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Rate-independent dissipation in phase-field modelling of displacive transformations

机译:位移变换相场建模中与速率无关的耗散

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In this paper, rate-independent dissipation is introduced into the phase-field framework for modelling of displacive transformations, such as martensitic phase transformation and twinning. The finite-strain phase-field model developed recently by the present authors is here extended beyond the limitations of purely viscous dissipation. The variational formulation, in which the evolution problem is formulated as a constrained minimization problem for a global rate-potential, is enhanced by including a mixed-type dissipation potential that combines viscous and rate-independent contributions. Effective computational treatment of the resulting incremental problem of non-smooth optimization is developed by employing the augmented Lagrangian method. It is demonstrated that a single Lagrange multiplier field suffices to handle the dissipation potential vertex and simultaneously to enforce physical constraints on the order parameter. In this way, the initially non-smooth problem of evolution is converted into a smooth stationarity problem. The model is implemented in a finite-element code and applied to solve two- and three-dimensional boundary value problems representative for shape memory alloys.
机译:在本文中,将速率无关的耗散引入相场框架中,以建模位移变换,例如马氏体相变和孪晶。本文作者最近开发的有限应变相场模型在此扩展到了纯粹的粘性耗散之外。通过包括将粘性和速率无关的贡献结合在一起的混合型耗散势,可以增强变分公式,其中将演化问题公式化为全局速率势的约束最小化问题。通过采用增强的拉格朗日方法,开发了对非平滑优化结果增量问题的有效计算方法。证明了单个拉格朗日乘数场足以处理耗散势顶点并同时对顺序参数施加物理约束。这样,最初的非平稳进化问题就转化为平稳平稳性问题。该模型以有限元代码实现,并用于解决代表形状记忆合金的二维和三维边界值问题。

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