4.7 Article

Size effects in martensitic microstructures: Finite-strain phase field model versus sharp-interface approach

Journal

JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS
Volume 95, Issue -, Pages 284-307

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jmps.2016.04.013

Keywords

Phase-field method; Microstructure; Martensite; Size effects; Shape memory alloys

Funding

  1. National Science Center (NCN) in Poland [2014/13/B/ST8/04286]

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A finite-strain phase field model for martensitic phase transformation and twinning in shape memory alloys is developed and confronted with the corresponding sharp-interface approach extended to interfacial energy effects. The model is set in the energy framework so that the kinetic equations and conditions of mechanical equilibrium are fully defined by specifying the free energy and dissipation potentials. The free energy density involves the bulk and interfacial energy contributions, the latter describing the energy of diffuse interfaces in a manner typical for phase-field approaches. To ensure volume preservation during martensite reorientation at finite deformation within a diffuse interface, it is proposed to apply linear mixing of the logarithmic transformation strains. The physically different nature of phase interfaces and twin boundaries in the martensitic phase is reflected by introducing two order-parameters in a hierarchical manner, one as the reference volume fraction of austenite, and thus of the whole martensite, and the second as the volume fraction of one variant of martensite in the martensitic phase only. The microstructure evolution problem is given a variational formulation in terms of incremental fields of displacement and order parameters, with unilateral constraints on volume fractions explicitly enforced by applying the augmented Lagrangian method. As an application, size-dependent microstructures with diffuse interfaces are calculated for the cubic-to-orthorhombic transformation in a CuAINi shape memory alloy and compared with the sharp-interface microstructures with interfacial energy effects. (C) 2016 Elsevier Ltd. All rights reserved.

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