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A Hysteresis Model Based on an Explicit Domain‐Dependence Function
Author(s) -
Mualem Y.,
Miller E. E.
Publication year - 1979
Publication title -
soil science society of america journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.836
H-Index - 168
eISSN - 1435-0661
pISSN - 0361-5995
DOI - 10.2136/sssaj1979.03615995004300060002x
Subject(s) - hysteresis , volume (thermodynamics) , capillary action , function (biology) , calibration , range (aeronautics) , wetting , calibration curve , thermodynamics , diagram , mechanics , materials science , mathematics , physics , statistics , quantum mechanics , evolutionary biology , detection limit , composite material , biology
A quantitative model of hysteresis is proposed, assuming the pore‐water blockage against air entry to be a direct function of the volume of pore domains located in the completely‐filled region of the state diagram. The relative volume of the porewater domains θ o , evaluated from the history of the capillary head ψ assuming the domains are independent, is employed in a dependency correction function P * d (θ o ). For calibration, this model requires only the main loop of hysteresis and one drying scanning curve. The merit of this “Model III expl ” compared with Model III (Y. Mualem, 1974b, Y. Mualem and G. Dagan, 1975) is that any hysteretic process of wetting and drying is expressed analytically in explicit form. This property simplifies the computational procedure and saves computer time in practical application. The overall agreement between predicted and measured hysteretic behavior is acceptable. However, the study reveals that in the range of the air entry value the model does not reproduce the main drying curve accurately if it diverges considerably from the drying scanning curve. This deficiency may reflect the less physical ground for Model III expl compared to the implicit Model III.

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