• DocumentCode
    2663019
  • Title

    Estimation of 3-D Water vapor distribution using a network of compact microwave radiometers

  • Author

    Padmanabhan, S. ; Reising, S.C. ; Iturbide-Sanchez, F. ; Vivekanandan, J.

  • Author_Institution
    Colorado State Univ., Fort Collins
  • fYear
    2007
  • fDate
    23-28 July 2007
  • Firstpage
    251
  • Lastpage
    254
  • Abstract
    Quantitative precipitation forecasting is limited by the paucity of observations of water vapor in the troposphere. In particular, severe storms have been observed to develop in regions of strong and rapidly evolving moisture gradients. Conventional measurements of water vapor density profiles are obtained using in-situ probes on-board weather balloons, including radiosondes. These in-situ profile measurements have high vertical resolution, but have severe limitations in both temporal and spatial sampling. Lidars use differential absorption techniques to estimate water vapor with comparable resolution to that of radiosonde observations. However, lidars are expensive, and their operation is limited to clear-sky conditions due to the high opacity of clouds at optical wavelengths. Inversion of brightness temperatures measured by upward- looking, ground-based microwave radiometers allows the estimation of vertical profiles with high temporal resolution in both clear and cloudy conditions. However, assimilation of retrieved water vapor fields with improved spatial coverage has the potential for more substantial impacts on numerical weather prediction of convective storm initiation. Measurements using a network of multi-frequency microwave radiometers can provide information to retrieve the 3-D distribution of water vapor in the troposphere.
  • Keywords
    atmospheric humidity; atmospheric precipitation; data assimilation; radiometers; troposphere; 3D water vapor distribution; atmospheric moisture gradients; atmospheric precipitation forecasting; brightness temperature inversion; clear-sky conditions; clouds opacity; convective storm initiation; differential absorption techniques; in-situ probes; lidars; multifrequency microwave radiometers network; numerical weather prediction; optical wavelengths; radiosondes; spatial sampling; temporal sampling; troposphere; water vapor density profiles; water vapor fields assimilation; weather balloons; Density measurement; Laser radar; Microwave measurements; Moisture; Probes; Radiometers; Spatial resolution; Storms; Terrestrial atmosphere; Weather forecasting; precipitation; radiometer; tomography; water vapor;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Geoscience and Remote Sensing Symposium, 2007. IGARSS 2007. IEEE International
  • Conference_Location
    Barcelona
  • Print_ISBN
    978-1-4244-1211-2
  • Electronic_ISBN
    978-1-4244-1212-9
  • Type

    conf

  • DOI
    10.1109/IGARSS.2007.4422777
  • Filename
    4422777