Effect of modified combustion chamber configuration and enhanced squish flow on improving thermal efficiency in jet-plume-controlled direct-injection near-zero emission hydrogen engines

燃烧 燃烧室 氮氧化物 热效率 喷射(流体) 核工程 羽流 点火系统 喷嘴 机械 材料科学 热的 环境科学 汽车工程 化学 航空航天工程 热力学 工程类 物理 有机化学
作者
Masakuni Oikawa,Yuki Mogi,Mami Horiguchi,Keisuke Goma,Yasuo Takagi,Yuji Mihara
出处
期刊:International Journal of Engine Research [SAGE Publishing]
卷期号:24 (7): 2897-2907 被引量:9
标识
DOI:10.1177/14680874221135277
摘要

In direct injection hydrogen engines, the Plume Ignition and Combustion Concept (PCC) developed by the authors has been applied to improve thermal efficiency and reduce NOx emissions under high-load operation. The PCC combustion method burns an optimized hydrogen jet plume that is ignited immediately upon completion of injection in the latter half of the compression stroke. In addition to optimizing the hydrogen jet configuration, this basic combustion concept was applied to burn a lean mixture and supercharging was used to recover the decline in power output due to combustion of a diluted mixture. As a result, a near-zero emission engine has been achieved that simultaneously provides high thermal efficiency, high power output and low NOx emissions at a single-digit ppm level. Various techniques have been applied to improve thermal efficiency further and achieve much lower NOx emissions close to a zero-emission target. These included the adoption of a re-entrant combustion chamber to reduce unburned hydrogen emissions, enhanced squish flow to promote better mixing of air and the hydrogen jet injected into the combustion chamber, and a narrower nozzle hole diameter to promote entrainment of air into the hydrogen jet. In this study, the effect of each of these measures was made clear experimentally and by analysis. This paper presents the results obtained.
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