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1ConferencePredicting moisture levels in response to climatic variables: an approach based on spectral analysis
المؤلفون: Vargas Alzate, Yeudy Felipe, Vaunat, Jean, Macias Gutierrez, Andres Miguel, Mariano, Alessandra di, Zapata Franco, Ana Maria
المساهمون: Universitat Politècnica de Catalunya. Departament d'Enginyeria Civil i Ambiental, Universitat Politècnica de Catalunya. Doctorat en Enginyeria del Terreny, Universitat Politècnica de Catalunya. Doctorat en Enginyeria Sísmica i Dinàmica Estructural, Universitat Politècnica de Catalunya. GGMM - Grup de Geotècnia i Mecànica de Materials
مصطلحات موضوعية: Àrees temàtiques de la UPC::Enginyeria civil::Geotècnia, Spectral analysis, Climate change, Transfer functions, Predicting water content, Soil-atmosphere interaction
وصف الملف: 7 p.; application/pdf
Relation: https://www.issmge.org/uploads/publications/53/125/ECPMG2024-145.pdf; info:eu-repo/grantAgreement/AEI/TED2021-132559B-I00; http://hdl.handle.net/2117/420338
الاتاحة: http://hdl.handle.net/2117/420338
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2Academic Journal
المؤلفون: Giron, Mara
المصدر: Athenea Engineering sciences journal; Vol. 4 No. 14 (2023): Athenea journal Vol. 4 Issue 14 2023; 32-44 ; Athenea; Vol. 4 Núm. 14 (2023): Revista Athenea Volumen 4 Número 14. 2023; 32-44 ; 2737-6419
مصطلحات موضوعية: soil-atmosphere interaction, Hadley cell, climate variability, DECASAI, interacción suelo-atmósfera, celda de Hadley, variabilidad climática, DEACISA
وصف الملف: application/pdf; text/html
Relation: https://athenea.autanabooks.com/index.php/revista/article/view/66/173; https://athenea.autanabooks.com/index.php/revista/article/view/66/174; https://athenea.autanabooks.com/index.php/revista/article/view/66
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3Academic Journal
المؤلفون: Coppola, L., Reder, A., Rianna, G., Tarantino, A., Pagano, L.
المساهمون: Coppola, L., Reder, A., Rianna, G., Tarantino, A., Pagano, L.
مصطلحات موضوعية: Lysimeter, Pyroclastic soils, Rainfall-induced landslides, Soil-atmosphere interaction, Unsaturated soils, Wildfire
Relation: info:eu-repo/semantics/altIdentifier/wos/WOS:001315360700001; volume:341; firstpage:1; lastpage:16; numberofpages:16; journal:ENGINEERING GEOLOGY; https://hdl.handle.net/11588/973103
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4Academic Journal
المؤلفون: Balzano B., Bruno A. W., Denzer H., Molan D., Tarantino A., Gallipoli D.
المساهمون: Balzano, B., Bruno, A. W., Denzer, H., Molan, D., Tarantino, A., Gallipoli, D.
مصطلحات موضوعية: Data quality control, Monitoring system, Soil-atmosphere interaction, Soil-water retention curve, Suction, Water content
وصف الملف: ELETTRONICO
Relation: info:eu-repo/semantics/altIdentifier/wos/WOS:000620293300009; volume:121; firstpage:1; lastpage:32; numberofpages:32; journal:PHYSICS AND CHEMISTRY OF THE EARTH; http://hdl.handle.net/11567/1063293; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85097749294
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5Academic Journal
المؤلفون: Gao, Bo
المساهمون: Smits, Kathleen M., Zerpa, Luis E., Hedayat, Ahmadreza, Tilton, Nils, Davarzani, Hossein
مصطلحات موضوعية: mass and heat transfer, soil surface roughness, turbulent flow, particle image velocimetry, coupling free flow and porous media flow, soil-atmosphere interaction
وصف الملف: born digital; doctoral dissertations; application/pdf; application/zip
Relation: 2020 - Mines Theses & Dissertations; Gao_mines_0052E_12065.pdf; T 9036; https://hdl.handle.net/11124/176310
الاتاحة: https://hdl.handle.net/11124/176310
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6Dissertation/ Thesis
المؤلفون: Granados Rueda, Jaime Eduardo
المساهمون: Caicedo Hormaza, Bernardo, Rosin-Paumier, Sandrine, Lozada López, Catalina, Estrada Mejía, Nicolás, Facultad de Ingeniería::Geomateriales y Sistemas de Infraestructura
مصطلحات موضوعية: Soil-atmosphere interaction, Soil-atmosphere-structure interaction, Evaporation, Climatic chamber, Experimental testing, Numerical modeling, Interacción suelo-atmósfera, Interacción suelo-atmósfera-estructura, Ingeniería
وصف الملف: 371 páginas; application/pdf
