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    Transport and Diffusion in the Transition Layer and Planetary Boundary Layer for Drainage Flows in Anderson and Putah Creeks, California, during ASCOT 1980

    Source: Journal of Climate and Applied Meteorology:;1984:;volume( 023 ):;issue: 005::page 812
    Author:
    Fosberg, Michael A.
    DOI: 10.1175/1520-0450(1984)023<0812:TADITT>2.0.CO;2
    Publisher: American Meteorological Society
    Abstract: Approximately 100 constant-volume, superpressured balloons (tetroons) were tracked in the Anderson and Putah Creek drainages of the Geysers geothermal area of northern California as part of the ASCOT (Atmospheric Studies in Complex Terrain) program. These tetroons were tracked by radar. Each tetroon was equipped with a transponder which provided a 100 MHz shift in frequency, providing a means of discriminating the tetroon-transponder broadcast signal from radar signals reflected from the hard terrain. Tetroons were used to provide direct measurements of trajectories of individual air parcels, to provide transport speeds of individual air parcels and to provide direct measurements of the turbulence associated with an individual parcel of air. In addition, clusters of tetroons were released, providing direct measurement of the very low frequency turbulence associated with air flow meander within the two valleys. All tetroon flights were in the transition layer between the katabatic drainage flow and the larger scale prevailing winds. Resultant analysis of the eddy diffusivities, in essence, K theory (first-order closure of the turbulence), and the very low frequency dispersion characteristics as indicated by the variance about the centroid of a balloon cluster, showed that the transition layer was well mixed on all experimental nights. In particular, the lateral dispersion was equivalent to Pasquill-Gifford Class B. The K theory was used to estimate the dispersion coefficients. These estimated variances showed characteristics of dispersion similar to those obtained from the tetroon clusters. Dispersion estimates both by tetroon clusters and by transformed eddy diffusivities showed large variability. Dispersion was greater in Anderson Creek than in Putah Creek. Also, a suppression of dispersion rate was found in Putah Creek between ?1 and 2 km downwind of Larry's Cabin where Ford Flats is separated by a small ridge from the Anderson Creek drainage and from Anderson Springs. The ultimate fate of the tetroons, once they were beyond the Collayomi Valley, was determined from the locations where they were recovered. Most tetroons were found in the Napa Valley or along the east side of the Sacramento Valley from Yuba City to Chico. The tetroons were found at large distances, one near Mount Hood, Oregon and the other on Vancouver Island, British Columbia.
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      Transport and Diffusion in the Transition Layer and Planetary Boundary Layer for Drainage Flows in Anderson and Putah Creeks, California, during ASCOT 1980

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    contributor authorFosberg, Michael A.
    date accessioned2017-06-09T14:00:11Z
    date available2017-06-09T14:00:11Z
    date copyright1984/05/01
    date issued1984
    identifier issn0733-3021
    identifier otherams-10720.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4145869
    description abstractApproximately 100 constant-volume, superpressured balloons (tetroons) were tracked in the Anderson and Putah Creek drainages of the Geysers geothermal area of northern California as part of the ASCOT (Atmospheric Studies in Complex Terrain) program. These tetroons were tracked by radar. Each tetroon was equipped with a transponder which provided a 100 MHz shift in frequency, providing a means of discriminating the tetroon-transponder broadcast signal from radar signals reflected from the hard terrain. Tetroons were used to provide direct measurements of trajectories of individual air parcels, to provide transport speeds of individual air parcels and to provide direct measurements of the turbulence associated with an individual parcel of air. In addition, clusters of tetroons were released, providing direct measurement of the very low frequency turbulence associated with air flow meander within the two valleys. All tetroon flights were in the transition layer between the katabatic drainage flow and the larger scale prevailing winds. Resultant analysis of the eddy diffusivities, in essence, K theory (first-order closure of the turbulence), and the very low frequency dispersion characteristics as indicated by the variance about the centroid of a balloon cluster, showed that the transition layer was well mixed on all experimental nights. In particular, the lateral dispersion was equivalent to Pasquill-Gifford Class B. The K theory was used to estimate the dispersion coefficients. These estimated variances showed characteristics of dispersion similar to those obtained from the tetroon clusters. Dispersion estimates both by tetroon clusters and by transformed eddy diffusivities showed large variability. Dispersion was greater in Anderson Creek than in Putah Creek. Also, a suppression of dispersion rate was found in Putah Creek between ?1 and 2 km downwind of Larry's Cabin where Ford Flats is separated by a small ridge from the Anderson Creek drainage and from Anderson Springs. The ultimate fate of the tetroons, once they were beyond the Collayomi Valley, was determined from the locations where they were recovered. Most tetroons were found in the Napa Valley or along the east side of the Sacramento Valley from Yuba City to Chico. The tetroons were found at large distances, one near Mount Hood, Oregon and the other on Vancouver Island, British Columbia.
    publisherAmerican Meteorological Society
    titleTransport and Diffusion in the Transition Layer and Planetary Boundary Layer for Drainage Flows in Anderson and Putah Creeks, California, during ASCOT 1980
    typeJournal Paper
    journal volume23
    journal issue5
    journal titleJournal of Climate and Applied Meteorology
    identifier doi10.1175/1520-0450(1984)023<0812:TADITT>2.0.CO;2
    journal fristpage812
    journal lastpage823
    treeJournal of Climate and Applied Meteorology:;1984:;volume( 023 ):;issue: 005
    contenttypeFulltext
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