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REAL-TIME MEASUREMENTS OF ENGINE-OUT TRACE ELEMENTS: Application of a Novel Soot Particle Aerosol Mass Spectrometer for Emissions Characterization

机译:发动机跟踪元件的实时测量:新型烟灰粒子气溶胶质谱仪的应用进行排放表征

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Lubricant-derived trace element emissions are the largest contributors to the accumulation of incombustible ash in diesel particulate filters (DPF), eventually leading to filter plugging and an increase in engine fuel consumption. Paniculate trace element emissions also pose adverse health effects and are the focus of increasingly stringent air quality regulations. To date, the rates and physical and chemical properties of lubricant-derived additive emissions are not well characterized, largely due to the difficulties associated with conducting the measurements. This work investigated the potential for conducting real-time measurements of lubricant-derived particle emissions. The experiment used the Soot Particle Aerosol Mass Spectrometer (SP-AMS) developed by Aerodyne Research to measure the size, mass and composition of submicron particles in the exhaust. Results confirm the ability of the SP-AMS to measure engine-out emissions of calcium, zinc, magnesium, phosphorous, and sulfur. Further, emissions of previously difficult to detect elements, such as boron, and low-level engine wear metals, such as lead, were also measured. This paper provides an overview of the results obtained with the SP-AMS, and demonstrates the utility of applying real-time techniques to engine-out and tailpipe-out trace element emissions. The SP-AMS used in this study was developed for real-time characterization of refractory particles (i.e. black carbon or soot) in the ambient atmosphere. The instrument consists of an intra-cavity laser (1064 nm) for particle vaporization followed by electron impact ionization and ion detection via a time-of-flight mass spectrometer. Application of the SP-AMS for engine exhaust characterization followed a two-part approach: (1) measurement validation, and (2) measurement of engine-out exhaust. Measurement validation utilized a diesel burner with precise control of lubricant consumption. Results showed a good correlation between CJ-4 oil consumption and measured levels of lubricant-derived trace elements in the particle phase. Following measurement validation, the SP-AMS measured engine-out emissions from a medium-duty diesel engine, operated over a standard speed/load matrix. This work demonstrates the utility of state-of-the-art online techniques (such as the SP-AMS) to measure engine-out emissions, including trace species derived from lubricant additives. Results help optimize the combined engine-lubricant-aftertreatment system and provide a real-time characterization of emissions. As regulations become more stringent and emission controls more complex, advanced measurement techniques with high sensitivity and fast time response will become an increasingly important part of engine characterization studies.
机译:润滑剂衍生的微量元素排放是柴油颗粒过滤器(DPF)中不可燃灰分积累的最大贡献者,最终导致过滤堵塞和发动机燃料消耗的增加。胰腺痕量元素排放也造成不良健康影响,是越来越严格的空气质量法规的重点。迄今为止,润滑剂衍生的添加剂排放的速率和物理和化学性质并不具备很好的表征,主要是由于与导电测量相关的困难。这项工作研究了进行润滑剂衍生粒子排放的实时测量的可能性。该实验使用烟雾粒子气溶胶质谱仪(SP-AMS)由Aerodyne Research开发,测量排气中亚微米颗粒的尺寸,质量和组成。结果证实了SP-AMS测量钙,锌,镁,磷和硫的发动机排放的能力。此外,还测量了先前难以检测元素的排放,例如硼和低级发动机磨损金属,例如铅。本文概述了使用SP-AMS获得的结果,并展示了将实时技术应用于发动机输出和尾气管道痕量元素排放的实用性。本研究中使用的SP-AM用于在环境大气中实时表征耐火颗粒(即黑碳或烟灰)。该仪器由腔内激光器(1064nm)组成,用于粒子蒸发,然后通过飞行时间质谱仪进行电子冲击电离和离子检测。 SP-AM用于发动机排气表征的应用遵循两部分方法:(1)测量验证,(2)发动机排气的测量。测量验证利用柴油燃烧器,精确控制润滑剂消耗。结果表明CJ-4油消耗与颗粒相中润滑剂衍生的微量元素的测量水平之间的良好相关性。在测量验证之后,SP-AMS测量了通过标准速度/负载矩阵的中值柴油发动机的发动机排放。这项工作展示了最先进的在线技术(例如SP-AMS)来测量发动机排放的效用,包括衍生自润滑剂添加剂的痕量物种。结果有助于优化组合的发动机润滑剂后处理系统,并提供排放的实时表征。由于法规变得更加严格,排放控制更复杂,具有高灵敏度和快速时间响应的高级测量技术将成为发动机表征研究的越来越重要的部分。

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