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# Line 6  Southern Ocean.</a> J. Phys. Oceanogr., Line 6  Southern Ocean.</a> J. Phys. Oceanogr.,
6  </li></ul>  </li></ul>
7    
8  <ul><li>  <ul><li>
9  G. Forget, in press:  J. Campin, C. Hill, H. Jones, and J. Marshall, submitted:
10  <a href="http://ams.allenpress.com/archive/1520-0485/preprint/2009/pdf/10.1175_2009JPO4043.1.pdf">  <a href="http://www-paoc.mit.edu/paoc/papers/superparam.pdf">
11    Superparameterization in ocean modeling: application to deep
12    convection.</a> Ocean Modeling.
13    </li></ul>
14    
15    <ul><li>
16    X. Davis, L. Rothstein, W. Dewar, and D. Menemenlis, in press:
17    <a href="http://ecco2.org/manuscripts/2010/DavisJcli10.pdf">
18    Numerical investigations of seasonal and interannual variability of
19    North Pacific Subtropical Mode Water and its implications for Pacific
20    climate variability.</a> J. Clim.
21    </li></ul>
22    
23    <ul><li>
24    M. Durand, L. Fu, D. Lettenmaier, D. Alsdorf, E. Rodriguez, and
25    D. Fernandez, 2010:
26    <a href="http://ecco2.org/manuscripts/2010/DurandIEEE2010.pdf">
27    The Surface Water and Ocean Topography mission: observing terrestrial
28    surface water and oceanic submesoscale eddies.</a> Proceedings of the
29    IEEE, 766.
30    </li></ul>
31    
32    <ul><li>
33    Ferrari, R. and C. Wunsch, 2010:
34    The distribution of eddy kinetic and potential energies in the global ocean.
35    Tellus, 62A, 92-108, doi:10.1111/j.1600-0870.2009.00432.x.
36    </li></ul>
37    
38    <ul><li>
39    G. Forget, 2010:
40  Mapping ocean observations in a dynamical framework: a 2004-2006 ocean  Mapping ocean observations in a dynamical framework: a 2004-2006 ocean
41  atlas.</a> J. Phys. Oceanogr.  atlas. J. Phys. Oceanogr. 40, 1201-1221.
42  </li></ul>  </li></ul>
43    
44  <ul><li>  <ul><li>
45  G. Forget, G. Maze, M. Buckley, and J. Marshall, submitted:  G. Forget, G. Maze, M. Buckley, and J. Marshall, 2010:
46  Quantitative and dynamical analysis of EDW formation using a  Estimated Seasonal Cycle of North Atlantic Eighteen Degree Water Volume.
47  model-data synthesis. J. Phys. Oceanogr.  J. Phys. Oceanogr., in press.
48  </li></ul>  </li></ul>
49    
50  <ul><li>  <ul><li>
51  Heimbach, P., C. Wunsch, R.M. Ponte, G. Forget, C. Hill, and J. Utke, 2010: Timescales and Regions of the Sensitivity of Atlantic Meridional Volume and Heat Transport Magnitudes: Toward Observing System Design. submitted to Deep Sea Res. (special issue on the AMOC).  J. Hausman and V. Zlotnicki, 2010:
52    <a href="http://ecco2.org/manuscripts/2010/HausmanMarineGeodesy10.pdf">
53    Sea state bias in radar altimetry revisited.</a> Marine Geodesy, 33,
54    336-347.
55  </li></ul>  </li></ul>
56    
57  <ul><li>  <ul><li>
58  P. Heimbach, D. Menemenlis, M. Losch, J. Campin, and C. Hill,  Heimbach, P., C. Wunsch, R.M. Ponte, G. Forget, C. Hill, and J. Utke, 2010: 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>
59    
60    <ul><li>
61    Heimbach, P., D. Menemenlis, M. Losch, J. Campin, and C. Hill,
62  2010: <a  2010: <a
63  href="http://ecco2.org/manuscripts/2010/ceaice_part2.pdf"> On the  href="http://ecco2.org/manuscripts/2010/ceaice_part2.pdf"> On the
64  formulation of sea-ice models. Part 2: Lessons from multi-year adjoint  formulation of sea-ice models. Part 2: Lessons from multi-year adjoint
65  sea ice export sensitivities through the Canadian Arctic  sea ice export sensitivities through the Canadian Arctic
66  Archipelago.</a> Ocean Modelling, 33, 145-158.  Archipelago.</a> Ocean Modelling, 33, 145-158, doi:10.1016/j.ocemod.2010.02.002.
67    </li></ul>
68    
69    <ul><li>
70    Herraiz Borreguero, L., R. Mottram, and I. Cvijanovic, 2010: <a href="http://www.mit.edu/~heimbach/papers/2010_acdc2010_eos_ocean_icesheet.pdf">Discussing progress in understanding ice sheet-ocean interactions.</a> EOS Transactions AGU, 91(45), p. 419 (Advanced Climate Dynamics Course - ACDC 2010, co-organized by P. Heimbach, MIT).
