Cyclic degradation of Co49Ni21Ga30 high-temperature shape memory alloy - On the roles of dislocation activity and chemical order
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In: Shape Memory and Superelasticity Volume 2 / Issue 1 (2015) , S. 37-49; eissn:2199-3858
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Conventional shape memory alloys (SMAs), such as binary Ni-Ti, are typically limited to service temperatures below 100 °C. Recent studies on Co-Ni-Ga high temperature (HT) SMAs revealed the potential that these alloys can be used up to temperatures of about 400 °C. Analysis of the cyclic functional properties showed that degradation in these alloys is mainly triggered by intensive dislocation motion. However, data on the cyclic stress-strain response and the mechanisms leading to functional degradation of Co-Ni-Ga above 300 °C were missing in open literature. Current results reveal that above 300 °C diffusion controlled mechanisms, e.g. precipitation of secondary phases and changes in the chemical degree of order, seem to dictate cyclic instability. Detailed neutron and transmission electron microscopy analyses following superelstic cycling in a temperature range of 200 °C to 400 °C were employed to characterize the changes in degradation behaviour above 300 °C.
@article{doi:10.17170/kobra-202312219261, author ={Krooß, Philipp and Kadletz, Peter M. and Somsen, Christoph and Gutmann, Matthias Josef and Chumlyakov, Yuriy I. and Schmahl, Wolfgang Wilhelm and Maier, Hans Jürgen and Niendorf, Thomas}, title ={Cyclic degradation of Co49Ni21Ga30 high-temperature shape memory alloy - On the roles of dislocation activity and chemical order}, keywords ={620 and 660 and Memory-Legierung and Hochtemperaturverhalten and Martensitumwandlung and Degradation and Pseudoelastizität}, copyright ={https://rightsstatements.org/page/InC/1.0/}, language ={en}, journal ={Shape Memory and Superelasticity}, year ={2015} }