TY - JOUR
T1 - Numerical Investigation of Ammonia/Diesel Dual-Direct-Injection Engine Combustion and Emissions Engine
AU - He, Xu
AU - Yan, Guoliang
AU - Yu, Huahon
AU - Bi, Sinan
AU - Liu, Yalong
N1 - Publisher Copyright:
© 2026, Beijing Institute of Technology. All rights reserved.
PY - 2026
Y1 - 2026
N2 - To further optimize the performance of the ammonia/diesel dual-direct-injection engine and fully exploit the great application potential of ammonia as a zero-carbon fuel in dual-fuel mode, a four-stroke ammonia/diesel dual-direct-injection engine model was established using CONVERGE software. A systematic investigation was conducted on the effects of two key variables—ammonia energy fraction (0~40%) and diesel injection timing (−9°CA~−1°CA, after top dead center) on the engine’s combustion and emission characteristics. The results indicate that an ammonia energy fraction of 20%~ 30% yielded the best overall performance, characterized by the shortest combustion duration, the peak cylinder pressure and average temperature, as well as the lowest unburned ammonia and greenhouse gas emissions; variations in diesel injection timing altered the in- cylinder combustion mode of ammonia/diesel mixtures, thereby influencing the trends of peak cylinder pressure, average temperature, and heat release rate; and a diesel injection timing of −7°CA, after top dead center, minimized unburned ammonia emissions and overall emission performance was optimal.
AB - To further optimize the performance of the ammonia/diesel dual-direct-injection engine and fully exploit the great application potential of ammonia as a zero-carbon fuel in dual-fuel mode, a four-stroke ammonia/diesel dual-direct-injection engine model was established using CONVERGE software. A systematic investigation was conducted on the effects of two key variables—ammonia energy fraction (0~40%) and diesel injection timing (−9°CA~−1°CA, after top dead center) on the engine’s combustion and emission characteristics. The results indicate that an ammonia energy fraction of 20%~ 30% yielded the best overall performance, characterized by the shortest combustion duration, the peak cylinder pressure and average temperature, as well as the lowest unburned ammonia and greenhouse gas emissions; variations in diesel injection timing altered the in- cylinder combustion mode of ammonia/diesel mixtures, thereby influencing the trends of peak cylinder pressure, average temperature, and heat release rate; and a diesel injection timing of −7°CA, after top dead center, minimized unburned ammonia emissions and overall emission performance was optimal.
KW - CFD simulation
KW - ammonia fuel
KW - combustion and emissions
KW - direct injection
UR - https://www.scopus.com/pages/publications/105033226488
U2 - 10.15918/j.tbit1001-0645.2025.147
DO - 10.15918/j.tbit1001-0645.2025.147
M3 - Article
AN - SCOPUS:105033226488
SN - 1001-0645
VL - 46
SP - 258
EP - 271
JO - Beijing Ligong Daxue Xuebao/Transaction of Beijing Institute of Technology
JF - Beijing Ligong Daxue Xuebao/Transaction of Beijing Institute of Technology
IS - 3
ER -