Visualization of partially premixed combustion of gasoline-like fuel using high speed imaging in a constant volume vessel

Liang Zheng*, Yunliang Qi, Xu He, Zhi Wang

*此作品的通讯作者

科研成果: 期刊稿件会议文章同行评审

2 引用 (Scopus)

摘要

Combustion visualizations were carried out in a constant volume vessel to study the partially premixed combustion of a gasoline-like fuel using high speed imaging. The test fuel (G80H20) is composed by volume 80% commercial gasoline and 20% n-heptane. The effects of ambient gas composition, ambient temperature and injection pressure on G80H20 combustion characteristics were analyzed. Meanwhile, a comparison of the EGR effect on combustion process between G80H20 and diesel was made. Four ambient gas conditions that represent the in-cylinder gas compositions of a heavy duty diesel engine with EGR ratios of 0%, 20%, 40% and 60% were used to simulate EGR conditions. Variables also include two ambient temperature (910K and 870K) and two injection pressure (20MPa and 50MPa) conditions. Results show that the flame luminance of G80H20 decreases, ignition delay increases and ignition position moves downstream from the injector tip with increasing EGR ratio, decreasing ambient temperature and increasing injection pressure. The liquid spray length of G80H20 is much shorter than that of diesel under the same conditions. The flame luminance of G80H20 fuel decreased significantly when ambient oxygen concentration drops from 21% to 16.3% (EGR ratio: 20%). While 11.1% oxygen concentration (EGR ratio: 60%) is needed for diesel fuel to achieve a great drop in flame luminance. This is mainly because a separation of end of injection (EOI) and start of combustion (SOC) is more easily achieved with G80H20, since the ignition delay (2.7∼4.5ms) of G80H20 is longer than that (1.2∼2.3ms) of diesel.

源语言英语
期刊SAE Technical Papers
DOI
出版状态已出版 - 2012
已对外发布
活动SAE 2012 World Congress and Exhibition - Detroit, MI, 美国
期限: 24 4月 201226 4月 2012

指纹

探究 'Visualization of partially premixed combustion of gasoline-like fuel using high speed imaging in a constant volume vessel' 的科研主题。它们共同构成独一无二的指纹。

引用此