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2005, Trends, prospects and challenges in quantifying flow and transport through fractured rocks, Hydrogeol J, 13, 124, 10.1007\u002Fs10040-004-0397-2\nMcCartney, 2016, Energy geotechnics: Advances in subsurface energy recovery, storage, exchange, and waste management, Comput Geotech, 75, 244, 10.1016\u002Fj.compgeo.2016.01.002\nSelroos, 2002, Comparison of alternative modelling approaches for groundwater flow in fractured rock, J Hydrol, 257, 174, 10.1016\u002FS0022-1694(01)00551-0\nTsang, 2015, Hydrologic issues associated with nuclear waste repositories, Water Resour Res, 51, 6923, 10.1002\u002F2015WR017641\nBear, 1993, Modeling flow and contaminant transport in fractured rocks, 1\nBandis, 1983, Fundamentals of rock joint deformation, Int J Rock Mech Min Sci, 20, 249, 10.1016\u002F0148-9062(83)90595-8\nWitherspoon, 1980, Validity of cubic law for fluid flow in a deformable rock fracture, Water Resour Res, 16, 1016, 10.1029\u002FWR016i006p01016\nZimmerman, 1996, Hydraulic conductivity of rock fractures, Transp Porous Media, 23, 1, 10.1007\u002FBF00145263\nGangi, 1978, Variation of whole and fractured porous rock permeability with confining pressure, Int J Rock Mech Min Sci Geomech Abstr, 15, 249, 10.1016\u002F0148-9062(78)90957-9\nTsang, 1981, Hydromechanical behavior of a deformable rock fracture subject to normal stress, J Geophys Res, 198, 9287, 10.1029\u002FJB086iB10p09287\nBarton, 1985, Strength, deformation and conductivity coupling of rock joints, Int J Rock Mech Min Sci Geomech Abstr, 22, 121, 10.1016\u002F0148-9062(85)93227-9\nBoulon, 1993, Influence of rock joint degradation on hydraulic conductivity, Int J Rock Mech Min Sci Geomech Abstr, 30, 1311, 10.1016\u002F0148-9062(93)90115-T\nYeo, 1998, Effect of shear displacement on the aperture and permeability of a rock fracture, Int J Rock Mech Min Sci Geomech Abstr, 35, 1051, 10.1016\u002FS0148-9062(98)00165-X\nPyrak-Nolte, 2000, Single fractures under normal stress: the relation between fracture specific stiffness and fluid flow, Int J Rock Mech Min Sci, 37, 245, 10.1016\u002FS1365-1609(99)00104-5\nOlsson, 2001, An improved model for hydromechanical coupling during shearing of rock joints, Int J Rock Mech Min Sci, 38, 317, 10.1016\u002FS1365-1609(00)00079-4\nRutqvist, 2003, The role of hydromechanical coupling in fractured rock engineering, Hydrogeol J, 11, 7, 10.1007\u002Fs10040-002-0241-5\nMallikamas, 2005, On the anisotropy of the aperture correlation and effective transmissivity in fractures generated by sliding between identical self-affine surfaces, Geophys Res Lett, 32\nKoyama, 2006, Numerical simulation of shear-induced flow anisotropy and scale-dependent aperture and transmissivity evolution of rock fracture replicas, Int J Rock Mech Min Sci, 43, 89, 10.1016\u002Fj.ijrmms.2005.04.006\nXiong, 2011, Experimental and numerical study of the geometrical and hydraulic characteristics of a single rock fracture during shear, Int J Rock Mech Min Sci, 48, 1292, 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2010, Evolution of long-term land subsidence near Mexico city: Review, field investigations, and predictive simulations, Water Resour Res, 46, 10.1029\u002F2008WR007398\nCastellazzi, 2016, Land subsidence