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The flowfield behind two cylinders and flow-induced noise generated from the cylinders in various arrangement are numerically investigated based on the finite difference lattice Boltzmann model with 21 velocity bits, which is introduced a flexible specific heat γ to simulate diatomic gases like air. In an isolated cylinder with two type of mesh, some flow parameters such as Strouhal number S<SUB>t</SUB> and acoustic pressure ?<SUB>p</SUB> simulated from the solution are given and quantitatively compared with those provided the previous works. The effects of the center-to-center pitch ratio L<SUB>cc</SUB>/d=2.0 in staggered circular cylinders as shown in Fig. 1 and angles of incidence α=30°(T<SUB>cc</SUB>/d=0.5), 45°(T<SUB>cc</SUB>/d=0.707) and 60° (T<SUB>cc</SUB>/d=0.866), respectively, are studied. Our analysis focuses on the small-scale instabilities of vortex shedding, which occurs in staggered arrangement. With the results of drag C<SUB>d</SUB> and lift C<SUB>l</SUB> coefficients and vorticity contours, the mechanisms of the interference phenomenon and its interaction with the two-dimensional vortical structures are present in the flowfields under Re ≤ 200. The results show that we successively capture very small pressure fluctuations, with the same frequency of vortex shedding, much smaller than the whole pressure fluctuation around pairs of circular cylinders. The upstream cylinder behaves like an isolated single cylinder, while the downstream one experiences wake-induced flutter. It is expected that, therefore, the relative position of the downstream cylinder has significant effects on the flow-induce noise, hydrodynamic force and vortex shedding characteristics of the cylinders.

목차

Abstract
1. Introduction
2. Computational Methodology
3. Results and Discussion
4. Conclusions
References
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UCI(KEPA) : I410-ECN-0101-2009-559-016351612