يعرض 1 - 20 نتائج من 248 نتيجة بحث عن '"Alonso M. M."', وقت الاستعلام: 0.84s تنقيح النتائج
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    المساهمون: Ministerio de Ciencia, Innovación y Universidades – Agencia Estatal de Investigación

    Relation: #PLACEHOLDER_PARENT_METADATA_VALUE#; Project PID2020-116002RB-100/AEI/10.13039/501100011033 (HORRADIONEX) - Proyecto Retos; Postprint; Sí; Cement 2023 (ICCC2023) in Bangkok, Thailand, 18–22 September 2023; http://hdl.handle.net/10261/353955

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    Relation: Publisher's version; Sí; 7th International Conference Non-Traditional Cement & Concrete 2023 in Brno, Czech Republic, 25-28 June 2023; http://hdl.handle.net/10261/353692

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    Relation: #PLACEHOLDER_PARENT_METADATA_VALUE#; Project PID2020-116002RB-100/AEI/10.13039/501100011033 (HORRADIONEX); Postprint; Sí; The 16th International Congress on the Chemistry of Cement ICCC (2023) in Bangkok, Thailand, 18–22 September 2023; http://hdl.handle.net/10261/353685

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    المساهمون: Ministerio de Economía, Industria y Competitividad (España), Alonso, M. M., Puertas, Francisca

    Relation: #PLACEHOLDER_PARENT_METADATA_VALUE#; info:eu-repo/grantAgreement/MINECO/Plan Estatal de Investigación Científica y Técnica y de Innovación 2013-2016MINECO/ICTI2013‐2016/BIA2016-77252-P; Publisher's version; Sí; Boletín de la Sociedad Española de Cerámica y Vidrio; http://hdl.handle.net/10261/257469; http://dx.doi.org/10.13039/501100010198

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    المساهمون: Nimri, R., Oron, T., Muller, I., Kraljevic, I., Alonso, M. M., Keskinen, P., Milicic, T., Oren, A., Christoforidis, A., den Brinker, M., Bozzetto, L., Bolla, A. M., Krcma, M., Rabini, R. A., Tabba, S., Smith, L., Vazeou, A., Maltoni, G., Giani, E., Atlas, E., Phillip, M.

    Relation: info:eu-repo/semantics/altIdentifier/wos/WOS:000904126500010; firstpage:1932296820965561; journal:JOURNAL OF DIABETES SCIENCE AND TECHNOLOGY; http://hdl.handle.net/11588/869745; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85093918656

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    المصدر: Materiales de Construcción; Vol. 71 No. 344 (2021); e259 ; Materiales de Construcción; Vol. 71 Núm. 344 (2021); e259 ; 1988-3226 ; 0465-2746 ; 10.3989/mc.2021.v71.i344

