摘要
Nozzle internal flow significantly affects the spray breakup, combustion and emissions of an internal combustion engine. The characteristics of internal flows in a nozzle and the corresponding diesel spray primary breakup during the initial stage were investigated through a single transparent nozzle by using a high-speed microscopic technique to capture the interaction process between gas-bubbles and liquid films. Numerical simulation was used to analyze the coupling process between the bubbles and thin fuel films with probing the velocity field and clarify the formation mechanism of the spray formation and its breakup process. The results show that the residual liquid fuel volume, the fuel properties, the strength of pressure shock wave, and the interaction between gas-bubbles dominate the spray morphology. Under low injection pressure, the gas-bubbles store less energy, and lead to the formation of mushroom-shaped spray. When injection pressure is high, the gas-bubbles save more energy, effectively promote spray atomization, and form a drum-shaped spray.
投稿的翻译标题 | Nozzle internal flow and primary breakup characteristics of diesel spray during initial stage |
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源语言 | 繁体中文 |
页(从-至) | 241-248 |
页数 | 8 |
期刊 | Journal of Automotive Safety and Energy |
卷 | 10 |
期 | 2 |
DOI | |
出版状态 | 已出版 - 2019 |
关键词
- bubble
- energy conservation and emission reduction
- fuel combustion
- internal combustion engine
- primary breakup
- spray
- spray morphology