in major cities of Central Mexico: Interpreting InSAR-derived land subsidence mapping with hydrogeological data, Int J Appl Earth Obs, 47, 102\nKasmarek, 2016, Water-level altitudes 2016 and water-level changes in the Chicot, Evangeline, and Jasper aquifers and compaction 1973–2015 in the Chicot and Evangeline aquifers, Houston-Galveston region, Texas\nSneed M, Brandt JT, Solt M. Land Subsidence Along the California Aqueduct in West-Central San Joaquin Valley, California, 2003–10. U.S. geological survey scientific investigations report 2018–5144; 2018. http:\u002F\u002Fdx.doi.org\u002F10.3133\u002Fsir20185144.\nde Luna, 2017, Groundwater overexploitation and soil subsidence monitoring on Recife plain (Brazil), Nat Hazards, 86, 1363, 10.1007\u002Fs11069-017-2749-y\nTeatini, 2006, Groundwater pumping and land subsidence in the emilia-romagna coastland, Italy: Modeling the past occurrence and the future trend, Water Resour Res, 42, 10.1029\u002F2005WR004242\nTeatini, 2012, Comment on recent subsidence of the venice lagoon from continuous GPS and interferometric synthetic aperture radar by Y. Bock, S. Wdowinski, A. Ferretti, F. Novali, and A. Fumagalli, Geochem. Geophys. Geosyst., 13, 10.1029\u002F2012GC004191\nGonzález, 2012, The 2011 lorca earthquake slip distribution controlled by groundwater crustal unloading, Nat Geosci, 5, 821, 10.1038\u002Fngeo1610\nFokker, 2018, Subsidence in the Dutch Wadden Sea, Neth J Geosci, 97, 129\nCian, 2019, Sentinel-1 for Monitoring Land Subsidence of Coastal Cities in Africa Using PSInSAR: A Methodology Based on the Integration of SNAP and StaMPS, Geosci, 9\nIkuemonisan, 2020, Characterisation and mapping of land subsidence based on geodetic observations in Lagos, Nigeria, Geod Geodyn, 11, 151, 10.1016\u002Fj.geog.2019.12.006\nErban, 2014, Groundwater extraction, land subsidence, and sea-level rise in the Mekong Delta, Vietnam, Environ Res Let, 9\nAbidin, 2015, On correlation between urban development, land subsidence and flooding phenomena in jakarta, 15\nWang, 2019, A review on land subsidence caused by groundwater withdrawal in Xian, China. B, Eng Geol Environ, 78, 2581\nNg, 2015, Assessments of land subsidence in the Gippsland Basin of Australia using ALOS PALSAR data, Remote Sens Environ, 159, 86, 10.1016\u002Fj.rse.2014.12.003\nAllis, 2009, Update on subsidence at the Wairakei-Tauhara geothermal system, New Zealand, Geothermics, 38, 169, 10.1016\u002Fj.geothermics.2008.12.006\nKulp, 2019, New elevation data triple estimates of global vulnerability to sea-level rise and coastal flooding, Nature Commun, 10, 4844, 10.1038\u002Fs41467-019-12808-z\nGalloway, 2011, Review: Regional land subsidence accompanying groundwater extraction, Hydrogeol J, 19, 1459, 10.1007\u002Fs10040-011-0775-5\nBiot, 1941, General theory of three-dimensional consolidation, J Appl Phys, 12, 155, 10.1063\u002F1.1712886\nBiot, 1955, Theory of elasticity and consolidation for a porous anisotropic solid, J Appl Phys, 26, 182, 10.1063\u002F1.1721956\nVerruijt, 1969, Elastic storage of aquifers, 331\nGambolati, 2015, Geomechanics of subsurface water withdrawal and injection, Water Resour Res, 51, 3922, 10.1002\u002F2014WR016841\nBear, 1981, Mathematical model for regional land subsidence due to pumping. 