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Influence of rainfall on the deformation and stability of a slope in overconsolidated clays: a case study. Hydrogeology Journal, 11, p. 174-192.; Amakye, S.Y., Abbet, S.J., Booth, C.A., & Mahamady, A.M. (2021). Enhancing the engineering properties of subgrade materials using processed waste: a review. Geotechnics, 1(2), p. 307-329.; An, N., Hemmati, S., & Cui, Y-J. (2017). Assessment of the methods for determining net radiation at different time-scales of meteorological variables. Journal of Rock Mechanics and Geotechnical Engineering, 9, pp. 239-246.; Andrews, M. (2022). ‘From India’s highs to Thailand’s lows, Asia’s weather is hitting extremes.’ The Guardian. Accessed May 7th, 2022. .; Archer, A. (2019). Climate change impact on embankments considering temperature effects: centrifuge modelling. PhD Thesis – The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong. 291p.; Auvray R., Rosin-Paumier S., Abdallah A., & Masrouri F., (2013). Quantification of soft soil cracking during suction cycles by image processing. European Journal of Environmental and Civil Engineering, 18(1), pp. 11-32.; Barrera, M. & Garnica, P. (2002). Introducción a la mecánica de suelos no saturados en vías terrestres. Publicación Técnica No. 198, Secretaría de Comunicaciones y Transportes, Instituto Mexicano del Transporte.; Barry, R. G. & Chorley, R. J. (2003). Atmosphere, weather and climate. Routledge (8th Edition).; Bevacqua E., Zappa G., Lehner F., & Zscheischle J. (2022). Precipitation trends determine future occurrence of compound hot-dry events. Nature Climate Change, 12, pp. 350-355.; Bitelli, M., Ventura, F., Campbell, G., Snyder, R.L., Gallegati, F., & Rossi, P. (2008). Coupling of heat, water vapor, and liquid water fluxes to compute evaporation in bare soils. Journal of Hydrology, 362, pp. 191-205.; Boscardin, M.D. & Cording, E.J. (1989). Building response to excavation-induced settlement. 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Flow of gases through porous media. Academic Press Inc.; Carvalho, J.C., Gitirana, G.F.N., Machado, S.L, Mascarenha, M.M.M., & Silva Filho, F.C. (2015). Solos não saturados no contexto geotécnico. Associação Brasileira de Mecânica dos Solos e Engenharia Geotécnica.; Climate Change Institute, (Climate Reanalyzer, University of Maine). (2023). Accessed on July 11, 2023. .; Corte, A. & Higashi, A. (1964). Experimental research on desiccation cracks in soil. Research report 66. U.S. Army Materiel Command. Cold Regions Research & Engineering Laboratory. Hanover, New Hampshire.; Côté, J. & Konrad, J.M. (2005). A generalized thermal conductivity model for soils and construction materials. Canadian Geotechnical Journal, 42(1), pp. 443-458.; Coulomb, C.A. (1773). Application des règles de maxima et minima à quelques problèmes de statique relatifs à l’Arquitecture. Academie Royale Des Sciences, Mémoire de la Mathematique et de Physics, 7, pp. 343-382.; Cui, Y. (2022). Soil-atmosphere interaction in earth structures. Journal of Rock Mechanics and Geotechnical Engineering, 14(4), pp. 35-49.; Davenport, A.G. (1960). Rationale for determining design wind velocities. ASCE Journal of the Structural Divisions,86(5), pp. 39-68.; Dong, Y., McCartney, J.S., & Lu, N. (2015). Critical review of thermal conductivity models for unsaturated soils. Geotechnical and Geological Engineering, 33, pp. 207-221.; Environmental Protection Agency of the US (EPA). (2022). Climate change indicators: heat waves. Accessed June 16th, 2023. .; Fredlund, D.G. & Rahardjo, H. (1993a). An overview of unsaturated soil behavior. Proceedings of ASCE Specialty Session Unsaturated Soil Properties, 31p.; Fredlund, D.G. & Rahardjo, H. (1993b). Soil mechanics for unsaturated soils. John Wiley & Sons, Inc.; Fredlund, D.G. & Xing, A. (1994). Equations for the soil-water characteristic curve. Canadian Geotechnical Journal, 31(3), pp. 521-532.; Fredlund, M.D., Zhang, J.M., Tran, D., & Fredlund, D.G. (2011). Coupling heat and moisture flow for the computation of actual evaporation. 