Shock tube studies of ethanol preignition

被引:40
作者
Figueroa-Labastida, Miguel [1 ]
Badra, Jihad [2 ]
Elbaz, Ayman M. [1 ,3 ]
Farooq, Aamir [1 ]
机构
[1] King Abdullah Univ Sci & Technol, Clean Combust Res Ctr, Phys Sci & Engn Div, Thuwal 239556900, Saudi Arabia
[2] Saudi Aramco, R&DC, Fuel Technol Div, Dhahran 31311, Saudi Arabia
[3] Helwan Univ, Fac Engn Mattaria, Cairo, Egypt
关键词
Preignition; Ethanol; Shock tube; High-speed imaging; Ignition delay times; IGNITION DELAY TIMES; PRE-IGNITION; SUPER-KNOCK; MIXTURES; COMBUSTION; TEMPERATURES; AUTOIGNITION; FLAME;
D O I
10.1016/j.combustflame.2018.09.011
中图分类号
O414.1 [热力学];
学科分类号
摘要
Understanding premature ignition or preignition is of great importance as this phenomenon influences the design and operation of internal combustion engines. Preignition leading to super-knock restricts the efficiency of downsized boosted engines. To gain a fundamental understanding of preignition and how it affects an otherwise homogeneous ignition process, a shock tube may be used to decipher the influence of fuel chemical structure, temperature, pressure, equivalence ratio and bath gas on preignition. In a previous work by Javed et al. (2017), ignition delay time measurements of n-heptane showed significantly expedited reactivity compared to well-validated chemical kinetic models in the intermediate-temperature regime. In the current work, ethanol is chosen as a representative fuel that, unlike n-heptane, does not exhibit negative temperature coefficient (NTC) behaviour. Reactive mixtures containing 2.9% and 5% of ethanol at equivalence ratios of 0.5 and 1 were used for the measurement of ignition delay times behind reflected shock waves at 2 and 4bar. Effect of bath gas was studied with mixtures containing either Ar or N-2. In addition to conventional side-wall pressure and OH* measurements, a high-speed imaging setup was utilized to visualize the shock tube cross-section through a transparent quartz end-wall. The results suggest that preignition events are more likely to happen in mixtures containing higher ethanol concentration and that preignition energy release is more pronounced at lower temperatures. High-speed imaging shows that low-temperature ignition process is usually initiated from an individual hot spot that grows gradually, while high-temperatures ignition starts from many spots simultaneously which consume the reactive mixture almost homogeneously. (C) 2018 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:176 / 185
页数:10
相关论文
共 37 条
[21]   New insights into the shock tube ignition of H2/O2 at low to moderate temperatures using high-speed end-wall imaging [J].
Ninnemann, Erik ;
Koroglu, Batikan ;
Pryor, Owen ;
Barak, Samuel ;
Nash, Leigh ;
Loparo, Zachary ;
Sosa, Jonathan ;
Ahmed, Kareem ;
Vasu, Subith .
COMBUSTION AND FLAME, 2018, 187 :11-21
[22]   Comparative High Temperature Shock Tube Ignition of C1-C4 Primary Alcohols [J].
Noorani, Khalid Emilio ;
Akih-Kumgeh, Benjamin ;
Bergthorson, Jeffrey M. .
ENERGY & FUELS, 2010, 24 (11) :5834-5843
[23]  
Persson H., 2007, Investigation of the Early Flame Development in Spark-Assisted HCCI Combustion Using High-Speed Chemiluminescence Imaging
[24]   Visualization of Diesel Spray Penetration, Cool-Flame, Ignition, High-Temperature Combustion, and Soot Formation Using High-Speed Imaging [J].
Pickett, Lyle M. ;
Kook, Sanghoon ;
Williams, Timothy C. .
SAE INTERNATIONAL JOURNAL OF ENGINES, 2009, 2 (01) :439-459
[25]  
Pryor O., 2017, 53 AIAA SAE ASEE JOI, P4772
[26]   Measurements and interpretation of shock tube ignition delay times in highly CO2 diluted mixtures using multiple diagnostics [J].
Pryor, Owen ;
Barak, Samuel ;
Koroglu, Batikan ;
Ninnemann, Erik ;
Vasu, Subith S. .
COMBUSTION AND FLAME, 2017, 180 :63-76
[27]   Alcohol combustion chemistry [J].
Sarathy, S. Mani ;
Osswald, Patrick ;
Hansen, Nils ;
Kohse-Hoeinghaus, Katharina .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2014, 44 :40-102
[28]  
Sparrow S., 1920, SAE INT, V15, P412
[29]  
Sturgis B. M., 1961, ABNORMAL COMBUSTION
[30]   High-speed OH* chemiluminescence imaging of ignition through a shock tube end-wall [J].
Troutman, V. A. ;
Strand, C. L. ;
Campbell, M. F. ;
Tulgestke, A. M. ;
Miller, V. A. ;
Davidson, D. F. ;
Hanson, R. K. .
APPLIED PHYSICS B-LASERS AND OPTICS, 2016, 122 (03)