首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Impact of Very High Injection Pressure on Soot Emissions of Medium Speed Large Diesel Engines
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Impact of Very High Injection Pressure on Soot Emissions of Medium Speed Large Diesel Engines

机译:很高的喷射压力对中速大型柴油机烟尘排放的影响

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摘要

Measures exist to adjust tailpipe NO_x emissions to assigned values, for example cooled exhaust gas recirculation (EGR) or a selective catalytic reduction (SCR) catalyst in conjunction with urea. The situation is quite different with soot when use of a trap is not feasible for reasons of cost, space requirements and maintenance. Due to the highly complex soot formation and oxidation process, soot emissions cannot be targeted as easily as NO_x. So, how can soot be kept within the limits? In principle, soot can be controlled by allocating sufficient oxygen and establishing good mixing conditions with vaporized fuel. The most effective measures target the injection system, e.g., increasing injection pressure, applying multiple injections, optimizing nozzle geometry. To investigate the impact of very high injection pressure on soot, an advanced injection system with rail pressure capability up to 3000 bar and a Bosch injector was installed at the Large Engines Competence Center (LEC) in Graz. Full load and part load operating points at constant speed and in accordance with the propeller law were investigated at the test bed to quantify the impact of high injection pressure on soot emissions. Test runs were conducted with both SCR and EGR while varying injection timing and air-fuel ratios. Use of a statistical method, design of experiments (DOE), helped reduce the number of tests. Optical investigations of the spray and combustion were conducted. The goal was to obtain soot concentration history traces with the two color method in order to better understand how soot originates and to be able to calibrate 3D CFD (computational fluid dynamics) FIRE spray models for use with injection pressures of up to 3000 bar. Very low soot emissions can be achieved using high pressure injection, even when EGR is applied. DOE results provide a clear picture of the relationships between the parameters and can be used to optimize set values for the whole speed and load range. A reliable spray break up model can be used in further 3D CFD simulation to investigate how to reduce soot emissions.
机译:存在将尾管NO_x排放物调节至指定值的措施,例如冷却的废气再循环(EGR)或与尿素结合的选择性催化还原(SCR)催化剂。当由于成本,空间要求和维护原因而无法使用捕集阱时,对于烟灰而言情况就大不相同了。由于高度复杂的烟尘形成和氧化过程,烟尘排放无法像NO_x一样容易地确定目标。那么,如何将烟灰保持在限值范围内?原则上,可以通过分配足够的氧气并与汽化燃料建立良好的混合条件来控制烟灰。最有效的措施是针对注射系统,例如增加注射压力,进行多次注射,优化喷嘴几何形状。为了研究极高的喷射压力对烟灰的影响,在格拉茨的大型发动机技术中心(LEC)安装了先进的喷射系统,该系统具有高达3000 bar的轨压能力和一个Bosch喷射器。在试验台上研究了恒定速度下并根据螺旋桨定律的满负荷和部分负荷工作点,以量化高喷射压力对烟尘排放的影响。使用SCR和EGR进行测试,同时改变喷射正时和空燃比。使用统计方法进行实验设计(DOE),有助于减少测试次数。进行了喷雾和燃烧的光学研究。目的是使用两种颜色的方法获得烟灰浓度历史轨迹,以便更好地了解烟灰的起源,并能够校准3D CFD(计算流体力学)FIRE喷淋模型,以用于最高3000 bar的注射压力。即使使用EGR,也可以使用高压喷射实现极低的烟尘排放。 DOE结果提供了参数之间关系的清晰图片,可用于优化整个速度和负载范围的设定值。可靠的喷雾破碎模型可用于进一步的3D CFD模拟中,以研究如何减少烟尘排放。

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