    وصف الملف: text/html; application/pdf; text/xml

    Relation: https://materconstrucc.revistas.csic.es/index.php/materconstrucc/article/view/2329/3164; https://materconstrucc.revistas.csic.es/index.php/materconstrucc/article/view/2329/3165; https://materconstrucc.revistas.csic.es/index.php/materconstrucc/article/view/2329/3166; Mindess, S. (2019) Sustainability of Concrete. Chapter 1. Sustainability of Concrete. Modern Concrete Techonology Book 17. Ed.: Routledge. https://doi.org/10.1016/B978-0-08-102616-8.00001-0; Circular Economy. UE: https://ec.europa.eu/commission/priorities/jobs-growth-and-investment/towards-circular-economy_es, 2016.; ONU. Sustainability Development Goals. Paris. 2015. https://www.agenda2030.gob.es/; Roadmap 2020. European Commission. https://www.roadmap2050.eu.; García-Díaz. I.; Puertas, F. (2011) Empleo de residuos cerámicos como materia prima alternativa en la fabricación de cemento Portland (in spanish). Monografías del IETcc. Ed. CSIC.; Savić, A.; Martinović, S.; Vlahović, M.; Volkov-Husović, T. (2020) Effects of waste sulfur content on properties of self-compacting concrete. Mater. Construcc. 70 [338], e216, https://doi.org/10.3989/mc.2020.06919; Gonzalez-Triviño, I.; Pascual-Cosp, J.; Moreno, B.; Benitez-Guerrero, M. (2019) Manufacture of ceramics with high mechanical properties from red mud and granite waste. Mater. Construcc. 69 [333], e180. https://doi.org/10.3989/mc.2019.03818; Scrivener, K.L.; John, V. M.; Gartner, E.M. (2016) Eco-efficient cements: Potential, economically viable solutions for a low-CO2, cement based materials industry. United Nations & Environment Programm, 2016. https://doi.org/10.1016/j.cemconres.2018.03.015; Mora, J.C.; Baeza, A.; Robles, B.; Sanz, J. (2016) Assessment for the management of NORM wastes in conventional hazardous and nonhazardous waste landfills. J. Haz. Mat. 310, 161-169. https://doi.org/10.1016/j.jhazmat.2016.02.039 PMid:26921509; Labrincha, J.; Puertas, F.; Schroeyers, W.; Kovler, K.; Pontikes, Y.; Nuccetelli, C.; Krivenko, P.V.; Kovalchuk, O.; Petropavlovsky, O.; Komljenovic, M.; Fidanchevski, E.; Wiegers, R.; Volceanov. E.; Gunay, E.; Sanjuán, M. A.; Ducman, V.; Angjusheva, B.; Bajare, D.; Kovacs, T.; Bator, G.; Schreurs, S.; Aguiar, J.; Provis, J.L. (2017) From NORM by-products to building materials. In Naturally Ocurring Radiactive Materials in Construction. Chapter 7. Ed. W. Schroeyers. Elservier, 183-252. https://doi.org/10.1016/B978-0-08-102009-8.00007-4; Martín Matarranz, J.L. (2013) Riesgo Radiológico de las industrias no nucleares. Ph. D Thesis. Universidad de Cantabria.; Kovler. K.; Fridman, H.; Michalik, B.; Schroeyers, W.; Tsapalov, A.; Antropov, S.; Bituh, T.; Nicolaides, D. (2017) Basic aspects of natural radioactivity. In Naturally Ocurring Radiactive Materials in Construction. Ed. W. Schroeyers. Elservier. Chapter 3. 13-16. https://doi.org/10.1016/B978-0-08-102009-8.00003-7; Piedecausa García, B.; Chinchón Payá, S.; Morales, M.A.; Sanjuán Barbudo, M.A. (2011) Radiactividad natural de los materiales de construcción. Aplicación al hormigón. Parte II. Radiación interna: Gas radón. Cemento y Hormigón. 946, 34-50.; Pastor, A.; Dovorzhak, A.; Mora, J.C. (2016) Hacia un inventario español de industrias generadoras de residuos NORM. Radioprotección. 86, 28-32.; Orden IET/1946/2013, de 17 de octubre, por la que se regula la gestión de los residuos generados en las actividades que utilizan materiales que contienen radionucleidos naturales. 