Loveridge, 2020, Energy geostructures: a review of analysis approaches, in situ testing and model scale experiments, Geomech Energy Environ, 22, 10.1016/j.gete.2019.100173
IPCC, 2022, 3056
Agreement, 2015
Lu, 2019
Laloui, 2019
Khosravi, 2020, Variation of small-strain shear modulus of unsaturated silt under successive cycles of drying and wetting, J Geotech Geoenviron Eng, 146, 10.1061/(ASCE)GT.1943-5606.0002275
Wang, 2016
Fu, 2017
Khoury, 2011, Unsaturated soil–geotextile interface behavior, Geotext Geomembr, 29, 17, 10.1016/j.geotexmem.2010.06.009
Di Donna, 2014
Potyondy, 1961, Skin friction between various soils and construction materials, Geotechnique, 11, 339, 10.1680/geot.1961.11.4.339
Uesugi, 1986, Influential factors of friction between steel and dry sands, Soils Found, 26, 33, 10.3208/sandf1972.26.2_33
Yin, 2010
Hassanikhah, 2020, 1
Di Donna, 2016, Experimental investigations of the soil–concrete interface: physical mechanisms, cyclic mobilization, and behaviour at different temperatures, Can Geotech J, 53, 659, 10.1139/cgj-2015-0294
Hashemi, 2022, Thermo-mechanical response of kaolin clay-concrete interface in the context of energy geostructures, Can Geotech J
Fleming, 2006, Shear strength of geomembrane–soil interface under unsaturated conditions, Geotext Geomembr, 24, 274, 10.1016/j.geotexmem.2006.03.009
Martinez, 2019, Rate effects on the interface shear behaviour of normally and overconsolidated clay, Géotechnique, 69, 801, 10.1680/jgeot.17.P.311
Tabucanon, 1995, Pile skin friction in sands from constant normal stiffness tests, Geotech Test J, 18, 350, 10.1520/GTJ11004J
Ravera, 2020, Cyclic thermomechanical response of fine-grained soil-concrete interface for energy piles applications, Can Geotech J
Salager, 2008, Experimental investigations of temperature and suction effects on compressibility and pre-consolidation pressure of a sandy silt, Soils Found, 48, 453, 10.3208/sandf.48.453
Uchaipichat, 2009, Experimental investigation of thermo-hydro-mechanical behaviour of an unsaturated silt, Géotechnique, 59, 339, 10.1680/geot.2009.59.4.339
Coccia, 2016, Thermal volume change of poorly draining soils I: critical assessment of volume change mechanisms, Comput Geotech, 80, 26, 10.1016/j.compgeo.2016.06.009
Romero, 2003, Suction effects on a compacted clay under non-isothermal conditions, Géotechnique, 53, 65, 10.1680/geot.2003.53.1.65
Hashemi, 2022, Thermo-hydro-mechanical behaviour of partially saturated fine-grained soils in the context of energy geostructures, Soils Rocks, 45, 10.28927/SR.2022.076821
Tsubakihara, 1993, Frictional behaviour between normally consolidated clay and steel by two direct shear type apparatuses, Soils Found, 33, 1, 10.3208/sandf1972.33.2_1
Rouaiguia, 2010, Residual shear strength of clay-structure interfaces, Int J Civ Environ Eng, 10, 6
Taha, 2013, Shear behavior of sensitive marine clay-concrete interfaces, J Geotech Geoenviron Eng, 139, 644, 10.1061/(ASCE)GT.1943-5606.0000795
Kishida, 1987, Tests of the interface between sand and steel in the simple shear apparatus, Géotechnique, 37, 45, 10.1680/geot.1987.37.1.45
Porcino, 2003, Interface behavior of sands from constant normal stiffness direct shear tests, Geotech Test J, 26, 289
Hu, 2003, Application of damage model for soil–structure interface, Comput Geotech, 30, 165, 10.1016/S0266-352X(02)00059-9
Zhang, 2006, Monotonic and cyclic tests of interface between structure and gravelly soil, Soils Found, 46, 505, 10.3208/sandf.46.505
Borana, 2016, Interface behavior from suction-controlled direct shear test on completely decomposed granitic soil and steel surfaces, Int J Geomech, 16, 10.1061/(ASCE)GM.1943-5622.0000658
Maghsoodi, 2020, Thermal effects on mechanical behaviour of soil–structure interface, Can Geotech J, 57, 32, 10.1139/cgj-2018-0583
Yin, 2021, A review of sand–clay mixture and soil–structure interface direct shear test, Geotechnics, 1, 260, 10.3390/geotechnics1020014
Saberi, 2018, On the mechanics and modeling of interfaces between granular soils and structural materials, 1562
Uesugi, 1988, Behavior of sand particles in sand-steel friction, Soils Found, 28, 107, 10.3208/sandf1972.28.107
DeJong, 2009, Role of initial state, material properties, and confinement condition on local and global soil–structure interface behavior, J Geotech Geoenviron Eng, 135, 1646, 10.1061/(ASCE)1090-0241(2009)135:11(1646)
McCartney, 2019, Emerging thermal issues in geotechnical engineering, 5
Gan, 1988, Determination of the shear strength parameters of an unsaturated soil using the direct shear test, Can Geotech J, 25, 500, 10.1139/t88-055
Escario V, Juca J, Coppe M. Strength and deformation of partly saturated soils. In: Congrès international de mécanique des sols et des travaux de fondations, Vol. 12. 1989:43–46.
