贯流式水轮机的先进控制方法

B. Strom, S. Brunton, B. Polagye
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引用次数: 6

摘要

横流涡轮机在水力动能应用方面具有许多潜在优势。介绍了两种改进贯流式水轮机能量转换的新型控制方案,并通过规模实验进行了验证。第一个目的是通过改变叶片运动学作为旋转位置的函数来改变叶片上的局部流动条件,从而增加有益的流体作用力。一种既定的方法是通过振荡叶片的安装角度来实现这一点。相反,我们建议将叶片的角速度作为方位角位置的函数来改变。优化该控制器使涡轮机性能比标准控制器提高了59%。第二控制方案以协调的方式操作两个涡轮机的阵列,以利用周期性尾流结构。对于一系列相对涡轮机位置,主控制器在具有相同角速度的涡轮机之间保持恒定的叶片位置差。对于选定的位置,阵列效率显示为大于单个涡轮机的效率。在最佳位置,协调控制导致阵列性能比不协调操作提高4%。最后,将环内角速度和协调控制方案相结合。
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Advanced control methods for cross-flow turbines
Cross-flow turbines have a number of potential advantages for hydrokinetic energy applications. Two novel control schemes for improving cross-flow turbine energy conversion are introduced and demonstrated through scale experiments. The first aims to alter the local flow conditions on the blades through varying blade kinematics as a function of rotational position, thus increasing beneficial fluid forcing. An established method accomplishes this by oscillating the mounting angle of the blade. Instead we proposed to vary the angular velocity of the blade as a function of azimuthal position. Optimizing this controller resulted in a 59% increase in turbine performance over standard controllers. The second control scheme operates an array of two turbines in a coordinated manner to take advantage of periodic wake structures. For a range of relative turbine positions, a parent controller maintains a constant blade position difference between turbines with the same angular velocity. For select positions, the array efficiency is shown to be greater than that of a single turbine. At the optimal position, coordinated control results in a 4% increase in array performance over uncoordinated operation. Finally, intracycle angular velocity and coordinated control schema are combined.
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来源期刊
International Marine Energy Journal
International Marine Energy Journal Engineering-Ocean Engineering
CiteScore
1.70
自引率
0.00%
发文量
24
审稿时长
12 weeks
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