14th Pan-Am CGS Canadian Geotechnical Conference, Toronto, Canada, 8p.; Fredlund, D.G., Rahardjo, H., & Fredlund, M.D. (2012). Unsaturated soil mechanics in engineering practice. John Wiley & Sons, Inc.; Fredlund, M.D., Tran, D., & Fredlund, D.G. (2015). The calculation of actual evaporation from an unsaturated soil surface. Proceedings of the 10th International Conference of Acid Rock Drainage & IMWA Annual Conference, Santiago, Chile, pp. 399-412p.; Fry, J.J. (1977). Contribution à l’étude et à la pratique du compactage. PhD Thesis – École Centrale de Paris, Paris, France. 443p.; Geirinhas, J.L., Russo, A., Libonati, R., Sousa, P., Miralles, D.G., & Trigo, R.M. (2021). Recent increasing frequency of compound summer drought and heatwaves in southeast Brazil. Environmental Research Letters, 16(3), 10p., 034036.; Ghezzehei, T.A., Trautz, R.C., Finsterle, S., Cook, P.J., & Ahlers, C.F. (2004). Modeling coupled evaporation and seepage in ventilated cavities. Vadose Zone Journal, 3, pp. 806-818.; Gitirana, G., Fredlund, M.D., & Fredlund, D.G. (2006). Numerical modelling of soil-atmosphere interaction for unsaturated surfaces. Proceedings of the 4th International Conference on Unsaturated soils, Carefree, Arizona, pp. 658-669.; Granados, J. & Caicedo, B. (2023). Physical and numerical modelling of soil-atmosphere-structure interaction. UNSAT 2023, E3S Web of Conferences 382, 06002, 6p.; Goddard Earth Observing System (GEOS, NASA). (2022). Accessed on July 13, 2022. .; Haq, S.N., Khalil, H., Dewan, A., Sangal, A., Hayes, M., & Hammond, E. (2022). ‘Heat wave scorches Europe as UK reaches record-breaking temperatures.’ CNN.com. Accessed July 20, 2022.; Hatami, K., García, L.M., & Miller, G.A. (2010). Influence of moisture content on the pullout capacity of geotextile reinforcement in marginal soils. 61st Highway Geology Symposium, Oklahoma City, OK.; Hendrikx, J. & Harper, A. (2013). Development of a national snow and ice monitoring network for New Zealand. Journal of Hydrology (New Zealand), 52(2), p. 83-96.; Holmes, R.M. (1961). Estimation of soil moisture content using evaporation data. Proceedings of Hydrology Symposium, No. 2, Ottawa, Canada, pp. 184-196.; Hurtado, G. (2012). Sequía meteorológica y sequía agrícola en Colombia: incidencia y tendencias. Instituto de Hidrología, Meteorología y Estudios Ambientales de Colombia, 49p.; IPCC. (2007). Historical Overview of Climate Change. In: Climate Change 2007: The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change. [Solomon, S., D. Qin, M. Manning, Z. Chen, M. Marquis, K.B. Averyt, M. Tignor and H.L. Miller (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, pp. 94-127.; IPCC. (2021). Technical Summary. In Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. [Masson-Delmotte, V., P. Zhai, A. Pirani, S.L. Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M.I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J.B.R. Matthews, T.K. Maycock, T. Waterfield, O. Yelekçi, R. Yu, and B. Zhou (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, pp. 33-144.; Jabro, J. (2009). Water vapor diffusion through soil as affected by temperature and aggregate size. Transport in Porous Media, 77, pp. 417-428.; Johansen, O. (1977). Thermal conductivity of soils. Technical report, Cold Regions Research and Engineering Lab. Hanover, NH.; Jones, L.D. & Jefferson, I. (2012). Chapter C5: Expansive soils. Manual Series. Institution of Civil Engineers (ICE), 46p.; Jones, S., Ramaldho da Silva, B., & Ni, V. (2022). ‘Thousands evacuated as heat causes wildfires in Europe and north Africa.’ The Guardian. July 15, 2022. www.theguardian.com/world/2022/jul/15/thousands-evacuated-as-heat-causes-wildfires-in-europe-and-north-africa.; Kandalai, S., John, N. J., & Patel, A. (2023). Effects of climate change on geotechnical infrastructures – state of the art. Environmental Science and Pollution Research, 30, 16878-16904.; Lakshmikantha, M.R. (2009). Experimental and theoretical analysis of cracking in drying soils. PhD Thesis – Universitat Politecnica de Catalunya, Barcelona, Spain. 391p.; Lozada C., Caicedo B., & Thorel L. (2015). Effects of cracks and desiccation on the bearing capacity of soil deposits. Géotechnique Letters, 5(3), p. 112-117.; Lozada C. (2016). Study of the soil atmosphere interaction and bearing capacity of a soil under desiccation. PhD Thesis – Universidad de los Andes, Bogotá, Colombia/École Centrale de Nantes-Université Nantes Angers Le Mans, Nantes, France. 