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Closing the scale gap between land surface parameterizations and GCMs with a new scheme, SiB3-Bins
- Source :
- Journal of Advances in Modeling Earth Systems. 9:691-711
- Publication Year :
- 2017
- Publisher :
- American Geophysical Union (AGU), 2017.
-
Abstract
- The interaction of land with the atmosphere is sensitive to soil moisture (W). Evapotranspiration (ET) reacts to soil moisture in a nonlinear way, f(W), as soils dry from saturation to wilt point. This nonlinear behavior and the fact that soil moisture varies on scales as small as 1–10 m in nature, while numerical general circulation models (GCMs) have grid cell sizes on the order of 1 to 100s of kilometers, makes the calculation of grid cell-average ET problematic. It is impractical to simulate the land in GCMs on the small scales seen in nature, so techniques have been developed to represent subgrid scale heterogeneity, including: (1) statistical-dynamical representations of grid subelements of varying wetness, (2) relaxation of f(W), (3) moderating f(W) with approximations of catchment hydrology, (4) “tiling” the landscape into vegetation types, and (5) hyperresolution. Here we present an alternative method for representing subgrid variability in W, one proven in a conceptual framework where landscape-scale W is represented as a series of “Bins” of increasing wetness from dry to saturated. The grid cell-level f(W) is defined by the integral of the fractional area of the wetness bins and the value of f(W) associated with each. This approach accounts for the spatiotemporal dynamics of W. We implemented this approach in the SiB3 land surface parameterization and then evaluated its performance against a control, which assumes a horizontally uniform field of W. We demonstrate that the Bins method, with a physical basis, attenuates unrealistic jumps in model state and ET seen in the control runs.
- Subjects :
- Global and Planetary Change
010504 meteorology & atmospheric sciences
0208 environmental biotechnology
02 engineering and technology
Grid
Atmospheric sciences
01 natural sciences
020801 environmental engineering
Catchment hydrology
Nonlinear system
Evapotranspiration
General Circulation Model
Soil water
General Earth and Planetary Sciences
Environmental Chemistry
Environmental science
Saturation (chemistry)
Water content
0105 earth and related environmental sciences
Subjects
Details
- ISSN :
- 19422466
- Volume :
- 9
- Database :
- OpenAIRE
- Journal :
- Journal of Advances in Modeling Earth Systems
- Accession number :
- edsair.doi...........7781033bc8f05f0345c2da93b55b9534