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Effect of Intake Charge Temperature and EGR on Biodiesel Fuelled HCCI Engine

机译:摄入量温度和EGR对生物柴油燃料HCCI发动机的影响

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IC engines are facing two major challenges in the 21st century namely threat of fossil fuel depletion and environmental concerns. HCCI engine is an attractive solution to meet stringent emission challenges due to its capability to simultaneously reduce NOx and PM. HCCI technology can be employed with different alternative fuels without significant modifications in the existing engines. In this study, HCCI combustion was investigated using B20 (20% v/v biodiesel with diesel). Investigations were carried out on a two cylinder engine, in which one cylinder was modified to operate in HCCI mode however the other cylinder operated in conventional CI combustion mode. A dedicated fuel vaporizer was used for homogeneous fuel-air mixture preparation. The experiments were performed at three different intake charge temperatures (160°C, 180°C and 200°C) and three different EGR ratios (0%, 10% and 20% EGR) at different engine loads. In-cylinder pressure and exhaust emissions were measured under all test conditions, when the engine was stabilized. Physical characterization of engine exhaust particles was done for all these test fuels using engine exhaust particle sizer (EEPS). At higher engine loads, biodiesel HCCI showed slightly higher knocking tendency. With increasing EGR, knocking tendency reduced however in-cylinder pressure and heat release rate also reduced. Combustion characteristics of biodiesel HCCI improved with increasing intake charge temperature however high intake charge temperature caused excessive knocking and adversely affected performance characteristics. Biodiesel HCCI showed superior performance characteristics with increasing EGR due to optimization of combustion phasing. Due to excessive knocking, high intake charge temperature slightly reduced performance characteristics of mineral diesel. NOx emissions were very low for however HC and CO emission increased with increasing EGR. Increasing intake charge temperature reduced HC and CO emissions and increased NOx emissions at very high engine load. Particle emission characteristics showed that B20 combustion emitted slightly higher nano-particles which increased with increasing EGR and reduced with increasing intake charge temperature.
机译:IC发动机在21世纪面临两个主要挑战,即化石燃料耗尽和环境问题的威胁。 HCCI引擎是一个有吸引力的解决方案,以满足严格的排放挑战,因为其能力同时减少NOx和PM。 HCCI技术可用于不同的替代燃料,而现有发动机无需显着修改。在该研究中,使用B20(带柴油20%V / V生物柴油)研究了HCCI燃烧。在两个气缸发动机上进行研​​究,其中修改了一个气缸以在HCCI模式下操作,但是在传统的CI燃烧模式下操作的另一个汽缸。专用燃料蒸发器用于均匀燃料 - 空气混合物制备。在不同发动机负载下在三种不同的进气充气温度(160℃,180℃和200℃)和三种不同的EGR比(0%,10%和20%EGR)下进行实验。当发动机稳定时,在所有测试条件下测量缸内压力和废气排放。使用发动机排气粒子Sizer(EEP)对所有这些测试燃料进行发动机排气颗粒的物理表征。在更高的发动机负荷下,生物柴油HCCI显示出略高的敲击趋势。随着EGR的增加,圆柱形压力和热释放率也降低了爆震趋势。生物柴油HCCI的燃烧特性随着进气充电温度的增加而改善,但高进气温度引起过度爆震和不利影响的性能特征。由于燃烧序列的优化,生物柴油HCCI随着EGR的增加而呈现出卓越的性能特征。由于爆震过度,进气充电温度高米落柴油的性能特征略微降低。然而,NOx排放量非常低,但随着EGR的增加,HC和CO发射增加。增加进气充电温度降低了HC和CO排放,并在非常高的发动机负荷下增加了NOx排放。颗粒发射特性表明,B20燃烧发出略高的纳米颗粒,随着EGR的增加而增加,随着进气电荷温度的增加而降低。

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