23 de octubre de 2013 (in spanish).; Allam, M.E.; Bakhoum, E.S.; Gara, G.L.K. (2014) Re-use of granites sludge in producing Green concrete. ARPN. J. Eng. Appl. Sci. 9 [12], e2737. 2731-2737.; Condomines, M.; Hemond, C.; Allègre, C. (1988) UThRa radioactive disequilibria and magmatic processes. Earth Planet. Sci. Lett. 90 [3], 243-262. https://doi.org/10.1016/0012-821X(88)90129-X; Plant, J.A.; Saunders, A. D. (1996) The Radioactive Earth. Rad. Protec. Dosim. 68 [1-2], 25-36. https://doi.org/10.1093/oxfordjournals.rpd.a031847; Suárez-Navarro, J.A.; Alonso, M.M.; Gascó, C.; Pachón, A.; Carmona-Quiroga, P.M.; Argiz, C.; Sanjuán, M.A.; Puertas, F. (accepted 2021) Effect of particle size and composition of granitic sands on the radiological behavior of mortars. Bol. Soc. Esp. Cer. Vid. Available online 2 June 2021. https://doi.org/10.1016/j.bsecv.2021.05.001; Kovacs, T.; Bator, G.; Schroeyers, W.; Labrincha, J.; Puertas, F.; Hegedus, M.; Nicolaides, D.; Sanjuán, M.A.; Krivenko, P.V.; Grubesa, I.N.; Sas, Z.; Michalic, B.; Anagnostakis, M.; Barisic, I.; Nuccetelli, C.; Trevisi, R.; Croymans, T.; Schreurs, S.; Todorovic, N.; Vaičiukynienė-Palubinskaitė, D.; Bistrickaitė, R.; Tkaczyk, A.; Kovler, K.; Wiegers, R.; P.V.; Doherty, R. (2017) From raw materials to NORM by-products. In Naturally Ocurring Radiactive Materials in Construction. Chapter 6. Ed. W. Schroeyers. Elservier. 135-182. https://doi.org/10.1016/B978-0-08-102009-8.00006-2; EN-197-1: (2011). Part 1: Composition, specifications and conformity criteria for common cements.; Puertas, F.; Blanco-Varela, M. T.; Palomo, A.; Vázquez, T. (1988) Reactivity and burnability of raw mixes made with crystallized blastfurnace slags. Part I. and Part II. Zement-Kalk-Gips; 41, (389-402) and (628-631).; Puertas, F.; García-Díaz, I.; Palacios, M.; Gazulla, M.F.; Gómez, M.P.; Orduña, M. (2010) Clinkers and cements obtained from raw mix containing ceramic waste as a raw material. Characterization, hydration and leaching studies. Cem. Concr. Comp. 32 [3], 175-186 https://doi.org/10.1016/j.cemconcomp.2009.11.011; Blanco-Varela, M. T.; Puertas, F.; Palomo, A.; Vázquez, T.; Artola, P.; Alfaro, L. (2000) Aptitud a la cocción de crudos de cemento Portland usando Paval como materia prima. Cemento y Hormigón (in Spanish) 809, 358-377.; Puertas, F.; Blanco-Varela, M.T. (2004). Use of alternative fuels in cement manufacture. Effect on clinker and cement characteristics and properties. Mater. Construcc. 54 [274], 51-64. https://doi.org/10.3989/mc.2004.v54.i274.232; Palomo, A.; Krivenko, P.; Garcia-Lodeiro, I.; Kavalerova, E.; Maltseva, O.; Fernández-Jiménez, A. (2014) A review on alkaline activation: new analytical perspectives. Mater. Construcc. 64 [315], e022. https://doi.org/10.3989/mc.2014.00314; Robayo-Salazar, R.; Mejía de Gutierrez, R.; Puertas, F. (2019) Alkali-activated binary concrete based on a natural pozzolan: physical, mechanical and microstructural characterization. Mater. Construcc. 69 [335], e191 https://doi.org/10.3989/mc.2019.06618; Pacheco-Torgal, F.; Labrincha, J.A.; Leonelli, C.; Palomo, A.; Chindaprasirt, P. (Eds.). (2015) Handbook of Alkali-activated cements, mortars and concretes. Woodhead Publishing Series in Civil and Structural Engineering. https://doi.org/10.1533/9781782422884.1 PMid:25842101; Provis, J.L.; van Deventer, J.J. (Eds). (2014) Alkali Activated Materials. State of the Art Report, ILEM TC 224-AAM. Springer. https://doi.org/10.1007/978-94-007-7672-2; Shi, C.; Krivenko, P.; Roy, D. (2006) Alkali-Activated