第四系高温形状记忆合金的制备

H. Ahmed, C. Canbay, İ. Özkul
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摘要

在当今科技发展的今天,有用材料越来越受到能源可持续发展的关注。形状记忆合金(sma)由于其独特的伪弹性和形状恢复性能而成为这些有用的材料之一。SMAs可分为cu基(Cu-Zn、Cu-Al和Cu-Sn)、铁基和NiTi。铜基系统由于易于制作和低成本而最有用。在这些系统中,有两个主要阶段;马氏体为低对称温度相,奥氏体为高温相。因此SMA具有一定的特征温度,即各相从高温到低温开始和结束。这些合金在航空航天、医疗、汽车、石油工业、传感器、执行器等方面有许多应用。形状记忆合金(SMAs)的特征转变温度、热力学参数和结构特征对合金成分的变化非常敏感,因此本研究探讨了添加元素对Cu-Al基形状记忆合金特征转变温度、热力学参数和结构的影响。在此背景下,对Cu-12.9Al-22.73Be-0.37Mn (at%)合金和Cu-18.73Al-21.06Be-0.13Mn (at%)合金进行了结构和热力学研究。根据热分析,它们被归类为HTSMA,因为两种合金的马氏体转变温度都在100℃以上。在室温下,用XRD测定了两种合金的马氏体相。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fabrication of quaternary high temperature shape memory alloys
In today’s technology, the useful materials attract more attention for sustainable of energy sources. Shape memory alloys (SMAs) are one of these useful materials due to their unique properties as pseudoelasticity and shape recovery property. SMAs can be classified as Cu-based (Cu-Zn, Cu-Al and Cu-Sn), Iron-based and NiTi. The copper-based system is the most useful because of easy fabrication and low cost production. In these systems, there are two main phases; martensite low symmetric temperature phase and austenite the high temperature phase. So the SMA got certain characteristic temperature that each phase starts and ends from high temperature to low temperature. There are many applications of these alloys as aerospace, medical, automobile, petroleum industry, sensors, actuators, etc. The characteristic transformation temperatures, the thermodynamic parameters and structural features of shape memory alloys (SMAs) are sensitive to variations in alloy composition, so in this study, we searched the effect of additive elements on the characteristic transformation temperatures, thermodynamic parameters and structure of Cu-Al based SMAs. In this context, Cu–12.9Al–22.73Be-0.37Mn (at%) alloy and Cu–18.73Al–21.06Be–0.13Mn (at%) alloy were studied here as structural and thermodynamical. Upon thermal analyses, they were classified as HTSMA since the martensitic transformation temperatures for both alloy became above 100 °C. Also the martensite phases were detected in both alloys by XRD measurements at room temperature.
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