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Lattice Boltzmann simulation of the convective heat transfer from a stream-wise oscillating circular cylinder
Affiliation:1. Department of Digestive Surgery, University Hospital Estaing, Place Lucie Aubrac, 63003 Clermont-Ferrand, France;2. The Francophone Group for Enhanced Recovery after Surgery (GRACE), Allee du Riboulet, 63110 Beaumont, France;3. Department of Anaesthesia, University Hospital Avenue de l’Hopital, 4000 Liège, Belgium;1. Department of Mathematics, University of the Punjab, Lahore 54590, Pakistan;2. School of Mathematical Sciences, Queen Mary, University of London, Mile End Road, London E1 4NS, UK;1. College of Mechanical Engineering, Zhejiang University of Technology, Hangzhou 310014, China;2. High Speed Aerodynamic Institute, China Aerodynamics Research and Development Center, Mianyang 621000, China
Abstract:In this paper, we studied the convective heat transfer from a stream-wise oscillating circular cylinder. Two dimensional numerical simulations are conducted at Re = 100–200, A = 0.1–0.4 and F = fo/fs = 0.2–3.0 with the aid of the lattice Boltzmann method. In particular, detailed attentions are paid on the extensive numerical results elucidating the influence of oscillation frequency, oscillation amplitude and Reynolds number on the time-average and RMS value of the Nusselt number. Over the ranges of conditions considered herein, the heat transfer characteristics are observed to be influenced in an intricate manner by the value of the oscillation frequency (F), oscillation amplitude (A) and Reynolds number (Re). Firstly, the heat transfer is enhanced when the cylinder oscillates stream-wise with small amplitude and low frequency, while it will be reduced by large amplitude and high frequency. Secondly, the average Nusselt number (Nu (ave)) decreases against the increasing value of oscillation frequency, while the RMS value of the Nusselt number, Nu (RMS), displays an opposite trend. Third, we obtained a similar frequency effect on the heat transfer over the range of Reynolds numbers investigated in this paper. In addition, detailed analyses on phase portraits, energy spectrum are also made.
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