论文标题

压痕引起的SMAS中的马氏体转化:相位模拟的见解

Indentation-induced martensitic transformation in SMAs: insights from phase-field simulations

论文作者

Rezaee-Hajidehi, Mohsen, Tůma, Karel, Stupkiewicz, Stanisław

论文摘要

伪弹性形状的记忆合金(SMA)中压痕诱导的马氏体微观结构的直接实验表征是不可能的,因此缺乏有关微结构模式和相关特征的证据和理解。为了填补这一空白,在这项工作中,我们采用了相位方法来对纳米压力期间马氏体相变的详细和系统分析。该目的使用了最近开发的基于有限元的计算模型,并进行了大规模3D模拟的活动。首先,检查了CAULNI(广泛研究的SMA)中的方向依赖性压痕响应。对预测的微观结构的详细研究揭示了一些有趣的特征,其中一些特征与理论预测一致,有些在某种程度上可以通过微观/纳米构造以外的实验来证明。结果还突出了有限形成效应和相位弹性各向异性在模型预测上的关键作用。接下来,进行了一项详细的研究,对凹痕诱导的NITIPD(潜在的低渗疗法SMA)中具有不同PD含量的Martensenitic转化。在磁滞方面,结果证明了转换体积在纳米识别所施加的条件下变化比相位兼容性的主要作用,并强调了界面能量在小尺度上的主要作用。到目前为止,尚未报告此类范围的结果。

Direct experimental characterization of indentation-induced martensitic microstructures in pseudoelastic shape memory alloys (SMAs) is not possible, and thus there is a lack of evidence and understanding regarding the microstructure pattern and related features. To fill this gap, in this work we employ the phase-field method to provide a detailed and systematic analysis of martensitic phase transformation during nanoindentation. A recently-developed finite-element-based computational model is used for this purpose, and a campaign of large-scale 3D simulations is carried out. First, the orientation-dependent indentation response in CuAlNi (a widely studied SMA) is examined. A detailed investigation of the predicted microstructures reveals several interesting features, some of them are consistent with theoretical predictions and some can be (to some extent) justified by experiments other than micro/nanoindentation. The results also highlight the key role of finite-deformation effects and elastic anisotropy of the phases on the model predictions. Next, a detailed study of indentation-induced martensitic transformation in NiTiPd (a potential low-hysteresis SMA) with varying Pd content is carried out. In terms of hysteresis, the results demonstrate the prevailing effect of the transformation volume change over phase compatibility in the conditions imposed by nanoindentation and emphasize on the dominant role of the interfacial energy at small scales. Results of such scope have not been reported so far.

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