Kinetic Mechanism Development and Pollutant Chemistry in NH3/H2/CH4 Combustion

Ammonia (NH 3 ) is a promising carbon-free fuel, but because it is difficult to combust, blending ammonia with co-fuels such as H 2 and CH 4 is one approach to improve combustibility. However, the underlying chemical interactions, particularly coupled carbon–nitrogen (C–N) pathways, become increasingly complex as fuel composition expands. Existing kinetic mechanisms are typically constructed by manually merging NH 3 and hydrocarbon sub-mechanisms, often with limited systematic treatment of C–N cross chemistry and frequently involving empirical tuning of kinetic parameters. In this work, a comprehensive kinetic mechanism for NH 3 /H 2 /CH 4 combustion is developed using the Reaction Mechanism Generator without any empirical parameter tuning. The mechanism builds upon a previously validated NH 3 /H 2 model and a recent, high-quality hydrocarbon mechanism. C-N chemistry is obtained from the literature when available and automatically constructed with Reaction Mechanism Generator when not. For select important reactions, we calculated kinetic parameters in this work. The developed mechanism is validated against laminar-burning velocities, ignition-delay times, and flow-reactor and jet-stirred-reactor measurements, showing good agreement over a wide range of conditions. Using the validated model, pollutant formation and consumption pathways for NOx , N 2 O, HCN, and CO are systematically investigated across the ternary composition space.

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Publication Details

Journal
ChemRxiv
Published
2026-09-14
DOI
https://doi.org/10.26434/chemrxiv.15008792/v1
Primary Topic
Advanced Combustion Engine Technologies
Type
preprint
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preprint

Kinetic Mechanism Development and Pollutant Chemistry in NH3/H2/CH4 Combustion

Yi‐Pei Li, Sunkyu Shin, William H. Green, Yujie Qian et al.
ChemRxiv
Advanced Combustion Engine Technologies
preprint

Kinetic Mechanism Development and Pollutant Chemistry in NH3/H2/CH4 Combustion

Yi‐Pei Li, Sunkyu Shin, William H. Green, Yujie Qian, Yu-Chi Kao, Timo T. Pekkanen
preprint en

Abstract

Ammonia (NH 3 ) is a promising carbon-free fuel, but because it is difficult to combust, blending ammonia with co-fuels such as H 2 and CH 4 is one approach to improve combustibility. However, the underlying chemical interactions, particularly coupled carbon–nitrogen (C–N) pathways, become increasingly complex as fuel composition expands. Existing kinetic mechanisms are typically constructed by manually merging NH 3 and hydrocarbon sub-mechanisms, often with limited systematic treatment of C–N cross chemistry and frequently involving empirical tuning of kinetic parameters. In this work, a comprehensive kinetic mechanism for NH 3 /H 2 /CH 4 combustion is developed using the Reaction Mechanism Generator without any empirical parameter tuning. The mechanism builds upon a previously validated NH 3 /H 2 model and a recent, high-quality hydrocarbon mechanism. C-N chemistry is obtained from the literature when available and automatically constructed with Reaction Mechanism Generator when not. For select important reactions, we calculated kinetic parameters in this work. The developed mechanism is validated against laminar-burning velocities, ignition-delay times, and flow-reactor and jet-stirred-reactor measurements, showing good agreement over a wide range of conditions. Using the validated model, pollutant formation and consumption pathways for NOx , N 2 O, HCN, and CO are systematically investigated across the ternary composition space.

ChemRxiv
National Taiwan University (TW), Massachusetts Institute of Technology (US)
Advanced Combustion Engine Technologies
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Kinetic Mechanism Development and Pollutant Chemistry in NH3/H2/CH4 Combustion — Yi‐Pei Li, Sunkyu Shin, et al. · ChemRxiv (2026) | TGRS Research Map | TGRS