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Direct numerical simulation and analysis of instability enhancing parameters in liquid sheets at moderate Reynolds numbers

机译:中等雷诺数下液体片材中不稳定性增强参数的直接数值模拟和分析

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Direct numerical simulations based on the volume-of-fluid method have been performed in order to identify the influence of the inflow velocity conditions on the sensitivity of primary breakup phenomena. A liquid sheet ejected into a gaseous environment at moderate Reynolds numbers ranging from Re=3000 to 7000 was considered. The numerical setup allows to vary the influencing parameters individually such that numerical simulations can be performed as "numerical experiments" by varying each of the possible parameters separately. The focus of the present study was directed to the identification of those parameters that most strongly enhance primary breakup phenomena. These key parameters are the flow quantities such as the range of the inflow velocity and the inherent character of the mean velocity profile as well as the corresponding dimensionless groups and turbulence quantities of the nozzle flow. The present results show that in addition to these well known quantities the kinetic energy flux, which depends on the character of the mean velocity profile generated by the nozzle geometry, has a drastic influence on the instabilities appearing. Detailed insight into the flow phenomena is given, such as the velocity profile relaxation and the development of shear layers as well as the spreading rates appearing depending on the inflow velocity conditions. In addition, the influence of the spatial resolution as well as the influence of a simplified two-dimensional compared to a three-dimensional setup has been investigated. The outcome of different mean velocity profiles at the inflow is compared by analyzing the typical kinetic energy and spreading rate issued by different nozzle designs. (C) 2008 American Institute of Physics.
机译:为了确定流入速度条件对初级破碎现象敏感性的影响,已经进行了基于流体体积法的直接数值模拟。考虑以 Re=3000 至 7000 的中等雷诺数喷射到气态环境中的液态片。数值设置允许单独改变影响参数,以便通过单独改变每个可能的参数来将数值模拟作为“数值实验”进行。本研究的重点是确定那些最强烈地增强初级破裂现象的参数。这些关键参数是流量,例如流入速度的范围和平均速度曲线的固有特性,以及喷嘴流的相应无量纲群和湍流量。目前的结果表明,除了这些众所周知的量外,动能通量(取决于喷嘴几何形状产生的平均速度分布的特征)对出现的不稳定性有很大影响。详细介绍了流动现象,例如速度剖面松弛和剪切层的发展,以及根据流入速度条件出现的扩散速率。此外,还研究了空间分辨率的影响以及与三维设置相比简化二维设置的影响。通过分析不同喷嘴设计发出的典型动能和扩散速率,比较了流入处不同平均速度曲线的结果。(C) 2008年美国物理学会。

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