Ammonia marine engine design for enhanced efficiency and reduced greenhouse gas emissions
Конструкция морского аммиачного двигателя для повышения эффективности и снижения выбросов парниковых газов
2024-03-07
SCID: 54.1/ht92vfwh
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hydrogen-enriched combustionin-cylinder reforming gas recirculationmaritime engine efficiencypilot-diesel-ignition ammonia combustionunburned NH3 and N2O emissions
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Abstract (AI)
Abstract Pilot-diesel-ignition ammonia combustion engines have attracted widespread attentions from the maritime sector, but there are still bottleneck problems such as high unburned NH3 and N2O emissions as well as low thermal efficiency that need to be solved before further applications. In this study, a concept termed as in-cylinder reforming gas recirculation is initiated to simultaneously improve the thermal efficiency and reduce the unburned NH3, NOx, N2O and greenhouse gas emissions of pilot-diesel-ignition ammonia combustion engine. For this concept, one cylinder of the multi-cylinder engine operates rich of stoichiometric and the excess ammonia in the cylinder is partially decomposed into hydrogen, then the exhaust of this dedicated reforming cylinder is recirculated into the other cylinders and therefore the advantages of hydrogen-enriched combustion and exhaust gas recirculation can be combined. The results show that at 3% diesel energetic ratio and 1000 rpm, the engine can increase the indicated thermal efficiency by 15.8% and reduce the unburned NH3 by 89.3%, N2O by 91.2% compared to the base/traditional ammonia engine without the proposed method. At the same time, it is able to reduce carbon footprint by 97.0% and greenhouse gases by 94.0% compared to the traditional pure diesel mode.
Key Findings
1
A dedicated cylinder operates fuel-rich, partially decomposes excess ammonia into hydrogen, and recirculates its exhaust to the other cylinders.
2
An in-cylinder reforming gas recirculation concept combines hydrogen-enriched combustion with exhaust gas recirculation in pilot-diesel-ignition ammonia engines.
3
At 3% diesel energetic ratio and 1000 rpm, the method increases indicated thermal efficiency by 15.8% versus a traditional ammonia engine.
4
Compared with traditional pure-diesel operation, the concept reduces carbon footprint by 97.0% and greenhouse-gas emissions by 94.0%.
5
Under the same conditions, unburned NH3 and N2O emissions decrease by 89.3% and 91.2%, respectively, compared with the base ammonia engine.
Research Object
pilot-diesel-ignition ammonia combustion engine with in-cylinder reforming gas recirculation
Research Subject
the effects of in-cylinder ammonia reforming and gas recirculation on thermal efficiency, unburned NH3, NOx, N2O, carbon footprint, and greenhouse-gas emissions
Publication Details
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2024-03-07
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