燃烧
废气再循环
热效率
温室气体
环境科学
体积热力学
废气
点火系统
燃烧室
氢
废物管理
化学
工程类
热力学
航空航天工程
物理
有机化学
生态学
生物
作者
Yuanxin Gao,Yongming Feng,Xuefei Wu,Yuanqing Zhu,Tong Wang,Jinbo Qu,Junting Liu
标识
DOI:10.1177/14680874241242904
摘要
To meet the requirement of reducing greenhouse gas (GHG) emissions, the application of carbon-free fuel ammonia in marine engines has gained importance. However, the use of ammonia as fuel leads to low thermal efficiency and high emissions of pollutants in engines. Increasing the rate of combustion of the fuel mixture in the engine helps to solve this problem. Therefore, the influence of hydrogen volume fraction (X H2 ) and oxygen volume fraction (X O2 ) in the main chamber, via numerical simulations, on the combustion and emission characteristics of a marine ammonia engine featuring a pre-chamber. Further analysis was conducted via adjustments in the start of ignition (SOI) to optimize both engine performance and emissions. The results showed that the increase of both X H2 and X O2 contributed to the improvement of indicated thermal efficiency (ITE) and the reduction of N 2 O emissions. However, this is usually accompanied by higher NO x emissions, especially in the case of high X O2 . In addition, adjusting the SOI resulted in the engine ITE is greater than 47.6% in each case and reduces GHG emissions by about 80% (<40 ppm N 2 O). Finally, chemical kinetic analysis showed that oxygen-enriched or hydrogen-enriched conditions did not change the main reaction pathway.
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