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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Quantitative analysis of the microstructure in NiTi wires by Synchrotron X-ray diffraction: An approach to the cause of the Two Way Shape Memory Effect
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Quantitative analysis of the microstructure in NiTi wires by Synchrotron X-ray diffraction: An approach to the cause of the Two Way Shape Memory Effect

机译:同步X射线衍射通过同步射线微观结构的定量分析:双向形状记忆效应原因的方法

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To understand the complex behaviour of the NiTi shape memory alloys, the use of advanced characterization techniques as Synchrotron X-ray diffraction, becomes more and more necessary. In this paper, this technique was performed in heat-treated, thermally cycled at zero stress and two-way memory trained NiTi wires to evaluate through microstrain and retained martensite which is the predominant micro-mechanism that cause the Two Way Shape Memory Effect. The microstructural effects in the structure of the Austenite by thermal and training methods were quantified separately for each NiTi sample, allowing us to calculate how much of the accumulated microstrain in the Austenite phase is due to the increment in density of dislocations and how much is consequence of the decrease in crystallite size. To achieve this, two different methodologies were used. The mean microstrain and shift index were calculated by analysing the whole diffractogram with the Rietveld method and the Double-Voigt Approach. The individual peak shift and the peak broadening of the Austenite phase were evaluated by the modified Williamson-Hall plot. The results show that as higher is the increase in microstrain by thermal and training procedures, higher is the two-way memory strain of the NiTi sample. The micro mechanical results pointed out that there is a certain formation of retained martensite during two-way memory training, but is not the main cause of the two-way shape memory effect. What is more, it seems that an early formation of retained martensite during training may decrease the generation of two-way shape memory effect. Pre-training thermal procedures that minimize the formation of retained martensite and maximize the increase in microstrain are fundamental to improve the generation of the NiTi two-way memory strain by subsequent training. (C) 2017 Elsevier B.V. All rights reserved.
机译:为了了解NITI形状记忆合金的复杂行为,使用先进的表征技术作为同步X射线衍射,变得越来越需要。在本文中,该技术在热处理中进行,在零应力和双向记忆训练的NITI线上进行热循环,以评估微陶器和保留的马氏体,这是导致两种方式形状记忆效应的主要微机构。通过热和训练方法分别对奥氏体的结构的微观结构效应分别用于每个NITI样品,允许我们计算奥氏体相中的多大累积微纹状体是由于位错密度的增量以及后果多少微晶尺寸的降低。为此,使用了两种不同的方法。通过利用RIETVELD方法和双voigt方法分析整个衍射图和双voigt方法来计算平均微纹刀和换档指数。通过改性的Williamson-Hall Plot评估奥氏体相的个体峰值和奥氏体相的峰值。结果表明,由于热和训练程序的微观纹理增加,较高的是NITI样品的双向内存应变。微型机械结果指出,双向内存训练期间存在一定的保留马氏体,但不是双向形状记忆效应的主要原因。更重要的是,似乎训练期间保留的马氏体的早期形成可能会降低双向形状记忆效应的产生。预先训练的热程序,最小化保留的马氏体的形成,最大化微纹的增加是基本的,以通过随后的训练改善Niti双向内存应变的产生。 (c)2017年Elsevier B.V.保留所有权利。

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