Author
Listed:
- Liang Yang
(School of Naval Architecture, Ocean and Energy Power Engineering, Wuhan University of Technology, Wuhan 430063, China)
- Lin Lyu
(School of Naval Architecture, Ocean and Energy Power Engineering, Wuhan University of Technology, Wuhan 430063, China)
- He Yang
(School of Naval Architecture, Ocean and Energy Power Engineering, Wuhan University of Technology, Wuhan 430063, China)
- Junjie Liang
(School of Naval Architecture, Ocean and Energy Power Engineering, Wuhan University of Technology, Wuhan 430063, China)
- Chuang Xiang
(Guangxi Yuchai Marine and Genset Power Co., Ltd., Yulin 537005, China)
- Neng Zhu
(School of Automotive and Transportation Engineering, Wuhan University of Science and Technology, Wuhan 430081, China)
Abstract
The application of ammonia decomposition technology for hydrogen production enables hydrogen-enriched combustion in marine diesel-ignited ammonia engines. This study presents experimental and simulation investigations of a diesel-ignited ammonia engine operating with hydrogen-containing fuels derived from ammonia decomposition at various blending ratios. The combustion and emission characteristics of the engine were systematically examined, and a comparative analysis was conducted on the combustion behavior of the engine between using ammonia decomposition-derived hydrogen-containing fuel and pure hydrogen. The result shows that under constant engine output power, at 1200 rpm and 75% load, increasing the hydrogen energy rate results in largely unchanged cylinder pressure and heat release rate. The diesel substitution rate exhibits an initial increase followed by a decrease, while the energy consumption rate demonstrates the opposite trend. At 1500 rpm and 75% load, an increase in hydrogen enrichment leads to an earlier rise in cylinder pressure and heat release rate, a continuous increase in diesel substitution rate, and a consistent decrease in energy consumption rate. The early stage of in-cylinder combustion is dominated by diesel combustion, followed predominantly by the combustion of ammonia and hydrogen. Regarding the difference between using decomposition-derived hydrogen-containing fuel and pure hydrogen, within the hydrogen enrichment range of 0–20%, the discrepancies in intake composition and equivalence ratio between the two hydrogen-addition modes gradually widen but remain within 1.3%. Taking a hydrogen energy rate of 10.56% as an example, the differences in in-cylinder pressure and heat release rate between the two hydrogen-addition modes are not significant, indicating that the N 2 generated from ammonia decomposition has a relatively weak influence on the engine. With increasing hydrogen enrichment, NH 3 emissions gradually decrease, while NO emissions increase. For N 2 O, hydrogen enrichment promotes its consumption, resulting in lower emissions. Under various hydrogen enrichment conditions, equivalent greenhouse gas emissions are mainly influenced by CO 2 emissions.
Suggested Citation
Liang Yang & Lin Lyu & He Yang & Junjie Liang & Chuang Xiang & Neng Zhu, 2026.
"Study on Combustion and Emission Characteristics of a Marine Diesel-Ignited Ammonia Engine Blended with Ammonia-Derived Hydrogen-Containing Fuel,"
Energies, MDPI, vol. 19(6), pages 1-21, March.
Handle:
RePEc:gam:jeners:v:19:y:2026:i:6:p:1423-:d:1891427
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