275p.; Lozada C., Caicedo B. & Thorel L. (2016). Improved climatic chamber for desiccation simulation. In E3S Web of Conferences, 3rd European Conference on Unsaturated Soils – “E-UNSAT 2016”, 9, 6p.; Lozada C., Caicedo B. & Thorel L. (2019). A new climatic chamber for studying soil-atmosphere interaction in physical models. In International Journal of Physical Modelling in Geotechnics, 19(6), pp. 286-304.; Mainguy, M., Coussy, O., & Eymard, R. (1999). Modélisation des transferts hydriques isothermes en milieu poreux. Application au séchage des matériaux a base de ciment. Laboratoire Central des Ponts et Chausees. 130 p.; Millares, D.G., Holmes, T.R.H., De Jeu, R.A.M., Gash, J.H., Meesters, A.G.C.A., & Dolman, A.J. (2011). Global land-surface evaporation estimated from satellite-based observations. Hydrology and Earth System Sciences, 15, pp. 453-469.; Miller, C.J., Mi, H. & Yesiller, N. (1998). Experimental analysis of desiccation crack propagation in clay liners. Journal of the American Water Resources Association, 34(3), pp. 677-686.; Miller, G.A., Hassanikhah, A. & Varsei, M. (2015). Desiccation crack depth and tensile strength in compacted soil. In Unsaturated Soil Mechanics from Theory to Practice: Proceedings of the 6th Asia Pacific Conference on Unsaturated Soils, Guilin, China, 23-26 October 2015, pp. 79-87.; Mohr, O. (1900). Welche umstände bedingen die elastizitätsgrenze und den bruch eines materials? Zeit des Ver Deut Ing, 44, pp. 1524-1530.; Monteith, J.L. (1965). Evaporation and environment. Symposia of the Society for Experimental Biology, 19, pp. 205-234.; Morris, P.H., Graham, J. & Williams, D.J. (1992). Cracking in drying soils. Canadian Geotechnical Journal, 29(2), pp. 263-277.; Murillo, C., (2006). Caracterización geotécnica de estructuras multicapas en centrífuga empleando ondas de superficie. PhD Thesis, Universidad de los Andes.; National Aeronautics and Space Administration (NASA). (2005). What’s the difference between weather and climate? Accessed June 16th, 2023. .; National Geographic Society. (2022). Weather of climate … what’s the difference? Accessed June 16th, 2023. .; National Oceanic and Atmospheric Administration (NOAA). (2018). Accessed June 16th, 2023. .; National Oceanic and Atmospheric Administration (NOAA). (2023). Accessed June 22nd, 2023. .; Ng. C.W.W. & Menzies, B. (2007). Advanced unsaturated soil mechanics and engineering. CRC Press.; North, G. R., Pyle, J. & Zhang, F. (Editors). (2015). Encyclopedia of Atmospheric Sciences, 2nd Edition.; Omidi G., Thomas J., & Brown K. (1996). Effect of desiccation cracking on the hydraulic conductivity of compacted clay liner. Water Air Soil Pollutants, 89, pp. 91-103.; Özgür, E. & Koçak, K. (2015). The effects of the atmospheric pressure on evaporation. Acta Geobalcanica, 1(1), 17-24.; Pham, H.Q., Fredlund, D.G., & Barbour, S.L. (2002). A simple soil-water hysteresis model for predicting boundary wetting curve. Proceedings of the 55th Canadian Geotechnical and 3rd Joint IAH-CNC and CGS Groundwater Specialty Conferences, pp. 1261-1267.; Penman, H.L. (1948). Natural evaporation from open water, bare soil and grass. Proceedings of the Royal Society of London, 193, pp. 120-245.; Pérez, L. (2021). Efecto de la temperatura en las curvas de compactación Proctor en la arcilla caolín. BSc Thesis – Universidad de los Andes, Bogotá, Colombia. 46p.; Pérez, L. (2023). Modelación física del comportamiento de suelos expansivos en presencia de áreas impermeables superficiales mediante la cámara climática. MSc Thesis – Universidad de los Andes, Bogotá, Colombia. 38p.; Peron, H., Laloui, L., Hu, L.