Title of article :
An adaptive high-order hybrid scheme for compressive, viscous flows with detailed chemistry
Author/Authors :
Ziegler، نويسنده , , Jack L. and Deiterding، نويسنده , , Ralf and Shepherd، نويسنده , , Joseph E. and Pullin، نويسنده , , D.I.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2011
Pages :
33
From page :
7598
To page :
7630
Abstract :
A hybrid weighted essentially non-oscillatory (WENO)/centered-difference numerical method, with low numerical dissipation, high-order shock-capturing, and structured adaptive mesh refinement (SAMR), has been developed for the direct numerical simulation of the multicomponent, compressible, reactive Navier–Stokes equations. The method enables accurate resolution of diffusive processes within reaction zones. The approach combines time-split reactive source terms with a high-order, shock-capturing scheme specifically designed for diffusive flows. A description of the order-optimized, symmetric, finite difference, flux-based, hybrid WENO/centered-difference scheme is given, along with its implementation in a high-order SAMR framework. The implementation of new techniques for discontinuity flagging, scheme-switching, and high-order prolongation and restriction is described. In particular, the refined methodology does not require upwinded WENO at grid refinement interfaces for stability, allowing high-order prolongation and thereby eliminating a significant source of numerical diffusion within the overall code performance. A series of one-and two-dimensional test problems is used to verify the implementation, specifically the high-order accuracy of the diffusion terms. One-dimensional benchmarks include a viscous shock wave and a laminar flame. In two-space dimensions, a Lamb–Oseen vortex and an unstable diffusive detonation are considered, for which quantitative convergence is demonstrated. Further, a two-dimensional high-resolution simulation of a reactive Mach reflection phenomenon with diffusive multi-species mixing is presented.
Keywords :
direct numerical simulation , Weighted essentially non-oscillatory , Detonation , Adaptive Mesh Refinement , Navier–Stokes , Reacting compressible flow
Journal title :
Journal of Computational Physics
Serial Year :
2011
Journal title :
Journal of Computational Physics
Record number :
1483776
Link To Document :
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