The influence of diurnal winds on phytoplankton dynamics in a coastal upwelling system off southwestern Africa

被引:36
作者
Lucas, Andrew J. [1 ]
Pitcher, Grant C. [2 ,3 ]
Probyn, Trevor A. [2 ]
Kudela, Raphael M. [4 ]
机构
[1] Univ Calif San Diego, Scripps Inst Oceanog, La Jolla, CA 92093 USA
[2] Dept Agr Forestry & Fisheries, ZA-8012 Cape Town, South Africa
[3] Univ Cape Town, Marine Res Inst, ZA-7700 Cape Town, South Africa
[4] Univ Calif Santa Cruz, Ocean Sci Dept, Santa Cruz, CA 95064 USA
关键词
Inertial currents; Diurnal-inertial resonance; Critical latitude; Coastal upwelling; Shear-driven mixing; Harmful algal blooms; CALIFORNIA CURRENT SYSTEM; SOUTHERN NAMAQUA SHELF; PSEUDO-NITZSCHIA SPP; THIN-LAYERS; SEA-BREEZE; SUBMESOSCALE TRANSITION; ALEXANDRIUM-CATENELLA; DINOPHYSIS-ACUMINATA; FORCED-OSCILLATIONS; CRITICAL LATITUDE;
D O I
10.1016/j.dsr2.2013.01.016
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
At a coastal upwelling zone near 30 degrees S latitude, diurnal wind variability forced energetic inertial current oscillations (>0.5 m s(-1)) that materially influenced phytoplankton distribution and productivity. The diurnal-inertial band resonance found at this latitude in the Benguela upwelling system allowed rapid, efficient transfer of energy from counterclockwise rotating winds into anticyclonic currents upon the onset of the transition from relaxation to upwelling conditions. These inertial band oscillations caused regular pycnocline outcropping at the surface and the vertical advection of nutrient-rich waters in the coastal zone. Vertical pycnocline outcropping was coincident with the vertical redistribution of chlorophyll a fluorescence from a subsurface maximum to entrainment into the surface mixed layer, in effect turning vertical phytoplankton gradients into horizontal ones. The shear caused by the vertical structure of the inertial oscillations during (and after) the onset of wind forcing was intense enough to erode the strong stratification established during a prior relaxation period, according to Richardson number and strain analyses. This diapycnal mixing also had the consequence of mixing heat and chlorophyll downwards and nutrient-rich water upwards, such that the surface nitrate concentration became non-zero. Chlorophyll concentrations thereafter increased in what qualitatively appeared to be a phytoplankton bloom. This diurnal-inertial resonance-driven mechanism for mixing-driven nutrient flux, embedded within the low-frequency advective vertical flux forced by Ekman dynamics, enhanced the efficiency of wind forcing to produce high phytoplankton productivity, and is likely to be of first-order importance in bloom dynamics in the study area (including harmful algal blooms). Our results argue that, in general, high-frequency physical dynamics should be considered when studying the bottom-up forcing of algal blooms and red tide events. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:50 / 62
页数:13
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