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  • 1
    Publication Date: 2019-07-13
    Description: No abstract available
    Keywords: Meteorology and Climatology; Earth Resources and Remote Sensing
    Type: MSFC-E-DAA-TN35577 , Columbia University School of Engineering and Applied Science (SEAS) SEAS Colloquium in Climate Science (SCiCS); Sep 15, 2016; New York City, NY; United States
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  • 2
    Publication Date: 2019-07-13
    Description: No abstract available
    Keywords: Meteorology and Climatology; Earth Resources and Remote Sensing
    Type: MSFC-E-DAA-TN47608-1 , Annual Community Modeling and Analysis System (CMAS) Conference; Oct 23, 2017 - Oct 25, 2017; Chapel Hill, NC; United States
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  • 3
    Publication Date: 2019-07-13
    Description: The intense heating of air by a lightning channel, and subsequent rapid cooling, leads to the production of lightning nitrogen oxides (NOx = NO + NO2) as discussed in Chameides [1979]. In turn, the lightning nitrogen oxides (or "LNOx" for brevity) indirectly influences the Earth's climate because the LNOx molecules are important in controlling the concentration of ozone (O3) and hydroxyl radicals (OH) in the atmosphere. Climate is most sensitive to O3 in the upper troposphere, and LNOx is the most important source of NOx in the upper troposphere at tropical and subtropical latitudes; hence, lightning is a useful parameter to monitor for climate assessments. The National Climate Assessment (NCA) program was created in response to the Congressionally-mandated Global Change Research Act (GCRA) of 1990. Thirteen US government organizations participate in the NCA program which examines the effects of global change on the natural environment, human health and welfare, energy production and use, land and water resources, human social systems, transportation, agriculture, and biological diversity. The NCA focuses on natural and human-induced trends in global change, and projects major trends 25 to 100 years out. In support of the NCA, the NASA Marshall Space Flight Center (MSFC) continues to assess lightning-climate inter-relationships. This activity applies a variety of NASA assets to monitor in detail the changes in both the characteristics of ground- and space- based lightning observations as they pertain to changes in climate. In particular, changes in lightning characteristics over the conterminous US (CONUS) continue to be examined by this author using data from the Tropical Rainfall Measuring Mission Lightning Imaging Sensor. In this study, preliminary estimates of LNOx trends derived from TRMM/LIS lightning optical energy observations in the 17 yr period 1998-2014 are provided. This represents an important first step in testing the ability to make remote retrievals of LNOx from a satellite-based lightning sensor. As is shown, the methodology can also be directly applied to more recently launched lightning mappers, such as the Geostationary Lightning Mapper, and the International Space Station LIS.
    Keywords: Meteorology and Climatology; Earth Resources and Remote Sensing
    Type: MSFC-E-DAA-TN47608-2 , Annual Community Modeling and Analysis System (CMAS) Conference; Oct 23, 2017 - Oct 25, 2017; Chapel Hill, NC; United States
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  • 4
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    In:  CASI
    Publication Date: 2019-07-13
    Description: No abstract available
    Keywords: Meteorology and Climatology; Earth Resources and Remote Sensing
    Type: MSFC-E-DAA-TN35911 , 2016 GLM Annual Science Team Meeting; Sep 27, 2016 - Sep 29, 2016; Huntsville, AL; United States
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  • 5
    Publication Date: 2019-07-13
    Description: No abstract available
    Keywords: Meteorology and Climatology; Earth Resources and Remote Sensing
    Type: MSFC-E-DAA-TN37859 , 2017 American Meteorological Society Conference; Jan 22, 2017 - Jan 26, 2017; Seattle, WA; United States
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  • 6
    Publication Date: 2019-07-13
    Description: The NASA Marshall Space Flight Center Lightning Nitrogen Oxides Model (LNOM) is applied to August 2006 North Alabama Lightning Mapping Array (NALMA) data to estimate the (unmixed and otherwise environmentally unmodified) vertical source profile of lightning nitrogen oxides, NOx = NO + NO2. Data from the National Lightning Detection Network (Trademark) (NLDN) is also employed. This is part of a larger effort aimed at building a more realistic lightning NOx emissions inventory for use by the U.S. Environmental Protection Agency (EPA) Community Multiscale Air Quality (CMAQ) modeling system. Overall, special attention is given to several important lightning variables including: the frequency and geographical distribution of lightning in the vicinity of the NALMA network, lightning type (ground or cloud flash), lightning channel length, channel altitude, channel peak current, and the number of strokes per flash. Laboratory spark chamber results from the literature are used to convert 1-meter channel segments (that are located at a particular known altitude; i.e., air density) to NOx concentration. The resulting lightning NOx source profiles are discussed.
    Keywords: Environment Pollution
    Type: M10-0569 , M10-0443 , 21st International Lightning Detection Conference (ILDC)/Vaisala; Apr 18, 2010 - Apr 22, 2010; Orlando, FL; United States
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  • 7
    Publication Date: 2019-08-26
    Description: Tropospheric ozone lidars are well suited to measuring the high spatio-temporal variability of this important trace gas. Furthermore, lidar measurements in conjunction with balloon soundings, aircraft, and satellite observations provide substantial information about a variety of atmospheric chemical and physical processes. Examples of processes elucidated by ozone-lidar measurements are presented, and modeling studies using WRF-Chem, RAQMS, and DALES/LES models illustrate our current understanding and shortcomings of these processes.
    Keywords: Geophysics
    Type: MSFC-E-DAA-TN26418 , International Workshop on Air Quality Forecasting Research; Sep 01, 2015 - Sep 03, 2015; College Park, MD; United States
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