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首页> 外文期刊>Journal of the Air & Waste Management Association >Evaluation of an annular denuder system for carbonaceous aerosol sampling of diesel engine emissions
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Evaluation of an annular denuder system for carbonaceous aerosol sampling of diesel engine emissions

机译:评估用于柴油机排放的碳质气溶胶采样的环形剥蚀器系统

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摘要

Sampling of particle-phase organic carbon (OC)from diesel engines is complicated by adsorption and evaporation ofsemivolatile organic carbon (SVOC), defined as positive and negative artifacts, respectively. In order to explore these artifacts, an integrated organic gas and particle sampler (IOGAPS) was applied, in which an XAD-coated multichannel annular denuder was placed upstream to remove the gas-phase SVOC and two downstream sorbent-impregnated filters (SIFs) were employed to capture the evaporated SVOC. Positive artifacts can be reduced by using a denuder, but particle loss also occurs. This paper investigates the IOGAPS with respect to particle loss, denuder efficiency, and particle-phase OC artifacts by comparing OC, elemental carbon (EC), SVOC, and selected organic species, as well as particle size distributions. Compared to the filter pack methods typically used, the IOGAPS approach results in estimation of both positive and negative artifacts, especially the negative artifact. The positive and negative artifacts were 190 μg/m~33 and 67/μg/m~3, representing 122% and 43% of the total particle OC measured by the IOGAPS, respectively. However, particle loss and denuder break-through were also found to exist. Monitoring particle mass loss by particle number or EC concentration yielded similar results ranging from 10% to 24% depending upon flow rate. Using the measurements of selected particle-phase organic species to infer particle loss resulted in larger estimates, on the order of3 2%. The denuder collection efficiency for SVOCs at 7 4 L/min was found to be less than 100%, with an average of 84%. In addition to these uncertainties the IOGAPS method requires a considerable amount of extra effort to apply. These disadvantages must be weighed against the benefits of being able to estimate positive artifacts and correct, with some uncertainty, for the negative artifacts when selecting a method for sampling diesel emissions. Implications: Measurements of diesel emissions are necessary to understand their adverse impacts. Much of the emissions is organic carbon covering a range of volatilities, complicating determination of the particle fraction because of sampling artifacts. In this paper an approach to quantify artifacts is evaluated for a diesel engine. This showed that 63% of the particle organic carbon typically measured could be the positive artifact while the negative artifact is about one-third of this value. However, this approach adds time and expense and leads to other uncertainties, implying that effort is needed to develop methods to accurately measure diesel emissions. Supplemental Materials: Supplemental materials are available for this paper. Go to the publisher's online edition of the Journal of the Air & Waste Management System.
机译:半挥发性有机碳(SVOC)的吸附和蒸发分别使柴油发动机中的颗粒相有机碳(OC)采样变得复杂,分别定义为正负工件。为了探索这些假象,应用了集成的有机气体和颗粒物采样器(IOGAPS),其中在XAD涂层的多通道环形剥蚀器的上游放置了气相SVOC,并在下游安装了两个浸有吸附剂的过滤器(SIF)。用于捕获蒸发的SVOC。通过使用剥蚀器可以减少正伪影,但也会发生颗粒损失。本文通过比较OC,元素碳(EC),SVOC和选定的有机物种类以及粒径分布,研究了IOGAPS的颗粒损失,剥蚀效率和颗粒相OC伪影。与通常使用的过滤器包方法相比,IOGAPS方法可估计正和负伪像,尤其是负伪像。正伪影为190μg/ m〜33,负伪影为67 /μg/ m〜3,分别占IOGAPS测量的总OC的122%和43%。但是,还发现存在颗粒损失和剥蚀突破。监测颗粒质量或EC浓度引起的颗粒质量损失,得出相似的结果,其范围从10%到24%(取决于流速)。使用选定的颗粒相有机物的测量值来推断颗粒损失导致较大的估计,约为3 2%。发现SVOC在7 4 L / min时的剥蚀效率小于100%,平均为84%。除了这些不确定性之外,IOGAPS方法还需要大量额外的努力才能应用。在选择柴油排放采样方法时,必须权衡这些缺点与能够估计出正伪影并能够在一定不确定性下校正负伪影的好处。含义:柴油排放的测量对于了解其不利影响是必要的。大部分排放物是覆盖一定范围挥发度的有机碳,由于采样伪影,使颗粒分数的确定变得复杂。在本文中,量化量化伪影的方法已针对柴油机进行了评估。这表明通常测得的颗粒有机碳中有63%可能是正伪影,而负伪影大约是该值的三分之一。但是,这种方法增加了时间和费用,并导致其他不确定性,这意味着需要努力开发精确测量柴油排放的方法。补充材料:本文提供补充材料。转到《空气与废物管理系统杂志》的出版商在线版本。

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    ERMS, Environment Canada, Ottawa, Ontario, Canada,Jiangsu Provincial Academy of Environmental Science, Nanjing, Jiangsu, China;

    AQRD, Environment Canada, Toronto, Ontario, Canada;

    ERMS, Environment Canada, Ottawa, Ontario, Canada;

    ERMS, Environment Canada, Ottawa, Ontario, Canada;

    AQRD, Environment Canada, Toronto, Ontario, Canada,Environment Canada, Toronto, ON, M3H 5T4, Canada;

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