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Effect of uni- and biaxial strain on phase transformations in Fe thin films

机译:单轴和双轴应变对铁薄膜相变的影响

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Using molecular-dynamics simulation, we study the phase transformations in Fe thin films induced by uni- and biaxial strain. Both the austenitic transformation of a body-centered cubic (bcc) film at the equilibrium temperature of the face-centered cubic (fcc)-bcc transformation and the martensitic transformation of an undercooled fcc film are studied. We demonstrate that different strain states (uni- or biaxial) induce different nucleation kinetics of the new phase and hence different microstructures evolve. For the case of the austenitic transformation, the direction of the applied strain selects the orientation of the nucleated grains of the new phase; the application of biaxial strain leads to a symmetric twinned structure. For the martensitic transformation, the influence of the strain state is even more pronounced, in that it can either inhibit the transformation, induce the homogeneous nucleation of a fine-dispersed array of the new phase resulting in a single-crystalline final state, or lead to the more conventional mechanism of heterogeneous nucleation of grains at the free surfaces, which grow and result in a poly-crystalline microstructure of the transformed material.
机译:使用分子动力学模拟,我们研究了单轴和双轴应变引起的Fe薄膜的相变。研究了在面心立方(fcc)-bcc转变的平衡温度下体心立方(bcc)薄膜的奥氏体转变和过冷fcc薄膜的马氏体转变。我们证明了不同的应变状态(单轴或双轴)会引起新相的不同成核动力学,因此会演化出不同的微观结构。对于奥氏体相变,施加应变的方向选择新相的有核晶粒的方向;双轴应变的施加导致对称的孪晶结构。对于马氏体相变,应变状态的影响甚至更为明显,因为它可以抑制相变,诱导新相的精细分散阵列的均相成核,从而导致单晶的最终状态,或导致这是更常规的机制,即在自由表面上晶粒的异质成核,其生长并导致转化材料的多晶微观结构。

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