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Strongly coupled fluid-particle flows in vertical channels. I. Reynolds-averaged two-phase turbulence statistics

机译:垂直通道中的强耦合的流体粒子流动。 I. Reynolds平均两相湍流统计

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摘要

Simulations of strongly coupled (i.e., high-mass-loading) fluid-particle flows in vertical channels are performed with the purpose of understanding the fundamental physics of wall-bounded multiphase turbulence. The exact Reynolds-averaged (RA) equations for high-mass-loading suspensions are presented, and the unclosed terms that are retained in the context of fully developed channel flow are evaluated in an Eulerian–Lagrangian (EL) framework for the first time. A key distinction between the RA formulation presented in the current work and previous derivations of multiphase turbulence models is the partitioning of the particle velocity fluctuations into spatially correlated and uncorrelated components, used to define the components of the particle-phase turbulent kinetic energy (TKE) and granular temperature, respectively. The adaptive spatial filtering technique developed in our previous work for homogeneous flows [J. Capecelatro, O. Desjardins, and R. O. Fox, “Numerical study of collisional particle dynamics in cluster-induced turbulence,” J. Fluid Mech. 747, R2 (2014)] is shown to accurately partition the particle velocityfluctuations at all distances from the wall. Strong segregation in the components of granular energy is observed, with the largest values of particle-phase TKE associated with clusters falling near the channel wall, while maximum granular temperature is observed at the center of the channel. The anisotropy of the Reynolds stresses both near the wall and far away is found to be a crucial component for understanding the distribution of the particle-phase volume fraction. In Part II of this paper, results from the EL simulations are used to validate a multiphase Reynolds-stress turbulence model that correctly predicts the wall-normal distribution of the two-phase turbulence statistics.
机译:垂直通道中强耦合(即高质量负荷)流体颗粒的模拟是以理解壁限制的多相湍流的基本物理学的目的。提出了用于高质量加载悬浮液的精确雷诺平均(RA)方程,并且第一次在Eulerian-Lagrangian(EL)框架中评估了在完全发育信道流程的上下文中保留的未闭合术语。当前工作中提出的RA配方之间的关键区别和多相湍流模型的先前推导是粒子速度波动的分配到空间相关和不相关的部件中,用于定义颗粒相湍流动能(TKE)的组分和颗粒温度分别。在我们以前的均匀流程中开发的自适应空间过滤技术[J. Capecelatro,O. Desjardins和R. O. Fox,簇诱导湍流中的碰撞粒子动力学的数值研究,J.流体机械。图747,R2(2014)]显示了距离墙壁的所有距离处的颗粒速度整流器精确地分隔粒子速度。观察到颗粒能量的部件中的强偏析,其中粒子相TKe的最大值与沿沟道壁附近的簇相关,而在通道的中心观察到最大粒度。发现河口和遥远附近的雷诺的各向异性被发现是理解粒子相体积分数的分布的重要组件。在本文的第二部分中,EL模拟的结果用于验证多相雷诺 - 应力湍流模型,该模型正确地预测两相湍流统计的壁正态分布。

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