High order finite volume methods on wavelet-adapted grids with local time-stepping on multicore architectures for the simulation of shock-bubble interactions

We present a space–time adaptive solver for single- and multi-phase compressible flows that couples average interpolating wavelets with high-order finite volume schemes. The solver introduces the concept of wavelet blocks, handles large jumps in resolution and employs local time-stepping for efficie...

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Veröffentlicht in:Journal of computational physics 2010-11, Vol.229 (22), p.8364-8383
Hauptverfasser: Hejazialhosseini, Babak, Rossinelli, Diego, Bergdorf, Michael, Koumoutsakos, Petros
Format: Artikel
Sprache:eng
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Zusammenfassung:We present a space–time adaptive solver for single- and multi-phase compressible flows that couples average interpolating wavelets with high-order finite volume schemes. The solver introduces the concept of wavelet blocks, handles large jumps in resolution and employs local time-stepping for efficient time integration. We demonstrate that the inherently sequential wavelet-based adaptivity can be implemented efficiently in multicore computer architectures using task-based parallelism and introducing the concept of wavelet blocks. We validate our computational method on a number of benchmark problems and we present simulations of shock-bubble interaction at different Mach numbers, demonstrating the accuracy and computational performance of the method.
ISSN:0021-9991
1090-2716
DOI:10.1016/j.jcp.2010.07.021