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adding Condron and Winsor paper

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, in press.
6 </li></ul>
7
8 <ul><li>
9 A. Condron and P. Winsor, 2011: A subtropical fate awaited freshwater
10 discharged from glacial Lake Agassiz. Geophys. Res. Let., in press,
11 doi:10.1029/2010GL046011.
12 </li></ul>
13
14 <ul><li>
15 X. Davis, L. Rothstein, W. Dewar, and D. Menemenlis, 2011:
16 <a href="http://ecco2.org/manuscripts/2010/DavisJcli10.pdf">
17 Numerical investigations of seasonal and interannual variability of
18 North Pacific Subtropical Mode Water and its implications for Pacific
19 climate variability.</a> J. Clim., in press.
20 </li></ul>
21
22 <ul><li>
23 G. Forget, G. Maze, M. Buckley, and J. Marshall, 2011:
24 Estimated Seasonal Cycle of North Atlantic Eighteen Degree Water Volume.
25 J. Phys. Oceanogr., in press.
26 </li></ul>
27
28 <ul><li>
29 P. Heimbach, C. Wunsch, R. Ponte, G. Forget, C. Hill, and J. Utke, 2011:
30 Timescales and Regions of the Sensitivity of Atlantic Meridional Volume and
31 Heat Transport Magnitudes: Toward Observing System Design. Deep Sea Res. II
32 (special issue on the AMOC), in press.
33 </li></ul>
34
35 <ul><li>
36 E. Hill, D. Enderton, P. Heimbach, and C. Hill, 2011: SPGrid: A
37 numerical grid generation program for domain decomposed geophysical
38 fluid dynamics models. Unpublished manuscript.
39 </li></ul>
40
41 <ul><li>
42 M. Manizza, M. Follows, S. Dutkiewicz, D. Menemenlis, J. McClelland,
43 C. Hill1, B. Peterson, R. Key, 2011:
44 <a href="http://ecco2.org/manuscripts/2010/ManizzaJGR2010.pdf">
45 Modeling the Arctic Ocean carbon cycle and its sensitivity to the
46 influence of the riverine dissolved organic carbon.</a>
47 J. Geophys. Res., submitted.
48 </li></ul>
49
50 <ul><li>
51 G. Maze, G. Forget, M. Buckley and J. Marshall, 2011: Using
52 transformation and formation maps to study water mass transformation:
53 a case study of North Atlantic Eighteen Degree water. J. Phys.
54 Oceanogr, submitted.
55 </li></ul>
56
57 <ul><li>
58 A. Nguyen, D. Menemenlis, and R. Kwok, 2011:
59 <a href="http://ecco2.org/manuscripts/2010/NguyenJGR10.pdf">
60 Arctic ice-ocean simulation with optimized model parameters: approach
61 and assessment.</a> J. Geophys. Res., in press.
62 </li></ul>
63
64 <ul><li>
65 R. Tulloch, J. Marshall, C. Hill, and K. Smith, 2011:
66 <a href="http://ocean.mit.edu/~tulloch/Publications/tulloch_etaljpo10.pdf">
67 Scales, growth rates and spectral fluxes of baroclinic instability in
68 the ocean.</a> J. Phys. Oceanogr., in press.
69 </li></ul>
70
71 <ul><li>
72 C. Ubelmann and L. Fu, 2011:
73 <a href="http://ecco2.org/manuscripts/2011/UbelmannFu2011.pdf">
74 Vorticity structures in the tropical Pacific from a numerical simulation.</a>
75 Geophys. J. Phys. Oceanogr., submitted.
76 </li></ul>
77
78 <ul><li>
79 N. Vinogradova, R. Ponte, M. Tamisiea, J. Davis, and
80 E. Hill, 2011: Effects of self-attraction and loading on annual
81 variations of ocean bottom pressure. J. Geophys. Res., submitted.
82 </li></ul>
83
84 <ul><li>
85 N. Vinogradova, R. Ponte, and P. Heimbach, 2011: Dynamics and forcing of sea
86 surface temperature variability on climate time scales. J. Clim., submitted.
87 </li></ul>
88
89 <ul><li>
90 D. Volkov and L. Fu, 2011: Mechanism for the interannual variability of the
91 Azores Current eddy energy. Geophys. Res. Let., submitted.
92 </li></ul>
93
94 <ul><li>
95 Y. Xu and L. Fu, 2011: Global variability of the wavenumber spectrum of
96 oceanic mesoscale turbulence. J. Phys. Oceanogr., in press,
97 doi:10.1175/2010JPO4558.1.
98 </li></ul>
99
100 <ul><li>
101 L. Zanna, P. Heimbach, A. Moore, and E. Tziperman, 2011: Optimal
102 excitation of interannual Atlantic meridional overturning circulation
103 variability. J. Climate, in press, doi:10.1175/2010JCLI3610.1.
104 </li></ul>
105
106 <ul><li>
107 L. Zanna, P. Heimbach, A. Moore and E. Tziperman, 2011. Analysis of the
108 predictability and variability of the Atlantic ocean in response to optimal
109 surface excitation. Quart. J. Roy. Met. Soc., submitted.
110 </li></ul>

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