scholarly journals Aerodynamic Assessment of Periodicity and Symmetry Conditions in a Flameless Burner

2015 ◽  
Vol 5 (2) ◽  
pp. 80-87
Author(s):  
Fagner Luis Goular Dias ◽  
Marco Antonio Rosa do Nascimento ◽  
Lucilene de Oliveira Rodrigues
Keyword(s):  
Author(s):  
Marco Antonio Nascimento ◽  
Lucilene Oliveria Rodrigues ◽  
Fagner Luis Goulart Dias

2020 ◽  
Vol 8 ◽  
Author(s):  
Marco Ferrarotti ◽  
Andrea Bertolino ◽  
Ruggero Amaduzzi ◽  
Alessandro Parente

Ammonia/hydrogen-fueled combustion represents a very promising solution for the future energy scenario. This study aims to shed light and understand the behavior of ammonia/hydrogen blends under flameless conditions. A first-of-its-kind experimental campaign was conducted to test fuel flexibility for different ammonia/hydrogen blends in a flameless burner, varying the air injector and the equivalence ratio. NO emissions increased drastically after injecting a small amount of NH3 in pure hydrogen (10% by volume). An optimum trade-off between NOx emission and ammonia slip was found when working sufficiently close to stoichiometric conditions (ϕ = 0.95). In general, a larger air injector (ID25) reduces the emissions, especially at ϕ = 0.8. A well-stirred reactor network with exhaust recirculation was developed exchanging information with computational fluid dynamics (CFD) simulations, to model chemistry in diluted conditions. Such a simplified system was then used in two ways: 1) to explain the experimental trends of NOx emissions varying the ammonia molar fraction within the fuel blend and 2) to perform an uncertainty quantification study. A sensitivity study coupled with latin hypercube sampling (LHS) was used to evaluate the impact of kinetic uncertainties on NOx prediction in a well-stirred reactor network model. The influence of the identified uncertainties was then tested in more complex numerical models, such as Reynolds-averaged Navier–Stokes (RANS) simulations of the furnace. The major over-predictions of existing kinetic scheme was then alleviated significantly, confirming the crucial role of detailed kinetic mechanisms for accurate predictive simulations of NH3/H2 mixtures in flameless regime.


BDJ ◽  
2004 ◽  
Vol 196 (6) ◽  
pp. 367-367
Keyword(s):  

2021 ◽  
Vol 183 ◽  
pp. 116190
Author(s):  
Markus Mayrhofer ◽  
Michael Koller ◽  
Peter Seemann ◽  
Rene Prieler ◽  
Christoph Hochenauer

2017 ◽  
Vol 135 ◽  
pp. 362-372 ◽  
Author(s):  
Seyed Ehsan Hosseini ◽  
Hasan Barzegaravval ◽  
Abdolsaeid Ganjehkaviri ◽  
Mazlan Abdul Wahid ◽  
M.N. Mohd Jaafar

1997 ◽  
Vol 28 (3) ◽  
pp. 93-94
Author(s):  
Fraunhofer Gesellschaft
Keyword(s):  

2021 ◽  
Vol 8 ◽  
Author(s):  
Ruggero Amaduzzi ◽  
Marco Ferrarotti ◽  
Alessandro Parente

In this present work, simulations of 20 kW furnace were carried out with hydrogen-enriched methane mixtures, to identify optimal geometrical configurations and operating conditions to operate in flameless combustion regime. The objective of this work is to show the advantages of flameless combustion for hydrogen-enriched fuels and the limits of current typical industrial designs for these mixtures. The performances of a semi-industrial combustion chamber equipped with a self-recuperative flameless burner are evaluated with increasing H2 concentrations. For highly H2-enriched mixtures, typical burners employed for methane appear to be inadequate to reach flameless conditions. In particular, for a typical coaxial injector configuration, an equimolar mixture of hydrogen and methane represents the limit for hydrogen enrichment. To achieve flameless conditions, different injector geometries and configuration were tested. Fuel dilution with CO2 and H2O was also investigated. Dilution slows the mixing process, consequently helping the transition to flameless conditions. CO2, and H2O are typical products of hydrogen generation processes, therefore their use in fuel dilution is convenient for industrial applications. Dilution thus allows the use of greater hydrogen percentages in the mixture.


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