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Hydrodynamic effects of kinetic power extraction by in-stream tidal turbines.

机译:流内潮汐涡轮机提取动能的水动力效应。

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The hydrodynamic effects of extracting kinetic power from tidal streams presents unique challenges to the development of in-stream tidal power. In-stream tidal turbines superficially resemble wind turbines and extract kinetic power from the ebb and flood of strong tidal currents. Extraction increases the resistance to flow, leading to changes in tidal range, transport, mixing, and the kinetic resource itself. These far-field changes have environmental, social, and economic implications that must be understood to develop the in-stream resource. This dissertation describes the development of a one-dimensional numerical channel model and its application to the study of these effects. The model is applied to determine the roles played by site geometry, network topology, tidal regime, and device dynamics. A comparison is also made between theoretical and modeled predictions for the maximum amount of power which could be extracted from a tidal energy site. The model is extended to a simulation of kinetic power extraction from Puget Sound, Washington. In general, extracting tidal energy will have a number of far-field effects, in proportion to the level of power extraction. At the theoretical limit, these effects can be very significant (e.g., 50% reduction in transport), but are predicted to be immeasurably small for pilot-scale projects. Depending on the specifics of the site, far-field effects may either augment or reduce the existing tidal regime. Changes to the tide, in particular, have significant spatial variability. Since tidal streams are generally subcritical, effects are felt throughout the estuary, not just at the site of extraction.;The one dimensional numerical modeling is supported by a robust theory for predicting the performance characteristics of in-stream devices. The far-field effects of tidal power depend on the total power dissipated by turbines, rather than the power extracted. When the low-speed wake downstream of a turbine mixes with the free-stream, power is lost, such that the total power dissipated by the turbine is significantly greater than the power extracted.;This dissertation concludes with a framework for three-dimensional numerical modeling of near-field extraction effects.
机译:从潮汐流中提取动能的水动力效应对河内潮汐能的发展提出了独特的挑战。流式潮汐涡轮机从表面上类似于风力涡轮机,并从强潮汐的潮起潮落中提取动能。提取会增加流动阻力,导致潮差,运输,混合和动力资源本身发生变化。这些远场变化具有环境,社会和经济影响,开发流内资源必须理解这些影响。本文描述了一维数值通道模型的发展及其在这些效应研究中的应用。该模型用于确定站点几何结构,网络拓扑,潮汐状态和设备动力学所扮演的角色。在理论预测和模型预测之间也进行了比较,以从潮汐能站点提取最大功率。该模型扩展到华盛顿普吉特海湾动能提取的模拟。通常,提取潮汐能将具有与功率提取水平成比例的许多远场效应。在理论上,这些影响可能非常显着(例如,运输量减少了50%),但对于试点规模的项目而言,这些影响预计很小。根据现场的具体情况,远场影响可能会增加或减少现有的潮汐制度。潮汐变化尤其具有明显的空间变异性。由于潮汐流通常处于次临界状态,因此在整个河口(而不只是在提取地点)都可以感受到效果。一维数值建模得到稳健理论的支持,可以预测流内设备的性能特征。潮汐能的远场效应取决于涡轮机消耗的总功率,而不是提取的功率。当涡轮下游的低速尾流与自由流混合时,功率损失,因此涡轮耗散的总功率明显大于所提取的功率。模拟近场提取效果。

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