71  </li></ul>  </li></ul>
72    
73  <ul><li>  <ul><li>
74  E. Hill, D. Enderton, P. Heimbach, and C. Hill, submitted: SPGrid: A  E. Hill, D. Enderton, P. Heimbach, and C. Hill, submitted: SPGrid: A
75  numerical grid generation program for domain decomposed geophysical  numerical grid generation program for domain decomposed geophysical
76  fluid dynamics models. Mon. Weather Rev.  fluid dynamics models. Submitted to Mon. Weather Rev.
77  </li></ul>  </li></ul>
78    
79  <ul><li>  <ul><li>
80  Lee, T., T. Awaji, M. Balmaseda, N. Ferry, Y. Fuji, I. Fukumori, B. Giese, P. Heimbach, A. Koehl, S. Masina, E. Remy, A. Rosati, M.P. Schodlok, D. Stammer, and A.T. Weaver, 2010: Consistency and fidelity of Indonesian-throughflow total volume transport estimated by 14 ocean data assimilation products. Dyn. Atmos. Ocean (Special issue on the ITF), in press, doi:10.1016/j.dynatmoce.2009.12.004  Hoteit, I., B. Cornuelle, and P. Heimbach, 2010:
81    An Eddy-Permitting, Dynamically Consistent Adjoint-Based Assimilation System for the Tropical Pacific:
82    Hindcast Experiments in 2000.
83    J. Geophys. Res., 115, C03001, doi:10.1029/2009JC005437.
84    </li></ul>
85    
86    <ul><li>
87    T. Lee, T. Awaji, M. Balmaseda, N. Ferry, Y. Fuji, I. Fukumori,
88    B. Giese, P. Heimbach, A. Koehl, S. Masina, E. Remy, A. Rosati,
89    M.P. Schodlok, D. Stammer, and A.T. Weaver, 2010: Consistency and
90    fidelity of Indonesian-throughflow total volume transport estimated by
91    14 ocean data assimilation products. Dyn. Atmos. Ocean (Special issue
92    on the ITF), in press, doi:10.1016/j.dynatmoce.2009.12.004
93  </li></ul>  </li></ul>
94    
95  <ul><li>  <ul><li>
96  M. Losch, D. Menemenlis, P. Heimbach, J. Campin, and C. Hill, 2010:  M. Losch, D. Menemenlis, P. Heimbach, J. Campin, and C. Hill, 2010:
97  <a href="http://ecco2.org/manuscripts/2010/ceaice_part1.pdf"> On the  <a href="http://ecco2.org/manuscripts/2010/ceaice_part1.pdf"> On the
98  formulation of sea-ice models. Part 1: Effects of different solver  formulation of sea-ice models. Part 1: Effects of different solver
99  implementations and parameterizations.</a> Ocean Modelling, 33, 129-144.  implementations and parameterizations.</a> Ocean Modelling, 33, 129-144,
100    doi:10.1016/j.ocemod.2009.12.008.
101    </li></ul>
102    
103    <ul><li>
104    M. Manizza, M. Follows, S. Dutkiewicz, D. Menemenlis, J. McClelland,
105    C. Hill1, B. Peterson, R. Key, submitted:
106    <a href="http://ecco2.org/manuscripts/2010/ManizzaJGR2010.pdf">
107    Modeling the Arctic Ocean carbon cycle and its sensitivity to the
108    influence of the riverine dissolved organic carbon.</a>
109    J. Geophys. Res.
110  </li></ul>  </li></ul>
111    
112  <ul><li>  <ul><li>
# Line 57  Oceanogr. Line 118  Oceanogr.
118    
119  <ul><li>  <ul><li>
120  M. Mazloff, P. Heimbach, and C. Wunsch, in press: An Eddy-Permitting  M. Mazloff, P. Heimbach, and C. Wunsch, in press: An Eddy-Permitting
121  Southern Ocean State Estimate. J. Phys. Oceanogr.  Southern Ocean State Estimate. J. Phys. Oceanogr., 40(5), 880-899, doi:10.1175/2009JPO4236.1.
122    </li></ul>
123    
124    <ul><li>
125    A. McGuire, D. Hayes, D. Kicklighter, M. Manizza, Q. Zhuang, M. Chen,
126    M. Follows, K. Gurney, J. McClelland, J. Melillo, B. Peterson, and
127    R. Prinn, 2010:
128    <a href="http://ecco2.org/manuscripts/2010/McGuireTellus2010.pdf">
129    An analysis of the carbon balance of the Arctic Basin
130    from 1997 to 2006.</a> Tellus, doi:10.1111/j.1600-0889.2010.00497.x
131  </li></ul>  </li></ul>
132    
133  <ul><li>  <ul><li>
134  J. Utke, L. Harscoet, P. Heimbach, C. Hill, P. Hovland, and U.  A. T. Nguyen, D. Menemenlis, and R. Kwok, submitted:
135  Naumann, in press: Toward adjointable MPI. Proceedings of the 23rd  <a href="http://ecco2.org/manuscripts/2010/NguyenJGR10.pdf">
136  IEEE International Parallel & Distributed Processing Symposium.  Arctic ice-ocean simulation with optimized model parameters: approach
137    and assessment.</a>  J. Geophys. Res.
