4.7 Article

A Pareto-efficient combustion framework with submodel assignment for predicting complex flame configurations

期刊

COMBUSTION AND FLAME
卷 162, 期 11, 页码 4208-4230

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.combustflame.2015.06.021

关键词

Pareto-efficient combustion framework; Combustion modeling; Manifold; Turbulent combustion; Multi-regime combustion

资金

  1. NASA [NNM13AA11G]
  2. Office of Science of the U.S. Department of Energy [DE-AC02-05CH11231]
  3. NASA [475776, NNM13AA11G] Funding Source: Federal RePORTER

向作者/读者索取更多资源

The selection of an appropriate combustion model for the numerical prediction of reacting flows remains an outstanding issue. Often, expert knowledge or experimental data is required to make an informed decision in selecting a suitable model. Furthermore, the computational cost that is associated with the application of a certain combustion model introduces another constraint in the selection process. By addressing these issues, the objective of this work is to develop a Pareto-efficient combustion (PEC) framework for application to complex chemically reacting flows under consideration of user-specific input about quantities of interest, desired simulation accuracy and computational cost, and a set of combustion models. PEC utilizes a Pareto efficiency, and introduces a manifold drift term as a measure for determining the adequacy of using a certain combustion-manifold model to predict selected quantities of interest. Since underlying model assumptions are encoded in the manifold, PEC restricts the application of submodels within its intended use. Further, the proposed approach for evaluating the manifold drift provides a rigorous method for combining different combustion models - as long as they can be described by a manifold. As such, this formulation represents a general description for the selection of combustion models, thereby overcoming potential limitations of flame-topology indicators and regime-specific combustion models. The capability of the PEC-framework is demonstrated in application to a tribrachial flame. By considering combustion models from the class of reaction-transport manifolds (inert mixing, equilibrium, flamelet/progress variable, and flame-prolongation in ILDM) and chemistry manifolds (using detailed and skeletal mechanisms), it is shown that PEC locally adapts the submodel fidelity within the user-defined threshold for selected quantities of interest. A parametric analysis is conducted to illustrate the dynamic range of the PEC-framework in accommodating Pareto-efficient submodel arrangements. (C) 2015 The Combustion Institute. Published by Elsevier Inc. All rights reserved.

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