Low driving-force stable bending cooling via fatigue-resistant hierarchical NiTi shape memory alloy
Abstract
Elastocaloric cooling with shape memory alloys (SMAs) is emerging as a promising candidate for next-generation, environmentally friendly refrigeration. However, its development is hindered by the large driving force and low efficiency associated with uniaxial loading modes. In response, we present an innovative elastocaloric air cooling approach that utilizes the bending of NiTi beams, offering a low-force and energy-efficient solution. We achieve a continuous maximum temperature drop of 0.91 K and a dissipated energy of 15.1 N mm at a low specific driving force of 220 N. Notably, the specimen achieves over 5 million cycles under a maximum surface tensile strain of 1.94% for macroscopic cyclic bending, via a pre-strained, warm laser shock peening (pw-LSP) method. This unprecedented fatigue resistance originates from the formation of a hierarchical microstructure and a large compressive residual stress of over 1 GPa. This work demonstrates the great potential of bending induced elastocaloric cooling in the near future.
Keywords
Cite
@article{arxiv.2412.19440,
title = {Low driving-force stable bending cooling via fatigue-resistant hierarchical NiTi shape memory alloy},
author = {Kai Yan and Kangjie Chu and Peng Hua and Pengbo Wei and Hanlin Gu and Qiming Zhuang and Weifeng He and Fuzeng Ren and Qingping Sun and Robert O. Ritchie},
journal= {arXiv preprint arXiv:2412.19440},
year = {2024}
}
Comments
75 pages, 41 figures