A parallel solution - adaptive method for three-dimensional turbulent non-premixed combusting flows
نویسندگان
چکیده
A parallel adaptive mesh refinement (AMR) algorithm is proposed and applied to the prediction of steady turbulent non-premixed compressible combusting flows in three space dimensions. The parallel solution-adaptive algorithm solves the system of partial-differential equations governing turbulent compressible flows of reactive thermally perfect gaseous mixtures using a fully coupled finite-volume formulation on body-fitted multiblock hexahedral meshes. The compressible formulation adopted herein can readily accommodate large density variations and thermo-acoustic phenomena. A flexible blockbased hierarchical data structure is used to maintain the connectivity of the solution blocks in the multi-block mesh and to facilitate automatic solution-directed mesh adaptation according to physics-based refinement criteria. For calculations of near-wall turbulence, an automatic near-wall treatment readily accommodates situations during adaptive mesh refinement where the mesh resolution may not be sufficient for directly calculating nearwall turbulence using the low-Reynolds-number formulation. Numerical results for turbulent diffusion flames, including coldand hot-flow predictions for a bluff-body burner, are described and compared to available experimental data. The numerical results demonstrate the validity and potential of the parallel AMR approach for predicting fine-scale features of complex turbulent non-premixed flames. Published by Elsevier Inc.
منابع مشابه
Parallel Solution-Adaptive Method for Two-Dimensional Non-Premixed Combusting Flows
A parallel adaptive mesh refinement (AMR) algorithm is proposed and applied to the predictions of both laminar and turbulent steady non-premixed compressible combusting flows. The parallel solution-adaptive algorithm solves the system of partial-differential equations governing two-dimensional axisymmetric laminar and turbulent compressible flows for reactive thermally perfect gaseous mixtures ...
متن کاملParallel Adaptive Mesh Refinement Scheme for Turbulent Non-Premixed Combusting Flow Prediction
A parallel adaptive mesh refinement (AMR) algorithm is proposed for predicting turbulent non-premixed combusting flows characteristic of gas turbine engine combustors. The Favre-averaged Navier-Stokes equations governing mixture and species transport for a reactive mixture of thermally perfect gases in two dimensions, the two transport equations of the k-ω turbulence model, and the time-average...
متن کاملParallel Adaptive Mesh Refinement Scheme for Three-Dimensional Turbulent Non-Premixed Combustion
A parallel adaptive mesh refinement (AMR) algorithm is described for predicting turbulent non-premixed gaseous combusting flows in three space dimensions. The Favreaveraged Navier-Stokes equations governing a reactive mixture of thermally perfect gases, the two transport equations of the k-ω turbulence model, and the time-averaged species transport equations, are all solved using a fully couple...
متن کاملA parallel adaptive mesh refinement algorithm for predicting turbulent non-premixed combusting flows
International Journal of Computational Fluid Dynamics Publication details, including instructions for authors and subscription information: http://www.informaworld.com/smpp/title~content=t713455064 A parallel adaptive mesh refinement algorithm for predicting turbulent non-premixed combusting flows X. Gao a; C. P. T. Groth a a Institute for Aerospace Studies, University of Toronto, Toronto, Ont....
متن کاملA High-Order Finite-Volume Scheme for Large-Eddy Simulation of Turbulent Premixed Flames
A novel, parallel, high-order, central essentially non-oscillatory (CENO), cell-centered, finite-volume scheme is developed and applied to large-eddy simulation (LES) of turbulent premixed flames. The high-order CENO finite-volume scheme is applied to the solution of the Favre-filtered Navier-Stokes equations governing turbulent flows of a fully-compressible reactive mixture on three-dimensiona...
متن کاملذخیره در منابع من
با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید
عنوان ژورنال:
- J. Comput. Physics
دوره 229 شماره
صفحات -
تاریخ انتشار 2010