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Experimental optimisation of power for large arrays of cross-flow tidal turbines

机译:交流潮汐涡轮机大阵列的实验优化

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摘要

As commercial scale tidal energy devices are shortly to be deployed in the first arrays, the knowledge of how different array layouts perform is a key and under-examined field. Here, the Momentum Reversal Lift (MRL) turbine, developed by the University of Exeter, is deployed in five different array layouts utilising up to 15 devices. The use of dynamic turbines allows the inclusion of analysis of the effects of flow direction in the wake. The layouts investigated explore the effect of lateral and stream-wise turbine spacings as well as differences between staggered and in-line layouts on power. The staggered array with decreased streamwise spacing is shown to have the highest total power per ‘footprint’ area among the layouts tested. For the staggered arrays, increased downstream separation had little effect on total power generated, while decreasing the lateral spacing below 2 rotor diameters decreased the power. The in-line arrays showed a lower power per device but similar total power. It was also shown that increased in-flow into a turbine didn't necessarily lead to an increased power extraction. The decrease in power with a decrease in streamwise spacing is in-line with theoretical and CFD predictions.
机译:随着商业规模的潮汐能量设备不久将部署在第一阵列中,了解不同的数组布局如何执行是一个密钥和被审查的字段。这里,由埃克塞特大学开发的势头逆转升降机(MRL)涡轮机于5种不同的阵列布局,最多可使用15个设备。使用动态涡轮机允许将流动方向的影响分析在尾后。调查的布局探讨了横向和流式涡轮机间距的效果以及电力上交错和在线布局之间的差异。流动的阵列随着流动间距而下降的交错阵列在测试的布局中具有每个“足迹”区域的总功率最高。对于交错的阵列,增加下游分离对产生的总功率影响不大,同时降低2以下转子直径的横向间隔减小。在线阵列显示每个设备的较低功耗,而是相似的总功率。还表明,流入涡轮机的流量增加并不一定导致增加的功率提取。通过流动间距降低的功率降低与理论和CFD预测一致。

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