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Void-shape effects on strength properties of nanoporous materials
Institution:1. Division of Engineering and Applied Science, California Institute of Technology, Pasadena, CA 91125, United States;2. Department of Civil Engineering and Computer Science, University of Rome “Tor Vergata”, Via del Politecnico 1, 00133 Rome, Italy;3. Université Pierre et Marie Curie, Institut D’Alembert, UMR 7190 CNRS, 4 Place Jussieu, 75252 Paris Cedex 05, France;1. Institute of Problems in Mechanical Engineering, Bolshoy 61, V.O., Saint Petersburg 199178, Russia;2. St. Petersburg State Polytechnical University, Polytechnicheskaya St., 29, Saint Petersburg 195251, Russia;1. CEA, DEN, DANS, DM2S, SEMT, Laboratoire d’Études de Mécanique Sismique, F-91191 Gif-sur-Yvette, France;2. LMT, ENS Cachan, CNRS, Université Paris-Saclay, 61 avenue du Président Wilson, F-94230 Cachan, France
Abstract:In this paper, strength properties of nanoporous materials with spheroidal nanocavities are investigated via a Molecular Dynamics approach applied to a nanovoided aluminium single crystal, in the case of a fixed porosity level, and for prolate, oblate and spherical void shapes. Estimates of the effective strength domain are provided, by considering several mechanical loadings including axisymmetric and shear strain-rate states. Void-shape effects are quantified for different values of the void aspect ratio, mainly resulting in an overall weakening of the sample as the spheroidal nanovoid assumes either an oblate or a prolate shape, in comparison to the case of a spherical void. Finally, it is observed that the computed strength profiles exhibit the following specific features: (i) a strong dependence on the hydrostatic, second-order and third-order deviatoric stress invariants, (ii) more significant void-shape effects for triaxial-expansion stress states with a small hydrostatic component, and (iii) a more pronounced influence of the spheroid shape, as the aspect ratio is varied, in the presence of an oblate nanovoid rather than of a prolate one.
Keywords:Strength properties  Void-shape effects  Nanoporous materials  Molecular Dynamics
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