4.7 Article

An improved high-order scheme for DNS of low Mach number turbulent reacting flows based on stiff chemistry solver

期刊

JOURNAL OF COMPUTATIONAL PHYSICS
卷 231, 期 16, 页码 5504-5521

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcp.2012.05.006

关键词

Low Mach number; Stiff; Detailed chemistry; Operator splitting; High order scheme; Variable density; DNS; Turbulent reacting flow

资金

  1. Swedish Research Council (VR)
  2. Competence Centre for Combustion Process at Lund University (KC-FP)
  3. national Centre for Combustion Science and Technology (CeCOST)

向作者/读者索取更多资源

We present an improved numerical scheme for numerical simulations of low Mach number turbulent reacting flows with detailed chemistry and transport. The method is based on a semi-implicit operator-splitting scheme with a stiff solver for integration of the chemical kinetic rates, developed by Knio et al. [O.M. Knio, H.N. Najm, P.S. Wyckoff, A semi-implicit numerical scheme for reacting flow II. Stiff, operator-split formulation, Journal of Computational Physics 154 (2) (1999) 428-467]. Using the material derivative form of continuity equation, we enhance the scheme to allow for large density ratio in the flow field. The scheme is developed for direct numerical simulation of turbulent reacting flow by employing high-order discretization for the spatial terms. The accuracy of the scheme in space and time is verified by examining the grid/time-step dependency on one-dimensional benchmark cases: a freely propagating premixed flame in an open environment and in an enclosure related to spark-ignition engines. The scheme is then examined in simulations of a two-dimensional laminar flame/vortex-pair interaction. Furthermore, we apply the scheme to direct numerical simulation of a homogeneous charge compression ignition (HCCI) process in an enclosure studied previously in the literature. Satisfactory agreement is found in terms of the overall ignition behavior, local reaction zone structures and statistical quantities. Finally, the scheme is used to study the development of intrinsic flame instabilities in a lean H-2/air premixed flame, where it is shown that the spatial and temporary accuracies of numerical schemes can have great impact on the prediction of the sensitive nonlinear evolution process of flame instability. Crown Copyright (C) 2012 Published by Elsevier Inc. All rights reserved.

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