يعرض 1 - 20 نتائج من 70 نتيجة بحث عن '"Jiménez-Espinosa, Rosario"', وقت الاستعلام: 0.50s تنقيح النتائج
  1. 1
    Academic Journal

    المساهمون: Consejo Superior de Investigaciones Científicas (España), CSIC - Instituto Geológico y Minero de España (IGME), European Commission, Agencia Estatal de Investigación (España), Ministerio de Ciencia e Innovación (España), González Ramón, Antonio, Jódar, Jorge, Morales González, Antonio L., Moral Martos, Francisco, Jiménez Espinosa, Rosario

    وصف الملف: application/pdf

    Relation: #PLACEHOLDER_PARENT_METADATA_VALUE#; info:eu-repo/grantAgreement/AEI/Plan Estatal de Investigación Científica y Técnica y de Innovación 2021-2023/AECEX2021; https://doi.org/10.1007/s10040-024-02825-8; Sí; AECEX2021; http://hdl.handle.net/10261/375719; https://api.elsevier.com/content/abstract/scopus_id/85204426890

  2. 2
    Academic Journal
  3. 3
    Academic Journal
  4. 4
    Academic Journal
  5. 5
    Academic Journal
  6. 6
    Academic Journal

    Alternate Title: Caracterización de la descarga de acuíferos kársticos a partir de datos hidrodinámicos y fisicoquímicos (Sierra Seca, SE de España). (Spanish)
    Caractérisation du débit des aquifères karstiques de pente à partir des données hydrodynamiques et physicochimiques (Sierra Seca, SE Espagne). (French)
    Caracterização da descarga de aquíferos cársicos de encosta a partir de dados hidrodinâmicos e físico-químicos (Sierra Seca, SE Espanha). (Portuguese)
    从水动力和物理化学数据对西班牙东南部Sierra Seca山坡喀斯特含水层的排泄特征进行表征 (Chinese)

    المصدر: Hydrogeology Journal; Sep2024, Vol. 32 Issue 6, p1567-1586, 20p

  7. 7
  8. 8

    المساهمون: Jiménez Espinosa, Rosario, Jiménez Millán, Juan

    وصف الملف: application/pdf

  9. 9
    Academic Journal
  10. 10
    Academic Journal
  11. 11
    Academic Journal
  12. 12
    Academic Journal

    المصدر: 2075-163X.

    Relation: NFR/294719; http://urn.nb.no/URN:NBN:no-84368; Torabi, Anita Jiménez-Millán, Juan Jiménez-Espinosa, Rosario García-Tortosa, Fransisco Juan Ellingsen, Tor S.S. . Effect of Mineral Processes and Deformation on the Petrophysical Properties of Soft Rocks during Active Faulting. Minerals. 2020, 10(444); http://hdl.handle.net/10852/81281; 1850271; info:ofi/fmt:kev:mtx:ctx&ctx_ver=Z39.88-2004&rft_val_fmt=info:ofi/fmt:kev:mtx:journal&rft.jtitle=Minerals&rft.volume=10&rft.spage=&rft.date=2020; Minerals; 10; https://doi.org/10.3390/min10050444; URN:NBN:no-84368; Fulltext https://www.duo.uio.no/bitstream/handle/10852/81281/2/minerals-10-00444-v2%2B%25281%2529.pdf

  13. 13
    Academic Journal

    المصدر: Journal of Iberian Geology; Vol. 42 Núm. 2 (2016); 187-200 ; Journal of Iberian Geology; Vol 42 No 2 (2016); 187-200 ; 1886-7995 ; 1698-6180

