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DNS of gas bubbles behaviour using an improved 3D front tracking model-Model development

机译:使用改进的3D前端跟踪模型对气泡行为进行DNS分析-模型开发

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In recent years CFD has proven to be a valuable and powerful tool to advance our understanding of complex multiphase flow systems arising in industrial applications. However, the predictive capabilities of this tool are determined by many factors of physical and numerical origin but in particular by the quality of the closures adopted for the description of the interface forces. The objective of this study is to improve the front tracking method in order to compute such forces with sufficient accuracy. This paper describes the further development of a 3D front tracking model to achieve improved volume conservation and circumvent problems related to the representation of surface tension. First, we have included a method to handle the pressure jump at the interface. This causes the spurious currents, observed in conventional front tracking, to decrease with two orders of magnitude. Also the advection scheme has been adapted, using higher order velocity interpolation (using cubic splines), and Runge-Kutta time-stepping, in order to prevent considerable volume changes of the dispersed phase. Test simulations involving a stationary bubble, a standard advection test and an oscillating droplet, demonstrate the effect of these improvements. The implementation of these procedures enlarged the computational window and in particular enabled the simulation of very small bubbles, where large surface forces dominate, without any significant spurious currents or volume loss.
机译:近年来,CFD已被证明是提高我们对工业应用中出现的复杂多相流系统的理解的有价值和强大的工具。但是,该工具的预测能力取决于许多物理和数字来源,但尤其取决于描述界面力所采用的封闭件的质量。这项研究的目的是改进前跟踪方法,以便以足够的精度计算这种力。本文介绍了3D前端跟踪模型的进一步开发,以实现改进的体积守恒和避免与表面张力表示有关的问题。首先,我们提供了一种方法来处理界面上的压力跳跃。这导致在常规前跟踪中观察到的杂散电流减小两个数量级。同样,采用高阶速度插值(使用三次样条)和Runge-Kutta时间步长调整了平流方案,以防止分散相的体积发生较大变化。涉及固定气泡,标准对流测试和振荡液滴的测试模拟证明了这些改进的效果。这些程序的实施扩大了计算窗口,尤其是能够模拟很小的气泡,在气泡较大的表面力占主导的情况下,没有任何明显的杂散电流或体积损失。

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