Assessing fuel economy and NOx emissions of a hydrogen engine bus using neural network algorithms for urban mass transit systems

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초록

The transition from compressed natural gas (CNG) to hydrogen has begun in mass transportation applications in Seoul, South Korea. This study investigates the feasibility of using a hydrogen combustion engine for city buses in Seoul. A hydrogen-fueled, six-cylinder, 11,046-cm3 spark-ignition engine equipped with a mixer-type fuel supply system is proposed. An experiment using a single-cylinder engine is performed to obtain operating and performance maps. These maps are then used in the vehicle simulation model. Combustion characteristics are investigated using three-dimensional numerical simulation validated by the experimental results. A regression analysis is conducted using neural network algorithms to determine the dominant operating parameters on nitric oxides (NOx) emissions, and 373 bus routes in Seoul are analyzed using real-time driving data and recent annual statistics. The vehicle driving simulation using actual Seoul bus driving data reveals an average fleet fuel economy of 121.7 g/km, confirming that hydrogen-engine buses can be more efficient than the CNG buses currently in use. A 70-MPa tank can store 34.78 kg of hydrogen, which yields a maximum travel distance of 388 km longer than the longest route (bus #9411 at 77 km). The result indicates that even a 20-Mpa fuel tank, enabling a bus to travel 144 km, is sufficient for Seoul city buses. © 2023 Elsevier Ltd

키워드

1D simulationDriving simulationEngine developmentHydrogenMixer-type fuel supplyUrban mass transport systemSPARK-IGNITION ENGINESELECTIVE CATALYTIC-REDUCTIONNATURAL-GASDIRECT-INJECTIONCOMBUSTION PROCESSMIXTURE FORMATIONPERFORMANCEPRESSUREBACKFIREMETHANE
제목
Assessing fuel economy and NOx emissions of a hydrogen engine bus using neural network algorithms for urban mass transit systems
저자
Kim, S.Kim, J.
DOI
10.1016/j.energy.2023.127517
발행일
2023-07
유형
Article
저널명
Energy
275