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% $Header: /u/gcmpack/mitgcmdoc/part3/case_studies/fourlayer_gyre/fourlayer.tex,v 1.1.1.1 2001/08/08 16:15:41 adcroft Exp $ |
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% $Name: $ |
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|
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\section{Example: Four layer Baroclinic Ocean Gyre In Spherical Coordinates} |
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|
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\bodytext{bgcolor="#FFFFFFFF"} |
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|
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%\begin{center} |
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%{\Large \bf Using MITgcm to Simulate a Baroclinic Ocean Gyre In Spherical |
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%Polar Coordinates} |
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% |
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%\vspace*{4mm} |
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% |
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%\vspace*{3mm} |
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%{\large May 2001} |
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%\end{center} |
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|
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\subsection{Introduction} |
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|
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This document describes the second example MITgcm experiment. The first |
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example experiment ilustrated how to configure the code for a single layer |
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simulation in a cartesian grid. In this example a similar physical problem |
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is simulated, but the code is now configured |
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for four layers and in a spherical polar coordinate system. |
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|
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\subsection{Overview} |
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|
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This example experiment demonstrates using the MITgcm to simulate |
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a baroclinic, wind-forced, ocean gyre circulation. The experiment |
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is a numerical rendition of the gyre circulation problem simliar |
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to the problems described analytically by Stommel in 1966 |
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\cite{Stommel66} and numerically in Holland et. al \cite{Holland75}. |
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\\ |
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|
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In this experiment the model is configured to represent a mid-latitude |
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enclosed sector of fluid on a sphere, $60^{\circ} \times 60^{\circ}$ in |
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lateral extent. The fluid is $2$~km deep and is forced |
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by a constant in time zonal wind stress, $\tau_x$, that varies sinusoidally |
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in the north-south direction. Topologically the simulated |
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domain is a sector on a sphere and the coriolis parameter, $f$, is defined |
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according to latitude, $\phi$ |
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|
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\begin{equation} |
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\label{EQ:fcori} |
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f(\phi) = 2 \Omega \sin( \phi ) |
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\end{equation} |
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|
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\noindent with the rotation rate, $\Omega$ set to $\frac{2 \pi}{86400s}$. |
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\\ |
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|
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The sinusoidal wind-stress variations are defined according to |
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|
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\begin{equation} |
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\label{EQ:taux} |
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\tau_x(\phi) = \tau_{0}\sin(\pi \frac{\phi}{L_{\phi}}) |
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\end{equation} |
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|
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\noindent where $L_{\phi}$ is the lateral domain extent ($60^{\circ}$) and |
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$\tau_0$ is set to $0.1N m^{-2}$. |
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\\ |
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|
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Figure \ref{FIG:simulation_config} |
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summarises the configuration simulated. |
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In contrast to example (1) \cite{baro_gyre_case_study}, the current |
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experiment simulates a spherical polar domain. However, as indicated |
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by the axes in the lower left of the figure the model code works internally |
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in a locally orthoganal coordinate $(x,y,z)$. In the remainder of this |
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document the local coordinate $(x,y,z)$ will be adopted. |
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\\ |
