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revision 1.14 by dimitri, Thu Aug 7 20:13:42 2014 UTC revision 1.19 by dimitri, Wed Nov 19 06:49:32 2014 UTC
# Line 4  mixing in a circumpolar channel. Ocean M Line 4  mixing in a circumpolar channel. Ocean M
4  </li></ul>  </li></ul>
5    
6  <ul><li>  <ul><li>
7    M. Azaneu, R. Kerr, and M. Mata,
8    2014: <a href="http://ecco2.org/manuscripts/2014/Azaneu2014.pdf">
9    Assessment of the ECCO2 reanalysis on the representation of Antarctic
10    Bottom Water properties.</a> Ocean Sci. Discuss., 11, 1023-1091.
11    </li></ul>
12    
13    <ul><li>
14  H. Brix, D. Menemenlis, C. Hill, S. Dutkiewicz, O. Jahn, D. Wang,  H. Brix, D. Menemenlis, C. Hill, S. Dutkiewicz, O. Jahn, D. Wang,
15  K. Bowman, and H. Zhang, 2014:  K. Bowman, and H. Zhang, 2014:
16  <a href="http://ecco2.org/manuscripts/2014/Brix2014.pdf"> Using  <a href="http://ecco2.org/manuscripts/2014/Brix2014.pdf"> Using
# Line 15  submitted. Line 22  submitted.
22  <ul><li>  <ul><li>
23  M. Buckley, R. Ponte, G. Forget, and P. Heimbach, 2014:  M. Buckley, R. Ponte, G. Forget, and P. Heimbach, 2014:
24  Low-frequency SST and upper-ocean heat content variability in the North  Low-frequency SST and upper-ocean heat content variability in the North
25  Atlantic. J. Clim., in revision.  Atlantic. J. Clim., 27, 4996-5018.
26    </li></ul>
27    
28    <ul><li>
29    M. Buckley, R. Ponte, G. Forget, and P. Heimbach, 2014: Determining the
30    origins of advective heat transport variability in the North Atlantic. J.
31    Clim., in revision.
32  </li></ul>  </li></ul>
33    
34  <ul><li>  <ul><li>
35  A. Chaudhuri, R. Ponte, and A. Nguyen, 2014: A comparison of  A. Chaudhuri, R. Ponte, and A. Nguyen, 2014: A comparison of
36  atmospheric reanalysis products for the Arctic Ocean and implications  atmospheric reanalysis products for the Arctic Ocean and implications
37  for uncertainties in air-sea fluxes, Journal of Climate, in revision.  for uncertainties in air-sea fluxes, J. Clim., 27, 5411-5421.
38    </li></ul>
39    
40    <ul><li>
41    R. Chen, G. Flerl, and C. Wunsch, 2014:
42    <a href="http://ecco2.org/manuscripts/2014/Chen2014.pdf"> A
43    description of local and nonlocal eddy-mean flow interaction in a
44    global eddy-permitting state estimate. </a> J. Phys. Oceanogr., 44,
45    2336-2352.
46  </li></ul>  </li></ul>
47    
48  <ul><li>  <ul><li>
# Line 53  Weddell-Scotia Confluence.</a> J. Geophy Line 74  Weddell-Scotia Confluence.</a> J. Geophy
74  </li></ul>  </li></ul>
75    
76  <ul><li>  <ul><li>
77    D. Halkides, D. Waliser, T. Lee, D. Menemenlis, and B. Guan, 2014:
78    Quantifying the processes controlling intraseasonal mixed-layer
79    temperature variability in the tropical Indian
80    Ocean. J. Geophys. Res., revised.
81    </li></ul>
82    
83    <ul><li>
84    D. Halpern, D. Menemenlis, and X. Wang,
85    2014: <a href="http://ecco2.org/manuscripts/2014/Halpern2014.pdf">
86    Impact of data assimilation on ECCO2 Equatorial Undercurrent and North
87    Equatorial Countercurrent in the Pacific Ocean.</a> J. Atmos. Ocean
88    Tech., in press.
89    </li></ul>
90    
91    <ul><li>
92  A. Kalmikov and P. Heimbach, 2014: A Hessian-based method for Uncertainty  A. Kalmikov and P. Heimbach, 2014: A Hessian-based method for Uncertainty
93  Quantification in Global Ocean State Estimation. SIAM J. Scientific Computing  Quantification in Global Ocean State Estimation. SIAM J. Scientific Computing
94  (Special Section on Planet Earth and Big Data), submitted.  (Special Section on Planet Earth and Big Data), submitted.
# Line 84  Flux Pilot Project. J. Geophys. Res., su Line 120  Flux Pilot Project. J. Geophys. Res., su
120  </li></ul>  </li></ul>
121    
122  <ul><li>  <ul><li>
123    C. Piecuch, I. Fukumori, R. Ponte, and O. Wang, 2014: Vertical
124    structure  of ocean pressure fluctuations with application
125    to satellite-gravimetric observations. J. Atmos. Oce. Tech., in revision.
126    </li></ul>
127    
128    <ul><li>
129  C. Piecuch and R. Ponte, 2014: Mechanisms of global mean steric sea  C. Piecuch and R. Ponte, 2014: Mechanisms of global mean steric sea
130  level change.  J. Clim., in press.  level change.  J. Clim., 27, 824-834.
131    </li></ul>
132    
133    <ul><li>
134    R. Ponte, and C. Piecuch, 2014: Interannual bottom pressure signals
135    in the Australian-Antarctic and Bellingshausen Basins. J. Phys. Oceanogr.,
136    44, 1456-1465.
137    </li></ul>
138    
139    <ul><li>
140    H. Seroussi, M. Morlighem, E. Rignot, J. Mouginot, E. Larour,
141    M. Schodlok, and A. Khazendar,
142    2014: <a href="http://ecco2.org/manuscripts/2014/Seroussi2014.pdf">
143    Sensitivity of the dynamics of Pine Island Glacier, West Antarctica,
144    to climate forcing for the next 50 years.</a> The Cryosphere, 8,
145    1699-1710.
146  </li></ul>  </li></ul>
147    
148  <ul><li>  <ul><li>
# Line 95  sensing data. J. Geophys. Res., submitte Line 152  sensing data. J. Geophys. Res., submitte
152  </li></ul>  </li></ul>
153    
154  <ul><li>  <ul><li>
155    N. Vinogradova,  R. Ponte, I. Fukumori, and O. Wang, 2014:
156    Estimating satellite salinity errors for assimilation of Aquarius and SMOS
157    data into climate models. J. Geophys. Res., 119.
158    </li></ul>
159    
160    <ul><li>
161    N. Vinogradova, R. Ponte, K. Quinn, M. Tamisiea, J. Campin,
162    and J. Davis, 2014: Dynamic adjustment of the ocean circulation to
163    self-attraction and loading effects, J. Phys. Oceanogr., in revision.
164    </li></ul>
165    
166    <ul><li>
167  C. Wortham and C. Wunsch, 2014: A multi-dimensional spectral description of  C. Wortham and C. Wunsch, 2014: A multi-dimensional spectral description of
168  ocean variability, J. Phys. Oceanogr., 44, 944-966.  ocean variability, J. Phys. Oceanogr., 44, 944-966.
169  </li></ul>  </li></ul>

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