Artículo
The Relevant Role of Dislocations in the Martensitic Transformations in Cu–Al–Ni Single Crystals
Fecha de publicación:
22/03/2018
Editorial:
Springer
Revista:
Shape Memory and Superelasticity
ISSN:
2199-3858
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
The interaction between dislocations and martensitic transformations in Cu–Al–Ni alloys is shortly reviewed. Results from many researchers are critically analyzed towards a clear interpretation of the relevant role played by dislocations on the properties of shape memory alloys in Cu-based alloys. Both thermally and stress-induced transformations are considered and focus is paid on two types of transitions, the β→β′ and the formation of a mixture of martensites: β→β′ + γ′. After cycling in the range where both martensites are formed, the twinned γ′ phase is inhibited and cycling evolves into the formation of only β′. A model which considers the difference in energy of each γ′ twin variant due to the introduced dislocations quantitatively explains the inhibition of γ′ in both thermally and stress-induced cycling. The type of dislocations which are mainly introduced, mixed with Burgers vector belonging to the basal plane of the β′ martensite, enables also to explain the unmodified mechanical behavior during β→β′ cycling. The reported behavior shows interesting advantages of Cu–Al–Ni single crystals if mechanical properties are comparatively considered with those in other Cu-based alloys.
Palabras clave:
CU–AL–NI
,
CYCLING
,
DISLOCATIONS
,
PSEUDOELASTICITY
,
SHAPE MEMORY ALLOYS
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Identificadores
Colecciones
Articulos(CCT - PATAGONIA NORTE)
Articulos de CTRO.CIENTIFICO TECNOL.CONICET - PATAGONIA NORTE
Articulos de CTRO.CIENTIFICO TECNOL.CONICET - PATAGONIA NORTE
Citación
Gastien, Rosana; Sade Lichtmann, Marcos Leonel; Lovey, Francisco Carlos; The Relevant Role of Dislocations in the Martensitic Transformations in Cu–Al–Ni Single Crystals; Springer; Shape Memory and Superelasticity; 4; 1; 22-3-2018; 5-10
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