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首页> 外文期刊>Scientific reports. >Phase-Field Simulation of Grain Boundary Evolution In Microstructures Containing Second-Phase Particles with Heterogeneous Thermal Properties
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Phase-Field Simulation of Grain Boundary Evolution In Microstructures Containing Second-Phase Particles with Heterogeneous Thermal Properties

机译:含有二相颗粒的微观结构晶界演化的相场模拟,具有异质热性能

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Understanding the interaction between complex thermal fields and metallic structures at the meso-scale is crucial for the prediction of microstructural evolution during thermomechanical processing. The competitive growth of crystal grains, driven by thermodynamic forces at the grain boundaries, is one of the most fundamental phenomena in metallurgy and solid state physics. The presence of second phase particles, which act as pinning sites for boundaries, drastically alters the coarsening behaviour of the system; particularly when considering that these particles have different thermal properties to the primary phase. In this work a multi-phase field model, incorporating thermal gradient and curvature driving forces, is used to predict grain growth in a Ti6Al4V alloy system with second phase particle inclusions representative of oxide and carbide precipitates. The multi-phase field framework is fully coupled to the heat equation. The incorporation of the thermal gradient driving force enables the detailed behaviour of the grain boundaries around the particles to be predicted. It is shown that the inclusion of particles with a lower thermal conductivity has a significant influence on the coarsening behaviour of various systems of grains, due to the combined effects of thermal shielding and the generation of thermal gradient driving forces between the boundaries and pinning particles.
机译:理解络合物热场和中间尺度的金属结构之间的相互作用对于热机械加工过程中微观结构演化的预测至关重要。由晶粒边界的热力学力驱动的晶粒的竞争生长是冶金和固态物理中最基本的现象之一。第二相颗粒的存在,其用作边界的钉扎位点,大大改变了系统的粗化行为;特别是考虑到这些颗粒对初级相具有不同的热性质。在这项工作中,包括热梯度和曲率驱动力的多相场模型用于预测Ti6Al4V合金系统中的晶粒生长,其具有代表氧化物和碳化物沉淀物的第二相颗粒夹杂物。多相现场框架完全耦合到热方程。掺入热梯度驱动力使得能够预测颗粒周围的晶界的详细行为。结果表明,由于热屏蔽的综合效应和界限之间的热梯度驱动力的组合效果和钉扎颗粒之间的综合效果,将具有较低导热性的颗粒具有显着影响各种晶粒的粗化行为。

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