Articles | Volume 8, issue 11
https://doi.org/10.5194/gmd-8-3659-2015
https://doi.org/10.5194/gmd-8-3659-2015
Model description paper
 | 
06 Nov 2015
Model description paper |  | 06 Nov 2015

A non-equilibrium model for soil heating and moisture transport during extreme surface heating: the soil (heat–moisture–vapor) HMV-Model Version 1

W. J. Massman

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Cited articles

Assouline, S.: A model for the relative hydraulic conductivity based on the water retention curve, Water Resour. Res, 37, 265–271, 2001.
Assouline, S. and Or, D.: Conceptual and parametric representation of hydraulic properties: A review, Vadose Zone J., 12, 1–20, https://doi.org/10.2136/vzj2013.07.0121, 2013.
Aston, A. R. and Gill, A. M.: Coupled soil moisture, heat and water vapour transfers under simulated fire conditions, Aust. J. Soil Res., 14, 55–66, 1976.
Bauer, T. H.: A general analytical approach toward the thermal; conductivity of porous media, Int. J. Heat Mass Tran., 36, 4181–4191, 1993.
Bear, J.: Dynamics of Fluids in Porous Media, American Elsevier Pub. Co, New York, NY, USA, 1972.