4.7 Article

Superelastic damping at nanoscale in ternary and quaternary Cu-based shape memory alloys

期刊

JOURNAL OF ALLOYS AND COMPOUNDS
卷 883, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2021.160865

关键词

Shape Memory Alloys; Cu-based alloys; Superelasticity Mechanical damping; Size effect; Internal friction Nanoindentation

资金

  1. Spanish Ministry of Economy and Competitiveness, MINECO [MAT2017-84069P]
  2. CONSOLIDER-INGENIO [CSD2009-00013]
  3. ELKARTEK-CEMAP project from the Industry Department of the Basque Government
  4. University of the Basque Country UPV/EHU, Spain [17/071]
  5. CONICET of Argentina
  6. UPV/EHU [ESPDOC18/37]

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This study compared the damping capacity of four copper-based SMAs, demonstrating that all four alloys possess intrinsic superelastic damping capacity and offer a wide range of loss factors. Additionally, a size effect on damping at the nanoscale was observed in the Cu-Al-Ni-Ga alloy.
Superelasticity is a characteristic thermomechanical property in shape memory alloys (SMA), which is due to a reversible stress-induced martensitic transformation. Nano-compression experiments made possible the study of this property in Cu-Al-Ni SMA micropillars, showing an outstanding ultra-high mechanical damping capacity reproducible for thousands of cycles and reliable over the years. This scenario motivated the present work, where a comparative study of the damping capacity on four copper-based SMA: Cu-Al-Ni, Cu-Al-Be, Cu-Al-Ni-Be and Cu-Al-Ni-Ga is approached. For this purpose, [001] oriented single crystal micropillars of comparable dimensions (around 1 mu m in diameter) were milled by focused ion beam technique. All micropillars were cycled up to two hundred superelastic cycles, exhibiting a remarkable reproducibility. The damping capacity was evaluated through the dimensionless loss factor eta, calculated for each superelastic cycle, representing the dissipated energy per cycle and unit of volume. The calculated loss factor was averaged between three micro-pillars of each alloy, obtaining the following results: Cu-Al-Ni eta = 0.20 +/- 0.01; Cu-Al-Be eta = 0.100 +/- 0.006; Cu-Al-Ni-Be eta = 0.072 +/- 0.004 and Cu-Al-Ni-Ga eta = 0.042 +/- 0.002. These four alloys exhibit an intrinsic superelastic damping capacity and offer a wide loss factor band, which constitutes a reference for engineering, since this kind of micro/nano structures can potentially be integrated not only as sensors and actuators but also as dampers in the design of MEMS to improve their reliability. In addition, the study of the dependence of the superelastic loss factor on the diameter of the pillar was approached in the Cu-Al-Ni-Ga alloy, and here we demonstrate that there is a size effect on damping at the nanoscale. (c) 2021 The Author(s). Published by Elsevier B.V. CC_BY_NC_ND_4.0

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