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|
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The experiment has four levels in the vertical, each of equal thickness, |
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$\Delta z = 500$~m. Initially the fluid is stratified with a reference |
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potential temperature profile, |
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$\theta_{250}=20^{\circ}$~C, |
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$\theta_{750}=10^{\circ}$~C, |
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$\theta_{1250}=8^{\circ}$~C, |
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$\theta_{1750}=6^{\circ}$~C. The equation of state used in this experiment is |
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linear |
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|
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\begin{equation} |
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\label{EQ:linear1_eos} |
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\rho = \rho_{0} ( 1 - \alpha_{\theta}\theta^{'} ) |
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\end{equation} |
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|
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\noindent which is implemented in the model as a density anomaly equation |
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|
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\begin{equation} |
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\label{EQ:linear1_eos_pert} |
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\rho^{'} = -\rho_{0}\alpha_{\theta}\theta^{'} |
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\end{equation} |
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|
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\noindent with $\rho_{0}=999.8\,{\rm kg\,m}^{-3}$ and |
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$\alpha_{\theta}=2\times10^{-4}\,{\rm degrees}^{-1} $. Integrated forward in |
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this configuration the model state variable {\bf theta} is synonomous with |
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either in-situ temperature, $T$, or potential temperature, $\theta$. For |
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consistency with later examples, in which the equation of state is |
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non-linear, we use $\theta$ to represent temperature here. This is |
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the quantity that is carried in the model core equations. |
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|
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\begin{figure} |
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\begin{center} |
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\resizebox{7.5in}{5.5in}{ |
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\includegraphics*[0.2in,0.7in][10.5in,10.5in] |
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{part3/case_studies/fourlayer_gyre/simulation_config.eps} } |
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\end{center} |
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\caption{Schematic of simulation domain and wind-stress forcing function |
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for the four-layer gyre numerical experiment. The domain is enclosed by solid |
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walls at $0^{\circ}$~E, $60^{\circ}$~E, $0^{\circ}$~N and $60^{\circ}$~N. |
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In the four-layer case an initial temperature stratification is |
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imposed by setting the potential temperature, $\theta$, in each layer. |
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The vertical spacing, $\Delta z$, is constant and equal to $500$m. |
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} |
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\label{FIG:simulation_config} |
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\end{figure} |
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|
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\subsection{Discrete Numerical Configuration} |
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|
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The model is configured in hydrostatic form. The domain is discretised with |
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a uniform grid spacing in latitude and longitude |
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$\Delta x=\Delta y=1^{\circ}$, so |
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that there are sixty grid cells in the $x$ and $y$ directions. Vertically the |
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model is configured with a four layers with constant depth, |
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$\Delta z$, of $500$~m. |
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The implicit free surface form of the |
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pressure equation described in Marshall et. al \cite{Marshall97a} is |
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employed. |
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A horizontal laplacian operator $\nabla_{h}^2$ provides viscous |
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dissipation. The wind-stress momentum input is added to the momentum equation |
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for the ``zonal flow'', $u$. Other terms in the model |
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are explicitly switched off for this experiement configuration (see section |
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\ref{SEC:code_config} ), yielding an active set of equations solved in this |
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configuration as follows |
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|
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\begin{eqnarray} |
