Article ID Journal Published Year Pages File Type
5012044 Computers & Fluids 2016 39 Pages PDF
Abstract
The effect of lateral, downward, and frontal wind gusts on the aerodynamic characteristics of a rigid wing undergoing insect-based flapping motion is studied numerically. The turbulent flow near the flapping wing is described by the 3-D unsteady compressible Reynolds-Averaged Navier-Stokes equations with the Spalart-Allmaras turbulence model. The governing equations are solved using a second-order node-centered finite volume scheme on a hexahedral body-fitted grid that rigidly moves along with the wing. A low-Mach-number preconditioner is used to accelerate the convergence of subiterations at each time step. Our numerical results show that the aerodynamic response of the centimeter -scale wing to various gust conditions strongly depends on the mutual orientation of the wing stroke plane and the gust velocity vector.
Related Topics
Physical Sciences and Engineering Engineering Computational Mechanics
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