Bishop, 1959, 859
Lamborn, 1986
Fredlund, 1996, The relationship of the unsaturated soil shear strength to the soil–water characteristic curve, Can Geotech J, 33, 440, 10.1139/t96-065
Khalili, 1998, A unique relationship for χ for the determination of the shear strength of unsaturated soils, Geotechnique, 48, 681, 10.1680/geot.1998.48.5.681
Fredlund, 1978, The shear strength of unsaturated soils, Can Geotech J, 15, 313, 10.1139/t78-029
Vanapalli, 1996, Model for the prediction of shear strength with respect to soil suction, Can Geotech J, 33, 379, 10.1139/t96-060
Hamid, 2009, Shear strength of unsaturated soil interfaces, Can Geotech J, 46, 595, 10.1139/T09-002
Li, 2019, Effect of temperature on behaviour of red clay–structure interface, Can Geotech J, 56, 126, 10.1139/cgj-2017-0310
Khoury, 2010
Lu, 2004
Han K, Rahardjo H, Broms B. Effect of hysteresis on the shear strength of a residual soil. In: Proceedings of the First International Conference on Unsaturated Soils, Vol. 2. 1995.
Thu, 2006, Effects of hysteresis on shear strength envelopes from constant water content and consolidated drained triaxial tests, 1212
Guan, 2010, Shear strength equations for unsaturated soil under drying and wetting, J Geotech Geoenviron Eng, 136, 594, 10.1061/(ASCE)GT.1943-5606.0000261
Xiao S, Suleiman MT, McCartney JS. Shear behavior of silty soil and soil–structure interface under temperature effects. In: Geo-Congress 2014: Geo-Characterization and Modeling for Sustainability. 2014:4105–4114.
Yavari, 2016, Effect of temperature on the shear strength of soils and the soil–structure interface, Can Geotech J, 53, 1186, 10.1139/cgj-2015-0355
Fountaine, 1954, Investigations into the mechanism of soil adhesion, J Soil Sci, 5, 251, 10.1111/j.1365-2389.1954.tb02191.x
Neal, 1966, Friction and adhesion between soil and rubber, J Agric Eng Res, 11, 108, 10.1016/S0021-8634(66)80046-X
Bhushan, 2003, Adhesion and stiction: mechanisms, measurement techniques, and methods for reduction, J Vac Sci Technol B, 21, 2262, 10.1116/1.1627336
Mitchell, 1993
François, 2007, Compression tests on a sandy silt at different suction and temperature levels, 1
Alsherif, 2016, Yielding of silt at high temperature and suction magnitudes, Geotech Geol Eng, 34, 501, 10.1007/s10706-015-9961-x
Pusch, 1990, Electron microscopic examination of hydrothermally treated bentonite clay, Eng Geol, 28, 303, 10.1016/0013-7952(90)90015-S
Abuel-Naga, 2007, Thermally induced volume change and excess pore water pressure of soft Bangkok clay, Eng Geol, 89, 144, 10.1016/j.enggeo.2006.10.002
Towhata, 1993, Volume change of clays induced by heating as observed in consolidation tests, Soils Found, 33, 170, 10.3208/sandf1972.33.4_170
Burghignoli, 2000, A laboratory study on the thermomechanical behaviour of clayey soils, Can Geotech J, 37, 764, 10.1139/t00-010
Hillel, 1998
Yazdani, 2019, Influence of temperature on soil–pile interface shear strength, Geomech Energy Environ, 18, 69, 10.1016/j.gete.2018.08.001
Tarantino, 2021, Clay micromechanics: An analysis of elementary mechanisms of clay particle interactions to gain insight into compression behaviour of clay, 183
Han, 2018, Effects of interface roughness, particle geometry, and gradation on the sand–steel interface friction angle, J Geotech Geoenviron Eng, 144, 10.1061/(ASCE)GT.1943-5606.0001990
Hossain, 2015, Dilatancy and strength of an unsaturated soil-cement interface in direct shear tests, Int J Geomech, 15, 10.1061/(ASCE)GM.1943-5622.0000428
Garakani, 2018, Effect of road salts on the hydro-mechanical behavior of unsaturated collapsible soils, Transp Geotech, 17, 77, 10.1016/j.trgeo.2018.09.005
Laloui, 2020, Experimental investigation of energy piles: From laboratory to field testing, Geomech Energy Environ
Houston, 1985, Thermo-mechanical behavior of seafloor sediments, J Geotech Eng, 111, 1249, 10.1061/(ASCE)0733-9410(1985)111:11(1249)
Hueckel T, Pellegrini R. Modeling of thermal failure of saturated clays. In: International Symposium on Numerical Models in Geomechanics, Vol. 3. 1989:81–90.
