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A numerical model of wave- and current-driven nutrient uptake by coral reef communities

机译:波浪和电流驱动的珊瑚礁群落吸收养分的数值模型

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We developed a numerical model capable of simulating the spatial zonation of nutrient uptake in coral reef systems driven by hydrodynamic forcing (both from waves and currents). Relationships between nutrient uptake and bed stress derived from flume and field studies were added to a four-component biogeochemical model embedded within a three-dimensional (3-D) hydrodynamic ocean model coupled to a numerical wave model. The performance of the resulting coupled physical-biogeochemical model was first evaluated in an idealized one-dimensional (1-D) channel for both a pure current and a combined wave-current flow. Waves in the channel were represented by an oscillatory flow with constant amplitude and frequency. The simulated nutrient concentrations were in good agreement with the analytical solution for nutrient depletion along a uniform channel, as well as with existing observations of phosphate uptake across a real reef flat. We then applied this integrated model to investigate more complex two-dimensional (2-D) nutrient dynamics, firstly to an idealized coral reef-lagoon morphology, and secondly to a realistic section of Ningaloo Reef in Western Australia, where nutrients were advected into the domain via alongshore coastal currents. Both the idealized reef and Ningaloo Reef simulations showed similar patterns of maximum uptake rates on the shallow forereef and reef crest, and with nutrient concentration decreasing as water flowed over the reef flat. As a result of the cumulative outflow of nutrient-depleted water exiting the reef channels and then being advected down the coast by alongshore currents, both reef simulations exhibited substantial alongshore variation in nutrient concentrations. The coupled models successfully reproduced the observed spatial-variability in nitrate concentration across the Ningaloo Reef system.
机译:我们开发了一个数值模型,能够模拟由水动力强迫(来自波浪和洋流)驱动的珊瑚礁系统中养分吸收的空间分区。从水槽和田间研究得出的养分吸收与床层应力之间的关系被添加到嵌入在与数值波模型耦合的三维(3-D)水动力海洋模型中的四组分生物地球化学模型中。首先在理想化的一维(1-D)通道中针对纯电流和波流组合流量评估了生成的耦合物理-生物地球化学模型的性能。通道中的波由振幅和频率恒定的振荡流表示。模拟的养分浓度与沿均匀通道的养分耗竭分析溶液高度吻合,并且与整个礁石中磷酸盐吸收的现有观测值非常吻合。然后,我们使用此集成模型来研究更复杂的二维(2-D)养分动态,首先是理想化的珊瑚礁泻湖形态,其次是在西澳大利亚州Ningaloo Reef的现实部分,那里的养分被平流。通过沿海沿海流域。理想化的礁石和Ningaloo礁石模拟都显示出在浅层前礁和礁顶上最大吸收率的相似模式,并且随着水流过礁滩,养分浓度降低。由于营养物质耗尽的水从礁石通道中累积流出,然后被沿海水流顺流而下,这两个礁石模拟都显示出沿海地区养分浓度的显着变化。耦合模型成功地再现了整个Ningaloo Reef系统中观察到的硝酸盐浓度的空间变异性。

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