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三维混合层中分散固体颗粒对相干涡旋结构的调制作用

Modulation on coherent vortex structures by dispersed solid particles in a three-dimensional mixing layer.

作者信息

Fan Jianren, Luo Kun, Zheng Youqu, Jin Hanhui, Cen Kefa

机构信息

Institute for Thermal Power Engineering and CE & EE, Zhejiang University, Hangzhou 310027, China.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2003 Sep;68(3 Pt 2):036309. doi: 10.1103/PhysRevE.68.036309. Epub 2003 Sep 19.

DOI:10.1103/PhysRevE.68.036309
PMID:14524892
Abstract

Large-scale vortex structures and their effects on the dispersion of particles in turbulent free shear flows are very important in many industrial applications, such as combustion, pollution control, and materials processing. In order to understand large-scale vortex structures and particle dispersion in depth, as well as their interaction effects, a two-way-coupled three-dimensional mixing layer laden with particles at a Stokes number of 5 initially located in the upper half region is studied numerically. A pseudospectral method was used to directly simulate the flow fluid, and the Lagrangian approach was used to trace particles. The concept of computational particles is introduced to vary the mass loading of particles. The momentum coupling effect introduced by a particle approximates to a point force. The simulation results show that coherent structures are still dominant in the mixing layer, but the flow dynamics and particle dispersion are modulated. The length of large-scale vortex structures is shortened and the pairing is delayed. Higher mass loading results in lower energy of the fluid in the phase of Kelvin-Helmholtz rolling up, while in the pairing process of large-scale vortex structures, the energy of the fluid increases as the mass loading increases. Higher mass loading also leads to larger mixed fluid thickness and Reynolds stresses of the flow. In addition, the particle dispersion along the transverse direction differs from that along the spanwise direction, which indicates that the effects of the addition of a particle on the spanwise large-scale vortex structures are different from those on the streamwise large-scale vortex structures.

摘要

大规模涡旋结构及其对湍流自由剪切流中颗粒扩散的影响在许多工业应用中非常重要,如燃烧、污染控制和材料加工。为了深入理解大规模涡旋结构和颗粒扩散及其相互作用效应,对一个初始位于上半区域、斯托克斯数为5的含颗粒三维混合层进行了双向耦合数值研究。采用拟谱方法直接模拟流体流动,并用拉格朗日方法追踪颗粒。引入计算颗粒的概念以改变颗粒的质量负荷。颗粒引入的动量耦合效应近似于点力。模拟结果表明,相干结构在混合层中仍然占主导地位,但流动动力学和颗粒扩散受到调制。大规模涡旋结构的长度缩短,配对延迟。较高的质量负荷导致在开尔文-亥姆霍兹卷起阶段流体能量降低,而在大规模涡旋结构的配对过程中,流体能量随着质量负荷的增加而增加。较高的质量负荷还导致流动的混合流体厚度和雷诺应力增大。此外,颗粒沿横向的扩散与沿展向的扩散不同,这表明添加颗粒对展向大规模涡旋结构的影响与对流向大规模涡旋结构的影响不同。

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