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3D Flow and Sediment Transport Modelling at the Reversing Falls - Saint John Harbour, New Brunswick

机译:3d流动和沉积物运输在倒车瀑布 - 圣约翰港,新的不伦瑞克

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Hydrodynamic and sediment transport modelling of the Reversing Falls channel was conducted as part of a feasibility study for a small craft fishing harbour in Saint John Harbour, New Brunswick, on the Bay of Fundy. The Reversing Falls represent a unique site of interest. A shallow rock ridge and narrow gorge act as a hydraulic control point for the reversing flow regime. The Falls regulate the Bay of Fundy's tidal inflows into the Saint John River estuary at high tide, and the large river outflows into the Harbour at low tide when the water level gradient is greater than 4m over only 3km. The flows do not reverse during the spring freshet when river levels are above high tide. The channel downstream of the Falls and upstream of the Harbour constitutes a dynamic interface between the tidal and river regimes. Existing field data in the most dynamic reach of the channel are sparse, due to the difficulties and costs in surveying the area. Hydrographic and spot current measurements were made at the site to complement existing water level, salinity and current datasets. The Danish Hydraulic Institute's MIKE3 hydrodynamic model was calibrated to field data and compared with results from past studies. Based on the limited current and discharge measurements available for the Reversing Falls channel, the accuracy of the modelled flows in this extremely dynamic area is estimated at about 20% This error range could be improved in the future if long-term field measurements are collected as part of further design studies. At the studied wharf site, during ebb and low tide, the strong down-channel flow sheds a large-scale 400m-long back eddy along the cove? The model helped identify source mechanisms of the eddy as a combination of strong flows hitting a rock outcrop and locally causing water level gradients large enough to force a back flow. The ample sediment supply from the tides and river, combined with the constant renewal of water in the harbour, cause sedimentation over dredged areas. Local sediment transport processes were investigated using the numerical model based on measured suspended sediment concentrations and dredging records for the Port of Saint John. Despite the uncertainties associated with sediment modelling in such a dynamic area, the model evidenced the significant role of the bottom density current in sedimentation processes in dredged areas of the City Harbour. The model also helped understand why observed sedimentation rates in the Harbour are uncorrelated with the duration or intensity of the spring freshet.
机译:逆转瀑布渠道的流体动力学和沉积物传输建模是作为Saint John Harbour,New Brunswick,湾湾的小型工艺捕鱼港的可行性研究的一部分。逆转瀑布代表了一个独特的兴趣网站。浅岩脊和狭窄的峡谷充当逆转流动制度的液压控制点。瀑布在高潮中调整了Fundy的潮流入的潮流,在高潮中进入圣约翰河河口,当水位梯度大于4米的水位梯度大于4米时,大河在潮汐进入港口。当河流水平高于潮流时,流量在春季快报中不会逆转。瀑布下游和港口上游的频道构成了潮汐和河流制度之间的动态界面。由于调查该地区的困难和成本,通道最动态的现有现场数据是稀疏的。在现场进行水文和点电流测量以补充现有的水位,盐度和电流数据集。丹麦液压研究所的Mike3流体动力学模型被校准到现场数据,并与过去的研究结果相比。基于可用于逆转落盘通道的有限电流和放电测量,在该极具动态区域中建模流的精度估计在该误差范围内的约20%,如果收集了长期场测量,则可以在未来改进。进一步设计研究的一部分。在研究的码头站点,在潮起潮中,在潮汐下,强大的沿渠道流动沿着海湾的大规模400米长的背涡流缩小了?该模型帮助识别涡流的源机制,作为击中岩石露头的强流量的组合,以及局部地引起足够大的水位梯度以强制回流。来自潮汐和河流的充足的沉积物供应,结合港口的恒定更新,导致疏浚地区的沉降。使用基于测量的沉积沉积物浓度和圣约翰港的疏浚记录来研究局部沉积物传输过程。尽管在这种动态区域中具有与沉积物建模相关的不确定性,但该模型证明了底部密度电流在城市港口疏浚地区沉淀过程中的底部密度电流的显着作用。该模型还有助于了解为什么港口中观察到的沉降速率都是不相关的,随着春季自文的持续时间或强度。

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  • 来源
    《OCEANS》|2007年||共16页
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  • 作者

    Vincent Leys;

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  • 会议组织
  • 原文格式 PDF
  • 正文语种
  • 中图分类 P75-53;
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