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Experimental and numerical determinations of the initial surface of phase transformation under biaxial loading in some polycrystalline shape-memory alloys
Authors:C Lexcellent  A Vivet  C Bouvet  S Calloch  P Blanc
Institution:

a Laboratoire de Mécanique Appliquée R. Chaléat, UFR des Sciences et des Techniques, Université de Franche-Comté, 24 chemin de l'Epitaphe, 25000, Besancon, France

b Laboratoire Universitaire de Recherche Scientifique d'Alençon, IUT Alençon, Université de Caen Basse-Normandie, 61250, Damigny, France

c Laboratoire de Mécanique et Technologie, ENS de Cachan, 61 avenue du Président Wilson 94235, Cachan Cedex, France

Abstract:Biaxial proportional loading such as tension (compression)–internal pressure and bi-compression tests are performed on a Cu-Zn-Al and Cu-Al-Be shape memory polycrystals. These tests lead to the experimental determination of the initial surface of phase transformation (austenite→martensite) in the principal stress space (σ12). A first “micro–macro” modeling is performed as follows. Lattice measurements of the cubic austenite and the monoclinic martensite cells are used to determine the “nature” of the phase transformation, i.e. an exact interface between the parent phase and an untwinned martensite variant. The yield surface is obtained by a simple (Sachs constant stress) averaging procedure assuming random texture. A second modeling, performed in the context of the thermodynamics of irreversible processes, consists of a phenomenological approach at the scale of the polycrystal. These two models fit the experimental phase transformation surface well.
Keywords:A  Phase transformation Microstructures  B  Polycrystalline material  Strain compatibility  C  Mechanical testing
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