Diameter-Dependent Shape Memory Effect and Superelasticity in Ni-Mn-Ga Alloy Micro-fibers

Guanhua Zhang, Jiayue Xu, Haoyang Xie, Zihan Yang, Yan Feng, M. Qian, Jianfei Sun
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Abstract

Abstract: The functional properties of shape memory alloys (SMAs) may be affected by the material size and thus is important for designing micron-sized devices. Here the diameter-dependent size effect was demonstrated in Ni-Mn-Ga fibers with diameters of 15, 41, 53 and 70μm. The effect of fiber diameter on the shape memory effect (SME) and superelasticity (SE) was systematically studied. The results showed that all Ni-Mn-Ga fibers exhibited good stress assisted thermal cycles and SE, both diameter-dependent. For stress assisted thermal cycles, the temperature hysteresis of martensite transformation (MT) and sensitivity of MT temperature vs stress increased with increasing fiber diameter. While for SE, the stress hysteresis, temperature dependence of critical stress and energy dissipation capacity decreased with increasing fiber diameter. Thermodynamic analysis revealed that the diameter-dependent effect may be attributed to the different heat exchange and frictional work dissipation capacities related to the specific surface areas that affected the thermal- or stress-induced MT processes. Such diameter dependence in Ni-Mn-Ga micro-fibers needs to be considered for the design and application in micro-sized devices.
Ni-Mn-Ga合金微纤维的直径相关形状记忆效应和超弹性
摘要:形状记忆合金(SMAs)的功能特性可能受到材料尺寸的影响,因此在微米级器件的设计中具有重要意义。在直径分别为15、41、53和70μm的Ni-Mn-Ga纤维中发现了与直径相关的尺寸效应。系统研究了纤维直径对形状记忆效应(SME)和超弹性(SE)的影响。结果表明,所有Ni-Mn-Ga纤维都表现出良好的应力辅助热循环和SE,两者都与直径有关。在应力辅助热循环中,马氏体相变的温度滞后和温度对应力的敏感性随纤维直径的增大而增大。而对于SE,应力滞后、临界应力的温度依赖性和能量耗散能力随着纤维直径的增大而减小。热力学分析表明,直径依赖效应可能归因于与影响热或应力诱导的MT过程的比表面积相关的不同热交换和摩擦功耗散能力。在微尺寸器件的设计和应用中,需要考虑Ni-Mn-Ga微光纤的这种直径依赖性。
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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