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Modelling compressible dense and dilute two-phase flows

机译:模拟可压缩密集和稀释两相流动

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Many two-phase flow situations, from engineering science to astrophysics, deal with transition from dense (high concentration of the condensed phase) to dilute concentration (low concentration of the same phase), covering the entire range of volume fractions. Some models are now well accepted at the two limits, but none are able to cover accurately the entire range, in particular regarding waves propagation. In the present work, an alternative to the Baer and Nunziato (BN) model [Baer, M. R. and Nunziato, J. W., "A two-phase mixture theory for the deflagration-to-detonation transition (DDT) in reactive granular materials," Int. J. Multiphase Flow 12(6), 861 (1986)], initially designed for dense flows, is built. The corresponding model is hyperbolic and thermodynamically consistent. Contrarily to the BN model that involves 6 wave speeds, the new formulation involves 4 waves only, in agreement with the Marble model [Marble, F. E., "Dynamics of a gas containing small solid particles," Combustion and Propulsion (5th AGARD Colloquium) (Pergamon Press, 1963), Vol. 175] based on pressureless Euler equations for the dispersed phase, a well-accepted model for low particle volume concentrations. In the new model, the presence of pressure in the momentum equation of the particles and consideration of volume fractions in the two phases render the model valid for large particle concentrations. A symmetric version of the new model is derived as well for liquids containing gas bubbles. This model version involves 4 characteristicwave speeds as well, but with different velocities. Last, the two sub-models with 4 waves are combined in a unique formulation, valid for the full range of volume fractions. It involves the same 6 wave speeds as the BN model, but at a given point of space, 4 waves only emerge, depending on the local volume fractions. The non-linear pressure waves propagate only in the phase with dominant volume fraction. The new model is tested numerically on various test problems ranging from separated phases in a shock tube to shock-particle cloud interaction. Its predictions are compared to BN and Marble models as well as against experimental data showing clear improvements. Published by AIP Publishing.
机译:许多两相流动情况从工程科学到天体物理学,处理从致密(高浓度的冷凝相)过渡到稀释浓度(低浓度相同相),覆盖整个体积级分。现在,某些型号在两个限制下很好地接受,但没有能够精确地覆盖整个范围,特别是关于波传播。在目前的工作中,替代鲍尔和Nunziato(BN)模型[Baer,Mr和Nunziato,JW,“在反应性粒状材料中的脱气 - 爆炸转变(DDT)的两相混合理论,”INT 。 J.构建最初设计用于密集流的多相流动12(6),861(1986)]。相应的模型是双曲和热力学上一致的。与涉及6波速度的BN模型,新配方仅涉及4波,同时与大理石模型[大理石,FE,“动力学的含有小固体颗粒的气体,”燃烧和推进(第5次agard Colloquium)( Pergamon Press,1963年),Vol。基于用于分散相的无气欧拉方程,一种用于低颗粒体积浓度的良好可接受的模型。在新模型中,颗粒的动量方程中的存在压力和两个阶段中体积级分的考虑使得模型适用于大的颗粒浓度。对于含有气泡的液体来说,衍生新模型的对称版本。此模型版本也涉及4个特征波速度,但具有不同的速度。最后,具有4个波的两个子模型在独特的配方中组合,有效地用于全系列体积分数。它涉及与BN模型相同的6波速度,而是在给定的空间点,仅在局部体积分数上仅出现4个波。非线性压力波仅在具有显性体积分数的相中繁殖。新模型在数值上进行了数量地测试,各种测试问题范围从冲击管中的分离相位到震动粒子云相互作用。将其预测与BN和大理石模型进行比较,以及针对显示清晰改进的实验数据。通过AIP发布发布。

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