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Dynamic interaction of fixed dual spheres for several configurations and inflow conditions
Authors:A. Jadoon  L. Prahl  J. Revstedt
Affiliation:1. Institute of Fluid Mechanics, China Jiliang University, Hangzhou, China;2. State Key Laboratory of Fluid Power Transmission and Control, Zhejiang University, Hangzhou, China;3. Key Laboratory of Fluid Mechanics, University of Aeronautics and Astronautics, Beijing, China;1. Laboratory of Nanotechnology for Precision Medicine, Fondazione Istituto Italiano di Tecnologia, Via Morego 30 – 16163 Genova, Italy;2. Centro di Eccellenza in Meccanica Computazionale (CEMeC), Politecnico di Bari, Via Re David 200 – 70125 Bari, Italy;3. Dipartimento di Meccanica, Matematica e Management (DMMM), Politecnico di Bari, Via Re David 200 – 70125 Bari, Italy;1. ARC Research Centre for Computational Particle Technology, Department of Chemical Engineering, Monash University, Clayton, VIC 3800, Australia;2. School of Civil Engineering and Transportation, South China University of Technology, Guangzhou, Guangdong 510640, China
Abstract:The changes in force characteristics as well as the shedding patterns for various dual sphere configurations are studied. The Reynolds numbers considered are 300, 600 and two different inflow conditions are used: steady and pulsating. The sphere formations are defined by the separation distance D0 between the spheres and the angle between the line connecting the centres of the spheres and the main flow direction, γ. The position of one of the spheres is varied in the range 0°–90° using a 15° increment. Two separation distances are studied; 1.5D and 3D. The method used for the simulations is the Volume of Solid (VOS) approach, a method based on Volume of Fluid (VOF). A major conclusion from this work is that the sphere interaction alters the wake dynamics by obstructing the vortex shedding (generating a steady wake or a wake with lower Strouhal number) and by changing the direction of the lift force so that it in most cases is directed in the plane containing the sphere centres. The results also show that changing the inflow condition gives the same relative change in drag and lift as for a single sphere. The drag is substantially reduced by placing the sphere downstream in a tandem arrangement and slightly increased in a side-by-side arrangement. However, the effect is decreased by increasing separation distance and increasing Reynolds number.
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