首页> 外文期刊>Combustion Science and Technology >PERFORMANCE OF THE MOBILITY SIZING TECHNIQUE RELATIVE TO INDEPENDENT DIAGNOSTICS FOR THE CHARACTERIZATION OF POLYDISPERSE SOOT AGGREGATES
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PERFORMANCE OF THE MOBILITY SIZING TECHNIQUE RELATIVE TO INDEPENDENT DIAGNOSTICS FOR THE CHARACTERIZATION OF POLYDISPERSE SOOT AGGREGATES

机译:与独立诊断有关的多分散煤烟团粒表征的流动性分级技术的性能

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摘要

Accurate characterizations of particulate matter based on reliable measurement techniques are essential to monitor, regulate, and model atmospheric pollution levels, so that a unified scientific database can be achieved to guide progress in air quality and emission policies. Of particular interests are the relevant sizes of combustion-generated particulates that are typically fractal aggregates of small spherical primary particles. In this study, three independent diagnostics-mobility particle sizer, transmission electron microscopy, and laser scattering and extinction-were critically compared and evaluated for their abilities and limitations in characterizing properties of polydisperse soot populations emitted from well-defined laboratory flames. For the present experimental conditions, microscopy and optical measurements were found to agree not only with each other but also with past studies. While the mobility sizing technique could not reveal information on spherule diameters and fractal properties due to the spherical particle assumption, it yielded overall equivalent sizes that were comparable to aggregate sizes. The measured mobility diameters, however, differed from the other two techniques for aggregate size distributions and were not consistent with expected sooting behaviors when the flame conditions were changed. The maximum discrepancy between the mobility and optical measurements was a factor of three for particle volume fraction and more than an order of magnitude for specific surface area. These results suggest further experimental and theoretical investigations on the correspondence between mobility diameter and actual properties of aggregated particulate matter.
机译:基于可靠的测量技术对颗粒物进行准确表征对于监测,调节和模拟大气污染水平至关重要,因此可以建立一个统一的科学数据库来指导空气质量和排放政策的进展。特别引起关注的是燃烧产生的颗粒的相关尺寸,这些颗粒通常是小的球形初级颗粒的分形聚集体。在这项研究中,对三个独立的诊断-流动性粒度测定仪,透射电子显微镜以及激光散射和消光进行了严格的比较,并评估了它们在表征明确定义的实验室火焰中散发的烟尘种群特征方面的能力和局限性。对于当前的实验条件,发现显微镜和光学测量不仅彼此一致,而且与过去的研究一致。尽管由于球形粒子的假设,迁移率分级技术无法显示有关球体直径和分形特性的信息,但它产生的总体等效尺寸可与聚集体尺寸相比。但是,测得的迁移率直径不同于其他两种用于聚集体尺寸分布的技术,并且与火焰条件发生变化时预期的烟ing行为不一致。迁移率和光学测量之间的最大差异是粒子体积分数的三倍,而比表面积则大于一个数量级。这些结果表明进一步的实验和理论研究在迁移直径和聚集的颗粒物的实际性质之间的对应关系。

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  • 来源
    《Combustion Science and Technology》 |2009年第12期|1526-1548|共23页
  • 作者单位

    Department of Mechanical and Aerospace Engineering, Missouri University of Science and Technology, Rolla, Missouri, USA;

    Department of Mechanical and Aerospace Engineering, Missouri University of Science and Technology, Rolla, MO 65409-0050, USA;

    Department of Physics, Missouri University of Science and Technology, Rolla, Missouri, USA;

    Department of Chemistry, Missouri University of Science and Technology, Rolla, Missouri, USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    laser diagnostics; mobility sizing; soot aggregates; TEM;

    机译:激光诊断;流动性大小;烟灰聚集体;透射电镜;

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