Robinet, 1996, A constitutive thermomechanical model for saturated clays, Eng Geol, 41, 145, 10.1016/0013-7952(95)00049-6
Ghahremannejad, 2003
Vasilescu AR, Fauchille A-L, Dano C, Kotronis P, Manirakiza R, Gotteland P. Impact of temperature cycles at soil–concrete interface for energy piles. In: International Symposium on Energy Geotechnics. Springer; 35–42.
Parchment J, Shepley P. The influence of temperature on shear strength at a soil–structure interface. In: Physical Modelling in Geotechnics, Volume 1: Proceedings of the 9th International Conference on Physical Modelling in Geotechnics. London, United Kingdom: CRC Press; 149.
Shoukry, 2011, Effect of moisture and temperature on the mechanical properties of concrete, Constr Build Mater, 25, 688, 10.1016/j.conbuildmat.2010.07.020
Khoury CN, Miller GA, Hatami K. Shear strength of unsaturated soil-geotextile interfaces. In: GeoFlorida 2010: Advances in Analysis, Modeling & Design, Vol. 30. 2010:7–316.
Borana, 2018, Direct shear testing study of the interface behavior between steel plate and compacted completely decomposed granite under different vertical stresses and suctions, J Eng Mech, 144, 10.1061/(ASCE)EM.1943-7889.0001352
Graham, 2001, Modified Cam–Clay modelling of temperature effects in clays, Can Geotech J, 38, 608, 10.1139/t00-125
Hueckel, 1990, Thermoplasticity of saturated clays: experimental constitutive study, J Geotech Eng, 116, 1778, 10.1061/(ASCE)0733-9410(1990)116:12(1778)
Eriksson, 1989, Temperature effects on consolidation properties of sulphide clays, 2087
Sultan, 2002, Temperature effects on the volume change behaviour of Boom clay, Eng Geol, 64, 135, 10.1016/S0013-7952(01)00143-0
Boudali M, Leroueil S, Srinivasa Murthy B. Viscous hebaviour of natural clays. In: International Conference on Soil Mechanics and Foundation Engineering. 1994:411–416.
Cekerevac, 2010, Experimental analysis of the cyclic behaviour of kaolin at high temperature, Géotechnique, 60, 651, 10.1680/geot.7.00017
Di Donna, 2015, Response of soil subjected to thermal cyclic loading: experimental and constitutive study, Eng Geol, 190, 65, 10.1016/j.enggeo.2015.03.003
François, 2008, ACMEG-TS: A constitutive model for unsaturated soils under non-isothermal conditions, Int J Numer Anal Methods Geomech, 32, 1955, 10.1002/nag.712
Laloui, 2014, Issues involved with thermoactive geotechnical systems: Characterization of thermomechanical soil behavior and soil–structure interface behavior, DFI J, 8, 108, 10.1179/1937525514Y.0000000010
Campanella, 1968, Influence of temperature variations on soil behavior, J Soil Mech Found Div, 10.1061/JSFEAQ.0001136
Ravera, 2022, Failure mechanism of fine-grained soil–structure interface for energy piles, Soils Found, 62, 10.1016/j.sandf.2022.101152