物理
机械
阻力
冲击波
粒子(生态学)
联轴节(管道)
经典力学
压缩性
休克(循环)
颗粒流
压力梯度力
惯性
流量(数学)
两相流
材料科学
海洋学
内科学
地质学
冶金
医学
作者
Yue Ling,Justin L. Wagner,Steven J. Beresh,Sean P. Kearney,S. Balachandar
出处
期刊:Physics of Fluids
[American Institute of Physics]
日期:2012-11-01
卷期号:24 (11)
被引量:149
摘要
The interaction of a planar shock wave with a dense particle curtain is investigated through modeling and experiments. The physics in the interaction between a shock wave with a dense gas-particle mixture is markedly differently from that with a dilute mixture. Following the passage of the shock wave, the dense particle curtain expands rapidly as it propagates downstream and pressures equilibrate throughout the flow field. In the simulations, the particles are viewed as point-particles and are traced in a Lagrangian framework. A physics-based model is then developed to account for interphase coupling. Compared to the standard drag law, four major improvements are made in the present interphase coupling model to take into account: (1) unsteady force contributions to particle force; (2) effect of compressibility on hydrodynamic forces; (3) effect of particle volume fraction on hydrodynamic forces; (4) effect of inter-particle collision. The complex behavior of the dense particle curtain is due to the interplay between two-way coupling, finite particle inertia, and unsteady forces. Incorporation of these effects through significant modeling improvements is essential for the simulation results to agree well with the experimental data. As a result of the large pressure gradient inside the particle curtain, the unsteady forces remain significant for a long time compared to the quasi-steady force and greatly influence the particle curtain motion.
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