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\label{EQ:model_equations} |
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\frac{Du}{Dt} - fv + |
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\frac{1}{\rho}\frac{\partial p^{'}}{\partial x} - |
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A_{h}\nabla_{h}^2u - A_{z}\frac{\partial^{2}u}{\partial z^{2}} |
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& = & |
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\cal{F} |
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\\ |
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\frac{Dv}{Dt} + fu + |
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\frac{1}{\rho}\frac{\partial p^{'}}{\partial y} - |
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A_{h}\nabla_{h}^2v - A_{z}\frac{\partial^{2}v}{\partial z^{2}} |
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& = & |
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0 |
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\\ |
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\frac{\partial \eta}{\partial t} + \nabla_{h}\cdot \vec{u} |
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&=& |
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0 |
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\\ |
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\frac{D\theta}{Dt} - |
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K_{h}\nabla_{h}^2\theta - K_{z}\frac{\partial^{2}\theta}{\partial z^{2}} |
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& = & |
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0 |
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\\ |
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g\rho_{0} \eta + \int^{0}_{-z}\rho^{'} dz & = & p^{'} |
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\\ |
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{\cal F} |_{s} & = & \frac{\tau_{x}}{\rho_{0}\Delta z_{s}} |
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\\ |
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{\cal F} |_{i} & = & 0 |
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\end{eqnarray} |
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|
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\noindent where $u$ and $v$ are the $x$ and $y$ components of the |
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flow vector $\vec{u}$. The suffices ${s},{i}$ indicate surface and |
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interior model levels respectively. As described in |
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MITgcm Numerical Solution Procedure \cite{MITgcm_Numerical_Scheme}, the time |
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evolution of potential temperature, $\theta$, equation is solved prognostically. |
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The total pressure, $p$, is diagnosed by summing pressure due to surface |
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elevation $\eta$ and the hydrostatic pressure. |
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\\ |
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|
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\subsubsection{Numerical Stability Criteria} |
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|
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The laplacian dissipation coefficient, $A_{h}$, is set to $400 m s^{-1}$. |
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This value is chosen to yield a Munk layer width \cite{Adcroft_thesis}, |
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|
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\begin{eqnarray} |
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\label{EQ:munk_layer} |
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M_{w} = \pi ( \frac { A_{h} }{ \beta } )^{\frac{1}{3}} |
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\end{eqnarray} |
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|
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\noindent of $\approx 100$km. This is greater than the model |
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resolution in mid-latitudes $\Delta x$, ensuring that the frictional |
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boundary layer is well resolved. |
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\\ |
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|
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\noindent The model is stepped forward with a |
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time step $\delta t=1200$secs. With this time step the stability |
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parameter to the horizontal laplacian friction \cite{Adcroft_thesis} |
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|
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\begin{eqnarray} |
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\label{EQ:laplacian_stability} |
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S_{l} = 4 \frac{A_{h} \delta t}{{\Delta x}^2} |
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\end{eqnarray} |
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|
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\noindent evaluates to 0.012, which is well below the 0.3 upper limit |
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for stability. |
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\\ |
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|
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\noindent The vertical dissipation coefficient, $A_{z}$, is set to |
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$1\times10^{-2} {\rm m}^2{\rm s}^{-1}$. The associated stability limit |
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|
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\begin{eqnarray} |
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\label{EQ:laplacian_stability_z} |
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S_{l} = 4 \frac{A_{z} \delta t}{{\Delta z}^2} |
