[1954] | 1 | \chapter{The physical parameterizations of the Martian model: some references} |
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| 2 | |
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| 3 | \label{sc:phymars} |
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| 4 | |
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| 5 | \section{General} |
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| 6 | |
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| 7 | The Martian General Circulation Model uses a large number of physical |
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| 8 | parameterizations based on various scientific theories |
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| 9 | and some generated using specific numerical methods. |
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| 10 | |
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| 11 | A list of these parameterizations is given below, along with the most |
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| 12 | appropriate |
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| 13 | references for each one. Most of these documents can be consulted at: |
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| 14 | \verb+http://www-mars.lmd.jussieu.fr/mars/publi.html+. |
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| 15 | |
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| 16 | |
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| 17 | \paragraph{General references:} |
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| 18 | A document attempts to give a complete scientific description of the current |
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| 19 | version of the GCM (a version without tracers): |
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| 20 | \begin{itemize} |
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| 21 | \item {\it Forget et al.} [1999] (article |
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| 22 | published in JGR) |
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| 23 | \end{itemize} |
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| 24 | |
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| 25 | \nocite{Forg:99} |
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| 26 | |
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| 27 | \section{Radiative transfer} |
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| 28 | |
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| 29 | The radiative transfer parameterizations are used to calculate the heating |
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| 30 | and cooling ratios in the atmosphere and the radiative flux at the surface. |
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| 31 | |
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| 32 | \subsection{\bf CO$_2$ gas absorption/emission:} |
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| 33 | \subsubsection*{Thermal IR radiation} (\verb+ lwmain+) |
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| 34 | \begin{itemize} |
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| 35 | \item New numerical method, solution for the radiative transfer equation: |
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| 36 | {\it Dufresne et al.} [2005]. |
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| 37 | \item Model validation and inclusion of the ``Doppler'' effect |
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| 38 | (but using an old numerical formulation): |
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| 39 | {\it Hourdin} [1992] (article). |
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| 40 | \nocite{Hour:92,Hour:00b,Dufr:05} |
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| 41 | |
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| 42 | \item At high altitudes, parameterization of the thermal radiative transfer |
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| 43 | ({\tt nltecool}) when the local thermodynamic balance is no longer valid |
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| 44 | (e.g. within 0.1 Pa) : Lopez-Valverde et al. [2001] : |
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| 45 | Report for the ESA available on the web |
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| 46 | as: ``CO2 non-LTE cooling rate at |
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| 47 | 15-um and its parameterization for the Mars atmosphere''. |
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| 48 | |
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| 49 | \end{itemize} |
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| 50 | |
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| 51 | \subsubsection*{Absorption of near-infrared radiation} |
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| 52 | (\verb+ nirco2abs+) |
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| 53 | \begin{itemize} |
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| 54 | \item {\it Forget et al.} [1999] |
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| 55 | \end{itemize} |
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| 56 | |
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| 57 | \subsection{\bf Absorption/emission and diffusion by dust:} |
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| 58 | |
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| 59 | \subsubsection*{Dust spatial distribution} |
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| 60 | (\verb+ aeropacity+) |
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| 61 | |
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| 62 | \begin{itemize} |
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| 63 | \item The method for semi-interactive dust vertical distribution |
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| 64 | is detailed in {\it Madeleine et al.} [2011] |
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| 65 | \item Vertical distribution and description of ``MGS'' and ``Viking'' scenarios |
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| 66 | in the ESA report {\it Mars Climate Database V3.0 Detailed Design Document} |
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| 67 | by Lewis et al. (2001), available on the web. |
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| 68 | \item For the ``MY24''-``MY26'' scenarios, the dust distributions were |
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| 69 | derived from observations made by |
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| 70 | TES data is used. See technical note WP12.2.1 of ESA contract |
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| 71 | Ref~ESA 11369/95/NL/JG(SC) "New dust scenarios for the Mars Climate Model : Martian Years |
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| 72 | 24-29", available online at |
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| 73 | \verb+http://www-mars.lmd.jussieu.fr/WP2011/wp12.1.1.pdf+ |
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| 74 | |
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| 75 | \end{itemize} |
