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1 <ul><li>
2 J. Campin, C. Hill, H. Jones, and J. Marshall, 2011:
3 <a href="http://www-paoc.mit.edu/paoc/papers/superparam.pdf">
4 Superparameterization in ocean modeling: application to deep
5 convection.</a> Ocean Modeling, submitted.
6 </li></ul>
7
8 <ul><li>
9 X. Davis, L. Rothstein, W. Dewar, and D. Menemenlis, 2011:
10 <a href="http://ecco2.org/manuscripts/2010/DavisJcli10.pdf">
11 Numerical investigations of seasonal and interannual variability of
12 North Pacific Subtropical Mode Water and its implications for Pacific
13 climate variability.</a> J. Clim., in press.
14 </li></ul>
15
16 <ul><li>
17 G. Forget, G. Maze, M. Buckley, and J. Marshall, 2011:
18 Estimated Seasonal Cycle of North Atlantic Eighteen Degree Water Volume.
19 J. Phys. Oceanogr., in press.
20 </li></ul>
21
22 <ul><li>
23 Heimbach, P., C. Wunsch, R.M. Ponte, G. Forget, C. Hill, and J. Utke, 2011: Timescales and Regions of the Sensitivity of Atlantic Meridional Volume and Heat Transport Magnitudes: Toward Observing System Design. Deep Sea Res. II (special issue on the AMOC), in press.</li></ul>
24
25 <ul><li>
26 E. Hill, D. Enderton, P. Heimbach, and C. Hill, 2011: SPGrid: A
27 numerical grid generation program for domain decomposed geophysical
28 fluid dynamics models. Unpublished manuscript.
29 </li></ul>
30
31 <ul><li>
32 M. Manizza, M. Follows, S. Dutkiewicz, D. Menemenlis, J. McClelland,
33 C. Hill1, B. Peterson, R. Key, 2011:
34 <a href="http://ecco2.org/manuscripts/2010/ManizzaJGR2010.pdf">
35 Modeling the Arctic Ocean carbon cycle and its sensitivity to the
36 influence of the riverine dissolved organic carbon.</a>
37 J. Geophys. Res., submitted.
38 </li></ul>
39
40 <ul><li>
41 G. Maze, G. Forget, M. Buckley and J. Marshall, 2011: Using
42 transformation and formation maps to study water mass transformation:
43 a case study of North Atlantic Eighteen Degree water. J. Phys.
44 Oceanogr, submitted.
45 </li></ul>
46
47 <ul><li>
48 A. Nguyen, D. Menemenlis, and R. Kwok, 2011:
49 <a href="http://ecco2.org/manuscripts/2010/NguyenJGR10.pdf">
50 Arctic ice-ocean simulation with optimized model parameters: approach
51 and assessment.</a> J. Geophys. Res., submitted.
52 </li></ul>
53
54 <ul><li>
55 R. Tulloch, J. Marshall, C. Hill, and K. Smith, 2011:
56 <a href="http://ocean.mit.edu/~tulloch/Publications/tulloch_etaljpo10.pdf">
57 Scales, growth rates and spectral fluxes of baroclinic instability in
58 the ocean.</a> J. Phys. Oceanogr., submitted.
59 </li></ul>
60
61 <ul><li>
62 C. Ubelmann and L. Fu, 2011:
63 <a href="http://ecco2.org/manuscripts/2011/UbelmannFu2011.pdf">
64 Vorticity structures in the tropical Pacific from a numerical simulation.</a>
65 Geophys. J. Phys. Oceanogr., submitted.
66 </li></ul>
67
68 <ul><li>
69 N. Vinogradova, R. Ponte, M. Tamisiea, J. Davis, and
70 E. Hill, 2011: Effects of self-attraction and loading on annual
71 variations of ocean bottom pressure. J. Geophys. Res., submitted.
72 </li></ul>
73
74 <ul><li>
75 N. Vinogradova, R. Ponte, and P. Heimbach, 2011: Dynamics and forcing of sea
76 surface temperature variability on climate time scales. J. Clim., submitted.
77 </li></ul>
78
79 <ul><li>
80 D. Volkov and L. Fu, 2011: Mechanism for the interannual variability of the
81 Azores Current eddy energy. Geophys. Res. Let., submitted.
82 </li></ul>
83
84 <ul><li>
85 L. Zanna, P. Heimbach, A. Moore and E. Tziperman, 2011. Analysis of the
86 predictability and variability of the Atlantic ocean in response to optimal
87 surface excitation. Quart. J. Roy. Met. Soc., submitted.
88 </li></ul>

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