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\end{eqnarray} |
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|
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\noindent evaluates to $4.8 \times 10^{-5}$ which is again well below |
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the upper limit. |
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The values of $A_{h}$ and $A_{z}$ are also used for the horizontal ($K_{h}$) |
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and vertical ($K_{z}$) diffusion coefficients for temperature respectively. |
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\\ |
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|
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\noindent The numerical stability for inertial oscillations |
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\cite{Adcroft_thesis} |
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|
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\begin{eqnarray} |
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\label{EQ:inertial_stability} |
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S_{i} = f^{2} {\delta t}^2 |
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\end{eqnarray} |
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|
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\noindent evaluates to $0.0144$, which is well below the $0.5$ upper |
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limit for stability. |
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\\ |
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|
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\noindent The advective CFL \cite{Adcroft_thesis} for a extreme maximum |
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horizontal flow |
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speed of $ | \vec{u} | = 2 ms^{-1}$ |
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|
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\begin{eqnarray} |
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\label{EQ:cfl_stability} |
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S_{a} = \frac{| \vec{u} | \delta t}{ \Delta x} |
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\end{eqnarray} |
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|
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\noindent evaluates to $5 \times 10^{-2}$. This is well below the stability |
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limit of 0.5. |
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\\ |
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|
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\noindent The stability parameter for internal gravity waves |
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\cite{Adcroft_thesis} |
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|
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\begin{eqnarray} |
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\label{EQ:igw_stability} |
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S_{c} = \frac{c_{g} \delta t}{ \Delta x} |
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\end{eqnarray} |
| 247 |
|
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\noindent evaluates to $5 \times 10^{-2}$. This is well below the linear |
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stability limit of 0.25. |
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|
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\subsection{Code Configuration} |
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\label{SEC:code_config} |
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|
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The model configuration for this experiment resides under the |
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directory {\it verification/exp1/}. The experiment files |
| 256 |
\begin{itemize} |
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\item {\it input/data} |
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\item {\it input/data.pkg} |
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\item {\it input/eedata}, |
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\item {\it input/windx.sin\_y}, |
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\item {\it input/topog.box}, |
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\item {\it code/CPP\_EEOPTIONS.h} |
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\item {\it code/CPP\_OPTIONS.h}, |
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\item {\it code/SIZE.h}. |
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\end{itemize} |
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contain the code customisations and parameter settings for this |
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experiements. Below we describe the customisations |
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to these files associated with this experiment. |
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|
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\subsubsection{File {\it input/data}} |
| 271 |
|
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This file, reproduced completely below, specifies the main parameters |
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for the experiment. The parameters that are significant for this configuration |
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are |
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|
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\begin{itemize} |
| 277 |
|
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\item Line 4, |
| 279 |
\begin{verbatim} tRef=20.,10.,8.,6., \end{verbatim} |
| 280 |
this line sets |
| 281 |
the initial and reference values of potential temperature at each model |
| 282 |
level in units of $^{\circ}$C. |
| 283 |
The entries are ordered from surface to depth. For each |
| 284 |
depth level the inital and reference profiles will be uniform in |
| 285 |
$x$ and $y$. The values specified here are read into the |
| 286 |
variable |
| 287 |
{\bf |