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| 76 | \nocite{Lewi:99,Made:11} |
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| 77 | |
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| 78 | \subsubsection*{Thermal IR radiation} |
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| 79 | (\verb+ lwmain+) |
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| 80 | \begin{itemize} |
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| 81 | \item Numerical method: {\it Toon et al.} [1989] |
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| 82 | \item Optical properties of dust: {\it Madeleine et al.} [2011] |
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| 83 | \nocite{Toon:89,Made:11} |
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| 84 | \end{itemize} |
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| 85 | |
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| 86 | \subsubsection*{Solar radiation} |
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| 87 | (\verb+ swmain+) |
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| 88 | \begin{itemize} |
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| 89 | \item Numerical method: {\it Toon et al.} [1989] |
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| 90 | \nocite{Toon:89} |
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| 91 | |
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| 92 | \item Optical properties of dust: |
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| 93 | see the discussion in {\it Madeleine et al.} [2011], which quotes |
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| 94 | properties from {\it Wolff et al.} [2009]. |
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| 95 | \nocite{Made:11,Wolf:09} |
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| 96 | \end{itemize} |
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| 97 | |
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| 98 | \section{Subgrid atmospheric dynamical processes} |
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| 99 | |
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| 100 | \subsection{Turbulent diffusion in the upper layer} |
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| 101 | (\verb+ vdifc+) |
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| 102 | |
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| 103 | \begin{itemize} |
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| 104 | \item Implicit numerical scheme in the vertical: |
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| 105 | see the thesis of Laurent Li (LMD, Universit\'e Paris 7, 1990), Appendix C2. |
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| 106 | |
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| 107 | \item Calculation of the turbulent diffusion coefficients: |
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| 108 | {\it Forget et al. } [1999]. |
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| 109 | |
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| 110 | \item fluxes in the near-surface layer: {\it Colaitis et al.} [2012], |
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| 111 | technical note WP13.1.3d of ESA contract |
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| 112 | Ref~ESA 11369/95/NL/JG(SC) "New Mars Climate Model: |
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| 113 | d) New convection and boundary layer schemes and their impact on |
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| 114 | Mars meteorology", available online at |
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| 115 | \verb+http://www-mars.lmd.jussieu.fr/WP2011/wp13.1.3d.pdf+ |
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| 116 | |
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| 117 | \end{itemize} |
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| 118 | |
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| 119 | \subsection{Convection} |
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| 120 | (\verb+ convadj+) |
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| 121 | \begin{itemize} |
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| 122 | \item For some details on the convective adjustement, |
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| 123 | see {\it Hourdin et al.} [1993] |
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| 124 | \item The thermals' mass flux scheme is described in |
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| 125 | {\it Colaitis et al.} [2012], |
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| 126 | technical note WP13.1.3d of ESA contract |
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| 127 | Ref~ESA 11369/95/NL/JG(SC) "New Mars Climate Model: |
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| 128 | d) New convection and boundary layer schemes and their impact on |
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| 129 | Mars meteorology", available online at |
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| 130 | \verb+http://www-mars.lmd.jussieu.fr/WP2011/wp13.1.3d.pdf+ |
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| 131 | \end{itemize} |
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| 132 | \nocite{Hour:93} |
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| 133 | |
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| 134 | \subsection{Effects of subgrid orography and gravity waves} |
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| 135 | (\verb+ calldrag_noro+ , \verb+ drag_noro+ ) |
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| 136 | |
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| 137 | See {\it Forget et al. } [1999] and {\it Lott and Miller} [1997] |
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| 138 | \nocite{Lott:97} |
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| 139 | |
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| 140 | \section{Surface thermal conduction} |
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| 141 | (\verb+soil+) |
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| 142 | |
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| 143 | The numerical scheme is described in section 2 of technical note |
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| 144 | WP11.1 of ESA contract |
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| 145 | Ref~ESA 11369/95/NL/JG(SC) "Improvement of the high latitude |
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| 146 | processes in the Mars Global Climate Model", available online at |
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| 147 | \verb+http://www-mars.lmd.jussieu.fr/WP2008/Polar_processes.pdf+ |
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| 148 | |
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| 149 | \section{CO$_2$ Condensation} |
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| 150 | |
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| 151 | \begin{itemize} |
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| 152 | \item In {\it Forget et al.} [1998] (article published in Icarus): |
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| 153 | \begin{itemize} |
