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Identification of surface NOx emission sources on a regional scale using OMI NO2

机译:使用OMI NO2在区域范围内识别表面NOx排放源

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摘要

In this study, an inverse modeling technique is applied to obtain, at a regional scale, top-down emission estimates for nitrogen oxides utilizing tropospheric nitrogen dioxide (NO2) columns retrieved by the OMI/Aura instrument and estimated by the Comprehensive Air Quality Model with extensions (CAM(x)). The main idea, applied previously using models with coarse spatial resolution, is to combine the a priori information from the bottom up emission inventory used in an air quality simulation that covers the Balkan peninsula in a high resolution grid (0.1 degrees x 0.1 degrees) with the tropospheric NO2 quantities estimated for one complete year by CAMx and the tropospheric NO2 columns retrieved by satellite observations in order to identify missing emissions sources on a regional scale. The results have identified biases between the a priori and a posteriori emission inventories due to the missing emission sources or overestimation of the spread and quantity of certain emission sources. In such a fine resolution grid we have also analyzed and considered the horizontal transport on the a posteriori NOx emissions. The deduced a posteriori NOx emissions, dominated by the fossil fuel emissions, were found to be1.11 +/- 0.30 Tg N/y, compared to 0.87 +/- 0.43 Tg N/y found in the a priori Balkan emission inventory. Soil emissions over the extended Greek domain, omitted in the a priori inventory, were estimated to account for almost 20% of the total emitted amount, while for the year 2009 the biomass burning NOx emission flux was also estimated and the average rate accounted for 0.5 x 10(-6) Tg N/km(2). (C) 2014 Elsevier Ltd. All rights reserved.
机译:在这项研究中,采用逆建模技术来利用OMI / Aura仪器获取的对流层二氧化氮(NO2)柱,在区域尺度上获得自上而下的氮氧化物排放估算值,并通过综合空气质量模型估算扩展名(CAM(x))。以前使用具有粗糙空间分辨率的模型应用的主要思想是将自下而上的排放清单的先验信息用于在高分辨率网格(0.1度x 0.1度)中覆盖巴尔干半岛的空气质量模拟中, CAMx估算了整整一年的对流层NO2数量,并通过卫星观测获得了对流层NO2柱,以便在区域范围内识别缺失的排放源。结果确定了先验和后验排放清单之间的偏差是由于缺少排放源或对某些排放源的扩散和数量的高估造成的。在这种高分辨率的网格中,我们还分析并考虑了后NOx排放的水平传输。推算出的后发NOx排放为化石燃料排放为主,为1.11 +/- 0.30 Tg N / y,而先验的巴尔干排放清单为0.87 +/- 0.43 Tg N / y。估计希腊范围内的土壤排放量(在先验清单中省略)估计占排放总量的近20%,而2009年的生物质燃烧NOx排放通量也被估算,平均排放率约为0.5 x 10(-6)Tg N / km(2)。 (C)2014 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Atmospheric environment》 |2015年第1期|82-93|共12页
  • 作者单位

    AUTh, Dept Phys, Lab Atmospher Phys, Thessaloniki, Greece;

    AUTh, Dept Phys, Lab Atmospher Phys, Thessaloniki, Greece;

    AUTh, Dept Phys, Lab Atmospher Phys, Thessaloniki, Greece;

    Ecole Polytech, IPSL, LMD, F-75230 Paris, France;

    AUTh, Dept Phys, Lab Atmospher Phys, Thessaloniki, Greece;

    AUTh, Dept Phys, Lab Atmospher Phys, Thessaloniki, Greece|Aristotle Univ Thessaloniki, Sch Geol, Dept Meteorol & Climatol, GR-54006 Thessaloniki, Greece;

    Univ Patras, Dept Phys, Lab Atmospher Phys, GR-26110 Patras, Greece;

    AUTh, Dept Phys, Lab Atmospher Phys, Thessaloniki, Greece;

    Royal Netherlands Meteorol Serv, De Bilt, Netherlands|Eindhoven Univ Technol, Fluid Dynam Lab, NL-5600 MB Eindhoven, Netherlands;

    Belgian Inst Space Aeron, Brussels, Belgium;

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

    Nitrogen oxides; Emission inventory; OMI; Inverse modeling;

    机译:氮氧化物排放清单OMI反模型;

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