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\section{Fizhi: High-end Atmospheric Physics} |
\subsection{Fizhi: High-end Atmospheric Physics} |
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\label{sec:pkg:fizhi} |
\label{sec:pkg:fizhi} |
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\input{texinputs/epsf.tex} |
\input{texinputs/epsf.tex} |
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\subsection{Introduction} |
\subsubsection{Introduction} |
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The fizhi (high-end atmospheric physics) package includes a collection of state-of-the-art |
The fizhi (high-end atmospheric physics) package includes a collection of state-of-the-art |
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physical parameterizations for atmospheric radiation, cumulus convection, atmospheric |
physical parameterizations for atmospheric radiation, cumulus convection, atmospheric |
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boundary layer turbulence, and land surface processes. |
boundary layer turbulence, and land surface processes. |
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\subsection{Equations} |
\subsubsection{Equations} |
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\subsubsection{Moist Convective Processes} |
Moist Convective Processes: |
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\paragraph{Sub-grid and Large-scale Convection} |
\paragraph{Sub-grid and Large-scale Convection} |
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\label{sec:fizhi:mc} |
\label{sec:fizhi:mc} |
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Finally, cloud fractions are time-averaged between calls to the radiation packages. |
Finally, cloud fractions are time-averaged between calls to the radiation packages. |
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\subsubsection{Radiation} |
Radiation: |
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The parameterization of radiative heating in the fizhi package includes effects |
The parameterization of radiative heating in the fizhi package includes effects |
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from both shortwave and longwave processes. |
from both shortwave and longwave processes. |
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hours). Therefore, in a time-averaged sense, both convective and large-scale |
hours). Therefore, in a time-averaged sense, both convective and large-scale |
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cloudiness can exist in a given grid-box. |
cloudiness can exist in a given grid-box. |
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\subsubsection{Turbulence} |
Turbulence: |
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Turbulence is parameterized in the fizhi package to account for its contribution to the |
Turbulence is parameterized in the fizhi package to account for its contribution to the |
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vertical exchange of heat, moisture, and momentum. |
vertical exchange of heat, moisture, and momentum. |
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The turbulence scheme is invoked every 30 minutes, and employs a backward-implicit iterative |
The turbulence scheme is invoked every 30 minutes, and employs a backward-implicit iterative |
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day$, and the expression for $C_s$, the heat capacity per unit volume at the surface, |
day$, and the expression for $C_s$, the heat capacity per unit volume at the surface, |
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is a function of the ground wetness, $W$. |
is a function of the ground wetness, $W$. |
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\subsubsection{Land Surface Processes} |
Land Surface Processes: |
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\paragraph{Surface Type} |
\paragraph{Surface Type} |
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The fizhi package surface Types are designated using the Koster-Suarez (1992) mosaic |
The fizhi package surface Types are designated using the Koster-Suarez (1992) mosaic |
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Modifications are made to account for the presence of snow, and its depth relative |
Modifications are made to account for the presence of snow, and its depth relative |
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to the height of the vegetation elements. |
to the height of the vegetation elements. |
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\subsubsection{Gravity Wave Drag} |
Gravity Wave Drag: |
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The fizhi package employs the gravity wave drag scheme of Zhou et al. (1996). |
The fizhi package employs the gravity wave drag scheme of Zhou et al. (1996). |
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This scheme is a modified version of Vernekar et al. (1992), |
This scheme is a modified version of Vernekar et al. (1992), |
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which was based on Alpert et al. (1988) and Helfand et al. (1987). |
which was based on Alpert et al. (1988) and Helfand et al. (1987). |
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convergence (through a reduction in the flux of westerly momentum by transient flow eddies). |
convergence (through a reduction in the flux of westerly momentum by transient flow eddies). |
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\subsubsection{Boundary Conditions and other Input Data} |
Boundary Conditions and other Input Data: |
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Required fields which are not explicitly predicted or diagnosed during model execution must |
Required fields which are not explicitly predicted or diagnosed during model execution must |
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either be prescribed internally or obtained from external data sets. In the fizhi package these |
either be prescribed internally or obtained from external data sets. In the fizhi package these |
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a linear interpolation (in pressure) is performed using the data from SAGE and the GCM. |
a linear interpolation (in pressure) is performed using the data from SAGE and the GCM. |
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\subsection{Fizhi Diagnostics} |
\subsubsection{Fizhi Diagnostics} |
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\subsubsection{Fizhi Diagnostic Menu} |
Fizhi Diagnostic Menu: |
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\label{sec:fizhi-diagnostics:menu} |
\label{sec:fizhi-diagnostics:menu} |
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\begin{tabular}{llll} |
\begin{tabular}{llll} |
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\newpage |
\newpage |
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\subsubsection{Fizhi Diagnostic Description} |
Fizhi Diagnostic Description: |
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In this section we list and describe the diagnostic quantities available within the |
In this section we list and describe the diagnostic quantities available within the |
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GCM. The diagnostics are listed in the order that they appear in the |
GCM. The diagnostics are listed in the order that they appear in the |
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\] |
\] |
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\subsection{Key subroutines, parameters and files} |
\subsubsection{Key subroutines, parameters and files} |
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\subsection{Dos and donts} |
\subsubsection{Dos and donts} |
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\subsection{Fizhi Reference} |
\subsubsection{Fizhi Reference} |