Cements and Concretes. Taylor and Francis, London and New York. https://doi.org/10.4324/9780203390672; Shi, C.; Fernández Jiménez, A.; Palomo, A. (2011) New cements for the 21st century: The pursuit of an alternative to Portland cement. Cem. Concr. Res., 41, 750-763. https://doi.org/10.1016/j.cemconres.2011.03.016; Puertas, F.; Torres-Carrasco, M. (2014) Use of glass waste as an activator in the preparation of alkali-activated slag cements. Mechanical strength and paste characterisation. Cem. Concr. Res., 57, 95-104. https://doi.org/10.1016/j.cemconres.2013.12.005; Torres-Carrasco, M.; Puertas, F. (2015). Waste glass in the geopolymer preparation. Mechanical and microstructural characterisation. J. Clean. Prod. 90, 397-408. https://doi.org/10.1016/j.jclepro.2014.11.074; Mejía, J.M.; Mejía de Gutiérrez, R.; Puertas, F. (2013) Rice husk ash as a source of silica in alkali-activated fly ash and granulated blast furnace slag systems. Mater. Construcc. 63 [311], 361-375.; Shi, C.; Shi, Z.; Hu, X.; Zhao, R.; Chong, L. (2015) A review on alkali-aggregate reactions in alkali-activated mortars/concretes made with alkali-reactive aggregates. Mater. Struct. 48, 621-628. https://doi.org/10.1617/s11527-014-0505-2; Pérez-Cortes, P.; Escalante-García, J.I. (2020) Alkali activated metakaolin with high limestone contents-Statistical modeling of strength and environmental and cost analyses. Cem. Concr. Comp. 106, 103450. https://doi.org/10.1016/j.cemconcomp.2019.103450; Puertas, F.; Martínez-Ramírez, S.; Alonso, S.; Vázquez, T. (2000) Alkali-activated fly ash/slag cement. Strength behaviour and hydration products. Cem. Concr. Res. 30 [10], 1625-1632. https://doi.org/10.1016/S0008-8846(00)00298-2; Torres-Carrasco, M.; Puertas, F. (2017) Waste glass as a precursor in alkaline activation: chemical process and hydration products. Construc. Build. Mat. 139, 342-354. https://doi.org/10.1016/j.conbuildmat.2017.02.071; Payá, J.; Agrela, F.; Rosales, J.; Martín Morales, M.; Borrachero, M.V. (2019) Application of alkali-activated industrial waste. New Trends Eco-effic. Recyc. Concr. 357-424. https://doi.org/10.1016/B978-0-08-102480-5.00013-0; Mas, M.A.; Tashima, M.M.; Payá, J.; Borrachero, M.V.; Soriano, L.; Monzó, J.M. (2015) A binder from alkali activation of FCC waste: Use in roof tiles fabrication. Key Eng. Mat. 668, 411-418. https://doi.org/10.4028/www.scientific.net/KEM.668.411; Puertas, F.; Barba, A.; Gazulla, M.F.; Gómez, M.P.; Palacios, M.; Martínez-Ramírez, S. (2006) Ceramic wastes as raw materials in pórtland cement clinker fabrication: characterization and alkaline activation. Mater. Construcc. 56 [281], 73-84. https://doi.org/10.3989/mc.2006.v56.i281.94; Burciaga-Díaz, O.; Durón-Sifuentes, M.; Díaz-Guillén, J.A.; Escalante-García, J.I. (2020) Effect of waste glass incorporation on the properties of geopolymers formulated with low purity metakaolin. Cem. Concr. Comp. 107, 103492. https://doi.org/10.1016/j.cemconcomp.2019.103492; Alonso, M.M.; Gascó, C.; Martín Morales, M.; Suárez-Navarro, J.A.; Zamorano, M.; Puertas, F. (2019) Olive Biomas ash as an alternative activator in geopolymer formation: A study of strenth, radiology and leaching behaviour. Cem. Concr. Comp. 104, 103384. https://doi.org/10.1016/j.cemconcomp.2019.103384; de Moraes Pinheiro, S.M.; Font, A.; Soriano, L.; Tashima, M.M.; Monzó, J.M.; Borrachero, M.V.; Payá, J. (2018) Olive-stone biomass ash (OBA): An alternative alkaline source for the blast furnace slag activation. Construc. Build. Mat. 178, 30. 