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Changeset 6322 for branches/2015/nemo_v3_6_STABLE/DOC/TexFiles/Biblio/Biblio.bib – NEMO

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Timestamp:
2016-02-18T08:38:04+01:00 (8 years ago)
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gm
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#1629: DOC of v3.6_stable : update the introduction and Qsr, add new tidal mixing param.

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  • branches/2015/nemo_v3_6_STABLE/DOC/TexFiles/Biblio/Biblio.bib

    r6317 r6322  
    472472} 
    473473 
     474@article{bouffard_Boegman_DAO2013, 
     475   author = {D. Bouffard and L. Boegman}, 
     476   title = {A diapycnal diffusivity model for stratified environmental flows}, 
     477   volume = {61-62}, 
     478   issn = {03770265}, 
     479   url = {http://dx.doi.org/10.1016/j.dynatmoce.2013.02.002}, 
     480   doi = {10.1016/j.dynatmoce.2013.02.002}, 
     481   journal = DAO, 
     482   year = {2013}, 
     483   pages = {14--34}, 
     484} 
     485 
    474486@ARTICLE{Bougeault1989, 
    475487  author = {P. Bougeault and P. Lacarrere}, 
     
    787799  volume = {34}, 
    788800  pages = {8--13} 
     801} 
     802 
     803@article{de_lavergne_JPO2016_efficiency, 
     804   title = {The impact of a variable mixing efficiency on the abyssal overturning}, 
     805   issn = {0022-3670}, 
     806   url = {http://dx.doi.org//10.1175/JPO-D-14-0259.1}, 
     807   doi = {10.1175/JPO-D-14-0259.1}, 
     808   abstract = {In studies of ocean mixing, it is generally assumed that small-scale turbulent overturns lose 15-20 \% of their energy in eroding the background stratification. Accumulating evidence that this energy fraction, or mixing efficiency Rf, significantly varies depending on flow properties challenges this assumption, however. Here, we examine the implications of a varying mixing efficiency for ocean energetics and deep water mass transformation. Combining current parameterizations of internal wave-driven mixing with a recent model expressing Rf as a function of a turbulence intensity parameter Reb = εν/νN2, we show that accounting for reduced mixing efficiencies in regions of weak stratification or energetic turbulence (high Reb) strongly limits the ability of breaking internal waves to supply oceanic potential energy and drive abyssal upwelling. Moving from a fixed Rf = 1/6 to a variable efficiency Rf(Reb) causes Antarctic Bottom Water upwelling induced by locally-dissipating internal tides and lee waves to fall from 9 to 4 Sv, and the corresponding potential energy source to plunge from 97 to 44 GW. When adding the contribution of remotely-dissipating internal tides under idealized distributions of energy dissipation, the total rate of Antarctic Bottom Water upwelling is reduced by about a factor of 2, reaching 5-15 Sv compared to 10-33 Sv for a fixed efficiency. Our results suggest that distributed mixing, overflow-related boundary processes and geothermal heating are more effective in consuming abyssal waters than topographically-enhanced mixing by breaking internal waves. Our calculations also point to the importance of accurately constraining Rf(Reb) and including the effect in ocean models.}, 
     809   journal = {Journal of Physical Oceanography}, 
     810   author = {C. de Lavergne and G. Madec and J. Le Sommer and A. J. G. Nurser and A. C. Naveira Garabato }, 
     811   year = {2016}, 
     812   volume = {46},  pages = {663-–681} 
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     1187   author = {J. A. Goff}, 
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     1189   issn = {2156-2202}, 
     1190   url = {http://dx.doi.org/10.1029/2010JB007867}, 
     1191   doi = {10.1029/2010JB007867}, 
     1192   abstract = {Abyssal hills, which are pervasive landforms on the seafloor of the Earth's oceans, represent a potential tectonic record of the history of mid-ocean ridge spreading. However, the most detailed global maps of the seafloor, derived from the satellite altimetry-based gravity field, cannot be used to deterministically characterize such small-scale ({\textless}10 km) morphology. Nevertheless, the small-scale variability of the gravity field can be related to the statistical properties of abyssal hill morphology using the upward continuation formulation. In this paper, I construct a global prediction of abyssal hill root-mean-square (rms) heights from the small-scale variability of the altimetric gravity field. The abyssal hill-related component of the gravity field is derived by first masking distinct features, such as seamounts, mid-ocean ridges, and continental margins, and then applying a newly designed adaptive directional filter algorithm to remove fracture zone/discontinuity fabric. A noise field is derived empirically by correlating the rms variability of the small-scale gravity field to the altimetric noise field in regions of very low relief, and the noise variance is subtracted from the small-scale gravity variance. Suites of synthetically derived, abyssal hill formed gravity fields are generated as a function of water depth, basement rms heights, and sediment thickness and used to predict abyssal hill seafloor rms heights from corrected small-scale gravity rms height. The resulting global prediction of abyssal hill rms heights is validated qualitatively by comparing against expected variations in abyssal hill morphology and quantitatively by comparing against actual measurements of rms heights. Although there is scatter, the prediction appears unbiased.}, 
     1193   volume = {115}, 
     1194   number = {B12}, 
     1195   journal = {Journal of Geophysical Research: Solid Earth}, 
     1196   year = {2010}, 
     1197   pages = {B12104}, 
     1198} 
     1199 
    11621200@ARTICLE{Goosse_al_JGR99, 
    11631201  author = {H. Goosse and E. Deleersnijder and T. Fichefet and M. England}, 
     
    12641302 
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    1266   author = {S.M. Griffies and R. Hallberg}, 
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    15851624  volume = {12}, 
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     1627 
     1628@article{Jackson_Rehmann_JPO2014, 
     1629   author = {P. R. Jackson and C. R. Rehmann}, 
     1630   title = {Experiments on differential scalar mixing in turbulence in a sheared, stratified flow}, 
     1631   journal = JPO, 
     1632   volume = {44}, 
     1633   issn = {0022-3670}, 
     1634   url = {http://dx.doi.org/10.1175/JPO-D-14-0027.1}, 
     1635   doi = {10.1175/JPO-D-14-0027.1}, 
     1636   number = {10}, 
     1637   year = {2014}, 
     1638   pages = {2661--2680}, 
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     2484@ARTICLE{Morel_Berthon_LO89, 
     2485  author = {A. Morel and J.-F. Berthon}, 
     2486  title = {Surface pigments, algal biomass profiles, and potential production of the euphotic layer:  
     2487           Relationships reinvestigated in view of remote-sensing applications}, 
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    24302495  author = {A. Morel and S. Maritorena}, 
     
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     2778 
     2779@ARTICLE{Rousset_GMD2015, 
     2780  author = {C. Rousset and M. Vancoppenolle and G. Madec and T. Fichefet and S. Flavoni  
     2781            and A. Barth\'{e}lemy and R. Benshila and J. Chanut and C. L\'{e}vy and S. Masson and F. Vivier }, 
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     2783  journal= {Geoscientific Model Development}, 
     2784  year = {2015}, 
     2785  volume = {8}, pages={2991--3005}, 
     2786  doi = {10.5194/gmd-8-2991-2015}, 
     2787  url = {http://dx.doi.org/10.5194/gmd-8-2991-2015} 
    27112788} 
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