An Eulerian Immersed Boundary Method for flow simulations over stationary and moving rigid bodies

被引:0
|
作者
Corbalan Góis E.R. [1 ]
De Souza L.F. [2 ]
机构
[1] School of Engineering, São Carlos, University of São Paulo, 13566-590 São Carlos, SP
[2] Mathematics and Computing Sciences Institute, University of São Paulo, 13560-970 São Carlos, SP
关键词
High order finite difference schemes; Immersed Boundary Method; Lock-in phenomenon;
D O I
10.1590/s1678-58782010000500007
中图分类号
学科分类号
摘要
The fluid flow over bodies with complex geometry has been the subject of research of many scientists and widely explored experimentally and numerically. The present study proposes an Eulerian Immersed Boundary Method for flows simulations over stationary or moving rigid bodies. The proposed method allows the use of Cartesians Meshes. Here, two-dimensional simulations of fluid flow over stationary and oscillating circular cylinders were used for verification and validation. Four different cases were explored: the flow over a stationary cylinder, the flow over a cylinder oscillating in the flow direction, the flow over a cylinder oscillating in the normal flow direction, and a cylinder with angular oscillation. The time integration was carried out by a classical 4th order Runge-Kutta scheme, with a time step of the same order of distance between two consecutive points in x direction. High-order compact finite difference schemes were used to calculate spatial derivatives. The drag and lift coefficients, the lock-in phenomenon and vorticity contour plots were used for the verification and validation of the proposed method. The extension of the current method allowing the study of a body with different geometry and three-dimensional simulations is straightforward. The results obtained show a good agreement with both numerical and experimental results, encouraging the use of the proposed method. Copyright © 2010 by ABCM.
引用
收藏
页码:477 / 484
页数:7
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