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Dissipation and inter-scale transfer in fully coupled particle and fluid motions in homogeneous isotropic forced turbulence

机译:均匀各向同性强迫湍流中完全耦合粒子和流体运动的耗散和尺度间转移

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摘要

This work examines in detail the coupling mechanism between a stationary, homogeneous and isotropic turbulent (HIT) flow and particles, including the effect of particle-particle collisions. In order to illustrate how the physics can be elucidated of four-way interactions, a series of coupled Direct Numerical Simulations (DNS) of forced HIT are performed on a 1283 periodic box at two Taylor Reynolds numbers, 35.4 and 58.0, with interacting particles of different global Stokes numbers and volume fractions. The results show that fluid dissipation decreases up to 32% with increasing global Stokes numbers and particle volume fractions. Moreover, the corresponding dissipation when ignoring particle-particle collisions is over-estimated by up to 7% compared to the fully coupled simulations. A spectral analysis of the coupling mechanism reveals that the particles transfer energy from the large to the small scales, thereby explaining the difference in dissipation. Finally, a model spectrum for the coupling between the turbulent fluid and the particles is proposed.
机译:这项工作详细研究了固定,均质和各向同性湍流(HIT)与颗粒之间的耦合机理,包括颗粒间碰撞的影响。为了说明如何阐明四向相互作用的物理原理,在1283个周期盒上以两个泰勒雷诺数35.4和58.0进行了一系列耦合的强制HIT直接数值模拟(DNS),其中相互作用的粒子为不同的全局斯托克斯数和体积分数。结果表明,随着整体斯托克斯数和颗粒体积分数的增加,流体耗散最多降低32%。此外,与完全耦合的模拟相比,忽略粒子-粒子碰撞时的相应耗散被高估了高达7%。耦合机理的光谱分析表明,粒子将能量从大尺度转移到小尺度,从而解释了耗散的差异。最后,提出了湍流与颗粒之间耦合的模型谱。

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