-B., & Hueckel, T. (2012). Formation of drying crack patterns in soils: a deterministic approach. Acta Geotechnica (2013), 8, 215-221; Peron, H., Laloui, L., & Hueckel, T. (2015). Experimental evidence in desiccation cracking. In Proceedings of Advanced Experimental Unsaturated Soil Mechanics. Trento, Italy, pp. 475-480.; Pidwirny, M. & Jones, S. (2009). Chapter 6: Energy and matter, Earth-Sun geometry. Accessed June 23rd, 2003.; Puzrin, A.M., Alonso, E.E., & Pinyol, N.M. (2010). Geomechanics of failures. Springer.; Puzrin, A.M., Alonso, E.E., & Pinyol, N.M. (2010). Geomechanics of failures. Advanced topics. Springer.; Rohwer, C. (1931). Evaporation from free water surfaces. Technical Bulleting No. 271 of the United States Department of Agriculture, Washington, D.C. in cooperation with Colorado Agricultural, 107p.; Rosin-Paumier, S., Granados, J. & Caicedo, B. (2023). Soil-atmosphere interaction: cracking of a compacted soil under the effect of a thermo-hydric stress. UNSAT 2023, E3S Web of Conferences 382, 04009, 6p.; Sanchez, M., Manzoli, O.L., & Guimares, L.J.N. (2014). Modeling 3-D desiccation soil crack networks using a mesh fragmentation technique. Computer and Geotechnics, 62, pp. 27-39.; Shirazi, S,M., Kazama, H., Salman, F.A., Othman, F. & Akib S. (2010). Permeability and swelling characteristics of bentonite. International Journal of the Physical Sciences, 5(11), pp. 1647-1659.; Small, E.E., Badger, A.M., Abolafia-Rosenzweig, R., & Livneh, B. (2018). Estimating soil evaporation using drying rates determined from satellite-based soil moisture records. Remote Sensing, 10(12), 22 p.; Song, W.K., Cui, Y.J., Tang, A.M., & Ding, W.Q. (2013). Development of a large-scale environmental chamber for investigating soil water evaporation. Geotechnical Testing Journal, 36(6), 11p.; Sturrock, N.S. (1971). Localised boundary layer heat transfer from external building surfaces. In Ph.D. Thesis, University of Liverpool, Liverpool, UK.; Suarez, J. (1998). Deslizamientos y estabilidad de taludes en zonas tropicales. Instituto de Investigaciones sobre Erosión y Deslizamientos, Ingeniería de Suelos Ltda - Publicaciones UIS.; Take, W.A. & Bolton, M.D. (2002). An atmospheric chamber for the investigation of the effect of seasonal moisture changes on clay slopes. Proceedings of International Conference on Physical Modelling in Geotechnics. St. John’s, Newfoundland, Canada, pp. 765-770.; Thomas, H.R., Vardon, P.J., & Li, Y. (2009). Coupled thermo-hydro-chemo-mechanical modeling for geoenvironmental phenomena. Proceedings of International Symposium on Geoenvironmental Engineering. Hangzhou, China, pp. 320-327.; Tristancho, J., Caicedo, B., Thorel, L., & Obregón, N., (2012). Climatic chamber with centrifuge to simulate different weather conditions. Geotechnical Testing Journal,35(1), pp. 1-13.; UCAR Office of Programs, The National Center for Atmospheric Research. (2003). Accessed June 22nd, 2023.; van Genutchen, M.T. (1980). A closed-form equation for predicting the hydraulic conductivity of unsaturated soils. Soil Science Society of America Journal, 44, pp. 892-898.; Vardon, P.J. (2015). Climatic influence on geotechnical infrastructure: a review. Environmental Geotechnics, 2(EG3), p. 166-174.; Vardon, P.J. (2019). Editorial: Soil-atmosphere interaction. Environmental Geotechnics, 6(6), p. 320-322.; Villacreses, J.P., Granados, J.E., Caicedo, B., Torres-Rodas, P. & Yépez, F. (2021). Seismic and hydromechanical performance of rammed earth walls under changing environmental conditions. Construction and Building Materials, 300(4), 14p.; Villar, M.V. & Lloret, A. (2004). Temperature influence on the mechanical behaviour of a compacted bentonite. Elsevier Geo-Engineering Book Series, 2, pp. 305-310.; Wald, L. (2018). Basics in solar radiation at earth surface. Lecture notes at the Mines ParisTech, PSL Research University, Sophia Antipolis, France. 57p.; Wilhite, D.A. & Glantz, M.H. (1985). Understanding the drought phenomenon: the role of definitions. Water International, 10(3), pp. 111-120.; Wilson, G.W. (1990). Soil evaporative fluxes for geotechnical engineering problems. PhD Thesis – University of Saskatchewan, Saskatoon, Canada. 489p.; Wilson, G.W., Fredlund, D.G., & Barbour S.L. (1994). Coupled soil-atmosphere modelling for soil evaporation. Canadian Geotechnical Journal, 31(2), pp. 151-161.; Wilson, G.W., Fredlund, D.G., & Barbour S.L. (1997). The effect of soil suction on evaporative fluxes from soil surfaces. Canadian Geotechnical Journal, 34(4), pp. 145-155.; World Development Indicators – World Bank (WDI). (2022). Accessed July 11, 2023; World Meteorological Organization (WMO). (1985). Casebook on operational assessment of areal evaporation. Operational Hydrology Report No. 22. WMO-No. 635. Geneva, Switzerland.; World Meteorological Organization (WMO). (2015). International Glossary of Hydrology. WMO-No. 