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Simulating Phase Coarsening of Ultra-High Volume Fractions

机译:模拟超高体积分数的相粗化

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The dynamics of phase coarsening at ultra-high volume fractions is studied based on two-dimensional phase-field simulations by numerically solving the time-dependent Ginzburg-Landau and Cahn-Hilliard equations. The kinetics of phase coarsening at ultra-high volume fractions is discovered. The microstructural evolutions for different ultra-high volume fractions are shown. The scaled particle size distribution as functions of the dispersoid volume fraction is presented. The particle size distribution derived from our simulation at ultra-high volume fractions is close to Wagner's particle size distribution due to interface-controlled ripening rather than Hillert's grain size distribution in grain growth. The changes of shapes of particles are carefully studied with increase of volume fraction. It is found that more liquid-filled triple junctions are formed as a result of particle shape accommodation with increase of volume fraction at the regime of ultra-high volume fraction.
机译:基于二维相场模拟,通过数值求解时间相关的Ginzburg-Landau和Cahn-Hilliard方程,研究了超高体积分数下的相粗化动力学。发现了在超高体积分数下的相粗化动力学。显示了不同超高体积分数的微观结构演变。给出了作为分散体体积分数的函数的按比例缩放的粒度分布。由我们的模拟得出的超高体积分数下的粒径分布由于界面控制的熟化而接近于Wagner的粒径分布,而不是晶粒长大时Hillert的粒径分布。随着体积分数的增加,对颗粒形状的变化进行了仔细研究。发现在超高体积分数的情况下,随着体积分数的增加而形成的颗粒形状适应,形成了更多的液体填充的三重连接。

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