TY - JOUR
T1 - Kinetics Study of H-Atom Abstractions from NH3 and H2NO by CH3O2
AU - Sun, Jingwu
AU - Zhu, Yuxiang
AU - Wen, Dongsheng
AU - Yang, Lijun
AU - Zhou, Chongwen
N1 - Publisher Copyright:
© 2026, Tianjin University. All rights reserved.
PY - 2026
Y1 - 2026
N2 - Understanding the low-temperature chemistry of ammonia (NH3) and its interaction with hydrocarbon chemistry is a significant challenge in the kinetics of ammonia blended fuel combustion, especially with the growing interest in novel combustion concepts and the increasing use of NH3 as an energy carrier. Carbon-nitrogen (C–N) interactions play an important role in the combustion characteristic of NH3 blends with hydrocarbon fuels. In this work, the kinetics of two possible C–N interaction reactions, H-atom abstractions from NH3 and aminoxyl radical (H2NO) by methylperoxy radical (CH3O2), is investigated. These reaction pathways show some sensitivity to the low-temperature ignition of NH3/CH4. However, they have not been considered in any combustion kinetic models so far. Due to the intrinsic multi-reference nature of their transition states, the energy barriers for the two reactions are determined using the CASPT2/aug-cc-pVTZ method with the active space of (7e,7o), and CASPT2/cc-pVDZ method with the active space of (14e,12o), respectively, based on the optimized geometries and rovibrational properties obtained at M06-2X/6-311++G (d,p) level of theory. The rate constants for the two reactions in the temperature range 298.15–2000 K are calculated by using transition state theory. By incorporating these two reaction pathways with our calculated rate constants into a NH3/CH4 kinetic model, the predicted low-temperature ignition delay times (IDT) of NH3/CH4 mixtures become noticeably shorter.
AB - Understanding the low-temperature chemistry of ammonia (NH3) and its interaction with hydrocarbon chemistry is a significant challenge in the kinetics of ammonia blended fuel combustion, especially with the growing interest in novel combustion concepts and the increasing use of NH3 as an energy carrier. Carbon-nitrogen (C–N) interactions play an important role in the combustion characteristic of NH3 blends with hydrocarbon fuels. In this work, the kinetics of two possible C–N interaction reactions, H-atom abstractions from NH3 and aminoxyl radical (H2NO) by methylperoxy radical (CH3O2), is investigated. These reaction pathways show some sensitivity to the low-temperature ignition of NH3/CH4. However, they have not been considered in any combustion kinetic models so far. Due to the intrinsic multi-reference nature of their transition states, the energy barriers for the two reactions are determined using the CASPT2/aug-cc-pVTZ method with the active space of (7e,7o), and CASPT2/cc-pVDZ method with the active space of (14e,12o), respectively, based on the optimized geometries and rovibrational properties obtained at M06-2X/6-311++G (d,p) level of theory. The rate constants for the two reactions in the temperature range 298.15–2000 K are calculated by using transition state theory. By incorporating these two reaction pathways with our calculated rate constants into a NH3/CH4 kinetic model, the predicted low-temperature ignition delay times (IDT) of NH3/CH4 mixtures become noticeably shorter.
KW - ammonia
KW - CHO
KW - combustion reaction kinetics
KW - H-atom abstraction
KW - multi-reference
UR - https://www.scopus.com/pages/publications/105042656204
U2 - 10.11715/rskxjs.R202604007
DO - 10.11715/rskxjs.R202604007
M3 - 文章
AN - SCOPUS:105042656204
SN - 1006-8740
VL - 32
SP - 273
EP - 280
JO - Ranshao Kexue Yu Jishu/Journal of Combustion Science and Technology
JF - Ranshao Kexue Yu Jishu/Journal of Combustion Science and Technology
IS - 3
ER -