Lidar Measurements of Relative Humidity and Ice Supersaturation in the Upper Troposphere

We compute upper tropospheric relative humidity profiles using water vapor profiles measured by an airborne DIAL and a ground-based Raman lidar. LASE water vapor and MTP temperature profiles acquired from the NASA DC-8 aircraft during the recent Pacific Exploratory Mission Tropics B (PEM Tropics B)...

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Bibliographic Details
Main Authors: Richard Ferrare Edward, Edward V. Browell, Syed Ismail, Vincent G. Brackett, Marian B. Clayton, Marta Fenn, Lorraine Heilman, Susan A. Kooi, David D. Turner, Michael J. Mahoney, Reginald E. Newell, Yong Zhu, Eric Jensen, John Barrick, Glen Sachse
Other Authors: The Pennsylvania State University CiteSeerX Archives
Format: Text
Language:English
Published: 2000
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Online Access:http://citeseerx.ist.psu.edu/viewdoc/summary?doi=10.1.1.15.1756
http://techreports.larc.nasa.gov/ltrs/PDF/2000/mtg/NASA-2000-20ilrc-raf.pdf
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Summary:We compute upper tropospheric relative humidity profiles using water vapor profiles measured by an airborne DIAL and a ground-based Raman lidar. LASE water vapor and MTP temperature profiles acquired from the NASA DC-8 aircraft during the recent Pacific Exploratory Mission Tropics B (PEM Tropics B) field mission in the tropical Pacific and the SAGE-III Ozone Loss and Validation Experiment (SOLVE) in the Arctic as well as water vapor profiles derived from the ground-based DOE ARM Southern Great Plains (SGP) CART Raman lidar are used. Comparisons of the lidar water vapor measurements with available in situ measurements show reasonable agreement for water vapor mixing ratios above 0.05 g/kg. Relative humidity frequency distributions computed using LASE data indicate that ice supersaturation occurred about 5-11% of the time when temperatures were below 35C. While a higher frequency of ice supersaturation was observed during SOLVE, higher peak values of relative humidity were observed during PEM Tropics B. The relative humidity fields associated with cirrus clouds are also examined.