1. integrated aquifer subsidence equations based on vertical displacement only, Water Resour Res, 17, 937, 10.1029\u002FWR017i004p00937\nBear, 1981, Mathematical model for regional land subsidence due to pumping. 2. integrated aquifer subsidence equations for vertical and horizontal displacement, Water Resour Res, 17, 947, 10.1029\u002FWR017i004p00947\nGeertsma J. 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10.1061\u002F(ASCE)GT.1943-5606.0002175\nJaved, 2017, Accuracy of borehole thermal resistance calculation methods for grouted single U-tube ground heat exchangers, Appl Energy, 187, 790, 10.1016\u002Fj.apenergy.2016.11.079\nHamada, 2007, Field performance of an energy pile system for space heating, Energy Build, 39, 517, 10.1016\u002Fj.enbuild.2006.09.006\nBae, 2022, Economic and environmental analysis of ground source heat pump system according to operation methods, Geothermics, 101\nSingh, 2015, Near-field ground thermal response to heating of a geothermal energy pile: Observations from a field test, Soils Found, 55, 1412, 10.1016\u002Fj.sandf.2015.10.007\nFang, 2022, Group performance of energy piles under cyclic and variable thermal loading, J Geotech Geoenviron, 148, 10.1061\u002F(ASCE)GT.1943-5606.0002840\nKnellwolf, 2011, Geotechnical analysis of heat exchanger piles, J Geotech Geoenviron., 137, 890, 10.1061\u002F(ASCE)GT.1943-5606.0000513\nChen, 2017, Performance of a 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Energy, 143, 855, 10.1016\u002Fj.renene.2019.05.054\nXie, 2021, The role of fracture networks randomness in thermal utilization of enhanced geothermal system, Int Commun Heat Mass Transfer, 126, 10.1016\u002Fj.icheatmasstransfer.2021.105414\nShi, 2019, Analysis for effects of complex fracture network geometries on heat extraction efficiency of a multilateral-well enhanced geothermal system, Appl Therm Eng, 159, 10.1016\u002Fj.applthermaleng.2019.113828\nQu, 2017, Influence of different fracture morphology on heat mining performance of enhanced geothermal systems based on COMSOL, Int J Hydrogen Energy, 42, 18263, 10.1016\u002Fj.ijhydene.2017.04.168\nAsai, 2018, Performance evaluation of enhanced geothermal system (EGS): Surrogate models, sensitivity study and ranking key parameters, Renew Energy, 122, 184, 10.1016\u002Fj.renene.2018.01.098\nGuo, 2019, Performance of enhanced geothermal system (EGS) in fractured geothermal reservoirs with CO2 as working fluid, Appl Therm Eng, 152, 215, 10.1016\u002Fj.applthermaleng.2019.02.024\nChen, 2019, Application of carbon dioxide as working fluid in geothermal development considering a complex fractured system, Energy Convers Manage, 180, 1055, 10.1016\u002Fj.enconman.2018.11.046\nCheng, 2019, Numerical simulation of reservoir stimulation with reference to the Newberry EGS, Geothermics, 77, 327, 10.1016\u002Fj.geothermics.2018.09.011\nCladouhos, 2016, Results from Newberry volcano EGS demonstration,2010–2014, Geothermics, 63, 44, 10.1016\u002Fj.geothermics.2015.08.009\nFox, 2015, The effect of spatial aperture variations on the thermal performance of discretely fractured geothermal reservoirs, Geotherm Energy, 3, 1, 10.1186\u002Fs40517-015-0039-z\nMa, 2020, Analysis on the heat extraction performance of multi-well injection enhanced geothermal system based on leaf-like