变形的叶片

I. M. Viola, G. Pisetta, W. Dai, A. Arredondo-Galeana, A. Young, A. Smyth
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引用次数: 2

摘要

由于环境的不稳定和潮流中的剪切作用,潮汐水轮机的负荷波动较大。在不影响平均负荷的情况下减轻这些波动将降低资本和运营成本。在本文中,我们讨论了如何通过叶片被动地和弹性地调整其弧度和攻角来抵消非定常流条件来实现这一目标。首先,我们讨论了非定常推力减缓的基本原理。我们表明,完全消除推力波动是可能的,如果每个叶片部分可以被动地俯仰和独立于邻近的部分。其次,我们通过物理实验和计算流体力学模拟为两个实际实现提供了原理证明。我们认为叶片在前缘附近是刚性的,在后缘附近是柔性的。我们表明,非定常载荷缓解与叶片柔性部分和刚性部分的长度之比成正比。例如,对于柔性集中在弦的3/4处的铰链处的叶片截面,其波动幅度为原始振幅的3/4。其次,我们考虑一个固体,刚性叶片与被动俯仰机构。我们表明,对于在剪切流中运行的1mw涡轮机,超过80%的非定常负荷得到缓解。这些结果证明了变形叶片在减轻潮汐涡轮机推力波动方面的潜在有效性。
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Morphing Blades
Tidal turbines experience large load fluctuations due to the unsteady environment and the shear in the tidal flow. Mitigating these fluctuations without affecting the mean load would result in lower capital and operational costs. In this paper we discuss how this could be achieved through blades that passively and elastically adapt their camber and angle of attack to counteract unsteady flow conditions. Firstly, we discuss the underlying principles of unsteady thrust mitigation. We show that complete cancellation of the thrust fluctuations would be possible if every blade section could pitch passively and independently of neighbouring sections. Secondly, we provide proof of principle for two practical implementations through physical experiments and computational fluid dynamics simulations. We consider a blade that is rigid near the leading edge and flexible near the trailing edge. We show that the unsteady load mitigation is proportional to the ratio between the length of the flexible and rigid parts of the blade. For example, for a blade section where the flexibility is concentrated in a hinge at 3/4 of the chord, the amplitude of the fluctuations is 3/4 of the original amplitude. Secondly, we consider a solid, rigid blade with a passive pitch mechanism. We show that, for a 1 MW turbine operating in shear flow, more than 80% of the unsteady loading is mitigated. These results demonstrate the potential effectiveness of morphing blades for mitigating thrust fluctuations on tidal turbines.
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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
期刊最新文献
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