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Combined effect of influence of nano additives, combustion chamber geometry and injection timing in a DI diesel engine fuelled with ternary (diesel-biodiesel-ethanol) blends

机译:在掺有三元(柴油-生物柴油-乙醇)混合物的DI柴油机中,纳米添加剂,燃烧室几何形状和喷射正时的综合影响

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The present experimental work focuses on the combined effect of nano additives, combustion chamber geometry and injection timing in a single cylinder diesel engine fuelled with ternary fuel (diesel-biodiesel-ethanol) blends. Ternary fuel (TF) is doped with alumina nano additives and the resulting fuel is termed as high performance fuel (HPF). HPF is subjected to different combustion chamber geometries and TRCC (torroidal re-entrant combustion chamber) geometry is found to be effective among other geometries. HPF operated at TRCC chamber is subjected to four different injection timings namely, 21 degrees bTDC (HPF-TRCC21), 22 degrees bTDC (HPF-TRCC22), 23 degrees bTDC (HPF-TRCC23) and 24 degrees bTDC (HPF-TRCC24) respectively. BTE is lowered for HPF-TRCC21 and HPF-TRCC24 by 4.53% and 1.22% while highest BTE of about 33.8% is achieved for 22 degrees bTDC in comparison with other blends such as DIESEL-HCC23 (32.75%), HPF-TRCC21 (31.41%) and HPF-TRCC24 (32.53%). Lowest BSEC profile was achieved for HPF-TRCC22. HPF-TRCC22 resulted in lowered HC and CO emissions of about 9.18% and 16.83% in comparison with HPF-TRCC23. HPF-TRCC21 resulted in lowered NOx emissions by 22.53% along with higher HC and CO emissions by 6.13% and 20.51% in comparison with HPF-TRCC23. Cylinder pressure and HRR of HPF-TRCC22 stays at an acceptable range of 75.42 bar and 85.34 J/deg CA in comparison with other test blends. The DIESEL-RK theoretical simulation results are compared with the experimental study conducted at the same operating conditions and its revealed that TRCC combustion chamber geometry is better for enhanced performance and combustion characteristics. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本实验工作的重点是在掺有三元燃料(柴油-生物柴油-乙醇)混合物的单缸柴油机中,纳米添加剂,燃烧室的几何形状和喷射正时的综合作用。三元燃料(TF)掺有氧化铝纳米添加剂,所得燃料称为高性能燃料(HPF)。 HPF经受不同的燃烧室几何形状,而TRCC(环形凹角燃烧室)几何形状在其他几何形状中是有效的。在TRCC腔中运行的HPF经受四种不同的喷射定时,分别是21度bTDC(HPF-TRCC21),22度bTDC(HPF-TRCC22),23度bTDC(HPF-TRCC23)和24度bTDC(HPF-TRCC24) 。与DIESEL-HCC23(32.75%),HPF-TRCC21(31.41)等其他混合物相比,HPF-TRCC21和HPF-TRCC24的BTE分别降低了4.53%和1.22%,而22度bTDC的最高BTE约为33.8%。 %)和HPF-TRCC24(32.53%)。 HPF-TRCC22实现了最低的BSEC配置文件。与HPF-TRCC23相比,HPF-TRCC22的HC和CO排放量降低了约9.18%和16.83%。与HPF-TRCC23相比,HPF-TRCC21的NOx排放量降低了22.53%,HC和CO排放量分别提高了6.13%和20.51%。与其他测试混合物相比,HPF-TRCC22的气缸压力和HRR保持在75.42 bar和85.34 J / deg CA的可接受范围内。将DIESEL-RK理论仿真结果与在相同工况下进行的实验研究进行比较,结果表明TRCC燃烧室的几何形状对于提高性能和燃烧特性更好。 (C)2019 Elsevier Ltd.保留所有权利。

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