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Large eddy simulation on the unsteady aerodynamic response of a road vehicle in transient crosswinds
Authors:Makoto Tsubokura   Takuji Nakashima   Masashi Kitayama   Yuki Ikawa   Deog Hee Doh  Toshio Kobayashi
Affiliation:a Division of Mechanical and Space Engineering, Graduate School of Engineering, Hokkaido University, N13, W8, Kita-ku, Sapporo, Hokkaido 060-8628, Japan;b Department of Social and Environmental Engineering, Graduate School of Engineering, Hiroshima University, 1-4-1 Kagamiyama, Higashi Hiroshima 739-8527, Japan;c Subaru Engineering Division, Fuji Heavy Industries Ltd., 1-1 Subaru-cho, Ota, Gunma 373-8555, Japan;d Division of Mechanical and Information Engineering, Korea Maritime University, 1 Dongsam-dong, Yeongdo-gu, Busan 606-791, Republic of Korea;e Japan Automobile Research Institute, 1-30 Shibadaimon, Minato-ku, Tokyo 105-0012, Japan
Abstract:
A large eddy simulation method based on a fully unstructured finite volume method was developed, and the unsteady aerodynamic response of a road vehicle subjected to transient crosswinds was investigated. First, the method was validated for a 1/20-scale wind-tunnel model in a static aerodynamic condition; this showed that the surface pressure distributions as well as the aerodynamic forces and moments were in good agreement with wind-tunnel data. Second, the method was applied to two transient crosswind situations: a sinusoidal perturbation representing the typical length scale of atmospheric turbulence and a stepwise crosswind velocity corresponding to wind gusts. Typical transient responses of the aerodynamic forces and moments such as phase shifting and undershooting or overshooting were observed, and their dependence on the frequency and amplitude of the input perturbation is discussed. Thus, the utility and validity of the large eddy simulation was demonstrated in the context that such transient aerodynamic forces are difficult to measure using a conventional wind tunnel.
Keywords:Aerodynamics   Automobile   Road vehicle   Wind   Large eddy simulation (LES)   Computational fluid dynamics (CFD)
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