138    </li></ul>
139    
140    <ul><li>
141    R. Tulloch, J. Marshall, C. Hill, and K. Smith, submitted:
142    <a href="http://ocean.mit.edu/~tulloch/Publications/tulloch_etaljpo10.pdf">
143    Scales, growth rates and spectral fluxes of baroclinic instability in
144    the ocean.</a> J. Phys. Oceanogr.
145  </li></ul>  </li></ul>
146    
147  <ul><li>  <ul><li>
# Line 73  variations of ocean bottom pressure. J. Line 151  variations of ocean bottom pressure. J.
151  </li></ul>  </li></ul>
152    
153  <ul><li>  <ul><li>
154    D. Volkov, L. Fu, and T. Lee, 2010:
155    <a href="http://www.springerlink.com/content/l1rrrl8q23751136/">
156    Mechanisms of the meridional heat transport in the Southern Ocean.</a>
157    Ocean Dyn., 60, 791-801.
158    </li></ul>
159    
160    <ul><li>
161    D. Volkov and L. Fu, 2010:
162    <a href="http://journals.ametsoc.org/doi/abs/10.1175/2010JPO4326.1">
163    On the reasons for the formation and variability of the Azores
164    Current.</a> J. Phys. Oceanogr., 40, 2197-2220.
165    </li></ul>
166    
167    <ul><li>
168  P. van der Werf, P. van Leeuwen, H. Ridderinkhof, and W. de Ruijter, 2010:  P. van der Werf, P. van Leeuwen, H. Ridderinkhof, and W. de Ruijter, 2010:
169  <a href="http://www.agu.org/pubs/crossref/2010/2009JC005633.shtml">  <a href="http://www.agu.org/pubs/crossref/2010/2009JC005633.shtml">
170  Comparison between observations and models of the Mozambique Channel  Comparison between observations and models of the Mozambique Channel
# Line 81  J. Geophys. Res., 115, C02002. Line 173  J. Geophys. Res., 115, C02002.
173  </li></ul>  </li></ul>
174    
175  <ul><li>  <ul><li>
176  C. Wunsch, in press: The oceanic variability spectrum and transport  J. Willis, 2010:
177  trends. Atmosphere-Ocean.  <a href="http://www.agu.org/journals/ABS/2010/2010GL042372.shtml">
178    Can in situ floats and satellite altimeters detect
179    long-term changes in Atlantic Ocean overturning?</a>
180    Geophys. Res. Let., 37, L06602.
181    </li></ul>
182    
183    <ul><li>
184    Wunsch, C., 2010:
185    Variability of the Indo-Pacific Ocean exchanges.
186    Dynamics of Atmospheres and Oceans, 50, 157-173, doi:10.1016/j.dynatmoce.2009.12.001.
187    </li></ul>
188    
189    <ul><li>
190    Wunsch, C., 2010:
191    Towards A Mid-Latitude Ocean Frequency-Wavenumber Spectral Density and Trend Determination.
192    J. Phys. Oceanogr., 40, 2264-2281, doi:10.1175/2010JPO4376.1.
193    </li></ul>
194    
195    <ul><li>
196    Wunsch, C., 2010:
197    Observational network design for climate.  Plenary Paper.
198    n: Hall, J., D.E. Harrison, and D. Stammer (Eds.), 2010:
199    Proceedings of OceanObs'09: Sustained Ocean Observations and Information for Society.
200    Venice, Italy, 21-25 September 2009, ESA Publication WPP-306, Vol. 1.
201  </li></ul>  </li></ul>
202    
203  <ul><li>  <ul><li>
204  Zanna, L., P. Heimbach, A. Moore, and E. Tziperman, in press.  Zanna, L., P. Heimbach, A. Moore, and E. Tziperman, 2010:
205  Optimal growth of Atlantic SST anomalies in an idealized ocean GCM.  Optimal growth of Atlantic SST anomalies in an idealized ocean GCM.
206  J. Phys. Oceanogr.  J. Phys. Oceanogr., 40(5), 983-1003, doi:10.1175/2009JPO4196.1.
207  </li></ul>  </li></ul>
208    
209  <ul><li>  <ul><li>
210  Zanna L., P. Heimbach, A.M. Moore and E. Tziperman, submitted. Optimal  Zanna L., P. Heimbach, A.M. Moore and E. Tziperman, 2010: Optimal
211  excitation of interannual Atlantic meridional overturning circulation  excitation of interannual Atlantic meridional overturning circulation
212  variability. J. Climate.  variability. J. Climate, in press, doi:10.1175/2010JCLI3610.1.
213  </li></ul>  </li></ul>

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