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A micromechanical continuum model for the tensile behavior of shape memory metal nanowires

机译:形状记忆金属纳米线拉伸行为的微机械连续模型

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We have previously discovered a novel shape memory effect and pseudoelastic behavior in single-crystalline face-centered-cubic metal (Cu, Ni, and Au) nanowires. Under tensile loading and unloading, these wires can undergo recoverable elongations of up to 50%, well beyond the recoverable strains of 5-8% typical for most bulk shape memory alloys. This phenomenon only exists at the nanoscale and is associated with a reversible lattice reorientation driven by the high surface-stress-induced internal stresses. We present here a micromechanical continuum model for the unique tensile behavior of these nanowires. Based on the first law of thermodynamics, this model decomposes the lattice reorientation process into two parts: a reversible, smooth transition between a series of phase-equilibrium states and a superimposed irreversible, dissipative twin boundary propagation process. The reversible part is modeled within the framework of strain energy functions with multiple local minima. The irreversible, dissipative nature of the twin boundary propagation is due to the ruggedness of strain energy curves associated with dislocation nucleation, glide, and annihilation. The model captures the major characteristics of the unique behavior due to lattice reorientation and accounts for the size and temperature effects, yielding results that are in excellent agreement with the results of molecular dynamics simulations.
机译:我们以前已经发现了一种新的形状记忆效应和单晶面心立方金属(Cu,Ni和Au)纳米线的伪弹性行为。在拉伸载荷和卸载载荷下,这些金属丝可经历高达50%的可恢复伸长率,远远超出了大多数块状形状记忆合金典型的5%至8%的可恢复应变。这种现象仅存在于纳米级,并且与由高表面应力引起的内应力驱动的可逆晶格取向有关。我们在这里介绍这些纳米线的独特拉伸行为的微机械连续模型。基于热力学第一定律,该模型将晶格重新定向过程分解为两个部分:一系列相平衡状态之间的可逆,平稳过渡和叠加的不可逆耗散双边界传播过程。可逆部分是在具有多个局部最小值的应变能函数框架内建模的。孪晶边界传播的不可逆耗散性质是由于与位错形核,滑移和an没相关的应变能曲线的坚固性。该模型捕获了由于晶格重新定向而引起的独特行为的主要特征,并说明了尺寸和温度效应,产生的结果与分子动力学模拟的结果极好一致。

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