Elastocaloric Potential in Copper-Based SMAs through a Combinatorial Approach

G. Ouyang, Benjamin Hilliard, Jun Cui
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Abstract

Elastocaloric applications exploit the latent heat from a shape memory alloy (SMA) through its stress-induced phase transformation. The elastocaloric potential of a SMA depends on its latent heat, critical transformation stress, hysteresis, heat capacity and conductivity, and, most importantly, its cost-effectiveness. Increasing the latent heat and improving the transformation characteristics are critical to increasing the elastocaloric potential in copper-based SMAs, which depend heavily on their compositions and processing conditions. This paper reports on a comprehensive compositional optimization effort to maximize latent heat while maintaining the near room temperature transition window and minimizing hysteresis for copper-based SMAs. The effort uses a high throughput combinatorial approach to prepare and scan multiple samples with different compositions. The transformation characteristics of grouped samples were determined simultaneously using a novel differential thermal analysis (DTA) method via thermal imaging. Differential scanning calorimetry (DSC) was used to examine the down-selected compositions for verification.
基于组合方法的铜基sma弹性热势研究
弹性热应用利用形状记忆合金(SMA)的潜热,通过其应力诱导的相变。SMA的弹性热势取决于它的潜热、临界转变应力、滞后、热容和电导率,最重要的是,它的成本效益。增加潜热和改善相变特性是提高铜基sma弹性热势的关键,这在很大程度上取决于其成分和加工条件。本文报道了一项全面的成分优化工作,以最大限度地提高潜热,同时保持接近室温的转变窗口,并尽量减少铜基sma的滞后。该工作使用高通量组合方法制备和扫描具有不同成分的多个样品。采用一种新颖的热成像差热分析(DTA)方法同时测定了分组样品的转变特征。采用差示扫描量热法(DSC)对所选成分进行验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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