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Atomic oxygen in th...
Atomic oxygen in the mesosphere and lower thermosphere derived from SABER : Algorithm theoretical basis and measurement uncertainty
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- Mlynczak, Martin G. (author)
- NASA Langley Research Center, Hampton
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- Hunt, Linda A. (author)
- Science Systems and Applications Inc., Hampton
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- Mast, Jeffrey C. (author)
- Science Systems and Applications Inc., Hampton
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- Marshall, B. Thomas (author)
- G & A Technical Software, Newport News
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- III, James M. Russell (author)
- Hampton University
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- Smith, Anne K. (author)
- National Center for Atmospheric Research, Boulder, Colorado
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- Siskind, David E. (author)
- Naval Research Laboratory, Washington, DC
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- Yee, Jen-Hwa (author)
- Johns Hopkins University Applied Physics Laboratory, Laurel
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- Mertens, Christopher J. (author)
- NASA Langley Research Center, Hampton
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- Martin-Torres, Javier (author)
- Centro de Astrobiologia, INTA-CSIC, Madrid
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- Thompson, R. Earl (author)
- G & A Technical Software, Newport News
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- Drob, Douglas P. (author)
- Naval Research Laboratory, Washington, DC
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- Gordley, Larry L. (author)
- G & A Technical Software, Newport News
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NASA Langley Research Center, Hampton Science Systems and Applications Inc, Hampton (creator_code:org_t)
- 2013-06-03
- 2013
- English.
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In: Journal of Geophysical Research - Atmospheres. - : American Geophysical Union (AGU). - 2169-897X .- 2169-8996. ; 118:11, s. 5724-5735
- Related links:
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https://agupubs.onli...
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https://urn.kb.se/re...
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https://doi.org/10.1...
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Abstract
Subject headings
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- Atomic oxygen (O) is a fundamental component in chemical aeronomy of Earth's mesosphere and lower thermosphere region extending from approximately 50 km to over 100 km in altitude. Atomic oxygen is notoriously difficult to measure, especially with remote sensing techniques from orbiting satellite sensors. It is typically inferred from measurements of the ozone concentration in the day or from measurements of the Meinel band emission of the hydroxyl radical (OH) at night. The Sounding of the Atmosphere using Broadband Emission Radiometry (SABER) instrument on the NASA Thermosphere-Ionosphere-Mesosphere Energetics and Dynamics (TIMED) satellite measures OH emission and ozone for the purpose of determining the O-atom concentration. In this paper, we present the algorithms used in the derivation of day and night atomic oxygen from these measurements. We find excellent consistency between the day and night O-atom concentrations from daily to annual time scales. We also examine in detail the collisional relaxation of the highly vibrationally excited OH molecule at night measured by SABER. Large rate coefficients for collisional removal of vibrationally excited OH molecules by atomic oxygen are consistent with the SABER observations if the deactivation of OH(9) proceeds solely by collisional quenching. An uncertainty analysis of the derived atomic oxygen is also given. Uncertainty in the rate coefficient for recombination of O and molecular oxygen is shown to be the largest source of uncertainty in the derivation of atomic oxygen day or night.
Subject headings
- TEKNIK OCH TEKNOLOGIER -- Maskinteknik -- Rymd- och flygteknik (hsv//swe)
- ENGINEERING AND TECHNOLOGY -- Mechanical Engineering -- Aerospace Engineering (hsv//eng)
Keyword
- Atmospheric science
- Atmosfärsvetenskap
Publication and Content Type
- ref (subject category)
- art (subject category)
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- By the author/editor
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Mlynczak, Martin ...
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Hunt, Linda A.
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Mast, Jeffrey C.
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Marshall, B. Tho ...
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III, James M. Ru ...
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Smith, Anne K.
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show more...
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Siskind, David E ...
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Yee, Jen-Hwa
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Mertens, Christo ...
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Martin-Torres, J ...
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Thompson, R. Ear ...
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Drob, Douglas P.
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Gordley, Larry L ...
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- ENGINEERING AND TECHNOLOGY
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ENGINEERING AND ...
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and Mechanical Engin ...
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and Aerospace Engine ...
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Luleå University of Technology