TECHNICAL PAPERS
Oct 1, 1998

2D Variably Saturated Flows: Physical Scaling and Bayesian Estimation

Publication: Journal of Hydrologic Engineering
Volume 3, Issue 4

Abstract

A novel dimensionless formulation for water flow in two-dimensional variably saturated media is presented. It shows that scaling physical systems requires conservation of the ratio between capillary forces and gravity forces. A direct result of this finding is that for two physical systems to be hydraulically similar, the soil in the smaller system has to be coarser than the soil in the larger system. The new formulation is implemented in a finite-element model that compared favorably with published numerical results with a minimal mass balance error. Bayesian estimation using prior physical information was used to fit the model to experimental data that simulated tidal action in a laboratory beach. Results show that the model is not sensitive to the residual soil moisture or the parameter n in the van Genuchten model, but is sensitive to variation in the saturated hydraulic conductivity and the parameter α in the van Genuchten model. Nomographs based on the dimensionless formulation were used to scale the results of the laboratory beach to the range of natural beaches.

Get full access to this article

View all available purchase options and get full access to this article.

References

1.
Bard, Y. (1974). Nonlinear parameter estimation. Academic Press, San Diego, Calif.
2.
Bear, J. (1972). Dynamics of flow in porous media. Dover Publications, Inc., New York, N.Y.
3.
Beck, J. V., and Arnold, K. J. (1977). Parameter estimation in engineering and science. John Wiley & Sons, Inc., New York, N.Y.
4.
Boufadel, M. C. (1998a). “Nutrient transport in beaches: Effects of waves, tides, and buoyancy,” PhD thesis, Dept. of Civ. and Envir. Engrg., University of Cincinnati, Cincinnati, Ohio.
5.
Boufadel, M. C.(1998b). “Unit hydrographs derived from the Nash model.”J. Am. Water Res. Assoc., 34, 167–177.
6.
Boufadel, M. C., and Buchberger, S. G. (1993). “A robust method to generate multiple unit hydrographs.”ASCE Int. Symp. on Engrg. Hydro., ASCE, New York, N.Y., 252–257.
7.
Boufadel, M. C., Suidan, M. T., and Rauch, C. H. (1997a). “Tide driven nutrient transport in a laboratory beach in the absence of waves.”Proc., Int. Oil Spill Conf., American Petroleum Institute, Washington, D.C.
8.
Boufadel, M. C., Suidan, M. T., and Venosa, A. D.(1997b). “Density-dependent flow in one-dimensional variably-saturated media.”J. Hydro., Amsterdam, The Netherlands, 202, 280–301.
9.
Boufadel, M. C., Suidan, M. T., Venosa, A. D., and Bowers, M. T. (1998). “Contribution of capillary flow to steady seepage: Applications to trenches and dams.”J. Hydr. Engrg., ASCE, in press.
10.
Carrera, J., and Neuman, S. P.(1986a). “Estimation of aquifer parameters under transient and steady state conditions. 1: Maximum likelihood method incorporating prior information.”Water Resour. Res., 22, 199–210.
11.
Carrera, J., and Neuman, S. P.(1986b). “Estimation of aquifer parameters under transient and steady state conditions. 2: Uniqueness, stability, and solution algorithms.”Water Resour. Res., 22, 211–227.
12.
Carrera, J., and Neuman, S. P.(1986c). “Estimation of aquifer parameters under transient and steady state conditions. 3: Application to synthetic and field data.”Water Resour. Res., 22, 228–242.
13.
Cedergren, H. R. (1967). Seepage, drainage and flow nets. John Wiley & Sons, Inc., New York, N.Y.
14.
Celia, M. A., Bouloutas, E. T., and Zarba, R. L.(1990). “A general mass-conservative numerical solution for the unsaturated flow equation.”Water Resour. Res., 26, 1483–1496.
15.
Clement, T. P., Wise, W. R., and Molz, F. J.(1994). “A physically based, two-dimensional, finite difference algorithm for modeling variably saturated flow.”J. Hydro., Amsterdam, The Netherlands, 161, 71–90.
16.
Freeze, R. A.(1971). “Three-dimensional, transient, saturated-unsaturated flow in a groundwater basin.”Water Resour. Res., 7, 347–366.
17.
Freeze, R. A.(1972). “Role of subsurface flow in generating surface runoff. 1: Base flow contribution to channel flow.”Water Resour. Res., 8, 609–623.
18.
Freeze, R. A., and Cherry, J. A. (1979). Groundwater. Prentice-Hall, Inc., Englewood Cliffs, N.J.
19.
Gardner, W. R.(1958). “Some steady state solutions of the unsaturated moisture flow equation with application to evaporation from a water table.”Soil Sci., 85, 228–232.
20.
Gourlay, M. R.(1992). “Wave set-up, wave run-up and beach water table: Interaction between surf zone hydraulics and groundwater hydraulics.”Coast. Engrg., 17, 93–144.
21.
Gureghian, A. B. (1983). “TRIPM: A two-dimensional finite-element model for the simultaneous transport of water and reacting solutes through saturated and unsaturated porous media.”Tech. Rep., Battele Memorial Institute, Columbus, Ohio.
