Modeling of Turbulent Premixed CH4/H2/Air Flames Including the Influence of Stretch and Heat Losses

Author:

Kutkan Halit1,Amato Alberto2,Campa Giovanni2,Ghirardo Giulio3,Tay Wo Chong Luis4,Æsøy Eirik5

Affiliation:

1. Department of Civil, Chemical and Environmental Engineering, University of Genoa, Genoa 16145, Italy

2. Ansaldo Energia S.p.A., Genoa 16152, Italy

3. Doodle AG, Zürich 8021, Switzerland

4. Ansaldo Energia Switzerland AG, Baden 5401, Switzerland

5. Department of Energy and Process Engineering, Norwegian University of Science and Technology, Trondheim NO-7491, Norway

Abstract

Abstract This paper presents a Reynolds averaged Navier Stokes turbulent combustion model for CH4/H2/air mixtures which includes the effect of heat losses and flame stretch. This approach extends a previous model concept designed for methane/air mixtures and improves the prediction of flame stabilization when hydrogen is added to the fuel. Heat loss and stretch effects are modeled by tabulating the consumption speed of laminar counterflow flames in a fresh-to-burnt configuration with detailed chemistry at various heat loss and flame stretch values. These computed values are then introduced in the turbulent combustion model by means of a turbulent flame speed expression which is derived as a function of flame stretch, heat loss, and H2 addition. The model proposed in this paper is compared to existing models on experimental data of spherical expanding turbulent flame speeds. The performance of the model is further validated by comparing computational fluid dynamics predictions to experimental data of an atmospheric turbulent premixed bluff-body-stabilized flame fed with CH4/H2/air mixtures ranging from pure methane to pure hydrogen.

Funder

Cordis

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference39 articles.

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