Adaptive mesh refinement computation of acoustic radiation from an engine intake |
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Authors: | Xun Huang Xin Zhang Simon Keith Richards |
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Affiliation: | aAeronautics and Astronautics, School of Engineering Sciences, University of Southampton, Southampton SO17 1BJ, UK;bGE Global Research Centre, Niskayuna, New York, NY 12309, USA |
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Abstract: | A block-structured adaptive mesh refinement (AMR) method was applied to the computational problem of acoustic radiation from an aeroengine intake. The aim is to improve the computational and storage efficiency in aeroengine noise prediction through reduction of computational cells. A parallel implementation of the adaptive mesh refinement algorithm was achieved using message passing interface. It combined a range of 2nd- and 4th-order spatial stencils, a 4th-order low-dissipation and low-dispersion Runge–Kutta scheme for time integration and several different interpolation methods. Both the parallel AMR algorithms and numerical issues were introduced briefly in this work. To solve the problem of acoustic radiation from an aeroengine intake, the code was extended to support body-fitted grid structures. The problem of acoustic radiation was solved with linearised Euler equations. The AMR results were compared with the previous results computed on a uniformly fine mesh to demonstrate the accuracy and the efficiency of the current AMR strategy. As the computational load of the whole adaptively refined mesh has to be balanced between nodes on-line, the parallel performance of the existing code deteriorates along with the increase of processors due to the expensive inter-nodes memory communication costs. The potential solution was suggested in the end. |
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Keywords: | Adaptive mesh refinement Computational aeroacoustics Parallel computation Aeroengine |
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