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Do We Understand What the Mercury Speciation Instruments Are Actually Measuring? Results of RAMIX

机译:我们了解水银形态形成工具实际测量的内容吗? RAMIX的结果

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摘要

From August 22 to September 16, 2012, atmospheric mercury (Hg) was measured from a common manifold in the field during the Reno Atmospheric Mercury Intercomparison eXperiment. Data were collected using Tekran systems, laser induced fluorescence, and evolving new methods. The latter included the University of Washington-Detector for Oxidized Mercury, the University of Houston Mercury instrument, and a filter-based system under development by the University of Nevada-Reno. Good transmission of total Hg was found for the manifold. However, despite application of standard protocols and rigorous quality control, systematic differences in operationally defined forms of Hg were measured by the sampling systems. Concentrations of reactive Hg (RM) measured with new methods were at times 2-to-3-fold higher than that measured by Tekran system. The low RM recovery by the latter can be attributed to lack of collection as the system is currently configured. Concentrations measured by all instruments were influenced by their sampling location in-the-manifold and the instrument analytical configuration. On the basis of collective assessment of the data, we hypothesize that reactions forming RM were occurring in the manifold. Results provide a new framework for improved understanding of the atmospheric chemistry of Hg.
机译:从2012年8月22日至9月16日,在里诺(Reno)大气汞比对实验中,从野外的一个普通歧管中测量了大气汞(Hg)。使用Tekran系统,激光诱导荧光和不断发展的新方法收集数据。后者包括华盛顿大学氧化汞检测仪,休斯顿大学汞仪以及内华达州里诺大学正在开发的基于过滤器的系统。总歧管中的总汞传输良好。然而,尽管应用了标准协议和严格的质量控制,但采样系统仍测量了汞在操作上定义形式的系统差异。用新方法测得的反应性汞(RM)浓度比Tekran系统测得的高2至3倍。后者的RM回收率低可归因于当前配置系统时缺乏收集。所有仪器测量的浓度均受其在歧管中的采样位置和仪器分析配置的影响。基于数据的集体评估,我们假设形成RM的反应发生在歧管中。结果提供了一个新的框架,以增进对汞大气化学的了解。

著录项

  • 来源
    《Environmental Science & Technology》 |2013年第13期|7295-7306|共12页
  • 作者单位

    Department of Natural Resources and Environmental Science, University of Nevada, Reno, 1664 N. Virginia Street, Reno, Nevada, United States, 89557;

    Department of Natural Resources and Environmental Science, University of Nevada, Reno, 1664 N. Virginia Street, Reno, Nevada, United States, 89557;

    Department of Natural Resources and Environmental Science, University of Nevada, Reno, 1664 N. Virginia Street, Reno, Nevada, United States, 89557;

    Department of Natural Resources and Environmental Science, University of Nevada, Reno, 1664 N. Virginia Street, Reno, Nevada, United States, 89557;

    Department of Natural Resources and Environmental Science, University of Nevada, Reno, 1664 N. Virginia Street, Reno, Nevada, United States, 89557,Department of Atmospheric Sciences, University of Washington, Seattle, Washington, United States, 98195;

    Science and Technology Program, University of Washington-Bothell, 18115 Campus Way NE, Bothell, Washington, United States, 98011;

    Science and Technology Program, University of Washington-Bothell, 18115 Campus Way NE, Bothell, Washington, United States, 98011;

    Science and Technology Program, University of Washington-Bothell, 18115 Campus Way NE, Bothell, Washington, United States, 98011,Bingham Research Center, Utah State University Office of Commercialization and Regional Development, 320 N. Aggie Blvd., Vernal, Utah, USA, 84078;

    Science and Technology Program, University of Washington-Bothell, 18115 Campus Way NE, Bothell, Washington, United States, 98011;

    Department of Earth and Atmospheric Science, University of Houston, Houston, Texas, United States, 77204;

    Department of Chemistry, University of New Hampshire, Durham, New Hampshire, United States, 03824;

    Department of Chemistry, State University of New York, College of Environmental Science and Forestry, Syracuse, New York, United States, 13210;

    Emeritus Fellow, Oak Ridge National Laboratory, Graeagle, California;

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