22.
Haverkamp, R., Vauclin, M., Touma, J., Wierenga, P. J., and Vachaud, G.(1977). “Comparison of numerical simulation models for one-dimensional infiltration.”Soil Sci. Soc. Am. J., 41, 285–294.
23.
Hegge, G. J., and Masselink, G.(1991). “Groundwater-table responses to wave run-up: An experimental study from Western Australia.”J. Coast. Res., 7, 623–634.
24.
Hughes, S. A. (1990). “Physical models and laboratory techniques in coastal engineering.”Advanced series on ocean engineering, Philip L.-F. Liu, ed., Vol. 7, World Scientific Publishing Co., River Edge, N.J.
25.
Huyakorn, P. S., and Pinder, G. F. (1983). Computational methods in subsurface flow. Academic Press, New York, N.Y.
26.
Huyakorn, P. S., Springer, E. P., and Guvanasen V., and Wadsworth(1986). “A three-dimensional finite element model for simulating water flow in variably saturated porous media.”Water Resour. Res., 22, 1790–1808.
27.
Istok, J. (1989). Groundwater modelling by the finite element method. American Geophysical Union, Washington, D.C.
28.
Lasdon, L. S., Warren, A. D., Jain, A., and Ratner, M.(1979). “Design and testing of a generalized reduced gradient code for nonlinear programming.”Trans. Math. Software, 4, 34–50.
29.
Lasdon, L. S., Warren, A. D., Jain, A., and Ratner, M. (1980). “GRG2's user's guide.” Rep., Dept. of General Business, University of Texas, Austin, Tex.
30.
Li, C., and Shen, J.(1994). “Similarity analysis and scaling: An application to soil infiltration properties.”Hydro. Processes, 8, 543–550.
31.
Mishra, S., and Parker, J. C.(1990). “On the relation between saturated conductivity and capillary retention characteristics.”Ground Water, 28, 775–777.
32.
Najem, W. (1982). Introduction aux techniques du calcul numerique. Engrg. Facu., University of Saint Joseph, Beirut, Lebanon (in French).
33.
Neuman, S. P.(1973). “Saturated-unsaturated seepage by finite elements.”J. Hydr. Div., ASCE, 99(12), 2233–2250.
34.
Nielsen, P.(1990). “Tidal dynamics of the water table in beaches.”Water Resour. Res., 26, 2127–2134.
35.
Nitao, J. J., and Bear, J.(1996). “Potentials and their role in transport in porous media.”Water Resour. Res., 32, 225–250.
36.
Philip, R. J.(1954). “An infiltration equation with physical significance.”Soil Sci., 77, 153–157.
37.
Philip, R. J.(1973). “Periodic nonlinear diffusion: An integral relation and its physical consequences.”Australian J. Phys., 26, 513–519.
38.
Ross, B.(1990). “The diversion capacity of capillary barriers.”Water Resour. Res., 26, 2625–2629.
39.
Sanford, W. E., Parlange, J. Y., and Steenhuis, T. S.(1993). “Hillslope drainage with sudden drawdown: Closed form solution and laboratory experiment.”Water Resour. Res., 29, 2313–2321.
40.
Steenhuis, T. S., Parlange, J. Y., and Kung, K. J. S.(1991). “Comment on `The diversion capacity of capillary barriers.”' Water Resour. Res., 27, 2155–2156.
41.
Unver, O., and Mays, L. W.(1984). “Optimal determination of loss rate functions and unit hydrographs.”Water Resour. Res., 20, 203–214.
42.
Vachaud, G., and Thony, J. L.(1971). “Hysteresis during infiltration and redistribution in a soil column at different initial water contents.”Water Resour. Res., 7, 111–127.
43.
van Genuchten, M. T.(1980). “A closed-form equation for predicting the hydraulic conductivity of unsaturated soils.”Soil Sci. Am. J., 44, 892–898.
44.
Vauclin, M., Khanji, D., and Vachaud, G.(1979). “Experimental and numerical study of a transient, two-dimensional unsaturated-saturated water table recharge problem.”Water Resour. Res., 15, 1089–1101.
45.
Vauclin, M., Vachaud, G., and Khanji, J. (1975). “Two dimensional numerical analysis of transient water transfer in saturated-unsaturated soils.”Modeling and simulation of water resources systems, G. C. Vansteenkiste, ed., North-Holland Publishing Co., Amsterdam, The Netherlands, 299–323.
46.
Verma, R. D., and Brutsaert, W.(1970). “Unconfined aquifer seepage by capillary flow theory.”J. Hydr. Div., ASCE, 96(6), 1331–1344.
47.
Waddell, E. (1976). “Swash-groundwater-beach profile interactions.”Spec. Publ. 24, Society of Economic Paleontologists and Mineralogists, 115–125.
48.
Wise, W. R., Clement, T. P., and Molz, F. J.(1994). “Variably saturated modeling of transient drainage: Sensitivity to soil properties.”J. Hydro., Amsterdam, The Netherlands, 161, 91–108.
49.
Wrenn, B. A., Suidan, M. T., Strohmeier, K. L., Eberhart, B. L., Wilson, G. J., and Venosa, A. D.(1997). “Nutrient transport during oil-spill bioremediation: Evaluation with lithium as conservative tracer.”Water Res., 31, 515–524.
50.
Yeh, G. T.(1981). “On the computation of Darcian velocity and mass balance in the finite element modeling of groundwater flow.”Water Resour. Res., 17, 1529–1534.