385. Geneva, Switzerland.; Xue, X., Han, S., Guo, D., Zhao, Z., Zhou, B., & Li, F. (2022). Study of the convective heat transfer coefficient of different building envelope exterior surfaces. Buildings, 12(6), 860.; Yahaya, S., Jikan, S., Badarulzaman, N., & Adamu, A. (2017). Chemical composition and particle size analysis of kaolin. Path of Science, 3(10), pp. 1001-1004.; Yavuzturk, C., Ksaibati, K., & Chiasson, A.D. (2005). Assessment of temperature fluctuations in asphalt pavements due to thermal environmental conditions using a two-dimensional, transient finite-difference approach. Journal of Materials in Civil Engineering, 17(4), pp. 465-475.; Zhen, L. (2022). China heatwave brings record high temperatures to Shangai and other cities. South China Morning Post. Accessed July 14th, 2022. .; https://hdl.handle.net/1992/73499; instname:Universidad de los Andes; reponame:Repositorio Institucional Séneca; repourl:https://repositorio.uniandes.edu.co/
الاتاحة: https://hdl.handle.net/1992/73499
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7Conference
المؤلفون: C. Rossignoli, M. Caruso, D. Sterpi
المساهمون: M. Barla, A. Di Donna, D. Sterpi, A. Insana, Rossignoli, C., Caruso, M., Sterpi, D.
مصطلحات موضوعية: Unsaturated Soil, Environmental Loads, Soil-Atmosphere Interaction
Relation: info:eu-repo/semantics/altIdentifier/isbn/978-3-031-12850-9; ispartofbook:Challenges and Innovations in Geomechanics; 16th International Conference on Numerical Methods and Advances in Geomechanics, IACMAG 2022; volume:288; firstpage:573; lastpage:580; numberofpages:8; serie:LECTURE NOTES IN CIVIL ENGINEERING; alleditors:M. Barla, A. Di Donna, D. Sterpi, A. Insana; http://hdl.handle.net/11311/1219357; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85136330671
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8Academic Journal
المؤلفون: An, Ni, Cui, Yu-Jun, Conil, Nathalie, Talandier, Jean, Conil, Sebastien
المساهمون: Laboratoire Navier (NAVIER UMR 8205), École nationale des ponts et chaussées (ENPC)-Centre National de la Recherche Scientifique (CNRS)-Université Gustave Eiffel, Agence Nationale pour la Gestion des Déchets Radioactifs (ANDRA)
المصدر: ISSN: 0266-352X.
مصطلحات موضوعية: Soil-atmosphere interaction, Soil hydro-thermal behavior, Future meteorological information, Different time scales, Long-term estimation, [SPI.MECA.MEMA]Engineering Sciences [physics]/Mechanics [physics.med-ph]/Mechanics of materials [physics.class-ph]
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9Academic JournalSpatial and Seasonal Variations of Water and Salt Movement in the Vadose Zone at Salt-Impacted Sites
المؤلفون: Rashid Bashir, Eric Pastora Chevez
المصدر: Water; Volume 10; Issue 12; Pages: 1833
مصطلحات موضوعية: unsaturated flow and transport, oilfield brine, soil–atmosphere interaction, finite element methods, climate
جغرافية الموضوع: agris
وصف الملف: application/pdf
Relation: Hydrology; https://dx.doi.org/10.3390/w10121833
الاتاحة: https://doi.org/10.3390/w10121833
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10Conference
المؤلفون: NOCILLA, Alessandra, GROSSI, Giovanna, PONZONI, Elisa
المساهمون: Nocilla Alessandra, Grossi Giovanna, Ponzoni Elisa
مصطلحات موضوعية: collapsible soil, soil-atmosphere interaction, Engineering (all)
وصف الملف: ELETTRONICO
Relation: info:eu-repo/semantics/altIdentifier/wos/WOS:000385793300065; ispartofbook:Procedia Engineering; 6th Italian Conference of Researchers in Geotechnical Engineering, CNRIG 2016; volume:158; firstpage:386; lastpage:391; numberofpages:6; journal:PROCEDIA ENGINEERING; http://hdl.handle.net/11379/485058; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-84988422363; http://www.sciencedirect.com/science/journal/18777058
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11Report
مصطلحات موضوعية: Geotechnical Analysis, Finite Element Analysis, Coupled Analysis, Hydraulic Behaviour, Geotechnical Engineering, Soil-atmosphere Interaction
Relation: https://zenodo.org/communities/ic-mage; https://doi.org/10.5281/zenodo.8413266; https://doi.org/10.5281/zenodo.8413267; oai:zenodo.org:8413267
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12Conference
المؤلفون: Tabbal, D., Shahrour, I., Al-Qadad, A., Hage Chedade, F., Sadek, M.