| 288 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/OK.htm> \end{rawhtml} |
| 289 |
tRef |
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\begin{rawhtml} </A>\end{rawhtml} |
| 291 |
} |
| 292 |
in the model code, by procedure |
| 293 |
{\it |
| 294 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
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INI\_PARMS |
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\begin{rawhtml} </A>\end{rawhtml} |
| 297 |
}. |
| 298 |
|
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%% \codelink{var:tref} tRef \endlink |
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%% \codelink{file:ini_parms} {\it INI\_PARMS } \endlink |
| 301 |
%% \codelink{proc:ini_parms} {\it INI\_PARMS } \endlink |
| 302 |
%% \var{tref} |
| 303 |
%% \proc{ini_parms} |
| 304 |
%% \file{ini_parms} |
| 305 |
\newcommand{\VARtref}{ |
| 306 |
{\bf |
| 307 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/OK.htm> \end{rawhtml} |
| 308 |
tRef |
| 309 |
\begin{rawhtml} </A>\end{rawhtml} |
| 310 |
} |
| 311 |
} |
| 312 |
|
| 313 |
|
| 314 |
|
| 315 |
\fbox{ |
| 316 |
\begin{minipage}{5.0in} |
| 317 |
{\it S/R INI\_THETA} |
| 318 |
({\it ini\_theta.F}) |
| 319 |
\end{minipage} |
| 320 |
} |
| 321 |
{\bf |
| 322 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/98.htm> \end{rawhtml} |
| 323 |
goto code |
| 324 |
\begin{rawhtml} </A>\end{rawhtml} |
| 325 |
} |
| 326 |
|
| 327 |
|
| 328 |
\item Line 6, |
| 329 |
\begin{verbatim} viscAz=1.E-2, \end{verbatim} |
| 330 |
this line sets the vertical laplacian dissipation coefficient to |
| 331 |
$1 \times 10^{-2} {\rm m^{2}s^{-1}}$. Boundary conditions |
| 332 |
for this operator are specified later. |
| 333 |
The variable |
| 334 |
{\bf |
| 335 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/ZQ.htm> \end{rawhtml} |
| 336 |
viscAz |
| 337 |
\begin{rawhtml} </A>\end{rawhtml} |
| 338 |
} |
| 339 |
is read in the routine |
| 340 |
{\it |
| 341 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 342 |
INI\_PARMS |
| 343 |
\begin{rawhtml} </A>\end{rawhtml} |
| 344 |
} |
| 345 |
and is copied into model general vertical coordinate variable |
| 346 |
{\bf |
| 347 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/PF.htm> \end{rawhtml} |
| 348 |
viscAr |
| 349 |
\begin{rawhtml} </A>\end{rawhtml} |
| 350 |
}. |
| 351 |
|
| 352 |
\fbox{ |
| 353 |
\begin{minipage}{5.0in} |
| 354 |
{\it S/R CALC\_DIFFUSIVITY}({\it calc\_diffusivity.F}) |
| 355 |
\end{minipage} |
| 356 |
} |
| 357 |
{\bf |
| 358 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/53.htm> \end{rawhtml} |
| 359 |
goto code |
| 360 |
\begin{rawhtml} </A>\end{rawhtml} |
| 361 |
} |
| 362 |
|
| 363 |
\item Line 7, |
| 364 |
\begin{verbatim} |
| 365 |
viscAh=4.E2, |
| 366 |
\end{verbatim} |
| 367 |
this line sets the horizontal laplacian frictional dissipation coefficient to |
| 368 |
$1 \times 10^{-2} {\rm m^{2}s^{-1}}$. Boundary conditions |
| 369 |
for this operator are specified later. |
| 370 |
The variable |
| 371 |
{\bf |
| 372 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/SI.htm> \end{rawhtml} |
| 373 |
viscAh |
| 374 |
\begin{rawhtml} </A>\end{rawhtml} |
| 375 |
} |
| 376 |
is read in the routine |
| 377 |
{\it |
| 378 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 379 |
INI\_PARMS |
| 380 |
\begin{rawhtml} </A>\end{rawhtml} |
| 381 |
}. |
| 382 |
|
| 383 |
\fbox{ |
| 384 |
\begin{minipage}{5.0in} |
| 385 |
{\it S/R CALC\_MOM\_RHS}({\it calc\_mom\_rhs.F}) |
| 386 |
\end{minipage} |
| 387 |
} |
| 388 |
{\bf |
| 389 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/60.htm> \end{rawhtml} |
| 390 |
goto code |
| 391 |
\begin{rawhtml} </A>\end{rawhtml} |
| 392 |
} |
| 393 |
|
| 394 |
\fbox{ |
| 395 |
\begin{minipage}{5.0in} |
| 396 |
{\it S/R CALC\_GW}({\it calc\_gw.F}) |
| 397 |
\end{minipage} |
| 398 |
} |
| 399 |
{\bf |
| 400 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/58.htm> \end{rawhtml} |
| 401 |
goto code |
| 402 |
\begin{rawhtml} </A>\end{rawhtml} |
| 403 |
} |
| 404 |
|
| 405 |
\item Lines 8, |
| 406 |
\begin{verbatim} |
| 407 |
no_slip_sides=.FALSE. |
| 408 |
\end{verbatim} |
| 409 |
this line selects a free-slip lateral boundary condition for |
| 410 |
the horizontal laplacian friction operator |
| 411 |
e.g. $\frac{\partial u}{\partial y}$=0 along boundaries in $y$ and |
| 412 |
$\frac{\partial v}{\partial x}$=0 along boundaries in $x$. |
| 413 |
The variable |
| 414 |
{\bf |
| 415 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/UT.htm> \end{rawhtml} |
| 416 |
no\_slip\_sides |
| 417 |
\begin{rawhtml} </A>\end{rawhtml} |
| 418 |
} |
| 419 |
is read in the routine |
| 420 |
{\it |
| 421 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 422 |
INI\_PARMS |
| 423 |
\begin{rawhtml} </A>\end{rawhtml} |
| 424 |
}. |
| 425 |
|
| 426 |
|
| 427 |
\fbox{ |
| 428 |
\begin{minipage}{5.0in} |
| 429 |
{\it S/R CALC\_MOM\_RHS}({\it calc\_mom\_rhs.F}) |
| 430 |
\end{minipage} |
| 431 |
} |
| 432 |
{\bf |
| 433 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/60.htm> \end{rawhtml} |
| 434 |
goto code |
| 435 |
\begin{rawhtml} </A>\end{rawhtml} |
| 436 |
} |
| 437 |
|
| 438 |
\item Lines 9, |
| 439 |
\begin{verbatim} |
| 440 |
no_slip_bottom=.TRUE. |
| 441 |
\end{verbatim} |
| 442 |
this line selects a no-slip boundary condition for bottom |
| 443 |
boundary condition in the vertical laplacian friction operator |
| 444 |
e.g. $u=v=0$ at $z=-H$, where $H$ is the local depth of the domain. |
| 445 |
The variable |
| 446 |
{\bf |
| 447 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/UK.htm> \end{rawhtml} |
| 448 |
no\_slip\_bottom |
| 449 |
\begin{rawhtml} </A>\end{rawhtml} |
| 450 |
} |
| 451 |
is read in the routine |
| 452 |
{\it |
| 453 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 454 |
INI\_PARMS |
| 455 |
\begin{rawhtml} </A>\end{rawhtml} |
| 456 |
}. |
| 457 |
|
| 458 |
\fbox{ |
| 459 |
\begin{minipage}{5.0in} |
| 460 |
{\it S/R CALC\_MOM\_RHS}({\it calc\_mom\_rhs.F}) |
| 461 |
\end{minipage} |
| 462 |
} |
| 463 |
{\bf |
| 464 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/60.htm> \end{rawhtml} |
| 465 |
goto code |
| 466 |
\begin{rawhtml} </A>\end{rawhtml} |
| 467 |
} |
| 468 |
|
| 469 |
