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A homogenized free energy model for hysteresis in thin-film shape memory alloys

机译:薄膜形状记忆合金中磁滞的均质化自由能模型

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摘要

Thin-film shape memory alloys (SMAs) have become excellent candidates for microactuator fabrication in microelectromechanical systems due to their capability to achieve very high work densities, produce large deformations, and generate high stresses. In general, the material behavior of SMAs is nonlinear and hysteretic. To achieve the full potential of SMA actuators, it is necessary to develop models that characterize the nonlinearities and hysteresis inherent to the constituent materials. We develop a model that quantifies the nonlinearities and hysteresis inherent to SMAs. The fully thermomechanical model is based on free energy principles combined with stochastic homogenization techniques. It predicts rate-dependent, polycrystalline SMA behavior, and it accommodates heat transfer issues pertinent to thin-film SMAs. The main advantages of this model are that it admits a simple, low-order formulation suitable for implementation and subsequent control design, and that most of the model parameters are identifiable directly from standard measurements. We illustrate aspects of the model through comparison with thin-film SMA superelastic and shape memory effect hysteresis data.
机译:薄膜形状记忆合金(SMAs)已成为微机电系统中微致动器制造的极佳候选者,因为它们具有实现非常高的工作密度,产生大的变形并产生高应力的能力。通常,SMA的材料行为是非线性的和滞后的。为了充分发挥SMA执行器的潜力,有必要开发模型来表征构成材料固有的非线性和磁滞现象。我们开发了一个模型,用于量化SMA固有的非线性和磁滞现象。完全热力学模型基于自由能原理并结合了随机均质技术。它可以预测速率相关的多晶SMA行为,并且可以解决与薄膜SMA相关的传热问题。该模型的主要优点是,它允许采用简单的低阶公式,适合实施和后续控制设计,并且大多数模型参数都可以直接从标准测量中识别出来。我们通过与薄膜SMA超弹性和形状记忆效应滞后数据进行比较来说明模型的各个方面。

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