Characterizing soil water content variability across spatial scales from optimized high-resolution distributed temperature sensing technique

Abstract

Fiber-optic Distributed Temperature Sensing, when combined with the Single-probe Heat-pulse technique can measure soil moisture (θ) across spatial scales. The key limitation of this system is in obtaining the relationship between soil thermal conductivity (λ) and θ for a specific field. Using the Department of Energy Atmospheric Radiation Measurement (ARM) site, this study tested a new methodology to account for the spatial variability in the λ-θ relationship using a Gaussian processes model. The resulting accurate θ measurements (RMSE = 0.03 m 3 m –3 ) were used to characterize the spatial variability of θ across scales and to develop an empirical equation that can correct for the changes in the θ spatial variability observed at different spatial resolutions. In addition, the number of required samples to accurately characterize θ and its variability over scales ranging from 5 m and 350 m were estimated. Finally, these findings provide key information to scale soil moisture from centimeters to hundreds of meters for process understanding.

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BibTeXRIS

Shehata, Mahmoud, Gentine, Pierre, Nelson, Natalie, Sayde, Chadi. 2022-07-15. Characterizing soil water content variability across spatial scales from optimized high-resolution distributed temperature sensing technique. https://doi.org/10.1016/j.jhydrol.2022.128195

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