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Subgrid-scale Capillary Breakup Model for Liquid Jet Atomization

机译:液相喷射雾化谱系尺度毛细管分解模型

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A subgrid-scale capillary breakup model has been developed by coupling a Eulerian interface-capturing approach to a Lagrangian point particle method. At the fully resolved scale, the evolution of phase interface is captured by the Refined Level Set Grid method (RLSG), while the under-resolved, small-scale liquid structures are represented by Lagrangian point particles. To couple the level-set method with the Lagrangian approach, a numerical algorithm is developed to identify the under-resolved structures and compute their shape metric. The capillary instability theory is then applied to predict the sizes and number of post-breakup drops needed to replace them with Lagrangian drops. The secondary atomization of the Lagrangian drops is modeled by the stochastic breakup model. To validate the present model, numerical simulations are performed for the breakups of a single liquid filament and a round liquid coaxial jet. Grid-convergence studies for the drop-size distribution of the resulting spray are conducted and compared to the experimental data. The numerical results show good agreement with the experimental data. The present subgrid-scale capillary breakup model reduces the computational cost by relaxing the stringent grid resolution required for multi-scale atomization simulations.
机译:通过将欧拉界面捕获方法耦合到拉格朗日点粒子方法,开发了亚谱级毛细管分解模型。在完全解决的范围内,通过精细电平集网格方法(RLSG)捕获相位接口的演变,而解析的小规模液体结构由拉格朗日点粒子表示。为了将LAGRANGIAN方法的级别设置方法耦合,开发了一种数值算法以识别解析的结构并计算它们的形状度量。然后应用毛细管不稳定理论以预测用拉格朗日滴剂更换替换它们所需的分发后滴的尺寸和数量。拉格朗日滴的二次雾化由随机分手模型进行建模。为了验证本模型,对单个液体丝和圆形液体同轴射流进行分解进行数值模拟。对所得喷雾的滴定分布的电网收敛性研究并与实验数据进行比较。数值结果与实验数据显示出良好的一致性。本谱级谱毛细管分解模型通过放松多尺度雾化模拟所需的严格网格分辨率来降低计算成本。

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