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首页> 外文期刊>Computational Materials Science >Constitutive model for localized Lüders-like stress-induced martensitic transformation and super-elastic behaviors of laser-welded NiTi wires
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Constitutive model for localized Lüders-like stress-induced martensitic transformation and super-elastic behaviors of laser-welded NiTi wires

机译:激光焊接NiTi丝局部Lüders样应力诱发马氏体转变和超弹性行为的本构模型

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The application of the shape memory alloy NiTi in micro-electro-mechanical-systems (MEMSs) is extensive nowadays. In MEMS, complex while precise motion control is always vital. This makes the degradation of the functional properties of NiTi during cycling loading such as the appearance of residual strain become a serious problem to study, in particular for laser micro-welded NiTi in real applications. Although many experimental efforts have been put to study the mechanical properties of laser welded NiTi, surprisingly, up to the best of our understanding, there has not been attempts to quantitatively model the laser-welded NiTi under mechanical cycling in spite of the accurate prediction required in applications and the large number of constitutive models to quantify the thermo-mechanical behavior of shape memory alloys. As the first attempt to fill the gap, we employ a recent constitutive model, which describes the localized SIMT in NiTi under cyclic deformation; with suitable modifications to model the mechanical behavior of the laser welded NiTi under cyclic tension. The simulation of the model on a range of tensile cyclic deformation is consistent with the results of a series of experiments. From this, we conclude that the plastic deformation localized in the welded regions (WZ and HAZs) of the NiTi weld-ment can explain most of the extra amount of residual strain appearing in welded NiTi compared to the bare one. Meanwhile, contrary to common belief, we find that the ability of the weldment to memorize its transformation history, sometimes known as 'return point memory', still remains unchanged basically though the effective working limit of this ability reduces to within 6% deformation.
机译:如今,形状记忆合金NiTi在微机电系统(MEMS)中的应用非常广泛。在MEMS中,复杂而精确的运动控制始终至关重要。这使得镍钛合金在循环加载过程中的功能性能下降(例如出现残余应变)成为研究的严重问题,特别是对于实际应用中的激光微焊接镍钛合金而言。尽管已经进行了许多实验研究来研究激光焊接NiTi的机械性能,但令人惊讶的是,据我们所知,尽管需要精确的预测,但仍没有尝试在机械循环下对激光焊接NiTi进行定量建模。应用和大量本构模型来量化形状记忆合金的热机械行为。作为填补这一空白的首次尝试,我们采用了一种最新的本构模型,该模型描述了循环变形下NiTi中的局部SIMT。进行适当的修改以模拟激光焊接NiTi在循环张力下的机械性能。该模型在一系列拉伸循环变形方面的仿真与一系列实验的结果一致。由此,我们得出结论,与裸露的相比,位于NiTi焊件的焊接区域(WZ和HAZ)中的塑性变形可以解释大部分出现在焊接的NiTi中的残余应变。同时,与通常的看法相反,我们发现焊件记忆其转变历史的能力(有时称为“返回点记忆”)基本上保持不变,尽管该能力的有效工作极限降低到6%变形以内。

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