A mathematic model for the soil freezing characteristic curve: the roles of adsorption and capillarity
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[1] H. Jia,et al. Investigation on meso-debonding process of the sandstone–concrete interface induced by freeze–thaw cycles using NMR technology , 2020 .
[2] Zhongming He,et al. Deformation Behavior of Coarse-Grained Soil as an Embankment Filler under Cyclic Loading , 2020 .
[3] D. Sheng,et al. Modelling frost heave in unsaturated coarse-grained soils , 2020, Acta Geotechnica.
[4] D. Sheng,et al. Parameterization of soil freezing characteristic curve for unsaturated soils , 2020 .
[5] Xin Wei,et al. A novel shearing fracture morphology method to assess the influence of freeze–thaw actions on concrete–granite interface , 2020 .
[6] Zhijun Yang,et al. An analysis of vapour transfer in unsaturated freezing soils , 2020 .
[7] Jianjun Wang,et al. Probing the critical nucleus size for ice formation with graphene oxide nanosheets , 2019, Nature.
[8] Changfu Wei,et al. Phase Equilibrium Condition for Pore Hydrate: Theoretical Formulation and Experimental Validation , 2019, Journal of Geophysical Research: Solid Earth.
[9] De’an Sun,et al. Hydromechanical behavior of unsaturated soil with different initial densities over a wide suction range , 2019 .
[10] Shenmin Zhang,et al. Experimental study of ice accumulation in unsaturated clean sand , 2019, Géotechnique.
[11] D. Sheng,et al. Evaluating the Influence of Specimen Preparation on Saturated Hydraulic Conductivity Using Nuclear Magnetic Resonance Technology , 2019, Vadose Zone Journal.
[12] Y. Lai,et al. Application of the Generalized Clapeyron Equation to Freezing Point Depression and Unfrozen Water Content , 2018, Water Resources Research.
[13] Zhisen Zhang,et al. Control of ice nucleation: freezing and antifreeze strategies. , 2018, Chemical Society reviews.
[14] Y. Mu,et al. A method for calculating unfrozen water content of silty clay with consideration of freezing point , 2018, Applied Clay Science.
[15] Zhen Liu,et al. Freezing of water confined in porous materials: role of adsorption and unfreezable threshold , 2018 .
[16] Ming-yi Zhang,et al. Estimating soil freezing characteristic curve based on pore-size distribution , 2017 .
[17] Zhen Liu,et al. Lowest matric potential in quartz: Metadynamics evidence , 2017 .
[18] Changfu Wei,et al. Soil Freezing and Soil Water Retention Characteristics: Connection and Solute Effects , 2017 .
[19] D. Sheng,et al. Canopy effect caused by vapour transfer in covered freezing soils , 2016 .
[20] Houzhen Wei,et al. Freezing and thawing characteristics of frozen soils: Bound water content and hysteresis phenomenon , 2014 .
[21] Daichao Sheng,et al. A potential new frost heave mechanism in high-speed railway embankments , 2014 .
[22] X. Yu,et al. Physically Based Equation for Phase Composition Curve of Frozen Soils , 2013 .
[23] B. Kurylyk,et al. The mathematical representation of freezing and thawing processes in variably-saturated, non-deformable soils , 2013 .
[24] T. Kozlowski,et al. Unfrozen Water Content in Representative Bentonites of Different Origin Subjected to Cyclic Freezing and Thawing , 2013 .
[25] Dongyang Li,et al. A simple test method to measure unfrozen water content in clay–water systems , 2012 .
[26] J. Konrad,et al. An extension of the capillary and thin film flow model for predicting the hydraulic conductivity of air‐free frozen porous media , 2012 .
[27] J. Nieber,et al. One‐dimensional freezing of nonheaving unsaturated soils: Model formulation and similarity solution , 2011 .
[28] Qingbai Wu,et al. Exchange of groundwater and surface‐water mediated by permafrost response to seasonal and long term air temperature variation , 2011 .
[29] Jean-Marie Konrad,et al. A new capillary and thin film flow model for predicting the hydraulic conductivity of unsaturated porous media , 2010 .
[30] C. Radke,et al. Wetting and Spreading Dynamics , 2019 .
[31] T. Kozlowski,et al. A semi-empirical model for phase composition of water in clay–water systems , 2007 .
[32] C. Voss,et al. Groundwater flow with energy transport and water-ice phase change: Numerical simulations, benchmarks, and application to freezing in peat bogs , 2007 .
[33] John S. Wettlaufer,et al. The physics of premelted ice and its geophysical consequences , 2006 .
[34] M. Grae Worster,et al. Premelting dynamics in a continuum model of frost heave , 2004, Journal of Fluid Mechanics.
[35] M. Mizoguchi,et al. Amount of unfrozen water in frozen porous media saturated with solution , 2002 .
[36] M. Worster,et al. Interfacial premelting and the thermomolecular force: thermodynamic buoyancy. , 2001, Physical review letters.
[37] M. Worster,et al. Premelting Dynamics: Geometry and Interactions , 1997 .
[38] Sally A. Shoop,et al. Moisture migration during freeze and thaw of unsaturated soils: modeling and large scale experiments , 1997 .
[39] J. G. Dash,et al. Premelting of ice in porous silica glass , 1996 .
[40] Wilen,et al. A theory of premelting dynamics for all power law forces. , 1996, Physical review letters.
[41] J. Baker,et al. The Soil Freezing Characteristic: Its Measurement and Similarity to the Soil Moisture Characteristic , 1996 .
[42] N. Churaev. Contact angles and surface forces , 1995 .
[43] J. Cahn,et al. Theory of ice premelting in monosized powders , 1992 .
[44] M. Baker,et al. Charge transfer in thunderstorms and the surface melting of ice , 1989 .
[45] R. R. Gilpin. Wire regelation at low temperatures , 1980 .
[46] J. Loch. THERMODYNAMIC EQUILIBRIUM BETWEEN ICE AND WATER IN POROUS MEDIA , 1978 .
[47] N. R. Morgenstern,et al. Physics, chemistry, and mechanics of frozen ground. A review : Conference. In Permafrost - North American contribution to the 2nd Internat. Conference. 11F, 182R. NAT. ACAD. SCI. WASHINGTON, 1973, P257–288 , 1974 .
[48] Duwayne M. Anderson,et al. PREDICTING UNFROZEN WATER CONTENTS IN FROZEN SOILS FROM SURFACE AREA MEASUREMENTS , 1972 .