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Estimating soil hydraulic properties from saturation to complete dryness

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<p>To study the effect of drought on soil water dynamics, we need an accurate description of water retention and hydraulic conductivity from saturation to complete dryness. Recent studies have demonstrated the inaccuracy of conventional soil hydraulic models, especially in the dry end. Likewise, current pedotransfer functions (PTFs) for soil hydraulic properties are based on the classical Mualem-van Genuchten functions.</p><p>This study will evaluate models that estimate soil water retention and unsaturated hydraulic conductivity curves in full soil moisture ranges. An example is the Fredlund-Xing scaling model coupled with the hydraulic conductivity model of Wang et al. We will develop pedotransfer functions that can estimate parameters of the model. We will compare it with existing PTFs in predicting water retention and hydraulic conductivity.</p><p>The results show that a new suite of PTFs that used sand, silt, clay, and bulk density can be used successfully to predict water retention and hydraulic conductivity over a range of moisture content. The prediction of hydraulic properties is used in a soil water flow model to simulate soil moisture dynamics under drought. This study demonstrates the importance of accurate hydraulic model prediction for a better description of soil moisture dynamics.</p><p> </p>
Title: Estimating soil hydraulic properties from saturation to complete dryness
Description:
<p>To study the effect of drought on soil water dynamics, we need an accurate description of water retention and hydraulic conductivity from saturation to complete dryness.
Recent studies have demonstrated the inaccuracy of conventional soil hydraulic models, especially in the dry end.
Likewise, current pedotransfer functions (PTFs) for soil hydraulic properties are based on the classical Mualem-van Genuchten functions.
</p><p>This study will evaluate models that estimate soil water retention and unsaturated hydraulic conductivity curves in full soil moisture ranges.
An example is the Fredlund-Xing scaling model coupled with the hydraulic conductivity model of Wang et al.
We will develop pedotransfer functions that can estimate parameters of the model.
We will compare it with existing PTFs in predicting water retention and hydraulic conductivity.
</p><p>The results show that a new suite of PTFs that used sand, silt, clay, and bulk density can be used successfully to predict water retention and hydraulic conductivity over a range of moisture content.
The prediction of hydraulic properties is used in a soil water flow model to simulate soil moisture dynamics under drought.
This study demonstrates the importance of accurate hydraulic model prediction for a better description of soil moisture dynamics.
</p><p> </p>.

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