مصطلحات موضوعية: Àrees temàtiques de la UPC::Matemàtiques i estadística::Anàlisi numèrica::Mètodes en elements finits, Finite element method, Coupled problems (Complex systems) -- Numerical solutions, Clay, cracks, soil-atmosphere interaction, evaporation, finite element model, Elements finits, Mètode dels
وصف الملف: 8 p.; application/pdf
Relation: http://hdl.handle.net/2117/192591
الاتاحة: http://hdl.handle.net/2117/192591
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13
المؤلفون: Alfredo Reder, Guido Rianna, Luca Pagano
المساهمون: Pagano, L., Reder, A., Rianna, G.
المصدر: Canadian Geotechnical Journal. 56:1261-1277
مصطلحات موضوعية: Hydrology, 021110 strategic, defence & security studies, geography, geography.geographical_feature_category, 0211 other engineering and technologies, 02 engineering and technology, Vegetation, Geotechnical Engineering and Engineering Geology, Atmosphere, Volcano, Environmental science, Geotechnical engineering, landslides, soil atmosphere interaction, unsaturated soils, evaporation, 021101 geological & geomatics engineering, Civil and Structural Engineering
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14
المؤلفون: Pujević, Veljko
مصطلحات موضوعية: slope stability, soil-atmosphere interaction, vegetation, unsaturated soils, serviceability, ash, clay fill, precipitation, embankment
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15
المؤلفون: Lahoori, Mojdeh
المساهمون: Laboratoire Énergies et Mécanique Théorique et Appliquée (LEMTA ), Université de Lorraine (UL)-Centre National de la Recherche Scientifique (CNRS), Université de Lorraine, Farimah Masrouri, Sandrine Rosin-Paumier, UL, Thèses
المصدر: Géotechnique. Université de Lorraine, 2020. English. ⟨NNT : 2020LORR0252⟩
مصطلحات موضوعية: Temperature-controlled direct shear tests, Soil-atmosphere interaction, Sol compacté, Compacted soil, Installation depth, [SPI.GCIV.GEOTECH]Engineering Sciences [physics]/Civil Engineering/Géotechnique, Profondeur d'installation, Modèle analytique, Thermo-hydro-mechanical, Propriétés thermiques du sol, Analytical model, Embankment, Géostructures énergétiques, Thermo-hydro-mécaniques, [SPI.GCIV.GEOTECH] Engineering Sciences [physics]/Civil Engineering/Géotechnique, Numerical simulations, Interaction sol-atmosphère, Soil thermal properties, Temperature-controlled oedometric tests, Essais œdométriques à température contrôlée, Essais de cisaillement direct à température contrôlée, Simulations numériques
وصف الملف: application/pdf
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16
المؤلفون: Nathalie Conil, Sébastien Conil, Ni An, Jean Talandier, Yu-Jun Cui
المساهمون: Laboratoire Navier (NAVIER UMR 8205), École des Ponts ParisTech (ENPC)-Centre National de la Recherche Scientifique (CNRS)-Université Gustave Eiffel, Agence Nationale pour la Gestion des Déchets Radioactifs (ANDRA)
المصدر: Computers and Geotechnics
Computers and Geotechnics, Elsevier, 2020, 124, pp.103610. ⟨10.1016/j.compgeo.2020.103610⟩مصطلحات موضوعية: Hydrology, Soil-atmosphere interaction, 0211 other engineering and technologies, Radioactive waste, Future meteorological information, 02 engineering and technology, Future climate, Soil hydro-thermal behavior, 010502 geochemistry & geophysics, Geotechnical Engineering and Engineering Geology, Intermediate level, 01 natural sciences, 7. Clean energy, Computer Science Applications, Overburden, 13. Climate action, Air temperature, Latent heat, [SPI.MECA.MEMA]Engineering Sciences [physics]/Mechanics [physics.med-ph]/Mechanics of materials [physics.class-ph], Environmental science, Different time scales, Long-term estimation, Soil atmosphere, 021101 geological & geomatics engineering, 0105 earth and related environmental sciences
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17
المؤلفون: Olga Clorinda Penalba, Liliana Beatriz Spescha, Guillermo Mario Murphy, Vanesa Cristina Pántano
المصدر: International Journal of Climatology. 39:2362-2374
