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- W2194881625 abstract "Direct-injection spark-ignition engines have become popular due to their flexibility in injection strategies and higher efficiency; however, the high-pressure in-cylinder injection process can alter the airflow field by momentum exchange, with different effects for fuels of diverse properties. The current paper presents results from optical studies of stoichiometric combustion of ethanol, butanol, iso-octane and gasoline in a direct-injection spark-ignition engine run at 1500 RPM with 0.5 bar intake plenum pressure and early intake stroke fuel injection for homogeneous mixture preparation. The analysis initially involved particle image velocimetry measurements of the flow field at ignition timing with and without fuelling for comparison. Flame chemiluminescence imaging was used to characterise the global flame behaviour and double-pulsed Laser-sheet flame tomography by Mie scattering to quantify the local topology of the flame front. The flow measurements with fuel injection showed integral length scales of the same order to those of air only on the tumble plane, but larger regions with scales up to 9 mm on the horizontal plane. Averaged length scales over both measurement planes were between 4 and 6 mm, with ethanol exhibiting the largest and butanol the smallest. In non-dimensional form, the integral length scales were up to 20% of the clearance height and 5–12% of the cylinder bore. Flame tomography showed that at radii between 8 and 12 mm, ethanol was burning the fastest, followed by butanol, iso-octane and gasoline. The associated turbulent burning velocities were 4.6–6.5 times greater than the laminar burning velocities and about 13–20% lower than those obtained by flame chemiluminescence imaging. Flame roundness was 10–15% on the tomography plane, with largest values for ethanol, followed by butanol, gasoline and iso-octane; chemiluminescence imaging showed larger roundness (18–25%), albeit with the same order amongst fuels. The standard deviation of the displacement of the instantaneous flame contour from one filtered by its equivalent radius was obtained as a measure of flame brush thickness and correlated strongly with the equivalent flame radius; when normalised by the radius, it was 4–6% for all fuels. The number of crossing points between instantaneous and filtered flame contour showed a strong negative correlation with flame radius, independent of fuel type. The crossing point frequency was 0.5–1.6 mm−1. The flame brush thickness was about 1/10th of the integral length scale. A positive correlation was found between integral length scale and flame brush thickness and a negative correlation with crossing frequency." @default.
- W2194881625 created "2016-06-24" @default.
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- W2194881625 date "2015-12-01" @default.
- W2194881625 modified "2023-09-29" @default.
- W2194881625 title "Flame front analysis of ethanol, butanol, iso-octane and gasoline in a spark-ignition engine using laser tomography and integral length scale measurements" @default.
- W2194881625 cites W1480472768 @default.
- W2194881625 cites W1488217835 @default.
- W2194881625 cites W1491742421 @default.
- W2194881625 cites W1500522182 @default.
- W2194881625 cites W1502985915 @default.
- W2194881625 cites W1507906300 @default.
- W2194881625 cites W1520081987 @default.
- W2194881625 cites W1530278342 @default.
- W2194881625 cites W1536855815 @default.
- W2194881625 cites W1577586009 @default.
- W2194881625 cites W1794029048 @default.
- W2194881625 cites W1896434083 @default.
- W2194881625 cites W1963564178 @default.
- W2194881625 cites W1969542119 @default.
- W2194881625 cites W1969713011 @default.
- W2194881625 cites W1972351292 @default.
- W2194881625 cites W1977222584 @default.
- W2194881625 cites W1978725489 @default.
- W2194881625 cites W1981641562 @default.
- W2194881625 cites W1985076507 @default.
- W2194881625 cites W1987188444 @default.
- W2194881625 cites W1989817033 @default.
- W2194881625 cites W1991424987 @default.
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- W2194881625 cites W1996170769 @default.
- W2194881625 cites W1997519286 @default.
- W2194881625 cites W1998110301 @default.
- W2194881625 cites W2000199637 @default.
- W2194881625 cites W2011623975 @default.
- W2194881625 cites W2013244645 @default.
- W2194881625 cites W2014810933 @default.
- W2194881625 cites W2015837042 @default.
- W2194881625 cites W2016764586 @default.
- W2194881625 cites W2018016636 @default.
- W2194881625 cites W2019025810 @default.
- W2194881625 cites W2021654857 @default.
- W2194881625 cites W2022215788 @default.
- W2194881625 cites W2033941436 @default.
- W2194881625 cites W2034700420 @default.
- W2194881625 cites W2039901432 @default.
- W2194881625 cites W2045431652 @default.
- W2194881625 cites W2051139540 @default.
- W2194881625 cites W2051140829 @default.
- W2194881625 cites W2053313255 @default.
- W2194881625 cites W2053679993 @default.
- W2194881625 cites W2058208522 @default.
- W2194881625 cites W2061523247 @default.
- W2194881625 cites W2062444023 @default.
- W2194881625 cites W2062530839 @default.
- W2194881625 cites W2062987257 @default.
- W2194881625 cites W2066178518 @default.
- W2194881625 cites W2081775627 @default.
- W2194881625 cites W2084618372 @default.
- W2194881625 cites W2091708813 @default.
- W2194881625 cites W2095056459 @default.
- W2194881625 cites W2104967759 @default.
- W2194881625 cites W2105109957 @default.
- W2194881625 cites W2110109003 @default.
- W2194881625 cites W2118267003 @default.
- W2194881625 cites W2133318041 @default.
- W2194881625 cites W2142718866 @default.
- W2194881625 cites W2144596606 @default.
- W2194881625 cites W2213554721 @default.
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- W2194881625 cites W2264251536 @default.
- W2194881625 cites W2268186782 @default.
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- W2194881625 doi "https://doi.org/10.1016/j.combustflame.2015.09.008" @default.
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