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Effect of high compression ratio on improving thermal efficiency and NOx formation in jet plume controlled direct-injection near-zero emission hydrogen engines

Yuki Mogi, Masakuni Oikawa, Tatsuro Kichima, Mami Horiguchi, Keisuke Goma, Yasuo Takagi, Yuji Mihara

2022International Journal of Hydrogen Energy35 citationsDOIOpen Access PDF

Abstract

The Plume Ignition and Combustion Concept (PCC) developed by the authors significantly reduced nitrogen oxide (NOx) emissions in a direct-injection hydrogen engine under high-load operation. With PCC, a rich fuel plume is ignited immediately after completion of injection in the latter half of the compression stroke to reduce NOx formation. Simultaneously, high thermal efficiency was also achieved by mitigating cooling losses through optimization of the jet configuration in the combustion chamber. This basic combustion concept was applied to burn lean mixture in combination with the optimized hydrogen jet configuration and the application of supercharging to recover the power output decline due to the use of a diluted mixture. As a result, a near-zero-emission-level engine has been achieved that simultaneously provides high thermal efficiency, high power output and low NOx emissions at a single-digit ppm level [1]. In this study, a high compression ratio was applied to improve thermal efficiency further by taking advantage of the characteristics of hydrogen fuel, especially its diluted mixture with a high anti-knock property. As a result, NOx emissions at a single-digit ppm level and gross indicated thermal efficiency of 52.5% were achieved while suppressing knocking at a compression ratio of 20:1 by optimizing the excess air ratio and injection timing, and increasing power output by supercharging.

Topics & Concepts

NOxThermal efficiencyCompression ratioCombustionNitrogen oxideIgnition systemNuclear engineeringMaterials scienceCombustion chamberHydrogenIgnition timingJet (fluid)ChemistryEnvironmental scienceMechanicsThermodynamicsPhysicsEngineeringOrganic chemistryAdvanced Combustion Engine TechnologiesVehicle emissions and performanceAdvanced Aircraft Design and Technologies