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    Effects of Water-Table Configuration on the Planetary Boundary Layer over the San Joaquin River Watershed, California

    Source: Journal of Hydrometeorology:;2017:;Volume( 018 ):;issue: 005::page 1471
    Author:
    Gilbert, James M.
    ,
    Maxwell, Reed M.
    ,
    Gochis, David J.
    DOI: 10.1175/JHM-D-16-0134.1
    Publisher: American Meteorological Society
    Abstract: he boundary layer, land surface, and subsurface are important coevolving components of hydrologic systems. While previous studies have examined the connections between soil moisture, groundwater, and the atmosphere, the atmospheric response to regional water-table drawdown has received less attention. To address this question, a coupled hydrologic?atmospheric model [Parallel Flow hydrologic model (ParFlow) and WRF] was used to simulate the San Joaquin River watershed of central California. This study focuses specifically on the planetary boundary layer (PBL) in simulations with two imposed water-table configurations: a high water table mimicking natural conditions and a lowered water table reflecting historic groundwater extraction in California?s Central Valley, although effect of irrigation was not simulated. An ensemble of simulations including three boundary layer schemes and six initial conditions was performed for both water-table conditions to assess conceptual and initial condition uncertainty. Results show that increased regional water-table depth is associated with a significant increase in peak PBL height for both initial condition and boundary layer scheme conditions, although the choice of scheme interacts to affect the magnitude of peak PBL height change. Analysis of simulated land surface fluxes shows the change in PBL height can be attributed to decreasing midday evaporative fraction under lowered water-table conditions. Furthermore, the sensitivity of PBL height to changes in water-table depth appears to depend on local water-table variation within 10 m of the land surface and the regional average water-table depth. Finally, soil moisture changes associated with lowered water tables are linked to changes in PBL circulation as indicated by vertical winds and turbulence kinetic energy.
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      Effects of Water-Table Configuration on the Planetary Boundary Layer over the San Joaquin River Watershed, California

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    contributor authorGilbert, James M.
    contributor authorMaxwell, Reed M.
    contributor authorGochis, David J.
    date accessioned2017-06-09T17:17:16Z
    date available2017-06-09T17:17:16Z
    date copyright2017/05/01
    date issued2017
    identifier issn1525-755X
    identifier otherams-82439.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4225553
    description abstracthe boundary layer, land surface, and subsurface are important coevolving components of hydrologic systems. While previous studies have examined the connections between soil moisture, groundwater, and the atmosphere, the atmospheric response to regional water-table drawdown has received less attention. To address this question, a coupled hydrologic?atmospheric model [Parallel Flow hydrologic model (ParFlow) and WRF] was used to simulate the San Joaquin River watershed of central California. This study focuses specifically on the planetary boundary layer (PBL) in simulations with two imposed water-table configurations: a high water table mimicking natural conditions and a lowered water table reflecting historic groundwater extraction in California?s Central Valley, although effect of irrigation was not simulated. An ensemble of simulations including three boundary layer schemes and six initial conditions was performed for both water-table conditions to assess conceptual and initial condition uncertainty. Results show that increased regional water-table depth is associated with a significant increase in peak PBL height for both initial condition and boundary layer scheme conditions, although the choice of scheme interacts to affect the magnitude of peak PBL height change. Analysis of simulated land surface fluxes shows the change in PBL height can be attributed to decreasing midday evaporative fraction under lowered water-table conditions. Furthermore, the sensitivity of PBL height to changes in water-table depth appears to depend on local water-table variation within 10 m of the land surface and the regional average water-table depth. Finally, soil moisture changes associated with lowered water tables are linked to changes in PBL circulation as indicated by vertical winds and turbulence kinetic energy.
    publisherAmerican Meteorological Society
    titleEffects of Water-Table Configuration on the Planetary Boundary Layer over the San Joaquin River Watershed, California
    typeJournal Paper
    journal volume18
    journal issue5
    journal titleJournal of Hydrometeorology
    identifier doi10.1175/JHM-D-16-0134.1
    journal fristpage1471
    journal lastpage1488
    treeJournal of Hydrometeorology:;2017:;Volume( 018 ):;issue: 005
    contenttypeFulltext
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