Information & Authors

Information

Published In

Go to Journal of Hydrologic Engineering
Journal of Hydrologic Engineering
Volume 3Issue 4October 1998
Pages: 223 - 231

History

Published online: Oct 1, 1998
Published in print: Oct 1998

Permissions

Request permissions for this article.

Authors

Affiliations

Michel C. Boufadel
Res. Asst. Prof., Dept. of Civ. and Envir. Engrg., Univ. of Cincinnati, Cincinnati, OH 45221; corresponding author. E-mail: mboufade @boss.cee.uc.edu
Makram T. Suidan, Members, ASCE,
Prof., Dept. of Civ. and Envir. Engrg., Univ. of Cincinnati, Cincinnati, OH.
Albert D. Venosa
Res. Microbiologist, U.S. Envir. Protection Agency, Nat. Risk Mgmt. Res. Lab., Cincinnati, OH 45269.
Christian H. Rauch
Res. Asst., Dept. of Civ. and Envir. Engrg., Univ. of Cincinnati, Cincinnati, OH.
Pratim Biswas
Prof., Dept. of Civ. and Envir. Engrg., Univ. of Cincinnati, Cincinnati, OH.

Metrics & Citations

Metrics

Citations

Download citation

If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. Simply select your manager software from the list below and click Download.

Cited by

View Options

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Media

Figures

Other

Tables

Share

Share

Copy the content Link

Share with email

Email a colleague

Share