Development of a coupled land surface and groundwater model

被引:344
作者
Maxwell, RM
Miller, NL
机构
[1] Lawrence Livermore Natl Lab, Div Environm Sci, Livermore, CA 94550 USA
[2] Lawrence Berkeley Lab, Div Earth Sci, Berkeley, CA USA
关键词
D O I
10.1175/JHM422.1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Traditional land surface models (LSMs) used for numerical weather simulation, climate projection, and as inputs to water management decision support systems. do not treat the LSM lower boundary in a fully process-based fashion. LSMs have evolved from a leaky-bucket approximation to more sophisticated land surface water and energy budget models that typically have a specified bottom layer flux to depict the lowest model layer exchange with deeper aquifers. The LSM lower boundary is often assumed zero flux or the soil moisture content is set to a constant value; an approach that while mass conservative, ignores processes that can alter surface fluxes, runoff, and water quantity and quality. Conversely, groundwater models (GWMs) for saturated and unsaturated water flow, while addressing important features such as subsurface heterogeneity and three-dimensional flow, often have overly simplified upper boundary conditions that ignore soil heating. runoff, snow, and root-zone uptake. In the present study, a state-of-the-art LSM (Common Land Model) and a variably saturated GWM (ParFlow) have been coupled as a single-column model. A set of simulations based on synthetic data and data from the Project for Intercomparison of Land-surface Parameterization Schemes (PILPS), version 2(d), 18-yr dataset from VaIdai, Russia, demonstrate the temporal dynamics of this coupled modeling system. The soil moisture and water table depth simulated by the coupled model agree well with the Valdai observations. Differences in prediction between the coupled and uncoupled models demonstrate the effect of a dynamic water table on simulated watershed flow. Comparison of the coupled model predictions with observations indicates certain cold processes such as frozen soil and freeze/thaw processes have an important impact on predicted water table depth. Comparisons of soil moisture, latent heat, sensible heat. temperature, runoff, and predicted groundwater depth between the uncoupled and coupled models demonstrate the need for improved groundwater representation in land surface schemes.
引用
收藏
页码:233 / 247
页数:15
相关论文
共 56 条
  • [1] Abramopoulos F, 1988, J CLIMATE, V1, P921, DOI 10.1175/1520-0442(1988)001<0921:IGHCFG>2.0.CO
  • [2] 2
  • [3] A parallel multigrid preconditioned conjugate gradient algorithm for groundwater flow simulations
    Ashby, SF
    Falgout, RD
    [J]. NUCLEAR SCIENCE AND ENGINEERING, 1996, 124 (01) : 145 - 159
  • [4] Bonan G.B., 1998, NCARTN417STR
  • [5] CLAPP RB, 1978, WATER RESOUR RES, V14, P601, DOI 10.1029/WR014i004p00601
  • [6] A STATISTICAL EXPLORATION OF THE RELATIONSHIPS OF SOIL-MOISTURE CHARACTERISTICS TO THE PHYSICAL-PROPERTIES OF SOILS
    COSBY, BJ
    HORNBERGER, GM
    CLAPP, RB
    GINN, TR
    [J]. WATER RESOURCES RESEARCH, 1984, 20 (06) : 682 - 690
  • [7] Dai Y, 2001, COMMON LAND MODEL TE
  • [8] The Common Land Model
    Dai, YJ
    Zeng, XB
    Dickinson, RE
    Baker, I
    Bonan, GB
    Bosilovich, MG
    Denning, AS
    Dirmeyer, PA
    Houser, PR
    Niu, GY
    Oleson, KW
    Schlosser, CA
    Yang, ZL
    [J]. BULLETIN OF THE AMERICAN METEOROLOGICAL SOCIETY, 2003, 84 (08) : 1013 - 1023
  • [9] Dickinson R., 1993, NCAR TECHNICAL NOTE, DOI DOI 10.5065/D6668B58
  • [10] DICKINSON RE, 1989, CLIMATIC CHANGE, V15, P383, DOI 10.1007/BF00240465