Structure and NOx Emissions of Stratified Hydrogen-Air Flames Stabilized on a Coaxial Injector

Author:

Leroy Maxime12,Mirat Clément3,Renaud Antoine3,Puggelli Stefano4,Zurbach Stephan4,Vicquelin Ronan3

Affiliation:

1. EM2C Laboratory, CNRS, CentraleSupélec, Paris-Sacaly University , Gif-sur-Yvette 91190, France ; , Rue des Jeunes Bois, Châteaufort, Magny-les-Hameaux 78114, France

2. Safran Tech , Gif-sur-Yvette 91190, France ; , Rue des Jeunes Bois, Châteaufort, Magny-les-Hameaux 78114, France

3. EM2C Laboratory, CNRS, CentraleSupélec, Paris-Sacaly University , Gif-sur-Yvette 91190, France

4. Safran Tech , Rue des Jeunes Bois, Châteaufort, Magny-les-Hameaux 78114, France

Abstract

Abstract In recent years, the need for low-carbon power has seen hydrogen emerge as a potential fuel to replace conventional hydrocarbons in combustion to limit CO2 emissions in several sectors, including aeronautics. The challenges posed by hydrogen combustion are similar to the issues of kerosene flames but more challenging, like nitrogen oxide (NOx) emissions and flame flashback. One potential solution to address these problems is to burn a rich mixture of hydrogen and air in globally lean conditions on a coaxial injector to obtain a stable and staged combustion and attempt to reduce emissions. In this article, the evolution of NOx production as more air is mixed into the fuel is studied, as well as the changes in flame size and structure. In particular, the appearance of a secondary flame front is observed and increasing the proportion of air in the fuel mixture both shortens the flame and reduces the NOx emission index. Additionally, the effect of the global equivalence ratio and flame thermal power is studied. Finally, existing models for NOx emission of hydrogen flames on a coaxial injector based on average flame residence time and strain rate are tested and shown to have promising results.

Funder

Association Nationale de la Recherche et de la Technologie

Publisher

ASME International

Subject

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

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