\item Line 10, |
| 470 |
\begin{verbatim} |
| 471 |
diffKhT=4.E2, |
| 472 |
\end{verbatim} |
| 473 |
this line sets the horizontal diffusion coefficient for temperature |
| 474 |
to $400\,{\rm m^{2}s^{-1}}$. The boundary condition on this |
| 475 |
operator is $\frac{\partial}{\partial x}=\frac{\partial}{\partial y}=0$ at |
| 476 |
all boundaries. |
| 477 |
The variable |
| 478 |
{\bf |
| 479 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/RC.htm> \end{rawhtml} |
| 480 |
diffKhT |
| 481 |
\begin{rawhtml} </A>\end{rawhtml} |
| 482 |
} |
| 483 |
is read in the routine |
| 484 |
{\it |
| 485 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 486 |
INI\_PARMS |
| 487 |
\begin{rawhtml} </A>\end{rawhtml} |
| 488 |
}. |
| 489 |
|
| 490 |
\fbox{ \begin{minipage}{5.0in} |
| 491 |
{\it S/R CALC\_GT}({\it calc\_gt.F}) |
| 492 |
\end{minipage} |
| 493 |
} |
| 494 |
{\bf |
| 495 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/57.htm> \end{rawhtml} |
| 496 |
goto code |
| 497 |
\begin{rawhtml} </A>\end{rawhtml} |
| 498 |
} |
| 499 |
|
| 500 |
\item Line 11, |
| 501 |
\begin{verbatim} |
| 502 |
diffKzT=1.E-2, |
| 503 |
\end{verbatim} |
| 504 |
this line sets the vertical diffusion coefficient for temperature |
| 505 |
to $10^{-2}\,{\rm m^{2}s^{-1}}$. The boundary condition on this |
| 506 |
operator is $\frac{\partial}{\partial z}$ = 0 on all boundaries. |
| 507 |
The variable |
| 508 |
{\bf |
| 509 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/ZT.htm> \end{rawhtml} |
| 510 |
diffKzT |
| 511 |
\begin{rawhtml} </A>\end{rawhtml} |
| 512 |
} |
| 513 |
is read in the routine |
| 514 |
{\it |
| 515 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 516 |
INI\_PARMS |
| 517 |
\begin{rawhtml} </A>\end{rawhtml} |
| 518 |
}. |
| 519 |
It is copied into model general vertical coordinate variable |
| 520 |
{\bf |
| 521 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/PD.htm> \end{rawhtml} |
| 522 |
diffKrT |
| 523 |
\begin{rawhtml} </A>\end{rawhtml} |
| 524 |
}. |
| 525 |
|
| 526 |
\fbox{ \begin{minipage}{5.0in} |
| 527 |
{\it S/R CALC\_DIFFUSIVITY}({\it calc\_diffusivity.F}) |
| 528 |
\end{minipage} |
| 529 |
} |
| 530 |
{\bf |
| 531 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/53.htm> \end{rawhtml} |
| 532 |
goto code |
| 533 |
\begin{rawhtml} </A>\end{rawhtml} |
| 534 |
} |
| 535 |
|
| 536 |
|
| 537 |
|
| 538 |
\item Line 13, |
| 539 |
\begin{verbatim} |
| 540 |
tAlpha=2.E-4, |
| 541 |
\end{verbatim} |
| 542 |
This line sets the thermal expansion coefficient for the fluid |
| 543 |
to $2 \times 10^{-4}\,{\rm degrees}^{-1}$ |
| 544 |
The variable |
| 545 |
{\bf |
| 546 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/ZV.htm> \end{rawhtml} |
| 547 |
tAlpha |
| 548 |
\begin{rawhtml} </A>\end{rawhtml} |
| 549 |
} |
| 550 |
is read in the routine |
| 551 |
{\it |
| 552 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 553 |
INI\_PARMS |
| 554 |
\begin{rawhtml} </A>\end{rawhtml} |
| 555 |
}. |
| 556 |
|
| 557 |
\fbox{ |
| 558 |
\begin{minipage}{5.0in} |
| 559 |
{\it S/R FIND\_RHO}({\it find\_rho.F}) |
| 560 |
\end{minipage} |
| 561 |
} |
| 562 |
{\bf |
| 563 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/79.htm> \end{rawhtml} |
| 564 |
goto code |
| 565 |
\begin{rawhtml} </A>\end{rawhtml} |
| 566 |
} |
| 567 |
|
| 568 |
\item Line 18, |
| 569 |
\begin{verbatim} |
| 570 |
eosType='LINEAR' |
| 571 |
\end{verbatim} |
| 572 |
This line selects the linear form of the equation of state. |
| 573 |
The variable |
| 574 |
{\bf |
| 575 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/WV.htm> \end{rawhtml} |
| 576 |
eosType |
| 577 |
\begin{rawhtml} </A>\end{rawhtml} |
| 578 |
} |
| 579 |
is read in the routine |
| 580 |
{\it |
| 581 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 582 |
INI\_PARMS |
| 583 |
\begin{rawhtml} </A>\end{rawhtml} |
| 584 |
}. |
| 585 |
|
| 586 |
\fbox{ |
| 587 |
\begin{minipage}{5.0in} |
| 588 |
{\it S/R FIND\_RHO}({\it find\_rho.F}) |
| 589 |
\end{minipage} |
| 590 |
} |
| 591 |
{\bf |
| 592 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/79.htm> \end{rawhtml} |
| 593 |
goto code |
| 594 |
\begin{rawhtml} </A>\end{rawhtml} |
| 595 |
} |
| 596 |
|
| 597 |
|
| 598 |
|
| 599 |
\item Line 40, |
| 600 |
\begin{verbatim} |
| 601 |
usingSphericalPolarGrid=.TRUE., |
| 602 |
\end{verbatim} |
| 603 |
This line requests that the simulation be performed in a |
| 604 |
spherical polar coordinate system. It affects the interpretation of |
| 605 |
grid inoput parameters, for exampl {\bf delX} and {\bf delY} and |
| 606 |
causes the grid generation routines to initialise an internal grid based |
| 607 |
on spherical polar geometry. |
| 608 |
The variable |
| 609 |
{\bf |
| 610 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/10T.htm> \end{rawhtml} |
| 611 |
usingSphericalPolarGrid |
| 612 |
\begin{rawhtml} </A>\end{rawhtml} |
| 613 |
} |
| 614 |
is read in the routine |
| 615 |
{\it |
| 616 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 617 |
INI\_PARMS |
| 618 |
\begin{rawhtml} </A>\end{rawhtml} |
| 619 |
}. |
| 620 |
|
| 621 |
\fbox{ |
| 622 |
\begin{minipage}{5.0in} |
| 623 |
{\it S/R INI\_SPEHRICAL\_POLAR\_GRID}({\it ini\_spherical\_polar\_grid.F}) |
| 624 |
\end{minipage} |
| 625 |
} |
| 626 |
{\bf |
| 627 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/97.htm> \end{rawhtml} |
| 628 |
goto code |
| 629 |
\begin{rawhtml} </A>\end{rawhtml} |
| 630 |
} |
| 631 |
|
| 632 |
\item Line 41, |
| 633 |
\begin{verbatim} |
| 634 |
phiMin=0., |
| 635 |
\end{verbatim} |
| 636 |
This line sets the southern boundary of the modeled |
| 637 |
domain to $0^{\circ}$ latitude. This value affects both the |
| 638 |
generation of the locally orthogonal grid that the model |
| 639 |
uses internally and affects the initialisation of the coriolis force. |
| 640 |
Note - it is not required to set |
| 641 |
a longitude boundary, since the absolute longitude does |
| 642 |
not alter the kernel equation discretisation. |
| 643 |
The variable |
| 644 |
{\bf |
| 645 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/110.htm> \end{rawhtml} |
| 646 |
phiMin |
| 647 |
\begin{rawhtml} </A>\end{rawhtml} |
| 648 |
} |
| 649 |
is read in the routine |
