One-dimensional numerical simulation of primary production: Lagrangian and Eulerian formulations
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[1] A. Gargett. A “large‐eddy” approach to acoustic remote sensing of turbulent kinetic energy dissipation rate ϵ , 1988 .
[2] J. D. Woods,et al. Lagrangian Simulation of Primary Production in the Physical Environment — The Deep Chlorophyll Maximum and Nutricline , 1988 .
[3] P. Richerson,et al. PHOTOINHIBITION: ALGAL RESPONSES TO BRIGHT LIGHT DURING DIEL STRATIFICATION AND MIXING IN A TROPICAL ALPINE LAKE 1 , 1984 .
[4] T. Platt,et al. Relationships between vertical mixing and photoadaptation of phytoplankton: similarity criteria , 1984 .
[5] P. Falkowski,et al. Kinetics of adaptation to irradiance in Dunaliella tertiolecta , 1984 .
[6] P. Falkowski. Light-shade adaptation and vertical mixing of marine phytoplankton : a comparative field study , 1983 .
[7] H. Seliger,et al. Light-shade adaptation by the oceanic dinoflagellates Pyrocystis noctiluca and P. fusiformis , 1982 .
[8] R. Onken,et al. Diurnal variation and primary production in the ocean preliminary results of a Lagrangian ensemble model , 1982 .
[9] P. Falkowski,et al. A simulation model of the effects of vertical mixing on primary productivity , 1981 .
[10] J. Marra. Vertical Mixing and Primary Production , 1980 .
[11] P. Falkowski. Light-Shade Adaptation in Marine Phytoplankton , 1980 .
[12] A. Gargett,et al. Surface Mixing Layers in the Sargasso Sea , 1979 .
[13] Geoffrey Ingram Taylor,et al. Statistical theory of turbulenc , 1935, Proceedings of the Royal Society of London. Series A - Mathematical and Physical Sciences.