Large eddy simulations of free-falling perforated disks with small inertias

IF 3.6 2区 工程技术 Q1 MECHANICS
Wenhui Zhang, Yingjie Wei
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引用次数: 0

Abstract

The dynamics of free-falling perforated disks of porosity χ=0.2 are numerically investigated by the large eddy simulation (LES) within the range 100Ar1000 and 7×104I2.7×103. Three falling styles are identified, namely spiral motion, spiral irregular motion and Hula-Hoop motion. A linear relationship of the Archimedes number Ar and the Reynolds number Re is observed within the intermediate Reynolds number regime. The mean values of crucial kinematic and dynamic variables are also given, and some scaling laws related to the perforated disk thickness h and diameter D are determined. For the mean descent velocity Uz, the gravitational velocity Ug is a suitable characteristic velocity scale; this is not the case for the terminal velocity Ut, which is proportional to h15D310. The characteristic timescale tv for vortex shedding is proportional to D45/h310, which indicates thin perforated disks facilitate vortex shedding. The mean normal force FN is proportional to h85D75, and irrespective of falling styles. It indicates different falling styles are related to the velocity fluctuations U(t)Uzez. Vortex structures of three falling styles are provided. For spiral motion and spiral irregular motion, a vertical vortex appears inside the large-scale helical vortex. For Hula-Hoop motion, small-scale vortexes are omnipresent, and a new independent vortex is identified. The results of this paper is limited, and much work remains to be done, including the effects of the solid-to-fluid density ratio ρ and holes topology.

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来源期刊
CiteScore
7.30
自引率
10.50%
发文量
244
审稿时长
4 months
期刊介绍: The International Journal of Multiphase Flow publishes analytical, numerical and experimental articles of lasting interest. The scope of the journal includes all aspects of mass, momentum and energy exchange phenomena among different phases such as occur in disperse flows, gas–liquid and liquid–liquid flows, flows in porous media, boiling, granular flows and others. The journal publishes full papers, brief communications and conference announcements.
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