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Optimized global reaction mechanism for H2+NH3+N2 mixtures.

Authors :
Yang, Hui Man
Yeo, Ji Hun
Kim, Nam Il
Source :
International Journal of Hydrogen Energy. Jul2024, Vol. 73, p749-760. 12p.
Publication Year :
2024

Abstract

Hydrogen and ammonia are playing an increasingly vital role in combustion technologies. Recently, some detailed reaction mechanisms (DRMs) can predict reliable laminar burning velocities (LBVs). Meanwhile, despite their broad applicability in practical combustion engineering, global reaction mechanisms (GRMs) suitable for ammonia and its mixtures with hydrogen or nitrogen have yet to be reported. This study aims to address this gap by investigating new GRMs. Five DRMs were used to calculate the LBVs, and their average values were employed as a reference. First, a single-step GRM was developed for hydrogen (H 2 + 0.5O 2 → H 2 O), and another single-step GRM was developed for ammonia (NH 3 + 0.75O 2 → 0.5N 2 + 1.5H 2 O). However, their combined GRM did not provide reasonable predictions of LBVs for the H 2 +NH 3 mixtures. Therefore, a 4-step GRM was developed consisting of the single-step hydrogen and three additional reactions, i.e., an endothermic ammonia decomposition (NH 3 + 0.5O 2 → NO + 3H), an exothermic NO reduction (NO + 2H → 0.5N 2 + H 2 O), and an exothermic H recombination (H + H → H 2). In conclusion, this 4-step GRM and its revisions could predict reasonable LBVs, flame temperatures, and primary product compositions for mixtures of hydrogen, ammonia, and cracked ammonia gas over a wide range of temperatures (300–600 K) and pressures (1–5 atm). • Global reaction mechanisms (GRMs) were investigated for H 2 +NH 3 +N 2 mixtures. • Laminar burning velocities (LBVs) from the detailed reaction mechanisms were compared. • Single-step GRMs were improved for the individual fuels H 2 and NH 3. • Available ranges were extended in temperatures (300–600 K) and pressures (1–5 atm). [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03603199
Volume :
73
Database :
Academic Search Index
Journal :
International Journal of Hydrogen Energy
Publication Type :
Academic Journal
Accession number :
177926674
Full Text :
https://doi.org/10.1016/j.ijhydene.2024.06.102