bifurcated fracture networks, Energy, 213, 10.1016\u002Fj.energy.2020.118990\nZhang, 2019, Study of the enhanced geothermal system (EGS) heat mining from 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Analysis of the solid phase stress tensor in multiphase porous media, Int J Numer Anal Methods Geomech, 31, 541, 10.1002\u002Fnag.541\nDuriez, 2016, Stress in wet granular media with interfaces via homogenization and discrete element approaches, J Eng Mech, 142, 10.1061\u002F(ASCE)EM.1943-7889.0001163\nŠmilauer, 2015\nScholtès, 2009, On the capillary stress tensor in wet granular materials, Int J Numer Anal Methods Geomech, 33, 1289, 10.1002\u002Fnag.767\nHerminghaus, 2005, Dynamics of wet granular matter, Adv Phys, 54, 221, 10.1080\u002F00018730500167855\nDuriez, 2017, Subtleties in discrete-element modelling of wet granular soils, Géotechnique, 67, 365, 10.1680\u002Fjgeot.15.P.113\nCollins, 2005, The concept of stored plastic work or frozen elastic energy in soil mechanics, Géotechnique, 55, 373, 10.1680\u002Fgeot.2005.55.5.373\nPuebla, 2015, Irreversible processes without energy dissipation in an isolated Lipkin-Meshkov-Glick model, Phys Rev E, 92, 012101, 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Diseños Conceptuales Genéricos. P.T. 11\u002F95, 1995.\nHuertas F, Fariñas P, Farias J, García-Siñeriz JL, Villar MV, Fernández AM, Martín PL, Elorza FJ, Gens A, Sánchez M, Lloret A, Samper J, Martínez MA. Full-scale Engineered Barriers Experiment. UPDATED FINAL REPORT 1994-2004 December 2006. ENRESA, Technical Report 05-0\u002F2006, Madrid, 2006, p. 590.\nFuentes-Cantillana JL, García-Siñeriz JL. FEBEX Full-scale Engineered Barriers Experiment in Crystalline Host Rock. FINAL DESIGN AND INSTALLATION OF THE IN SITU TEST AT GRIMSEL. ENRESA Technical Report 12\u002F98, Madrid, 1998, p. 184.\nFuentes-Cantillana JL, García-Siñeriz JL, Franco JJ, Obis J, Pérez A, Jullien F, Alberdi J, Barcala JM, Campos R, Cuevas J, Fernández AM, Gamero E, García M, Gómez P, Hernández A, Illera A, Martín PL, Melón AM, Missana T, Ortuno F, Pardillo J, Rivas P, Turrero MJ, Villar MV, Mingarro M, Pelayo M, Caballero E, Cuadros J, Huertas F, Huertas FJ, Jiménez de Cisneros C, Linares J, Bazargan-Sabet B, Ghoreychi M, Jockwer N, Wieczorek K, Kickmaier W, Marschall P, Martínez MA, Carretero P, Dai Z, Delgado J, Juncosa R, Molinero J, Ruiz A, Samper J, Vázquez A, Alonso E, Carrera J, Gens A, García-Molina AJ, Guimera J, Guimaraes Ldo N, Lloret A, Martínez L, Olivella S, Pintado X, Sánchez M, Elorza FJ, Borregón JL, Canamon I, Rodriguez Pons-Esparver R; Fariña P, Farias J. were the technical editors of this report under the direction of Huertas F. (ENRESA) 2000: FEBEX full-scale engineered barriers experiment for a deep geological repository for high level radioactive waste in crystalline host rock FINAL REPORT. ENRESA, Technical Report 1\u002F2000.\nBárcena I, Fuentes-Cantillana JL, García-Siñeriz JL. Dismantling of the heater 1 at the FEBEX “in situ” test. Description of operations. ENRESA, Technical Report 9\u002F2003. 2003.\nGarcía-Siñeriz JL, Abós H, Martínez V, de la Rosa C, Mäder U, Kober F. FEBEX-DP: Dismantling of the heater 2 at the FEBEX “in situ” test. Description of operations Nagra Arbeitsbereicht NAB16-011. Wettingen, 2016, p. 92.