נגישות
menu      
Advanced Search
Syntax
Search...
Volcani treasures
About
Terms of use
Manage
Community:
אסיף מאגר המחקר החקלאי
Powered by ClearMash Solutions Ltd -
Numerical analysis of transport of interacting solutes in a three-dimensional unsaturated heterogeneous soil
Year:
2004
Source of publication :
Vadose Zone Journal
Authors :
Laufer, Asher
;
.
Russo, David
;
.
Volume :
3
Co-Authors:
Russo, D., Dep. of Environmental Physics and Irrigation, Institute of Soils, Water and Environmental Sciences, Agricultural Research Organization, The Volcani Center, Bet Dagan 50250, Israel
Zaidel, J., AMEC Earth and Environmental Ltd, 160 Traders Blvd. East, Suite 110, Mississauga, ON, Canada
Laufer, A., Dep. of Environmental Physics and Irrigation, Institute of Soils, Water and Environmental Sciences, Agricultural Research Organization, The Volcani Center, Bet Dagan 50250, Israel
Facilitators :
From page:
1286
To page:
1299
(
Total pages:
14
)
Abstract:
The present study focuses on field-scale flow and transport in three- dimensional, heterogeneous, variably saturated formations, for the case in which the flow is coupled to the transport through the dependence of the hydraulic conductivity and water retentivity on solute concentrations. Numerical simulations of flow and transport of both tracer and mixed Na-Ca solutes were employed to analyze long-term effects of the interactions between the soil solution and the soil matrix on water and solute movement, under transient, nonmonotonic flows. The simulated flows were derived from actual irrigation and weather records, along with water uptake by plant roots. Results of this study suggest that enhanced soil solution-soil matrix interactions, induced by soil alkalinity and dilution of the soil solution, may reduce both the mean and the spatial variability of the hydraulic conductivity, and, concurrently, of the velocity. Consequently, enhanced soil solution- soil matrix interactions may slow down the tracer solute movement, decrease the spreading of the tracer solute about its center of mass (particularly in the vertical direction), diminish the skewing of the tracer solute breakthrough, and decrease both the magnitude of the effective retardation factor and the rate at which it approaches its asymptotic value. In addition, our results suggest that under realistic conditions, the three-dimensionality of the flow domain, the periodicity of the rain or irrigation events, along with the substantial redistribution periods between successive events, and the spatial heterogeneity of the hydraulic properties of the variably saturated formation may compensate in part for the adverse effects of soil alkalinity on flow and transport on the field scale. This last finding has practical implications regarding the use of sewage water for irrigation. © Soil Science Society of America.
Note:
Related Files :
irrigation
On flow
pH
sewage
soil moisture
Solute concentrations
Show More
Related Content
More details
DOI :
Article number:
Affiliations:
Database:
Scopus
Publication Type:
article
;
.
Language:
English
Editors' remarks:
ID:
25226
Last updated date:
02/03/2022 17:27
Creation date:
17/04/2018 00:13
You may also be interested in
Scientific Publication
Numerical analysis of transport of interacting solutes in a three-dimensional unsaturated heterogeneous soil
3
Russo, D., Dep. of Environmental Physics and Irrigation, Institute of Soils, Water and Environmental Sciences, Agricultural Research Organization, The Volcani Center, Bet Dagan 50250, Israel
Zaidel, J., AMEC Earth and Environmental Ltd, 160 Traders Blvd. East, Suite 110, Mississauga, ON, Canada
Laufer, A., Dep. of Environmental Physics and Irrigation, Institute of Soils, Water and Environmental Sciences, Agricultural Research Organization, The Volcani Center, Bet Dagan 50250, Israel
Numerical analysis of transport of interacting solutes in a three-dimensional unsaturated heterogeneous soil
The present study focuses on field-scale flow and transport in three- dimensional, heterogeneous, variably saturated formations, for the case in which the flow is coupled to the transport through the dependence of the hydraulic conductivity and water retentivity on solute concentrations. Numerical simulations of flow and transport of both tracer and mixed Na-Ca solutes were employed to analyze long-term effects of the interactions between the soil solution and the soil matrix on water and solute movement, under transient, nonmonotonic flows. The simulated flows were derived from actual irrigation and weather records, along with water uptake by plant roots. Results of this study suggest that enhanced soil solution-soil matrix interactions, induced by soil alkalinity and dilution of the soil solution, may reduce both the mean and the spatial variability of the hydraulic conductivity, and, concurrently, of the velocity. Consequently, enhanced soil solution- soil matrix interactions may slow down the tracer solute movement, decrease the spreading of the tracer solute about its center of mass (particularly in the vertical direction), diminish the skewing of the tracer solute breakthrough, and decrease both the magnitude of the effective retardation factor and the rate at which it approaches its asymptotic value. In addition, our results suggest that under realistic conditions, the three-dimensionality of the flow domain, the periodicity of the rain or irrigation events, along with the substantial redistribution periods between successive events, and the spatial heterogeneity of the hydraulic properties of the variably saturated formation may compensate in part for the adverse effects of soil alkalinity on flow and transport on the field scale. This last finding has practical implications regarding the use of sewage water for irrigation. © Soil Science Society of America.
Scientific Publication
You may also be interested in