Microstructure and correlated mechanical properties study of Ni-(Fe, Co)-Mn-(Al, In) as-spun ribbons
Chunyang Zhang (NEEL), Laureline Porcar (NEEL), Salvatore Miraglia, (NEEL), Patricia Donnadieu (SIMaP), Muriel Braccini (SIMaP), Richard Haettel, (NEEL), Marc Verdier (SIMaP)

TL;DR
This study investigates the microstructure and mechanical properties of long Ni-Fe-Mn-(Al, In) as-spun ribbons, revealing how microstructure gradients and elemental substitutions influence their ductility and bending strain capabilities.
Contribution
It provides detailed microstructural and mechanical analysis of Ni-(Fe, Co)-Mn-(Al, In) as-spun ribbons, highlighting effects of microstructure gradients and elemental substitution on properties.
Findings
Gradient microstructure along the thickness due to rapid solidification.
In substitution slightly increases ductility index.
Al substitution triples maximum bending strain to 3%.
Abstract
The Ni-Mn-based shape memory alloys as a promising candidate of elastocaloric material has been reported in many literatures, especially on bulk samples. The as-spun ribbon, which has a larger surface area and is more efficient for heat transfer, is rarely studied and hence of importance. In the present work, we succeeded in producing very long as-spun Ni-Fe-Mn-(Al, In) ribbons, with around 300 mm in length. The microstructure and mechanical properties of these as-spun ribbons were thoroughly investigated by scanning electron microscopy / electron backscattered diffraction (SEM/EBSD), nanoindentation and 3-points bending experiments. Through SEM/EBSD analyses, the microstructure and texture of the as-spun ribbons were studied. A gradient in microstructure exists along the thickness direction (TD) of the ribbon, which is induced by the temperature gradient during fast rate…
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Taxonomy
TopicsShape Memory Alloy Transformations
