Modeling Ammonia-Hydrogen-Air Combustion and Emission Characteristics of a Generic Swirl Burner

Author:

Mazzotta Luca12,Lamioni Rachele34,D'Alessio Francesco56,Meloni Roberto7,Morris Steven8,Goktepe Burak8,Cerutti Matteo7,Romano Christian7,Creta Francesco56,Galletti Chiara34,Borello Domenico5,Valera-Medina Agustin8

Affiliation:

1. Department of Astronautical, Electrical and Energy Engineering, Sapienza University of Rome, Via Eudossiana 18 , Rome 00184, Italy; , Via F. Matteucci 2, Firenze 50127, Italy

2. Baker Hughes Via Eudossiana 18 , Rome 00184, Italy; , Via F. Matteucci 2, Firenze 50127, Italy

3. Department of Industrial and Civil Engineering, University of Pisa, Largo Lucio Lazzarino, Pisa 56122, Italy

4. University of Pisa

5. Department of Mechanical and Aeronautical Engineering, Sapienza University of Rome , Via Eudossiana 18 , Rome 00184, Italy

6. Sapienza University of Rome

7. Baker Hughes , Via F. Matteucci 2 , Firenze 50127, Italy

8. College of Physical Sciences and Engineering, Cardiff University, Queen's Building , Cardiff CF243AA, UK

Abstract

Abstract The combustion process of both pure NH3 and a NH3/H2 fuel blends is here analyzed using two kinetics processors, i.e., Chemkin-Pro-and CANTERA: detailed kinetic mechanisms have been tested and compared in terms of laminar flame speed and ignition delay time (IDT) with the aim to identifying the most suitable ones for the evaluation of NOx emissions. The generic swirl burner being used in Cardiff University's Gas Turbine Research Center has been considered as validation test case. In addition, this paper presents an experimental campaign followed by a computational fluid dynamics (CFD) approach for the assessment of NOx emission using axisymmetric Reynolds-Averaged Navier–Stokes (RANS) simulations, leading to a significant reduction of the computational time. Different pressures and mass flow rates are evaluated to understand correlations of NOx formation for pollutants reduction purpose. A direct comparison between experimental and numerical results is carried out in terms of flow field, flame shape, and NOx emissions. Results show that the increase in pressure from 1.1 bar to 2 bar results in reduction of NOx emissions from 2515 ppmv to 885 ppmv, also indicating guidelines for using a simplified RANS analysis, which leads to improved computational efficiency, allowing wide sensitivity and optimization analysis to support the design development of an industrial combustion system.

Publisher

ASME International

Reference55 articles.

1. International Energy Outlook 2016 With Projections to 2040,2016

2. Net Zero by 2050, Paris;IEA,2021

3. Laminar Flame Speed Correlations of Ammonia/Hydrogen Mixtures at High Pressure and Temperature for Combustion Modeling Applications;Int. J. Hydrogen Energy,2022

4. The 1.5∘C Climate and Energy Scenarios: Impacts on Economic Growth;Oxford Open Energy,2022

5. On the Use of Ammonia as a Fuel – A Perspective;Fuel Commun.,2022

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