Implicit EXP-RBF techniques for modeling unsaturated flow through soils with water uptake by plant roots

Fuente: arXiv
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Autori principali: Boujoudar, Mohamed, Beljadid, Abdelaziz, Taik, Ahmed
Natura: Preprint
Pubblicazione: 2024
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author Boujoudar, Mohamed
Beljadid, Abdelaziz
Taik, Ahmed
author_facet Boujoudar, Mohamed
Beljadid, Abdelaziz
Taik, Ahmed
contents Modeling unsaturated flow through soils with water uptake by plan root has many applications in agriculture and water resources management. In this study, our aim is to develop efficient numerical techniques for solving the Richards equation with a sink term due to plant root water uptake. The Feddes model is used for water absorption by plant roots, and the van-Genuchten model is employed for capillary pressure. We introduce a numerical approach that combines the localized exponential radial basis function (EXP-RBF) method for space and the second-order backward differentiation formula (BDF2) for temporal discretization. The localized RBF methods eliminate the need for mesh generation and avoid ill-conditioning problems. This approach yields a sparse matrix for the global system, optimizing memory usage and computational time. The proposed implicit EXP-RBF techniques have advantages in terms of accuracy and computational efficiency thanks to the use of BDF2 and the localized RBF method. Modified Picards iteration method for the mixed form of the Richards equation is employed to linearize the system. Various numerical experiments are conducted to validate the proposed numerical model of infiltration with plant root water absorption. The obtained results conclusively demonstrate the effectiveness of the proposed numerical model in accurately predicting soil moisture dynamics under water uptake by plant roots. The proposed numerical techniques can be incorporated in the numerical models where unsaturated flows and water uptake by plant roots are involved such as in hydrology, agriculture, and water management.
format Preprint
id arxiv_https___arxiv_org_abs_2404_09382
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Implicit EXP-RBF techniques for modeling unsaturated flow through soils with water uptake by plant roots
Boujoudar, Mohamed
Beljadid, Abdelaziz
Taik, Ahmed
Numerical Analysis
Analysis of PDEs
Modeling unsaturated flow through soils with water uptake by plan root has many applications in agriculture and water resources management. In this study, our aim is to develop efficient numerical techniques for solving the Richards equation with a sink term due to plant root water uptake. The Feddes model is used for water absorption by plant roots, and the van-Genuchten model is employed for capillary pressure. We introduce a numerical approach that combines the localized exponential radial basis function (EXP-RBF) method for space and the second-order backward differentiation formula (BDF2) for temporal discretization. The localized RBF methods eliminate the need for mesh generation and avoid ill-conditioning problems. This approach yields a sparse matrix for the global system, optimizing memory usage and computational time. The proposed implicit EXP-RBF techniques have advantages in terms of accuracy and computational efficiency thanks to the use of BDF2 and the localized RBF method. Modified Picards iteration method for the mixed form of the Richards equation is employed to linearize the system. Various numerical experiments are conducted to validate the proposed numerical model of infiltration with plant root water absorption. The obtained results conclusively demonstrate the effectiveness of the proposed numerical model in accurately predicting soil moisture dynamics under water uptake by plant roots. The proposed numerical techniques can be incorporated in the numerical models where unsaturated flows and water uptake by plant roots are involved such as in hydrology, agriculture, and water management.
title Implicit EXP-RBF techniques for modeling unsaturated flow through soils with water uptake by plant roots
topic Numerical Analysis
Analysis of PDEs
url https://arxiv.org/abs/2404.09382