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The Effect of Spark-Plug Heat Dispersal Range and Exhaust Valve Opening Timing on Cold-Start Emissions and Cycle-to-Cycle Variability

机译:火花塞输热范围和排气门的打开时间对冷启动排放和周期到周期变化的影响

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The partnership for advancing combustion engines (PACE) is a US Department of Energy consortium involving multiple national laboratories and includes a goal of addressing key efficiency and emission barriers in light-duty engines fueled with a market-representative E10 gasoline. A major pillar of the initiative is the generation of detailed experimental data and modeling capabilities to understand and predict cold-start behavior. Cold-start, as defined by the time between first engine crank and three-way catalyst light-off, is responsible for a large percentage of NOx, unburned hydrocarbon and particulate matter emissions in light-duty engines. Minimizing emissions during cold-start is a trade-off between achieving faster light-off of the three-way catalyst and engine out emissions during that period. In this study, gaseous and soot emissions were measured at a distance representative of the three-way catalyst position downstream of the engine at a 2 bar net indicated mean effective pressure (NIMEP) steady-state operating condition representative of cold-start. The test matrix included sweeps of ignition timing 15 degrees-before to 10 degrees-after top dead center firing (TDC_f) across three different spark-plug heat dispersal ranges (HR). Additionally, the effect of varying exhaust valve opening (EVO) timing on combustion stability and emissions was also studied. Results show that the spark plug HR affects the coefficient of variation (COV) of NIMEP under all cold-start conditions, while the impact on emissions was found to be minimal. At very retarded spark timings, colder spark plugs required higher air and fuel flow to maintain the desired 2bar NIMEP load, but the fraction of fuel energy going into the exhaust was found to be similar for all spark plugs. Retarding exhaust valve timings showed a simultaneous reduction in emissions while increasing the fraction of fuel energy being fed into the exhaust. However, engine COV was also observed to increase with retarded exhaust timings.
机译:促进燃烧发动机(PACE)的合作伙伴关系是美国能源联盟,涉及多个国家实验室,包括解决以市场代表性E10汽油为燃料的轻型引擎中的关键效率和排放障碍。该计划的主要支柱是生成详细的实验数据和建模能力,以理解和预测冷启动行为。冷启动是由第一引擎曲柄和三向催化剂轻开之间的时间定义的,它负责轻度发动机中的NOX,未燃烧的碳氢化合物和颗粒物排放。最小化冷门期间的排放量是在此期间实现三向催化剂和发动机排放量更快的发动机之间的权衡。在这项研究中,在2条净网下下游的三向催化剂位置的距离内测量了气态和烟灰排放,表示代表冷启动的平均有效压力(NIMEP)稳态工作条件。测试矩阵包括扫描点火正时15度 - 在10度到10度之后,顶部死亡中心射击(TDC_F)横跨三个不同的火花塞热分散范围(HR)。此外,还研究了各种排气门开口(EVO)时间对燃烧稳定性和排放的影响。结果表明,火花塞HR会在所有冷启动条件下影响NIMEP的变异系数(COV),而对排放的影响很小。在非常弱智的火花时机下,较冷的火花塞需要更高的空气和燃油流以保持所需的2杆NIMEP负载,但是发现进入排气管的燃油能量的比例在所有火花塞中都相似。延迟的排气门正时表明,排放的同时减少,同时增加了燃料能量的比例。但是,还观察到发动机COV随着排气迟缓的时间增加。

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