    وصف الملف: application/pdf

    Relation: https://revistas.ucm.es/index.php/JIGE/article/view/52865/49373; https://revistas.ucm.es/index.php/JIGE/article/view/52865/4564456550412; Anderson, J.B., Ashley G.M. (1991): Glacial marine sedimentation: paleoclimatic significance; a discussion. Geological Society of America Bulletin Special Paper 261, 223–226.; Armijo, R., Benkhelil J., Bousquete, J.C., Estévez, A., Guiraud, R., Montenat C.H., Pavillon, M.J., Philip, H., Sanz De Galdeano, C. Viguier C.I. (1977): Les résultats de l’analyse structurale en Espagne. In: L’histoire tectonique récent (Tortonien à Quaternaire) de l’Arc de Gibraltar et des bordures de la mer d’Alboran. Bulletin de la Societé Géologique de France 19, 591–594.; Baena, R. (1993): Evolución cuaternaria (3 M.a) de la Depresión del Medio-Bajo Guadalquivir y sus márgenes (Córdoba y Sevilla). Tesis Doctoral, Univ. de Sevilla. 589 p.; Balashov, Y.A., Girin, Y.P. (1969): On reserve of mobile rare earth elements in sedimentary rocks. Geochemistry International 6, 649-658.; Bayhan, E. (2005): Tertiary clay mineralogy of the Cokelezdag region (NE Denizli-SW Turkey): origin and provenance. Journal of the Geological Society of India 66, 21–27.; Benkhelil, J. (1976): Etude néotectonique de la terminaision occidentale des Cordillères Bétiques (Espagne). Thèse 3ème Cycle, University of Nice.; Biscaye, P.E. (1965): Mineralogy and sedimentation of recent deep-sea clay in the Atlantic Ocean and adjacent seas and oceans. Geological Society of America Bulletin 76, 803–832.; Blank, R.G., Margolis, S.V. (1975): Pliocene climatic and glacial history of Antarctica as revealed by Southeast Indian Ocean deep-sea cores. Geological Society of America Bulletin 86, 1058–1066.; Caracciolo, L., Garzanti E., Von Eynatten H., Weltje G.J. (2016): Sediment generation and provenance: processes and pathways. Sedimentary Geology 336, 1-2. doi:10.1016/j.sedgeo.2016.03.015; Chamley H. (1989): Clay Sedimentology. Springer Verlag, Berlin.; Damiani, D., Giorgetti, G., Memmi, I. (2006): Clay mineral fluctuations and surface textural analysis of quartz grains in Pliocene–Quaternary marine sediments from Wilkes Land continental rise (East-Antarctica): Paleoenvironmental significance. Marine Geology 226, 281-295. doi:10.1016/j.margeo.2005.11.002; Dinelli, E., Tateo, T. (2001) Sheet silicates as effective carriers of heavy metals in the ophiolitic mine area of Vigonzano (northern Italy). Mineralogical Magazine 65, 121-132.; Dinis, P., Oliveira, A. (2016): Provenance of Pliocene clay deposits from the Iberian Atlantic Margin and compositional changes during recycling. Sedimentary Geology 336: 171-182. doi:10.1016/j.sedgeo.2015.12.011.; Ehrmann, W.U., Grobe, H., Fütterer D.K. (1992): Late Miocene to Holocene glacial history of East Antarctica revealed by sediments from Sites 745 and 746. Proceedings of the Ocean Drilling Program, Scientific Results 119, 239–260.; Gingele, F.X., De Deckker, P. (2004): Fingerprinting Australia’s rivers with clay minerals and the application for the marine record of climate change. Australian Journal of Earth Sciences 51, 339–348. doi:10.1111/j.1400-0952.2004.01061.x.; García Tortosa, F.J., Sanz De Galdeano, C., Alfaro, P., Jiménez Espinosa, R., Jiménez Millán, J., Lorite Herrera, M. (2008): New evidence about the age of the endorheic-exorheic transition of the Guadix-Baza basin. Geogaceta 44, 211-214.; Gong, Q., Deng, J., Yang, L., Zhang, J., Wang, Q., Zhang, G. (2011): Behavior of major and trace elements during weathering of sericite– quartz schist. Journal of Asian Earth Sciences 42, 1-13. doi:10.1016/j. jseaes.2011.03.003.; Goudie, A.S. (2004): Encyclopedia of Geomorphology. Routledge NY, USA.; González, I., Galán, E., Miras, A., Aparicio, P. (1998): New uses for brick-making clay materials from the Bailén area (southern Spain). Clay Minerals 33, 453−465.; Grobe, H., Mackensen, A. (1992): Late Quaternary climatic cycles as recorded in sediments from the Antarctic continental margin. Antarctic Research Series 56, 349–376.; Henderson, P. (1984): General geochemical properties and abundances of the rare earth elements. Elsevier, New York.; Jiménez-Espinosa, R. (2003): Tratamiento numérico de la información hidrogeológica: fases de estudio y ejemplos de aplicación. Boletín Geológico y Minero 114, 311−322.; Jiménez-Espinosa, R., Jiménez-Millán, J. (2003): Calcrete development in mediterranean colluvial carbonate systems from SE Spain. Journal of Arid Environments 53, 479–489. Doi:10.1006/jare.2002.1061.; Kaiser, H.F. (1958): The varimax criteria for analytical rotation in factor analysis. Psychrometrika 23, 187–200.; Magee, J.W., Bowler, J.M., Miller, G.H., Williams, D.L.G. (1995): Stratigraphy, sedimentology, chronology and palaeohydrology of Quaternary lacustrine deposits at Madigan Gulf, Lake Eyre, south Australia. Palaeogeogr Palaeoclimatol 113, 3-42.; Mehl, A., Blasi, A., Zárate, M. (2012): Composition and provenance of