Radiation effects in concrete for nuclear power plants, Part II: Perspective from micromechanical modeling
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Y. Le Pape | Igor Remec | Kevin G. Field | Y. L. Pape | K. Field | I. Remec | Y. Pape
[1] J. D. Eshelby. The determination of the elastic field of an ellipsoidal inclusion, and related problems , 1957, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[2] Y. Le Pape,et al. Radiation effects in concrete for nuclear power plants – Part I: Quantification of radiation exposure and radiation effects , 2015 .
[3] P. Bouniol,et al. Disappearance of oxygen in concrete under irradiation: the role of peroxides in radiolysis , 1998 .
[4] Dan J Naus,et al. The Effect of Elevated Temperature on Concrete Materials and Structures - a Literature Review. , 2006 .
[5] R. Christensen,et al. Solutions for effective shear properties in three phase sphere and cylinder models , 1979 .
[6] F. Larrard,et al. EXTENSION DU DOMAINE D'APPLICATION DES REGLEMENTS DE CALCUL BAEL/BPEL AUX BETONS A 80 MPa - JUSTIFICATIONS SCIENTIFIQUES DES PROPOSITIONS AVANCEES - CALCUL DES DEFORMATIONS INSTANTANEES ET DIFFEREES DES BETONS A HAUTES PERFORMANCES , 1996 .
[7] A. Noumowé,et al. Effet de hautes températures (20-600°C) sur le béton : cas particulier du béton a hautes performances , 1995 .
[8] F. Vodák,et al. Effect of gamma irradiation on properties of hardened cement paste , 2011 .
[9] F. Harbsmeier,et al. Ion beam induced amorphization in α quartz , 1998 .
[10] T. Katayama. The So-called Alkali-carbonate Reaction (ACR): Its Mineralogical and Geochemical Details, With Special Reference to ASR , 2010 .
[11] Gilles Chanvillard,et al. Modelling Elasticity of a Hydrating Cement Paste , 2007 .
[12] F. Agullo-lopez,et al. Electronic damage in quartz (c-SiO2) by MeV ion irradiations: Potentiality for optical waveguiding applications , 2012 .
[13] C E Majorana,et al. Radiation damage evaluation on concrete within a facility for Selective Production of Exotic Species (SPES Project), Italy. , 2011, Journal of hazardous materials.
[14] Roman Lackner,et al. A multiscale micromechanics model for the autogenous-shrinkage deformation of early-age cement-based materials , 2007 .
[15] M. Gillen,et al. Thermal expansion of Portland cement paste, mortar and concrete at high temperatures , 1980 .
[16] Jeffrey J. Thomas,et al. A multi-technique investigation of the nanoporosity of cement paste , 2007 .
[17] John Howell Griffith. Thermal expansion of typical American rocks , 1936 .
[18] C. Toulemonde,et al. Upscaling concrete properties: a rational approach to account for the material complexity and variability , 2009 .
[19] J. B. Walsh. The effect of cracks on the compressibility of rock , 1965 .
[20] K. Trtík,et al. Effect of γ-irradiation on strength of concrete for nuclear-safety structures , 2005 .
[21] Franz-Josef Ulm,et al. A multiscale micromechanics-hydration model for the early-age elastic properties of cement-based materials , 2003 .
[22] E. Kröner. Bounds for effective elastic moduli of disordered materials , 1977 .
[23] André Zaoui,et al. n-Layered inclusion-based micromechanical modelling , 1993 .
[24] A. Murdoch. The propagation of surface waves in bodies with material boundaries , 1976 .
[25] V. G. Zubov,et al. EXPANSION OF QUARTZ CAUSED BY IRRADIATION WITH FAST NEUTRONS. , 1966 .
[26] W. H. Parsons,et al. Thermal expansion of concrete aggregate materials , 1944 .
[27] S. Shtrikman,et al. A variational approach to the theory of the elastic behaviour of multiphase materials , 1963 .
[28] G. Chan,et al. Comparison of the morphology of alkali―silica gel formed in limestones in concrete affected by the so-called alkali―carbonate reaction (ACR) and alkali―silica reaction (ASR) , 2013 .
[29] R. D. Browne,et al. PROPERTIES OF CONCRETE IN REACTOR VESSELS. , 1969 .
[30] F. Furumura,et al. Strength, elasticity, and thermal properties of concrete subjected to elevated temperatures , 1972 .
[31] T. Katayama. How to identify carbonate rock reactions in concrete , 2004 .
[32] Osamu Sato,et al. Irradiation Effects on Concrete Structures , 2013 .
[33] L. Dormieux,et al. Crack propagation in viscoelastic structures: Theoretical and numerical analyses , 2010 .
[34] J. Bonnet,et al. The amorphization process of neutron-irradiated crystalline quartz studied by Brillouin scattering , 1994 .
[35] P. Piszora,et al. Effect of Gamma Irradiation on Cement Composites Observed with XRD and SEM Methods in the Range of Radiation Dose 0-1409 MGy , 2008 .
[36] B. Budiansky,et al. Elastic moduli of a cracked solid , 1976 .
[37] Y. Benveniste,et al. A new approach to the application of Mori-Tanaka's theory in composite materials , 1987 .
[38] S. Sawada,et al. EVALUATION OF IRRADIATION EFFECTS ON CONCRETE STRUCTURE -GAMMA-RAY IRRADIATION TESTS ON CEMENT PASTE- , 2013 .
[39] Torben C. Hansen,et al. Physical structure of hardened cement paste. A classical approach , 1986 .
[40] J. Cribb. Shrinkage and Thermal Expansion of a Two Phase Material , 1968, Nature.
[41] J. Kropp,et al. The Effects of Nuclear Radiation on the Mechanical Properties of Concrete , 1978 .
[42] K. Tanaka,et al. Average stress in matrix and average elastic energy of materials with misfitting inclusions , 1973 .
[43] S. E. Pihlajavaara,et al. A review of some of the main results of a research on the ageing phenomena of concrete: Effect of moisture conditions on strength, shrinkage and creep of mature concrete , 1974 .
[44] E. Tazawa,et al. Chemical shrinkage and autogenous shrinkage of hydrating cement paste , 1995 .
[45] Mohsen Ben Haha. Mechanical effects of alkali silica reaction in concrete studied by SEM-image analysis , 2006 .