| 650 |
{\it |
| 651 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 652 |
INI\_PARMS |
| 653 |
\begin{rawhtml} </A>\end{rawhtml} |
| 654 |
}. |
| 655 |
|
| 656 |
\fbox{ |
| 657 |
\begin{minipage}{5.0in} |
| 658 |
{\it S/R INI\_SPEHRICAL\_POLAR\_GRID}({\it ini\_spherical\_polar\_grid.F}) |
| 659 |
\end{minipage} |
| 660 |
} |
| 661 |
{\bf |
| 662 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/97.htm> \end{rawhtml} |
| 663 |
goto code |
| 664 |
\begin{rawhtml} </A>\end{rawhtml} |
| 665 |
} |
| 666 |
|
| 667 |
\item Line 42, |
| 668 |
\begin{verbatim} |
| 669 |
delX=60*1., |
| 670 |
\end{verbatim} |
| 671 |
This line sets the horizontal grid spacing between each y-coordinate line |
| 672 |
in the discrete grid to $1^{\circ}$ in longitude. |
| 673 |
The variable |
| 674 |
{\bf |
| 675 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/10Z.htm> \end{rawhtml} |
| 676 |
delX |
| 677 |
\begin{rawhtml} </A>\end{rawhtml} |
| 678 |
} |
| 679 |
is read in the routine |
| 680 |
{\it |
| 681 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 682 |
INI\_PARMS |
| 683 |
\begin{rawhtml} </A>\end{rawhtml} |
| 684 |
}. |
| 685 |
|
| 686 |
\fbox{ |
| 687 |
\begin{minipage}{5.0in} |
| 688 |
{\it S/R INI\_SPEHRICAL\_POLAR\_GRID}({\it ini\_spherical\_polar\_grid.F}) |
| 689 |
\end{minipage} |
| 690 |
} |
| 691 |
{\bf |
| 692 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/97.htm> \end{rawhtml} |
| 693 |
goto code |
| 694 |
\begin{rawhtml} </A>\end{rawhtml} |
| 695 |
} |
| 696 |
|
| 697 |
\item Line 43, |
| 698 |
\begin{verbatim} |
| 699 |
delY=60*1., |
| 700 |
\end{verbatim} |
| 701 |
This line sets the horizontal grid spacing between each y-coordinate line |
| 702 |
in the discrete grid to $1^{\circ}$ in latitude. |
| 703 |
The variable |
| 704 |
{\bf |
| 705 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/UB.htm> \end{rawhtml} |
| 706 |
delY |
| 707 |
\begin{rawhtml} </A>\end{rawhtml} |
| 708 |
} |
| 709 |
is read in the routine |
| 710 |
{\it |
| 711 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 712 |
INI\_PARMS |
| 713 |
\begin{rawhtml} </A>\end{rawhtml} |
| 714 |
}. |
| 715 |
|
| 716 |
\fbox{ |
| 717 |
\begin{minipage}{5.0in} |
| 718 |
{\it S/R INI\_SPEHRICAL\_POLAR\_GRID}({\it ini\_spherical\_polar\_grid.F}) |
| 719 |
\end{minipage} |
| 720 |
} |
| 721 |
{\bf |
| 722 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/97.htm> \end{rawhtml} |
| 723 |
goto code |
| 724 |
\begin{rawhtml} </A>\end{rawhtml} |
| 725 |
} |
| 726 |
|
| 727 |
\item Line 44, |
| 728 |
\begin{verbatim} |
| 729 |
delZ=500.,500.,500.,500., |
| 730 |
\end{verbatim} |
| 731 |
This line sets the vertical grid spacing between each z-coordinate line |
| 732 |
in the discrete grid to $500\,{\rm m}$, so that the total model depth |
| 733 |
is $2\,{\rm km}$. |
| 734 |
The variable |
| 735 |
{\bf |
| 736 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/10W.htm> \end{rawhtml} |
| 737 |
delZ |
| 738 |
\begin{rawhtml} </A>\end{rawhtml} |
| 739 |
} |
| 740 |
is read in the routine |
| 741 |
{\it |
| 742 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 743 |
INI\_PARMS |
| 744 |
\begin{rawhtml} </A>\end{rawhtml} |
| 745 |
}. |
| 746 |
It is copied into the internal |
| 747 |
model coordinate variable |
| 748 |
{\bf |
| 749 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/10Y.htm> \end{rawhtml} |
| 750 |
delR |
| 751 |
\begin{rawhtml} </A>\end{rawhtml} |
| 752 |
}. |
| 753 |
|
| 754 |
\fbox{ |
| 755 |
\begin{minipage}{5.0in} |
| 756 |
{\it S/R INI\_VERTICAL\_GRID}({\it ini\_vertical\_grid.F}) |
| 757 |
\end{minipage} |
| 758 |
} |
| 759 |
{\bf |
| 760 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/100.htm> \end{rawhtml} |
| 761 |
goto code |
| 762 |
\begin{rawhtml} </A>\end{rawhtml} |
| 763 |
} |
| 764 |
|
| 765 |
\item Line 47, |
| 766 |
\begin{verbatim} |
| 767 |
bathyFile='topog.box' |
| 768 |
\end{verbatim} |
| 769 |
This line specifies the name of the file from which the domain |
| 770 |
bathymetry is read. This file is a two-dimensional ($x,y$) map of |
| 771 |
depths. This file is assumed to contain 64-bit binary numbers |
| 772 |
giving the depth of the model at each grid cell, ordered with the x |
| 773 |
coordinate varying fastest. The points are ordered from low coordinate |
| 774 |
to high coordinate for both axes. The units and orientation of the |
| 775 |
depths in this file are the same as used in the MITgcm code. In this |
| 776 |
experiment, a depth of $0m$ indicates a solid wall and a depth |
| 777 |
of $-2000m$ indicates open ocean. The matlab program |
| 778 |
{\it input/gendata.m} shows an example of how to generate a |
| 779 |
bathymetry file. |
| 780 |
The variable |
| 781 |
{\bf |
| 782 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/179.htm> \end{rawhtml} |
| 783 |
bathyFile |
| 784 |
\begin{rawhtml} </A>\end{rawhtml} |
| 785 |
} |
| 786 |
is read in the routine |
| 787 |
{\it |
| 788 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 789 |
INI\_PARMS |
| 790 |
\begin{rawhtml} </A>\end{rawhtml} |
| 791 |
}. |
| 792 |
|
| 793 |
\fbox{ |
| 794 |
\begin{minipage}{5.0in} |
| 795 |
{\it S/R INI\_DEPTHS}({\it ini\_depths.F}) |
| 796 |
\end{minipage} |
| 797 |
} |
| 798 |
{\bf |
| 799 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/88.htm> \end{rawhtml} |
| 800 |
goto code |
| 801 |
\begin{rawhtml} </A>\end{rawhtml} |
| 802 |
} |
| 803 |
|
| 804 |
|
| 805 |
\item Line 50, |
| 806 |
\begin{verbatim} |
| 807 |
zonalWindFile='windx.sin_y' |
| 808 |
\end{verbatim} |
| 809 |
This line specifies the name of the file from which the x-direction |
| 810 |
surface wind stress is read. This file is also a two-dimensional |
| 811 |
($x,y$) map and is enumerated and formatted in the same manner as the |
| 812 |
bathymetry file. The matlab program {\it input/gendata.m} includes example |
| 813 |
code to generate a valid |
| 814 |
{\bf zonalWindFile} |
| 815 |
file. |
| 816 |
The variable |
| 817 |
{\bf |
| 818 |
\begin{rawhtml} <A href=../../../code_reference/vdb/names/13W.htm> \end{rawhtml} |
| 819 |
zonalWindFile |
| 820 |
\begin{rawhtml} </A>\end{rawhtml} |
| 821 |
} |
| 822 |
is read in the routine |
| 823 |
{\it |
