TY - GEN
T1 - Simulating solid-solid phase transition in shape-memory alloy microstructure by face-offsetting method
AU - Bellur Ramaswamy, Ravi S.
AU - Fried, Eliot
AU - Jiao, Xiangmin
AU - Tortorelli, Daniel A.
PY - 2008
Y1 - 2008
N2 - Advances in the understanding of martensitic transformations (diffusionless, solid-solid phase transformations) have been instrumental to the recent discovery of new low hysteresis alloys. However, some key fundamental issues must be better understood to design still better alloys. Restricting attention to antiplane shear, we use finite element analysis to model the shape-memory alloy microstructure within the Abeyaratne-Knowles continuum thermomechanical framework and use an interface kinetic relation of the kind proposed by Rosakis and Tsai. Geometric singularities and topological changes associated with microstructural evolution pose significant numerical challenges. We address such challenges with a recently developed front-tracking scheme called the face-offsetting method (FOM) to explicitly model phase interfaces. Initial results demonstrate the effectiveness of FOM in resolving needle-like twinned microstructures.
AB - Advances in the understanding of martensitic transformations (diffusionless, solid-solid phase transformations) have been instrumental to the recent discovery of new low hysteresis alloys. However, some key fundamental issues must be better understood to design still better alloys. Restricting attention to antiplane shear, we use finite element analysis to model the shape-memory alloy microstructure within the Abeyaratne-Knowles continuum thermomechanical framework and use an interface kinetic relation of the kind proposed by Rosakis and Tsai. Geometric singularities and topological changes associated with microstructural evolution pose significant numerical challenges. We address such challenges with a recently developed front-tracking scheme called the face-offsetting method (FOM) to explicitly model phase interfaces. Initial results demonstrate the effectiveness of FOM in resolving needle-like twinned microstructures.
KW - Face-offsetting method
KW - Finite element method
KW - Front tracking
KW - Martensitic transformation
KW - Phase transition
KW - Shape-memory alloy microstructure
UR - https://www.scopus.com/pages/publications/40449086134
U2 - 10.1063/1.2896844
DO - 10.1063/1.2896844
M3 - Conference contribution
AN - SCOPUS:40449086134
SN - 9780735404922
T3 - AIP Conference Proceedings
SP - 57
EP - 62
BT - Multiscale and Functionally Graded Materials - Proceedings of the International Conference, FGM IX
T2 - 9th International Conference on Multiscale and Functionally Graded Materials, FGM IX
Y2 - 15 October 2006 through 18 October 2006
ER -