مصطلحات موضوعية: Atmospheric Science, 010504 meteorology & atmospheric sciences, Incidence (epidemiology), 0207 environmental engineering, LONG DRY SPELLS, 02 engineering and technology, 01 natural sciences, Signal on, Ciencias de la Tierra y relacionadas con el Medio Ambiente, Investigación Climatológica, REMOTE FORCING, Water balance, La Niña, SOIL–ATMOSPHERE INTERACTION, El Niño Southern Oscillation, Climatology, Soil water, Environmental science, Precipitation, 020701 environmental engineering, Water content, CIENCIAS NATURALES Y EXACTAS, 0105 earth and related environmental sciences
وصف الملف: application/pdf
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18
المؤلفون: Cindy Maisonnave, Chao-Sheng Tang, Sahar Hemmati, Isabelle Charles, Ni An, Yu-Jun Cui
المساهمون: Laboratoire Navier (navier umr 8205), Institut Français des Sciences et Technologies des Transports, de l'Aménagement et des Réseaux (IFSTTAR)-École des Ponts ParisTech (ENPC)-Centre National de la Recherche Scientifique (CNRS), Centre d'Etudes et d'Expertise sur les Risques, l'Environnement, la Mobilité et l'Aménagement (Cerema), Centre d'Etudes et d'Expertise sur les Risques, l'Environnement, la Mobilité et l'Aménagement - Direction Nord-Picardie (Cerema Direction Nord-Picardie)
المصدر: Computers and Geotechnics
Computers and Geotechnics, Elsevier, 2018, 99, pp.137-148. ⟨10.1016/j.compgeo.2018.03.008⟩مصطلحات موضوعية: Soil-atmosphere interaction, 010504 meteorology & atmospheric sciences, Field (physics), 0211 other engineering and technologies, Field monitoring, Coupled hydro-thermal model, 02 engineering and technology, 01 natural sciences, Embankment, Physics::Geophysics, [SPI.MECA.MEMA]Engineering Sciences [physics]/Mechanics [physics.med-ph]/Mechanics of materials [physics.class-ph], Thermal, Geotechnical engineering, Boundary value problem, Water content, 021101 geological & geomatics engineering, 0105 earth and related environmental sciences, geography, geography.geographical_feature_category, Numerical analysis, Climate effect, Interaction model, Physics::Classical Physics, Geotechnical Engineering and Engineering Geology, Computer Science Applications, Term (time), 13. Climate action, Environmental science, Levee
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19
المصدر: Journal of Cleaner Production. 189:135-144
مصطلحات موضوعية: Pollution, soil-atmosphere interaction, 010504 meteorology & atmospheric sciences, Adaptation and mitigation options, Aerosol pollution, Cleaner production, Cloud physics, Precipitation climatology, Storm erosivity, Renewable Energy, Sustainability and the Environment, 2300, Strategy and Management1409 Tourism, Leisure and Hospitality Management, Industrial and Manufacturing Engineering, Strategy and Management, media_common.quotation_subject, air pollution, Strategy and Management1409 Tourism, soil erosivity, 010501 environmental sciences, Atmospheric sciences, complex mixtures, 01 natural sciences, Renewable Energy, Precipitation, 0105 earth and related environmental sciences, General Environmental Science, media_common, Sustainability and the Environment, Leisure and Hospitality Management, Vegetation, respiratory system, environmental physics, Aerosol, Soil water, Erosion, Environmental science, Surface runoff
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20Academic Journal
المؤلفون: Gerard, Pierre, Léonard, Angélique, Masekanya, Jean-Pierre, Charlier, Robert, Collin, Frédéric
المصدر: International Journal for Numerical and Analytical Methods in Geomechanics, 34 (12), 1297-1320 (2010)
مصطلحات موضوعية: soil-atmosphere interaction, convective drying test, partially saturated, vapour exchange, modelling, non-isothermal, Engineering, computing & technology, Civil engineering, Geological, petroleum & mining engineering, Ingénierie, informatique & technologie, Ingénierie civile, Géologie, ingénierie du pétrole & des mines
Relation: urn:issn:0363-9061; urn:issn:1096-9853; https://orbi.uliege.be/handle/2268/31679; info:hdl:2268/31679
الاتاحة: https://orbi.uliege.be/handle/2268/31679
https://orbi.uliege.be/bitstream/2268/31679/1/IJNAMG-Study%20of%20the%20soil-atmosphere%20moisture%20exchanges%20through%20convective%20drying%20tests%20in%20non-isothermal%20conditions.pdf
https://doi.org/10.1002/nag.866