| 824 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/94.htm> \end{rawhtml} |
| 825 |
INI\_PARMS |
| 826 |
\begin{rawhtml} </A>\end{rawhtml} |
| 827 |
}. |
| 828 |
|
| 829 |
\fbox{ |
| 830 |
\begin{minipage}{5.0in} |
| 831 |
{\it S/R EXTERNAL\_FIELDS\_LOAD}({\it external\_fields\_load.F}) |
| 832 |
\end{minipage} |
| 833 |
} |
| 834 |
{\bf |
| 835 |
\begin{rawhtml} <A href=../../../code_reference/vdb/code/75.htm> \end{rawhtml} |
| 836 |
goto code |
| 837 |
\begin{rawhtml} </A>\end{rawhtml} |
| 838 |
} |
| 839 |
|
| 840 |
\end{itemize} |
| 841 |
|
| 842 |
\noindent other lines in the file {\it input/data} are standard values |
| 843 |
that are described in the MITgcm Getting Started and MITgcm Parameters |
| 844 |
notes. |
| 845 |
|
| 846 |
\begin{rawhtml}<PRE>\end{rawhtml} |
| 847 |
\begin{small} |
| 848 |
\input{part3/case_studies/fourlayer_gyre/input/data} |
| 849 |
\end{small} |
| 850 |
\begin{rawhtml}</PRE>\end{rawhtml} |
| 851 |
|
| 852 |
\subsubsection{File {\it input/data.pkg}} |
| 853 |
|
| 854 |
This file uses standard default values and does not contain |
| 855 |
customisations for this experiment. |
| 856 |
|
| 857 |
\subsubsection{File {\it input/eedata}} |
| 858 |
|
| 859 |
This file uses standard default values and does not contain |
| 860 |
customisations for this experiment. |
| 861 |
|
| 862 |
\subsubsection{File {\it input/windx.sin\_y}} |
| 863 |
|
| 864 |
The {\it input/windx.sin\_y} file specifies a two-dimensional ($x,y$) |
| 865 |
map of wind stress ,$\tau_{x}$, values. The units used are $Nm^{-2}$. |
| 866 |
Although $\tau_{x}$ is only a function of $y$n in this experiment |
| 867 |
this file must still define a complete two-dimensional map in order |
| 868 |
to be compatible with the standard code for loading forcing fields |
| 869 |
in MITgcm. The included matlab program {\it input/gendata.m} gives a complete |
| 870 |
code for creating the {\it input/windx.sin\_y} file. |
| 871 |
|
| 872 |
\subsubsection{File {\it input/topog.box}} |
| 873 |
|
| 874 |
|
| 875 |
The {\it input/topog.box} file specifies a two-dimensional ($x,y$) |
| 876 |
map of depth values. For this experiment values are either |
| 877 |
$0m$ or $-2000\,{\rm m}$, corresponding respectively to a wall or to deep |
| 878 |
ocean. The file contains a raw binary stream of data that is enumerated |
| 879 |
in the same way as standard MITgcm two-dimensional, horizontal arrays. |
| 880 |
The included matlab program {\it input/gendata.m} gives a complete |
| 881 |
code for creating the {\it input/topog.box} file. |
| 882 |
|
| 883 |
\subsubsection{File {\it code/SIZE.h}} |
| 884 |
|
| 885 |
Two lines are customized in this file for the current experiment |
| 886 |
|
| 887 |
\begin{itemize} |
| 888 |
|
| 889 |
\item Line 39, |
| 890 |
\begin{verbatim} sNx=60, \end{verbatim} this line sets |
| 891 |
the lateral domain extent in grid points for the |
| 892 |
axis aligned with the x-coordinate. |
| 893 |
|
| 894 |
\item Line 40, |
| 895 |
\begin{verbatim} sNy=60, \end{verbatim} this line sets |
| 896 |
the lateral domain extent in grid points for the |
| 897 |
axis aligned with the y-coordinate. |
| 898 |
|
| 899 |
\item Line 49, |
| 900 |
\begin{verbatim} Nr=4, \end{verbatim} this line sets |
| 901 |
the vertical domain extent in grid points. |
| 902 |
|
| 903 |
\end{itemize} |
| 904 |
|
| 905 |
\begin{small} |
| 906 |
\include{part3/case_studies/fourlayer_gyre/code/SIZE.h} |
| 907 |
\end{small} |
| 908 |
|
| 909 |
\subsubsection{File {\it code/CPP\_OPTIONS.h}} |
| 910 |
|
| 911 |
This file uses standard default values and does not contain |
| 912 |
customisations for this experiment. |
| 913 |
|
| 914 |
|
| 915 |
\subsubsection{File {\it code/CPP\_EEOPTIONS.h}} |
| 916 |
|
| 917 |
This file uses standard default values and does not contain |
| 918 |
customisations for this experiment. |
| 919 |
|
| 920 |
\subsubsection{Other Files } |
| 921 |
|
| 922 |
Other files relevant to this experiment are |
| 923 |
\begin{itemize} |
| 924 |
\item {\it model/src/ini\_cori.F}. This file initializes the model |
| 925 |
coriolis variables {\bf fCorU} and {\bf fCorV}. |
| 926 |
\item {\it model/src/ini\_spherical\_polar\_grid.F} This file |
| 927 |
initializes the model grid discretisation variables {\bf |
| 928 |
dxF, dyF, dxG, dyG, dxC, dyC}. |
| 929 |
\item {\it model/src/ini\_parms.F}. |
| 930 |
\end{itemize} |
| 931 |
|
| 932 |
\subsection{Running The Example} |
| 933 |
\label{SEC:running_the_example} |
| 934 |
|
| 935 |
\subsubsection{Code Download} |
| 936 |
|
| 937 |
In order to run the examples you must first download the code distribution. |
| 938 |
Instructions for downloading the code can be found in the Getting Started |
| 939 |
Guide \cite{MITgcm_Getting_Started}. |
| 940 |
|
| 941 |
\subsubsection{Experiment Location} |
| 942 |
|
| 943 |
This example experiments is located under the release sub-directory |
| 944 |
|
| 945 |
\vspace{5mm} |
| 946 |
{\it verification/exp1/ } |
| 947 |
|
| 948 |
\subsubsection{Running the Experiment} |
| 949 |
|
| 950 |
To run the experiment |
| 951 |
|
| 952 |
\begin{enumerate} |
| 953 |
\item Set the current directory to {\it input/ } |
| 954 |
|
| 955 |
\begin{verbatim} |
| 956 |
% cd input |
| 957 |
\end{verbatim} |
| 958 |
|
| 959 |
\item Verify that current directory is now correct |
| 960 |
|
| 961 |
\begin{verbatim} |
| 962 |
% pwd |
| 963 |
\end{verbatim} |
| 964 |
|
| 965 |
You shold see a response on the screen ending in |
| 966 |
|
| 967 |
{\it verification/exp1/input } |
| 968 |
|
| 969 |
|
| 970 |
\item Run the genmake script to create the experiment {\it Makefile} |
| 971 |
|
| 972 |
\begin{verbatim} |
| 973 |
% ../../../tools/genmake -mods=../code |
| 974 |
\end{verbatim} |
| 975 |
|
| 976 |
\item Create a list of header file dependencies in {\it Makefile} |
| 977 |
|
| 978 |
\begin{verbatim} |
| 979 |
% make depend |
| 980 |
\end{verbatim} |
| 981 |
|
| 982 |
\item Build the executable file. |
| 983 |
|
| 984 |
\begin{verbatim} |
| 985 |
% make |
| 986 |
\end{verbatim} |
| 987 |
|
| 988 |
\item Run the {\it mitgcmuv} executable |
| 989 |
|
| 990 |
\begin{verbatim} |
| 991 |
% ./mitgcmuv |
| 992 |
\end{verbatim} |
| 993 |
|
| 994 |
\end{enumerate} |
| 995 |
|
| 996 |
|