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通过压痕快速表征局部形状记忆特性

Rapid Characterization of Local Shape Memory Properties through Indentation.

作者信息

Li Peizhen, Karaca Haluk E, Cheng Yang-Tse

机构信息

Department of Mechanical Engineering, University of Kentucky, Lexington, Kentucky, 40506-0503, USA.

Department of Chemical and Materials Engineering, University of Kentucky, Lexington, Kentucky, 40506-0046, USA.

出版信息

Sci Rep. 2017 Nov 1;7(1):14827. doi: 10.1038/s41598-017-13434-9.

Abstract

Shape memory alloys (SMAs) have the ability to show large recoverable shape changes upon temperature, stress or magnetic field cycling. Their shape memory, material and magnetic properties (e.g. transformation temperatures, strain, saturation magnetization and strength) determine their prospects for applications from small-scale microelectromechanical systems to large scale aerospace and biomedical systems. It should be noted that properties of SMAs are highly temperature dependent. Generally, the conventional mechanical characterization methods (e.g, tension, compression, and torsion) are used on bulk samples of SMAs to determine those properties. In this article, it will be shown that indentation technique can be used as an alternative rapid method to determine some of the important shape memory properties of SMAs. Indentation response of a high-temperature NiTiHf alloy was determined as a function of temperature. A clear relationship between the work recoverable ratio and transformation temperatures, superelastic and plastic behavior was observed. This work shows that indentation response can be used to measure local superelasticity response, determine phase transformation temperatures and reveal the temperature intervals of the deformation mechanisms of shape memory alloys.

摘要

形状记忆合金(SMA)能够在温度、应力或磁场循环作用下展现出大的可恢复形状变化。它们的形状记忆、材料和磁性能(如转变温度、应变、饱和磁化强度和强度)决定了其在从小规模微机电系统到大规模航空航天和生物医学系统等应用中的前景。应当指出,形状记忆合金的性能高度依赖于温度。一般来说,传统的力学表征方法(如拉伸、压缩和扭转)用于形状记忆合金的块状样品以确定这些性能。在本文中,将表明压痕技术可作为一种替代的快速方法来确定形状记忆合金的一些重要形状记忆性能。测定了一种高温镍钛铪合金的压痕响应随温度的变化。观察到功恢复率与转变温度、超弹性和塑性行为之间存在明确的关系。这项工作表明,压痕响应可用于测量局部超弹性响应、确定相变温度并揭示形状记忆合金变形机制的温度区间。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f290/5665908/edda321b2576/41598_2017_13434_Fig1_HTML.jpg

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