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首页> 外文期刊>Environmental Science & Technology >Elemental Characterization of PM_(2.5) and PM_(10) Emitted from Light Duty Vehicles in the Washburn Tunnel of Houston, Texas: Release of Rhodium, Palladium, And Platinum
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Elemental Characterization of PM_(2.5) and PM_(10) Emitted from Light Duty Vehicles in the Washburn Tunnel of Houston, Texas: Release of Rhodium, Palladium, And Platinum

机译:德克萨斯州休斯顿Washburn隧道轻型车辆排放的PM_(2.5)和PM_(10)的元素表征:铑,钯和铂的释放

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摘要

We report the elemental composition, including Rh, Pd, and Pt, of total (i.e., tailpipe and nontailpipe) PM_(2.5) and PM_(10) emissions from predominantly gasoline-driven light-duty vehicles (LDVs) traversing the Washburn Tunnel in Houston, Texas during November and December, 2012. Using a novel sample preparation and dynamic reaction cell-quadrupole-inductively coupled plasma-mass spectrometry technique, we quantify the emission of numerous representative, transition, and lanthanoid elements. Two sets of time integrated PM samples were collected over 3-4week duration both inside the tunnel as well as from the tunnel ventilation air supply to derive accurate LDV source profiles incorporating three platinum group elements (PGEs) for the first time. Average Rh, Pd, and Pt concentrations from the tunnel ventilation air supply were 1.5, 11.1, and 4.5pgm~(-3) in PM_(2.5) and 3.8, 23.1, and 15.1pgm~(-3) in PM_(10), respectively. Rh, Pd, and Pt levels were elevated inside the Washburn Tunnel reaching 12.5, 91.1, and 30.1pgm~(-3) in PM_(2.5) and 36.3,214, and 61.1pgm~(-3) in PM_(10), respectively. Significantly higher enrichment factors of Cu, Zr, Rh, Pd, Sb, and Pt (referenced to Ti in the upper continental crust) inside the tunnel compared with the ventilation air supply suggested that they are unique elemental tracers of PM derived from gasoline-driven LDVs. This highlights the importance of advancing methods to quantify the trace level PGE emissions as a technique to more accurately estimate LDVs' contributions to airborne PM. Using the emission profile based on PGEs and ambient quantification, mass balancing revealed that approximately half the fine PM mass in the tunnel could be attributed to tailpipe emissions, approximately one-quarter to road dust, with smaller contributions from brake (7%) and tire (3%) wear. On the other hand, PM_(10) mostly originated from resuspended road dust (~50%), with progressively lower contributions from tailpipe emissions (14%), brake wear (9%), and tire wear (2%).
机译:我们报告了主要汽油驱动的轻型车辆(LDV)横穿美国Washburn隧道所产生的PM_(2.5)和PM_(10)排放总量(即,尾管和非尾管)的元素组成,包括Rh,Pd和Pt。 2012年11月和2012年12月,在德克萨斯州休斯顿。使用新颖的样品制备和动态反应池-四极杆感应耦合等离子体质谱技术,我们可以量化多种代表性,过渡和镧系元素的发射。在3-4周的时间内从隧道内部以及从隧道通风空气供应中收集了两组时间积分的PM样品,以首次获得包含三个铂族元素(PGE)的准确的LDV源曲线。在PM_(2.5)中,来自隧道通风空气供应的平均Rh,Pd和Pt浓度分别为1.5、11.1和4.5pgm〜(-3),在PM_(10)中分别为3.8、23.1和15.1pgm〜(-3)。 , 分别。沃什伯恩隧道内的Rh,Pd和Pt水平升高,在PM_(2.5)中达到12.5、91.1和30.1pgm〜(-3),在PM_(10)中达到36.3,214和61.1pgm〜(-3),分别。与通风空气供应相比,隧道内的Cu,Zr,Rh,Pd,Sb和Pt(以上大陆壳中的Ti表示)的富集因子明显更高,这表明它们是由汽油驱动的PM的独特元素示踪剂LDV。这突出了改进量化痕量PGE排放量的方法的重要性,这是一种更准确地估计LDV对机载PM贡献的技术。使用基于PGE和环境定量的排放曲线,质量平衡表明,隧道中PM的细微质量大约有一半可归因于尾气排放,约四分之一归因于道路扬尘,而刹车和轮胎的贡献较小(7%) (3%)磨损。另一方面,PM_(10)主要来自重悬的道路扬尘(〜50%),而尾气排放(14%),刹车磨损(9%)和轮胎磨损(2%)的贡献逐渐降低。

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  • 来源
    《Environmental Science & Technology》 |2014年第1期|54-62|共9页
  • 作者单位

    Department of Civil and Environmental Engineering, University of Houston, Houston, Texas 77204, United States;

    Department of Civil and Environmental Engineering, University of Houston, Houston, Texas 77204, United States;

    School of Sustainable Engineering and the Built Environment, Arizona State University, Tempe, Arizona, 85287, United States;

    Department of Civil and Environmental Engineering, University of Houston, Houston, Texas 77204, United States,Department of Chemical and Biomolecular Engineering, University of Houston, Houston, Texs 77204, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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