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| 154 | \item Numerical method for calculating the condensation and sublimation levels |
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| 155 | at the surface and in the atmosphere (\verb+ newcondens+) |
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| 156 | explained in the appendix. |
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| 157 | \item Description of the numerical scheme for calculating the evolution of CO$_2$ |
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| 158 | snow emissivity (\verb+co2snow+) explained in section 4.1 |
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| 159 | \end{itemize} |
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| 160 | \nocite{Forg:98} |
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| 161 | \item Noncondensable gaz treatment: see {\it Forget et al.} [2008], |
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| 162 | available online at |
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| 163 | \verb+http://www.lpi.usra.edu/meetings/modeling2008/pdf/9106.pdf+ |
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| 164 | \item Inclusion of sub-surface water ice table thermal effect, varying albedo |
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| 165 | of polar caps and tuning of the CO2 cycle are descibed in technical note |
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| 166 | WP13.1.3e of ESA contract |
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| 167 | Ref~ESA 11369/95/NL/JG(SC) "New Mars Global Climate Model: |
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| 168 | e) Improved CO2 cycle and seasonal pressure variations", available online at |
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| 169 | \verb+http://www-mars.lmd.jussieu.fr/WP2011/wp13.1.3e.pdf+ |
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| 170 | \end{itemize} |
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| 171 | |
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| 172 | |
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| 173 | \section{Tracer transport and sources} |
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| 174 | \begin{itemize} |
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| 175 | \item ``Van-Leer'' transport scheme used in the dynamical part |
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| 176 | (\verb+ tracvl+ and \verb+ vlsplt+ in the dynamical part): |
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| 177 | {\it Hourdin and Armengaud} [1999] \nocite{Hour:99} |
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| 178 | |
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| 179 | \item Transport by turbulent diffusion (in \verb+ vdifc+), convection |
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| 180 | (in \verb+ convadj+), sedimentation (\verb+ sedim+), |
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| 181 | dust lifting by winds (\verb+ dustlift+) : |
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| 182 | see note ``Preliminary design of dust lifting and transport in the Model'' |
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| 183 | (ESA contract, Work Package 4, 1998, available on the web). |
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| 184 | |
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| 185 | \item Dust transport by the ``Mass mixing ratio / |
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| 186 | Number mixing ratio'' method for grain size evolution: see article by {\it |
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| 187 | Madeleine et al.} [2011] |
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| 188 | \nocite{Made:11} |
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| 189 | |
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| 190 | %\item Simplified water cycle (source in {\tt vdifc}, {\tt |
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| 191 | %watercloud}) : and also see the Maitrise study by Delphine Nobileau, LMD, 2000. |
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| 192 | \item {\bf Watercycle}, see {\it Montmessin et al.} [2004] |
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| 193 | and technical note |
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| 194 | WP13.1.3c of ESA contract |
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| 195 | Ref~ESA 11369/95/NL/JG(SC) "New Mars Climate Model: c) Inclusion of cloud |
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| 196 | microphysics, dust scavenging and improvement of the water cycle", |
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| 197 | available online at |
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| 198 | \verb+http://www-mars.lmd.jussieu.fr/WP2011/wp13.1.3c.pdf+ |
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| 199 | \nocite{Mont:04jgr} |
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| 200 | |
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| 201 | \item Radiative effect of clouds: see technical note |
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| 202 | WP13.1.3b of ESA contract Ref~ESA 11369/95/NL/JG(SC) |
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| 203 | "New Mars Climate Model: b) Radiative effects of water |
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| 204 | ice clouds and impact on temperatures", available online at |
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| 205 | \verb+http://www-mars.lmd.jussieu.fr/WP2011/wp13.1.3b.pdf+ |
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| 206 | |
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| 207 | %\item Chemistry, thermosphere, clouds: currently being published. |
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| 208 | \item {\bf Chemistry}, see {\it Lef\`evre et al.} [2004] |
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| 209 | and {\it Lef\`evre et al. [2008]} |
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| 210 | \nocite{Lefe:04,Lefe:08} |
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| 211 | \end{itemize} |
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| 212 | |
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| 213 | \section{Thermosphere} |
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| 214 | \begin{itemize} |
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| 215 | \item A general description of the model is given in |
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| 216 | {\it Gonz{\'a}lez-Galindo et al.} [2009] |
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| 217 | \item Details on photochemistry and EUV radiative transfer can be found in |
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| 218 | {\it Angelats i Coll et al.} [2005] and |
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| 219 | {\it Gonz{\'a}lez-Galindo et al.} [2005] |
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| 220 | \end{itemize} |
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| 221 | \nocite{Gonz:09a,Gonz:09b,Gonz:05,Ange:05} |
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