22 |
|
|
23 |
<body> |
<body> |
24 |
|
|
25 |
<p>The <b>MITgcm</b> (<b>MIT</b> <b>G</b>eneral <b>C</b>irculation |
<p>The <b>MITgcm</b> (<b>MIT</b> <b>G</b>eneral <b>C</b>irculation |
26 |
<b>M</b>odel) is a numerical model for |
<b>M</b>odel) is a numerical model designed for study of the |
27 |
studying the ocean and atmosphere. It is capable of simulating these |
atmosphere, ocean, and climate. Its non-hydrostatic formulation |
28 |
fluids at a wide range of scales and can resolve many different |
enables it to simulate fluid phenomena over a wide range of |
29 |
processes. It has a non-hydrostatic capability (Marshall et al., JGR 1997a |
scales; its adjoint capability enables it to be applied to |
30 |
& b) and uses the finite volume method to accurately represent the |
parameter and state estimation problems. By employing fluid |
31 |
bottom boundary position (Adcroft et al., MWR 1998).<br /><br /></p> |
isomorphisms, one hydrodynamical kernel can be used to simulate |
32 |
|
flow in both the atmosphere and ocean.</p> |
33 |
|
|
34 |
<div class="c1"><span class="c3"><b>News</b></span></div> |
<p>You are welcome to <a href="http://mitgcm.org/source_code.html"> |
35 |
|
download</a> and use MITgcm.</p> |
36 |
|
|
37 |
|
<p>Papers charting the development of MITgcm <a |
38 |
|
href="http://paoc.mit.edu/cmi/publications.htm">can be found here. |
39 |
|
</a></p> |
40 |
|
|
41 |
|
<hr align="center" size="1" width="75%" /> |
42 |
|
|
43 |
|
<div class="c1"><br /><span class="c3"><b>News</b></span></div> |
44 |
|
|
45 |
<!-- |
<!-- |
46 |
|
|