A simple three-dimensional macroscopic root water uptake model based on the hydraulic architecture approach

Many hydrological models including root water uptake (RWU) do not consider the dimension of root system hydraulic architecture (HA) because explicitly solving water flow in such a complex system is too time consuming. However, they might lack process understanding when basing RWU and plant water str...

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Main Authors: V. Couvreur, J. Vanderborght, M. Javaux
Format: Article
Language:English
Published: Copernicus Publications 2012-08-01
Series:Hydrology and Earth System Sciences
Online Access:http://www.hydrol-earth-syst-sci.net/16/2957/2012/hess-16-2957-2012.pdf
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spelling doaj-1759eef8556047a28cee52a264a2991c2020-11-24T22:21:35ZengCopernicus PublicationsHydrology and Earth System Sciences1027-56061607-79382012-08-011682957297110.5194/hess-16-2957-2012A simple three-dimensional macroscopic root water uptake model based on the hydraulic architecture approachV. CouvreurJ. VanderborghtM. JavauxMany hydrological models including root water uptake (RWU) do not consider the dimension of root system hydraulic architecture (HA) because explicitly solving water flow in such a complex system is too time consuming. However, they might lack process understanding when basing RWU and plant water stress predictions on functions of variables such as the root length density distribution. On the basis of analytical solutions of water flow in a simple HA, we developed an "implicit" model of the root system HA for simulation of RWU distribution (sink term of Richards' equation) and plant water stress in three-dimensional soil water flow models. The new model has three macroscopic parameters defined at the soil element scale, or at the plant scale, rather than for each segment of the root system architecture: the standard sink fraction distribution <b><i>SSF</i></b>, the root system equivalent conductance <i>K</i><sub>rs</sub> and the compensatory RWU conductance <i>K</i><sub>comp</sub>. It clearly decouples the process of water stress from compensatory RWU, and its structure is appropriate for hydraulic lift simulation. As compared to a model explicitly solving water flow in a realistic maize root system HA, the implicit model showed to be accurate for predicting RWU distribution and plant collar water potential, with one single set of parameters, in dissimilar water dynamics scenarios. For these scenarios, the computing time of the implicit model was a factor 28 to 214 shorter than that of the explicit one. We also provide a new expression for the effective soil water potential sensed by plants in soils with a heterogeneous water potential distribution, which emerged from the implicit model equations. With the proposed implicit model of the root system HA, new concepts are brought which open avenues towards simple and mechanistic RWU models and water stress functions operational for field scale water dynamics simulation.http://www.hydrol-earth-syst-sci.net/16/2957/2012/hess-16-2957-2012.pdf
collection DOAJ
language English
format Article
sources DOAJ
author V. Couvreur
J. Vanderborght
M. Javaux
spellingShingle V. Couvreur
J. Vanderborght
M. Javaux
A simple three-dimensional macroscopic root water uptake model based on the hydraulic architecture approach
Hydrology and Earth System Sciences
author_facet V. Couvreur
J. Vanderborght
M. Javaux
author_sort V. Couvreur
title A simple three-dimensional macroscopic root water uptake model based on the hydraulic architecture approach
title_short A simple three-dimensional macroscopic root water uptake model based on the hydraulic architecture approach
title_full A simple three-dimensional macroscopic root water uptake model based on the hydraulic architecture approach
title_fullStr A simple three-dimensional macroscopic root water uptake model based on the hydraulic architecture approach
title_full_unstemmed A simple three-dimensional macroscopic root water uptake model based on the hydraulic architecture approach
title_sort simple three-dimensional macroscopic root water uptake model based on the hydraulic architecture approach
publisher Copernicus Publications
series Hydrology and Earth System Sciences
issn 1027-5606
1607-7938
publishDate 2012-08-01
description Many hydrological models including root water uptake (RWU) do not consider the dimension of root system hydraulic architecture (HA) because explicitly solving water flow in such a complex system is too time consuming. However, they might lack process understanding when basing RWU and plant water stress predictions on functions of variables such as the root length density distribution. On the basis of analytical solutions of water flow in a simple HA, we developed an "implicit" model of the root system HA for simulation of RWU distribution (sink term of Richards' equation) and plant water stress in three-dimensional soil water flow models. The new model has three macroscopic parameters defined at the soil element scale, or at the plant scale, rather than for each segment of the root system architecture: the standard sink fraction distribution <b><i>SSF</i></b>, the root system equivalent conductance <i>K</i><sub>rs</sub> and the compensatory RWU conductance <i>K</i><sub>comp</sub>. It clearly decouples the process of water stress from compensatory RWU, and its structure is appropriate for hydraulic lift simulation. As compared to a model explicitly solving water flow in a realistic maize root system HA, the implicit model showed to be accurate for predicting RWU distribution and plant collar water potential, with one single set of parameters, in dissimilar water dynamics scenarios. For these scenarios, the computing time of the implicit model was a factor 28 to 214 shorter than that of the explicit one. We also provide a new expression for the effective soil water potential sensed by plants in soils with a heterogeneous water potential distribution, which emerged from the implicit model equations. With the proposed implicit model of the root system HA, new concepts are brought which open avenues towards simple and mechanistic RWU models and water stress functions operational for field scale water dynamics simulation.
url http://www.hydrol-earth-syst-sci.net/16/2957/2012/hess-16-2957-2012.pdf
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