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Application of Dynamic Skip Fire for NO_x and CO2 Emissions Reduction of Diesel Powertrains

机译:动态跳过的NO_X和二氧化碳排放减少柴油动力总成的应用

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Dynamic Skip Fire (DSF) has been shown to significantly reduce CO2 on gasoline engines and has been in mass production since 2018. Diesel Dynamic Skip Fire (dDSF) builds upon the technology and extends it to diesel engine applications. dDSF is an advanced cylinder deactivation technology that allows the deactivation of any number of cylinders dynamically to deliver the requested torque while maintaining acceptable noise, vibration, and harshness (NVH) performance. NO_x regulations are becoming progressively more stringent on light, medium and heavy-duty (HD) diesel engines. Meeting low NO_x standards is becoming increasingly challenging, especially in lightly loaded operating conditions where maintaining ideal aftertreatment system efficiency is difficult. Most existing techniques to increase aftertreatment temperatures at low loads incur a fuel consumption penalty, which increases greenhouse gas emissions. In this study, dDSF is shown to combine benefits by reducing both NO_x and CO_2 simultaneously. Detailed studies were conducted on a Cummins X15 HD diesel engine. Engine testing and vehicle level simulation studies were followed by transient testing conducted on an engine dynamometer as well as on-road vehicle tests. NVH testing and evaluation was performed at the vehicle level to characterize vehicle response and ensure acceptability. dDSF calibrations were optimized to provide best thermal benefits at low loads. System level considerations such as coordination of air handling and fueling during transitions between firing densities, detection of valve actuation errors and mitigation of oil consumption concerns were studied. Results from system simulations using engine test data show 74% reduction of NO_x and 5.0% reduction in CO2 on the Low Load Cycle (LLC) compared to the baseline engine with conventional thermal management. This simultaneous reduction helps compliance of NO_x regulations while also reducing overall greenhouse gas emissions.
机译:Dynamic Skip Fire(DSF)已显示可显着降低汽油发动机的二氧化碳,并自2018年以来一直在大规模生产中。柴油动态Skip Fire(DDSF)建立在技术基础上,并将其扩展到柴油发动机应用。 DDSF是一种先进的气缸停用技术,它允许动态地停用任何数量的圆柱体,以交付所需的扭矩,同时保持可接受的噪声,振动和刺激性(NVH)性能。 NO_X法规在轻,中和重型(HD)柴油发动机上变得越来越严格。达到低NO_X标准的标准变得越来越具有挑战性,尤其是在易于保持理想后处理后效率的易于加载的操作条件下。大多数现有的技术以升高低负荷下的后处理温度会导致燃油消耗罚款,从而增加温室气体排放。在这项研究中,DDSF被证明可以通过同时减少NO_X和CO_2来结合利益。对康明斯X15 HD柴油发动机进行了详细研究。发动机测试和车辆水平仿真研究之后是在发动机测功机以及跨道型车辆测试上进行的瞬态测试。在车辆水平上进行了NVH测试和评估,以表征车辆响​​应并确保可接受性。优化了DDSF校准以在低负载下提供最佳的热益处。研究了系统水平的考虑,例如在射击密度,检测阀致动误差和缓解油消耗问题之间的过渡期间的空气处理和加油等考虑。使用发动机测试数据的系统模拟的结果表明,与传统热管理的基线发动机相比,低负载周期(LLC)的NO_X和5.0%的CO2减少了5.0%。这种同时减少有助于遵守NO_X法规,同时还减少了整体温室气体排放。

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