\nVillar, 2018, State of the in situ Febex test (GTS, Switzerland) after 18 years: a heterogeneous bentonite barrier, Environ Geotech\nVillar MV, Iglesias RJ, Abós H, Martínez V, de la Rosa C, Manchón MA. FEBEX-DP onsite analyses report. Nagra Arbeitsbereicht NAB 16-012. Wettingen, 2016, p. 101.\nBárcena I, García-Siñeriz JL. FEBEX-DP (GTS) Full Dismantling Test Plan. Nagra Arbeitsbericht NAB 15-015, 2015.\nRey M, Sanz F-J, García-Siñeriz J-L. FEBEX-DP: Post-mortem analysis: Sensors. Nagra Arbeitsbereicht NAB16-20. Wettingen, 2016, 122.\nSakaki T, Kober F, Schlaeger S. Bentonite TDR probe inspection and data verification report, Nagra Arbeitsbereicht, NAB 16-21, 2016, p. 48.\nMartínez V, Abós H, García-Siñeriz JL. FEBEXe: Final Sensor Data Report (FEBEX in situ Experiment). Nagra Arbeitsbereicht NAB 16-19. Wettingen, 2016, p. 244.\nGarcía-Siñeriz JL, Bárcena I, Fernández PA, Sanz F-J. FEBEX II Project. Post-mortem Analysis: Instruments. ENRESA, Technical Report 05-4\u002F2006, 2006.\nWersin P, Kober F. FEBEX-DP Corrosion Report. Nagra Arbeitsbericht NAB 16-016, 2017.\nLeupin OX, Birgersson M, Karnl O, Korkeakoski P, Sellin P, Mäder U, Wersin P. Montmorillonite stability under near-field conditions. 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The HE-E Experiment: Lay-out, Interpretation and THM Modelling. Nagra Arbeitsbericht NAB 14-53. Wettingen, 2014, 140pp.\nENRESA. Ventilation experiment in Opalinus Clay for the management of radioactive waste. Publicación Técnica ENRESA 07\u002F2005 Madrid, 2005, p. 82.\n2011, 125\n2011, 106\nPlötze, 2007\nVillar MV, Martín PL, Romero FJ, Gómez-Espina R, Iglesias RJ, Gutiérrez-Rodrigo V. HE-E Experiment: Laboratory test in a THM cell with the Sand\u002FBentonite mixture. Mont Terri Project TN 2015-43. Madrid, 2015, p. 28.\nVillar MV, Martín PL, Romero FJ. HE-E Experiment: Progress report of a THM cell with MX-80 pellets. Mont Terri Project TN 2015-44. Madrid, 2015, p. 17.\nVillar MV. Long-term THM tests reports: Isothermal infiltration tests with materials from the HE-E. PEBS Deliverable 2.2-7.2. CIEMAT Technical Report CIEMAT\u002FDMA\u002F2G210\u002F07\u002F2013. Madrid, 2013, p. 32.\nGutiérrez-Rodrigo, 2014, Gas transport properties of compacted bentonite, 1735\nPearson F. Artificial waters for use in laboratory and field experiments with Opalinus Clay Paul Scherrer Institut. TM 44-98-08. 1998.\nVillar MV. MX-80 bentonite. Thermo-hydro-mechanical characterisation performed at CIEMAT in the context of the Prototype Project. Informes Técnicos CIEMAT 1053. CIEMAT, Madrid, 2005, p. 39.\nImbert, 2006, Hydro-mechanical response of a bentonite pellets\u002Fpowder mixture upon infiltration, Appl Clay Sci, 32, 197, 10.1016\u002Fj.clay.2006.01.005\nVillar MV, Martín PL, Barcala JM. Infiltration tests at isothermal conditions and under thermal gradient. Informe Técnico CIEMAT\u002FDMA\u002FM2140\u002F1\u002F05. Madrid, April 2005, 2005, p. 24.\nVillar, 2008, Behaviour of a bentonite barrier in the laboratory: experimental results up to 8 years and numerical simulation, Phys Chem Earth, 33, S476, 10.1016\u002Fj.pce.2008.10.055\nVillar MV, Martín PL, Gómez-Espina R, Romero FJ, Barcala JM. THM cells for the HE-E test: setup and first results. 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