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LSA SAF Meteosat FRP products - Part 1: Algorithms, product contents, and analysis

机译:LSA SAF Meteosat FRP产品 - 第1部分:算法,产品内容和分析

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摘要

Characterizing changes in landscape fire activity at better than hourly temporal resolution is achievable using thermal observations of actively burning fires made from geostationary Earth Observation (EO) satellites. Over the last decade or more, a series of research and/or operational "active fire" products have been developed from geostationary EO data, often with the aim of supporting biomass burning fuel consumption and trace gas and aerosol emission calculations. Such Fire Radiative Power (FRP) products are generated operationally from Meteosat by the Land Surface Analysis Satellite Applications Facility (LSA SAF) and are available freely every 15 min in both near-real-time and archived form. These products map the location of actively burning fires and characterize their rates of thermal radiative energy release (FRP), which is believed proportional to rates of biomass consumption and smoke emission. The FRP-PIXEL product contains the full spatio-temporal resolution FRP data set derivable from the SEVIRI (Spinning Enhanced Visible and Infrared Imager) imager onboard Meteosat at a 3 km spatial sampling distance (decreasing away from the west African sub-satellite point), whilst the FRP-GRID product is an hourly summary at 5 degrees grid resolution that includes simple bias adjustments for meteorological cloud cover and regional underestimation of FRP caused primarily by under-detection of low FRP fires. Here we describe the enhanced geostationary Fire Thermal Anomaly (FTA) detection algorithm used to deliver these products and detail the methods used to generate the atmospherically corrected FRP and perpixel uncertainty metrics. Using SEVIRI scene simulations and real SEVIRI data, including from a period of Meteosat-8 "special operations", we describe certain sensor and data preprocessing characteristics that influence SEVIRI's active fire detection and FRP measurement capability, and use these to specify parameters in the FTA algorithm and to make recommendations for the forthcoming Meteosat Third Generation operations in relation to active fire measures. We show that the current SEVIRI FTA algorithm is able to discriminate actively burning fires covering down to 10(-4) of a pixel and that it appears more sensitive to fire than other algorithms used to generate many widely exploited active fire products. Finally, we briefly illustrate the information contained within the current Meteosat FRP-PIXEL and FRP-GRID products, providing example analyses for both individual fires and multi-year regional-scale fire activity; the companion paper (Roberts et al., 2015) provides a full product performance evaluation and a demonstration of product use within components of the Copernicus Atmosphere Monitoring Service (CAMS).
机译:使用由地球静止地球观测(EO)卫星的积极燃烧火灾的热观察,可以实现景观火灾活动的变化。在过去十年或更长时间,已经从地球静止EO数据开发了一系列的研究和/或运营的“主动火”产品,通常是支持生物质燃烧燃料消耗和痕量气体和气溶胶排放计算的目的。这种防辐射电源(FRP)产品由陆地表面分析卫星应用设施(LSA SAF)从Meteosat开始产生,并且在近实时和存档的形式中每15分钟可用。这些产品映射了积极燃烧的火灾的位置,并表征其热辐射能量释放(FRP)的速率,这被认为与生物质消耗和烟雾发射的速率成比例。 FRP-Pixel产品包含从Seviri(旋转增强的可见和红外成像器)成像仪在3公里的空间采样距离(远离西非亚卫星点)的全时时空分辨率FRP数据集。虽然FRP-Grid产品是每小时概要,以5度网格分辨率,包括用于气象云覆盖的简单偏差调整,并且主要通过低FRP射击次级检测到引起的FRP的区域低估。在这里,我们描述了用于提供这些产品的增强的地静止火热异常(FTA)检测算法,并详细介绍用于产生大气纠正的FRP和Perpixel不确定性度量的方法。使用Seviri场景模拟和真正的Seviri数据,包括一段时间的Meteosat-8“特殊操作”,我们描述了某些传感器和数据预处理特性,影响了Seviri的主动火灾检测和FRP测量功能,并使用这些传感器和FRP测量功能,并在FTA中指定参数算法和为即将到来的Meteosat第三代操作提出了关于主动火灾措施的建议。我们表明当前的Seviri FTA算法能够在覆盖到10(-4)的像素的主动燃烧火灾,并且它看起来比用于产生许多广泛利用的主动消防产品的其他算法更敏感。最后,我们简要说明了当前的Meteosat FRP - 像素和FRP-Grid产品中包含的信息,为单独的火灾和多年区域规模的消防活动提供了示例分析; Companion Paper(Roberts等,2015)提供了完整的产品性能评估,并在哥白尼大气监测服务(CAM)的组件内使用产品使用。

著录项

  • 来源
    《Atmospheric chemistry and physics》 |2015年第22期|共23页
  • 作者单位

    Kings Coll London Environm Monitoring &

    Modelling Res Grp Dept Geog London WC2R 2LS England;

    Univ Southampton Geog &

    Environm Southampton SO17 1BJ Hants England;

    Kings Coll London Environm Monitoring &

    Modelling Res Grp Dept Geog London WC2R 2LS England;

    Kings Coll London Environm Monitoring &

    Modelling Res Grp Dept Geog London WC2R 2LS England;

    Rayference Brussels Belgium;

    Kings Coll London Environm Monitoring &

    Modelling Res Grp Dept Geog London WC2R 2LS England;

    Kings Coll London Environm Monitoring &

    Modelling Res Grp Dept Geog London WC2R 2LS England;

    MakaluMedia Darmstadt Germany;

    Kings Coll London Environm Monitoring &

    Modelling Res Grp Dept Geog London WC2R 2LS England;

    Kings Coll London Environm Monitoring &

    Modelling Res Grp Dept Geog London WC2R 2LS England;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 大气科学(气象学);
  • 关键词

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