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Sea level rise and tidal power plants in the Gulf of Maine

机译:缅因湾海平面上升和潮汐发电厂

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摘要

The response of the Bay of Fundy and Gulf of Maine to large-scale tidal power plants and future sea-level rise is investigated using an established numerical tidal model. Free stream tidal turbines were simulated within the Bay of Fundy by implementing an additional bed friction term, Kt. The present-day maximum tidal power output was determined to be 7.1 GW, and required Kt�=�0.03. Extraction at this level would lead to large changes in the tidal amplitudes across the Gulf of Maine. With future SLR implemented, the energy available for extraction increases with 0.5�1 GW per m SLR. SLR simulations without tidal power extraction revealed that the response of the semidiurnal tides to SLR is highly dependent on how changes in sea level are implemented in the model. When extensive flood defenses are assumed at the present-day coast line, the response to SLR is far larger than when land is allowed to (permanently) flood. For example, within the Bay of Fundy itself, the M2 amplitude increases with nearly 0.12 m per m SLR without flooding, but it changes with only 0.03 m per m SLR with flooding. We suggest that this is due to the flooding of land cells changing the resonant properties of the basin.
机译:芬迪湾和缅因州湾对大型潮汐电厂的反应以及未来海平面上升的趋势已使用已建立的数值潮汐模型进行了研究。通过实施额外的床摩擦项Kt,在芬迪湾内模拟了顺流式潮汐涡轮机。当前最大潮汐能输出确定为7.1 GW,并要求Kt = 0.03。以这种水平的抽风将导致整个缅因湾的潮汐振幅发生较大变化。随着未来的单反相机的实施,每米单反相机可提取的能量将增加0.5×1 GW。没有潮汐能提取的SLR模拟表明,半日潮对SLR的响应高度依赖于模型中如何实现海平面变化。在当今的海岸线上采取广泛的防洪措施时,对SLR的反应远远大于允许(永久)洪水的土地。例如,在芬迪湾本身内,M2振幅在不泛洪的情况下以每m SLR近0.12 m的速度增加,但在发生泛洪时仅以每m SLR 0.03 m的速度变化。我们认为这是由于陆地细胞的泛滥改变了盆地的共振特性。

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