Late Pleistocene–Holocene alluvial sediments of the eastern Andean piedmont between 33 and 34° S (Mendoza Province, Argentina). Sedimentary Geology 280, 234-243. doi:10.1016/j.sedgeo.2012.05.011.; Moore, M.D., Reynolds R.C. (1989): X-ray diffraction and the identification and analysis of clay minerals. Oxford University Press, New York.; Moriarty, K.C. (1977): Clay minerals in southeast Indian Ocean sediments, transport mechanisms and depositional environments. Marine Geology 25, 149–174.; Müller, C., Stein R. (2000): Variability of fluvial sediment supply to the Laptev Sea continental margin during Late Weichselian to Holocene times: implications from clay-mineral records. International Journal of Earth Sciences 89, 592–604. doi:10.1007/s005310000112.; Ortega-Huertas, M., Palomo, I., Moresi, M., Oddone M. (1991): A mineralogical and geochemical approach to establishing a sedimentary model in a passive continental margin (Subbetic Zone, Betic Cordilleras, SE Spain). Clay Minerals 26, 389–407.; Palamakumbura, R.N., Robertson A.H.F. (2016): Pleistocene terrace deposition related to tectonically controlled surface uplift: An example of the Kyrenia Range lineament in the northern part of Cyprus. Sedimentary Geology 339, 46-67. doi:10.1016/j.sedgeo.2016.03.022.; Prizomwala, S.P., Bhatt, N. And Basavaiah, N. (2014): Provenance discrimination and Source-to-Sink studies from a dryland fluvial regime: An example from Kachchh, western India. International Journal of Sediment Research 29, 99-109. doi:10.1016/S1001-6279(14)60025-1.; Palomo, I. (1987): Mineralogía y geoquímica de sedimentos pelágicos del Jurásico inferior de las Cordilleras Béticas (SE de España). Tesis doctoral. Universidad de Granada.; Riebe, C.S., Kirchner J.W., Finkel, R.C. (2004): Sharp decrease in longterm chemical weathering rates along an altitudinal transect. Earth and Planetary Science Letters 218, 421-434. doi:10.1016/S0012-821X(03)00673-3.; Roldán, F.J. (1995): Evolución neógena de la Cuenca del Guadalquivir. Tesis Doctoral. Universidad de Granada.; Santos-García, J.A., Jerez-Mir, F., Saint-Aubin, J. (1991): Estudio sedimentológico de un sector del río Guadalquivir en las proximidades de Andújar (Provincia de Jaén). Los depósitos de la terraza +6m (T4). Estudios Geológicos 47, 43−55.; Sanz De Galdeano, C. (1990): Geologic evolution of the Betic Cordilleras in the Western Mediterranean, Miocene to the present. Tectonophysics T173 T, 175–178.; Sanz De Galdeano, C., Alfaro, P. (2004): Tectonic significance of the present relief of the Betic Cordillera. Geomorphology 63, 175–190. doi:10.1016/j.geomorph.2004.04.002.; Sanz De Galdeano, C., López-Casado, C. (1988): Fuentes sísmicas en el ámbito bético-rifeño. Revista de Geofísica 44, 175–198.; Snyder, R.L., Bisch, D.L. (1989): Quantitative analysis. Modern Powder Diffraction. Reviews in Mineralogy 20, 100−275.; Srodon, J. (1984): Mixed layer illite-smectite in low temperature diagenesis: data from the Miocene of the Carpathian foredeep. Clay Minerals 19, 2015-215.; Stevens, C.J., Quinton, J.N. (2008): Investigating source areas of eroded sediments transported in concentrated overland flow using rare earth element tracers. Catena 74, 31-36. doi:10.1016/j.catena.2008.01.002.; Stokes, M., Mather, A.E. (2000): Response of Plio-Pleistocene alluvial systems to tectonically induced base-level changes, Vera Basin, SE Spain. Journal of the Geological Society of London 157, 303–316. doi:10.1144/jgs.157.2.303.; Tucker, G.E., Slingerland, R., (1996): Predicting sediment flux from fold and thrust belts. Basin Research 8, 329–349.; Vázquez, M and Jiménez Millán, J (2009): Suitability of the Betic Cordillera marly materials for the manufacture of pressed tile. Materiales de Construcción 59, 294, 97-112. doi:10.3989/mc.2009.47707.; Viguier, C. (1977): Les grands traits de la tectonique du Basin Neogene du Bas Guadalquivir. Boletín Geológico y Minero 88, 39–44.; Wen, X.Y., Huang, C.M., Tang, Y., Gong-Bo, S.L., Hu, X.X. And Wang, Z.W. (2014): Rare earth elements: a potential proxy for identifying the lacustrine sediment source and soil erosion intensity in karst areas. J. Soils Sediments 14, 1693-1702. doi:10.1007/s11368-014-0928-y.; Whitmore, G.P., Crook, K.A.W., Johnson, D.P. (2004): Grain size control of mineralogy and geochemistry in modern river sediment, New Guinea collision, Papua New Guinea. Sedimentary Geology 171, 129–157. doi:10.1016/j.sedgeo.2004.03.011; Yoon, H.I., Park, B.K., Kim, Y., Kim, D. (2000): Glaciomarine sedimentation and its paleoceanographic implications along the fjord margin in the South Shetland Islands, Antarctica during the last 6000 years. Palaeogeography, Palaeoclimatology, Palaeoecology 157, 189–211. doi:10.1016/S0031-0182(99)00165-0.; https://revistas.ucm.es/index.php/JIGE/article/view/52865

  14. 14
    Book
  15. 15
    Academic Journal
  16. 16
    Academic Journal
  17. 17
    Academic Journal
  18. 18
  19. 19
    Image
  20. 20
    Academic Journal