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Conference paper · Journal article

Computational Aero-Acoustic Using High-order Finite-Difference Schemes

From

Department of Mechanical Engineering, Technical University of Denmark1

Fluid Mechanics, Department of Mechanical Engineering, Technical University of Denmark2

In this paper, a high-order technique to accurately predict flow-generated noise is introduced. The technique consists of solving the viscous incompressible flow equations and inviscid acoustic equations using a incompressible/compressible splitting technique. The incompressible flow equations are solved using the in-house flow solver EllipSys2D/3D which is a second-order finite volume code.

The acoustic solution is found by solving the acoustic equations using high-order finite difference schemes. The incompressible flow equations and the acoustic equations are solved at the same time levels where the pressure and the velocities obtained from the incompressible equations form the input to the acoustic equations.

To achieve low dissipation and dispersion errors, either Dispersion-Relation-Preserving (DRP) schemes or optimized compact finite difference schemes are used for spatial discretizations of the acoustic equations. The classical fourth-order Runge-Kutta time scheme is applied to the acoustic equations for time discretization.

Language: English
Publisher: IOP Publishing
Year: 2007
Pages: 012084
Proceedings: 2nd International Conference on "The Science of Making Torque From Wind"
ISSN: 17426596 and 17426588
Types: Conference paper and Journal article
DOI: 10.1088/1742-6596/75/1/012084
ORCIDs: Shen, Wen Zhong and Sørensen, Jens Nørkær

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