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Tidal Hydrodynamics and their Implications for the Dispersion of Effluents in Mazatlan Harbor: An Urbanized Shallow Coastal Lagoon

机译:马萨特兰港口潮汐水动力及其对污水扩散的影响:城市化浅滩沿海泻湖

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摘要

In order to investigate the Urias Coastal Lagoon (UCL) hydrodynamics, a vertically integrated semi-implicit, non-linear, finite difference model, has been applied. The flow dynamics in this model has been described by the depth integrated shallow water equations and has been forced by prescribed free surface elevations at the open boundary in the inlet of the lagoon. The predicted instantaneous tidal elevation and the vector field of tidal velocities, reflect reasonably well the flood and ebb conditions in the coastal lagoon. Maximum tidal velocities of 0.6 m/s at the navigation channel of the lagoon and tidal ranges of 1.2 m were predicted for spring tides. Residual current of 0.01-0.06 m/s have also been predicted. The advection-diffusion process of a hypothetical pollutant released at two discrete points in the UCL depended on the intensity of water circulation; sites with slow instantaneous tidal velocities and residual currents of small magnitude presented slow advection and diffusion of the pollutant and may be considered vulnerable to the contamination, specifically the head of the lagoon where the pollutant was difficult to be removed by the tidal currents. The main channel, where the tidal currents exceed 0.6 m/s and the residual currents reached 0.06 m/s, behaved as a natural conduct for the pollutant motion. The forces involved in water circulation within the channel would be the best driving mechanism to flush contaminants from the UCL into the Ocean.
机译:为了研究乌里亚斯海岸泻湖(UCL)的流体动力学,已应用了垂直积分的半隐式,非线性,有限差分模型。该模型中的流动动力学已通过深度浅水方程进行了描述,并已在泻湖入口的开放边界处由规定的自由表面高度所强迫。预测的瞬时潮汐高程和潮汐速度矢量场,可以很好地反映出沿海泻湖的洪水和潮退情况。预计春季潮汐在泻湖航道的最大潮汐速度为0.6 m / s,潮汐范围为1.2 m。还可以预测出残留电流为0.01-0.06 m / s。在UCL的两个离散点释放的假想污染物的对流扩散过程取决于水循环强度。瞬时潮汐速度缓慢且残留电流较小的地点,污染物的对流和扩散速度较慢,可能被认为容易受到污染,特别是泻湖顶部,污染物很难被潮流清除。潮汐流超过0.6 m / s,剩余流达到0.06 m / s的主通道,是污染物运动的自然行为。通道内水循环所涉及的力量将是将污染物从UCL冲入海洋的最佳驱动机制。

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