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1-D constitutive model for evolution of stress-induced R-phase and localized Lüders-like stress-induced martensitic transformation of super-elastic NiTi wires

机译:一维本构关系用于超弹性NiTi线的应力诱发R相和局部Lüders样应力诱发马氏体转变的演化

摘要

NiTi alloys have been widely used in the applications for micro-electro-mechanical-systems (MEMS), which often involve some precise and complex motion control. However, when using the NiTi alloys in MEMS application, the main problem to be considered is the degradation of functional property during cycling loading. This also stresses the importance of accurate prediction of the functional behavior of NiTi alloys. In the last two decades, a large number of constitutive models have been proposed to achieve the task. A portion of them focused on the deformation behavior of NiTi alloys under cyclic loading, which is a practical and non-negligible situation. Despite of the scale of modeling studies of the field in NiTi alloys, two experimental observations under uniaxial tension loading have not received proper attentions. First, a deviation from linearity well before the stress-induced martensitic transformation (SIMT) has not been modeled. Recent experiments confirmed that it is caused by the formation of stress-induced R phase. Second, the influence of the well-known localized Lüders-like SIMT on the macroscopic behavior of NiTi alloys, in particular the residual strain during cyclic loading, has not been addressed. In response, we develop a 1-D phenomenological constitutive model for NiTi alloys with two novel features: the formation of stress-induced R phase and the explicit modeling of the localized Lüders-like SIMT. The derived constitutive relations are simple and at the same time sufficient to describe the behavior of NiTi alloys. The accumulation of residual strain caused by R phase under different loading schemes is accurately described by the proposed model. Also, the residual strain caused by irreversible SIMT at different maximum loading strain under cyclic tension loading in individual samples can be explained by and fitted into a single equation in the proposed model. These results show that the proposed model successfully captures the behavior of R phase and the essence of localized SIMT.
机译:NiTi合金已广泛用于微机电系统(MEMS)的应用中,该系统通常涉及一些精确而复杂的运动控制。但是,在MEMS应用中使用NiTi合金时,要考虑的主要问题是循环加载过程中功能性能的下降。这也强调了准确预测NiTi合金功能行为的重要性。在过去的二十年中,已经提出了许多本构模型来完成该任务。其中一部分集中在循环载荷下NiTi合金的变形行为,这是一种实际且不可忽略的情况。尽管在NiTi合金领域进行了模型研究,但在单轴拉伸载荷下的两个实验观察并未得到应有的重视。首先,尚未对应力诱发的马氏体相变(SIMT)之前的线性偏差进行建模。最近的实验证实,这是由于应力诱导的R相的形成所致。第二,尚未解决众所周知的局部Lüders形SIMT对NiTi合金宏观行为的影响,特别是循环加载过程中的残余应变。作为回应,我们为NiTi合金开发了一种1-D现象学本构模型,具有两个新颖的特征:应力诱导的R相的形成和局部Lüders状SIMT的显式建模。导出的本构关系很简单,同时足以描述NiTi合金的行为。所提出的模型准确地描述了在不同加载方案下R相引起的残余应变的累积。同样,在单个样品的循环拉伸载荷下,在不同的最大载荷应变下,由不可逆SIMT引起的残余应变可以通过所提出的模型解释并拟合为一个方程。这些结果表明,所提出的模型成功地捕获了R相的行为和局部SIMT的本质。

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