327-338. https://doi.org/10.1016/j.conbuildmat.2018.05.157; Deloitte (2017) Study on Resource Efficient Use of Mixed Wastes, Improving of construction and demolition waste - Final Report. Prepared for the 631 European Commission, DG ENV [31] DWC.; Pellegrino, C.; Faleschini, F.; Meyer, C. (2019) Recycled Materiales in Concrete, Chapter 2. Sustainability of Concrete. Ed. Pierre-Claude AÍtcin, Sidney Mindess, Modern Concrete Technology 17. https://doi.org/10.1016/B978-0-08-102616-8.00002-2; Zhang, L.W.; Sojobi, A.O.; Kodur, V.K.R.; Liew, K.M. (2019) Effective utilization and recycling of mixed recycled aggregates for a greener environment. J. Clean. Prod. 236, 117600. https://doi.org/10.1016/j.jclepro.2019.07.075; Suarez-Navarro, J.A.; Lanzón, M.; Moreno-Reyes, A.M.; Gascó, C.; Alonso, M.M.; Blanco-Varela, M.T.; Puertas, F. (2019). Radiological behaviour of pigments and water repellents in cement-based mortars. Construc. Build. Mat. 225, 879-885. https://doi.org/10.1016/j.conbuildmat.2019.07.271; I.A.E.A. Extent of Environmental Contamination by Naturally Occurring Radioactive Material (NORM) and Technological Options for Mitigation. Tech. Reports Ser. 419. Vienna, Austria 419. (2003).; CEN/TC 351. Construction products: Assessment of release of dangerous substances. Radiation from construction products - Dose assessment and classifications of emitted gamma radiation. (2013).; Council Directive 2013/59/Euratom of 5 December 2013 laying down basic safety standards for protection against the dangers arising from exposure to ionising radiation, and repealing Directives 89/618/Euratom, 90/641/Euratom, 96/29/Euratom, 97/43/Euratom and 2003/122/Euratom.; Suárez-Navarro, J.A.; Moreno-Reyes, A.M.; Gascó, C.; Alonso, M.M.; Puertas, F. (2020) Gamma spectrometry and LabSOCS-calculated efficiency in the radiological characterisation of quadrangular and cubic specimens of hardened portland cement paste. Rad. Phys. Chem. 171, 108709. https://doi.org/10.1016/j.radphyschem.2020.108709; Suárez-Navarro, J. A.; Gascó, C.; Alonso, M.M.; Blanco-Varela, M.T.; Lanzón, M.; Puertas, F. (2018) Use of Genie 2000 and Excel VBA to correct for γ-ray interference in the determination of NORM building material activity concentrations. Appl. Radi. Isot. 142, 1-7. https://doi.org/10.1016/j.apradiso.2018.09.019 PMid:30245436; Argiz, C.; Menéndez, E.; Moragues, A.; Sanjuán, M.A. (2015) Fly ash characteristics of Spanish coal-fired power plants. Afinidad. 72 [572], 269-277. http://www.raco.cat/index.php/afinidad/article/view/305569/395407.; Skibsted, J.; Snellings, R. (2019) Reactivity of supplementary cementitious Materials (SCMs) in cement blends. Cem. Concr. Res. 124, 105799 https://doi.org/10.1016/j.cemconres.2019.105799; Mora, J.C.; Robles, B.; Corbacho, J.A.; Gascó, C.; Gázquez, M.J. (2011). Modelling the behaviour of 210Po in high temperatura processes. J. Environ. Radioac. 102 [5], 520-526. https://doi.org/10.1016/j.jenvrad.2010.10.006 PMid:21093128; Temuujin, J.; Surenjav, E.; Ruescher, C.H.; Vahlbruch, J. (2019) Processing and uses of fly ash addressing radioactivity (critical review), Chemosph. 