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- W2018897254 abstract "Nanoscaled lamellar structures involve complex deformation behaviour at finite strain due to the presence of a large number of interfaces. The aim of the work is to develop a micromechanical approach based on interfacial operators in the context of statistical continuum mechanics. Using Hill's formalism, constitutive equations at mesoscale (1 μm) are derived from Nemat-Nasser's finite elastic-plastic deformation model [3,5] and solved numerically by a self-consistent method [1]. At micro-scale (O.1 μm), a thermodynamical process may be defined to describe intrinsic hardening mechanism found to be linearly dependent with the interlamellar spacing's inverse [4]. Specific crystal plasticity of both phases may then be introduced in the micromechanical approach to obtain a double scale model describing global and local behaviour of a pearlitic ilot under an imposed loading." @default.
- W2018897254 created "2016-06-24" @default.
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- W2018897254 date "2000-01-01" @default.
- W2018897254 modified "2023-09-26" @default.
- W2018897254 title "Micro-mechanical Modelling of a Bi-crystal Lamellar Composite's Behaviour at Large strain: A Double Scaled Transition Method" @default.
- W2018897254 cites W1993614960 @default.
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- W2018897254 doi "https://doi.org/10.1002/zamm.20000801488" @default.
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