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Particle-resolved direct numerical simulation of homogeneous isotropic turbulence modified by small fixed spheres

机译:固定小球修正的均质各向同性湍流的粒子解析直接数值模拟

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A statistically stationary homogeneous isotropic turbulent flow modified by 64 small fixed non-Stokesian spherical particles is considered. The particle diameter is approximately twice the Kolmogorov length scale, while the particle volume fraction is 0.001. The Taylor Reynolds number of the corresponding unladen flow is 32. The particle-laden flow has been obtained by a direct numerical simulation based on a discretization of the incompressible Navier-Stokes equations on 64 spherical grids overset on a Cartesian grid. The global (space-and time-averaged) turbulence kinetic energy is attenuated by approximately 9 %, which is less than expected. The turbulence dissipation rate on the surfaces of the particles is enhanced by two orders of magnitude. More than 5% of the total dissipation occurs in only 0.1% of the flow domain. The budget of the turbulence kinetic energy has been computed, as a function of the distance to the nearest particle centre. The budget illustrates how energy relatively far away from particles is transported towards the surfaces of the particles, where it is dissipated by the (locally enhanced) turbulence dissipation rate. The energy flux towards the particles is dominated by turbulent transport relatively far away from particles, by viscous diffusion very close to the particles, and by pressure diffusion in a significant region in between. The skewness and flatness factors of the pressure, velocity and velocity gradient have also been computed. The global flatness factor of the longitudinal velocity gradient, which characterizes the intermittency of small scales, is enhanced by a factor of six. In addition, several point-particle simulations based on the Schiller-Naumann drag correlation have been performed. A posteriori tests of the point-particle simulations, comparisons in which the particle-resolved results are regarded as the standard, show that, in this case, the point-particle model captures both the turbulence attenuation and the fraction of the turbulence dissipation rate due to particles reasonably well, provided the (arbitrary) size of the fluid volume over which each particle force is distributed is suitably chosen.
机译:考虑了由64个固定的非Stokesian固定球形小颗粒修正的统计平稳均质各向同性湍流。粒径约为Kolmogorov长度标度的两倍,而粒径分数为0.001。相应的无载流的泰勒雷诺数为32。载流是通过直接数值模拟获得的,该模拟基于笛卡尔网格上64个球面网格上不可压缩的Navier-Stokes方程的离散化。整体(空间和时间平均)湍流动能衰减了大约9%,这比预期的要小。颗粒表面的湍流耗散率提高了两个数量级。总耗散的5%以上仅发生在流域的0.1%中。根据到最近粒子中心的距离,已计算出湍流动能的预算。该预算说明了如何将相对远离粒子的能量向粒子表面传输,并通过(局部增强的)湍流耗散率进行耗散。朝向粒子的能量通量主要由相对远离粒子的湍流传输,非常接近粒子的粘性扩散以及介于两者之间的显着区域中的压力扩散决定。还计算了压力,速度和速度梯度的偏度和平面度因子。纵向速度梯度的全局平坦度因子(代表小尺度的间歇性)增加了六倍。另外,已经进行了基于席勒-瑙曼阻力相关性的几个点粒子模拟。点粒子模拟的后验测试(以粒子分解结果为标准进行的比较)表明,在这种情况下,点粒子模型既捕获了湍流衰减,又捕获了湍流耗散率的分数。如果适当地选择了每个粒子力分布在其上的流体体积的(任意)大小,则粒子可以合理地很好地分布到粒子上。

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