216, 866-88. https://doi.org/10.1016/j.chemosphere.2018.10.112 PMid:30390998; Zielinski, R.A.; Finkelman, R.B. (1997) Radioactive elements in coal and fly ash: abundance, forms, and environmental significance, US Geological Survey, 2327-6932. https://doi.org/10.3133/fs16397; World Nuclear Association. Naturally Occuring Radioactive Materials (july, 2015). https://www.world-nuclear.org/information-library/safety-and-security/radiation-and-health/naturally-occurring-radioactive-materials-norm.aspx.; Karangelos, D.J.; Petropoulos, N.P.; Anagnostakis, M.J.; Hinis, E.P.; Simopoulos, S.E. (2004) Radiological characteristics and investigation of the radioactive equilibrium in the ashes produced in lignite-fired power plant. J. Env. Rad. 77 [3], 233-246. https://doi.org/10.1016/j.jenvrad.2004.03.009 PMid:15381319; Mora, J.C.; Baeza, A.; Robles, B.; Corbacho, J.A.; Cancio, D. (2009). Behaviour of natural radionuclides in coal combustión. Radioprotec. 44 [5], 577-580. https://doi.org/10.1051/radiopro/20095106; Nuccetelli, C.; Pontikes, Y.; Leonardi, F.; Trevisi, R. (2015) New perspectives and issues arising from the introduction of (NORM) residues in building materials: A critical assessment on the radiological behaviour. Construc. Build. Mat. 82, 323-331. https://doi.org/10.1016/j.conbuildmat.2015.01.069; Kovler, K.; Haquin, G.; Manasherov, V.; Ne'eman, E.; Lavi, N. (2002) Natural radionuclides in building materials available in Israel. Build. Environ. 37 [5], 531-537. https://doi.org/10.1016/S0360-1323(01)00048-8; Piedecausa, B.; Chinchón-Payá, S.; Morales, M.A.; Sanjuán, M.A. (2011) Radioactividad natural de los materiales de construcción. Aplicación al hormigón. Parte 1. Radiación externa: índice de riesgo radiactivo. Cem. Horm. 945, 40-65.; Puertas, F.; Alonso, M.M.; Torres-Carrasco, M.; Rivilla, P.; Gasco, C.; Yagüe, L.; Suárez, J. A.; Navarro, N. (2015) Radiological characterization of anhydrous/hydrated cements and geopolymers. Construc. Build. Mat. 101 [1], 1105-1112. https://doi.org/10.1016/j.conbuildmat.2015.10.074; Alonso, M.M.; Suárez-Navarro, J.A.; Pérez-Sanz, R.; Gascó, C.; Moreno de los Reyes, A.M.; Lanzón, M.; Blanco-Varela, M.T.; Puertas, F. (2020) Data in Brief. 33, 106488. https://doi.org/10.1016/j.dib.2020.106488 PMid:33241096 PMCid:PMC7672271; Kovler, K.; Perevalov, A.; Steiner, V.; Metzger, L.A. (2005) Radon exhalation of cementitious materials made with coal fly ash: Part 1 - scientific background and testing of the cement and fly ash emanation. J. Env. Rad. 82 [3], 321-324. https://doi.org/10.1016/j.jenvrad.2005.02.004 PMid:15885378; Chinchón-Payá, S.; Piedecausa, B.; Hurtado, S.; Sanjuán, M.A.; Chinchón, S. (2011) Radiological impact of cement, concrete and admixtures in Spain. Rad. Meas. 46 [8], 734-735. https://doi.org/10.1016/j.radmeas.2011.06.020; Gupta, M.; Kumar Mahur, A.; Varshney, R.; Sonkawade, R.G.; Verma, K.D.; Prasad, R. (2013) Measurement of natural radioactivity and radon exhalation rate in fly ash samples from a thermal power plant and estimation of radiation doses. Rad. Meas. 50, 160-165. https://doi.org/10.1016/j.radmeas.2012.03.015; Kovler, K. (2012) Does the utilization of coal fly ash in concrete construction present a radiation hazard? Construc. Build. Mat. 29, 158-166. https://doi.org/10.1016/j.conbuildmat.2011.10.023; Ignjatović, I.; Sas, Z.; Dragaš, J.; Somlai, J.; Kovács, T. (2017) Radiological and material characterization of high volume fly ash concrete. J. Env. Rad. 168, 38-45. https://doi.org/10.1016/j.jenvrad.2016.06.021 PMid:27400654; Temuujin, J.; Minjigmaa, A.; Davaabal, B.; Bayarzul, U.; Ankhtuya, A.; Jadambaa, Ts.; MacKenzie, K.J.D. 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    المساهمون: Ministerio de Ciencia e Innovación (España)

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