首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Experimental investigation of the effect of thin-wall substrates and spark timing retard on total hydrocarbon emissions during cold start for super-ultra-low-emission vehicle application
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Experimental investigation of the effect of thin-wall substrates and spark timing retard on total hydrocarbon emissions during cold start for super-ultra-low-emission vehicle application

机译:超薄低排放汽车应用中薄壁基板和火花正时延迟对冷启动过程中总碳氢化合物排放影响的实验研究

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摘要

As the basic approach to improve the emission performance under cold start engine operation to meet stringent emission regulations, the effects of thin wall catalysts and spark timing retard on total hydrocarbon (THC) emission characteristics were investigated by engine performance and vehicle emissions tests. From this study, the effects of cell density on back pressure and engine performance were studied for thin-wall catalysts. The light-off time reduction of the thin-wall catalysts was also demonstrated through vehicle emission tests. The effect of spark timing retard from minimum spark advance for best torque on THC emission reduction under the cold-start condition was also studied quantitatively using a fast flame ionization detector and a flame visualization technique. As the spark timing is retarded, THC emission at the exhaust manifold is effectively reduced regardless of the air-fuel ratio. From flame visualization, as the spark timing is retarded, the flame propagation speed becomes slower and the duration of the main flame is longer. It was also found that the reduction in THC emission at the beginning of the engine start is essential to meet the more stringent emission regulations. As a result, the adoption of a high-cell-density catalyst (900 cells/2.0 mil) and the spark timing retard technique (spark advance retard case, after top dead centre 8° crank angle) makes it possible to meet the super-ultra-low-emission vehicle emission regulation if effectively combined along with a metallic catalyst and exhaust gas-flow-optimized exhaust manifold.
机译:作为改善冷启动发动机操作下的排放性能以满足严格的排放法规的基本方法,通过发动机性能和车辆排放测试研究了薄壁催化剂和火花正时延迟对总碳氢化合物(THC)排放特性的影响。通过这项研究,研究了薄壁催化剂的泡孔密度对背压和发动机性能的影响。薄壁催化剂起燃时间的减少还通过车辆排放测试证明。还使用快速火焰电离检测器和火焰可视化技术定量研究了冷启动条件下,从最小火花提前量以获得最佳扭矩的火花正时延迟对THC排放降低的影响。由于延迟了点火正时,因此无论空燃比如何,排气歧管处的THC排放都将有效降低。从火焰可视化来看,随着火花正时的延迟,火焰传播速度变慢,主火焰的持续时间更长。还发现在发动机启动之初减少THC排放对于满足更严格的排放法规至关重要。结果,采用高孔密度催化剂(900孔/2.0密耳)和火花正时延迟技术(火花滞后延迟情况,上止点为8°曲柄角后)可以满足超高密度催化剂的要求。如果与金属催化剂和废气流量优化的排气歧管有效结合,则可实现超低排放的车辆排放法规。

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