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Combined hydrogen diesel combustion : an experimental investigation into the effects of hydrogen addition on the exhaust gas emissions, particulate matter size distribution and chemical composition

机译:氢燃料联合燃烧:加氢对废气排放,颗粒物大小分布和化学成分影响的实验研究

摘要

This investigation examines the effects of load, speed, exhaust gas recirculation (EGR) level and hydrogen addition level on the exhaust gas emissions, particulate matter size distribution and chemical composition. The experiments were performed on a 2.0 litre, 4 cylinder, direct injection engine. EGR levels were then varied from 0% to 40%. Hydrogen induction was varied between 0 and 10% vol. of the inlet charge. In the case of using hydrogen and EGR, the hydrogen replaced air. The load was varied from 0 to 5.4 bar BMEP at two engine speeds, 1500 rpm and 2500 rpm. For this investigation the carbon monoxide (CO), total unburnt hydrocarbons (THC), nitrogen oxides (NOX) and the filter smoke number (FSN) were all measured. The in-cylinder pressure was also captured to allow the heat release rate to be calculated and, therefore, the combustion to be analysed. A gravimetric analysis of the particulate matter size distribution was conducted using a nano-MOUDI. Finally, a GC-MS was used to determine the chemical composition of the THC emissions. The experimental data showed that although CO, FSN and THC increase with EGR, NOX emissions decrease. Inversely, CO, FSN and THC emissions decrease with hydrogen, but NOX increases. When hydrogen was introduced the peak cylinder pressure was increased, as was the maximum rate of in-cylinder pressure rise. The position of the peak cylinder pressure was delayed as hydrogen addition increased. This together with the obtained heat release patterns shows an increase in ignition delay, and a higher proportion of premixed combustion. The experimental work showed that the particulate matter size distribution was not dramatically altered by the addition of EGR, but the main peak was slightly shifted towards the nucleation mode with the addition of hydrogen. Hydrogen addition does not appear to have a large effect on the chemical composition of the THC, but does dramatically decrease the emissions.
机译:这项研究检查了负载,速度,废气再循环(EGR)水平和氢气添加水平对废气排放,颗粒物尺寸分布和化学成分的影响。实验是在2.0升4缸直喷发动机上进行的。然后,EGR水平从0%变化到40%。氢诱导在0和10%vol之间变化。入口电荷的在使用氢气和EGR的情况下,氢气替代了空气。在两种发动机转速(1500 rpm和2500 rpm)下,负载的BMEP从0 bar变为5.4 bar。为了进行这项研究,一氧化碳(CO),总未燃烧碳氢化合物(THC),氮氧化物(NOX)和过滤器烟气量(FSN)均已测量。还捕获缸内压力,以计算出热量的释放率,从而分析燃烧。使用纳米MOUDI进行重量分析的颗粒物大小分布。最后,使用GC-MS确定THC排放物的化学成分。实验数据表明,尽管CO,FSN和THC随着EGR的增加而增加,但NOX排放却减少了。相反,CO,FSN和THC排放随氢气而减少,但NOX增加。当引入氢气时,峰值气缸压力增加,最大气缸内压力上升速率也增加。随着氢气添加的增加,峰值气缸压力的位置被延迟。这与获得的放热模式一起显示出点火延迟的增加,以及预混燃烧的比例更高。实验工作表明,加入EGR并不会显着改变颗粒物的粒径分布,但是加入氢后,主峰略微向成核模式移动。氢的加入似乎对四氢大麻酚的化学成分没有很大影响,但确实可以大大减少排放。

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