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Phase structural ordering kinetics of second-phase formation in the vicinity of a crack

机译:裂缝附近的第二阶段形成的相结构排序动力学

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The formation of a second phase in presence of a crack in a crystalline material is modelled and studied for different prevailing conditions in order to predict and a posteriori prevent failure, e.g. by delayed hydride cracking. To this end, the phase field formulation of Ginzburg-Landau is selected to describe the phase transformation, and simulations using the finite volume method are performed for a wide range of material properties. A sixth order Landau potential for a single structural order parameter is adopted because it allows the modeling of both first and second order transitions and its corresponding phase diagram can be outlined analytically. The elastic stress field induced by the crack is found to cause a space-dependent shift in the transition temperature, which promotes a second-phase precipitation in vicinity of the crack tip. The spatio-temporal evolution during nucleation and growth is successfully monitored for different combinations of material properties and applied loads. Results for the second-phase shape and size evolution are presented and discussed for a number of selected characteristic cases. The numerical results at steady state are compared to mean-field equilibrium solutions and a good agreement is achieved. For materials applicable to the model, the results can be used to predict the evolution of an eventual second-phase formation through a dimensionless phase transformation in the crack-tip vicinity for given conditions.
机译:在结晶材料的裂缝存在下形成第二相对于不同的普遍条件,以预测和后验预测失效,例如,预测和研究。通过延迟氢化物裂化。为此,选择Ginzburg-Landau的相位现场制剂来描述相变,使用有限体积法进行模拟,用于各种材料特性。采用第六阶Landau电位,因为它允许分析第一和二阶转换和其相应的相图的建模。发现由裂缝引起的弹性应力场在过渡温度下引起空间依赖性偏移,这促进了裂纹尖端附近的第二相沉淀。成功监测成核和生长期间的时空进化,以针对材料性能的不同组合和施加的载荷。呈现和讨论了第二阶段形状和尺寸演化的结果,用于许多所选特征案例。将稳态的数值结果与平均均衡解决方案进行比较,实现了良好的一致性。对于适用于该模型的材料,结果可用于预测通过在给定条件下通过裂缝尖端附近的无量纲相变的最终第二相形成的演变。

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