横流涡轮尾流能量回收的流体动力学机制:水翼形状和涡轮固体度的影响

S. Zanforlin, P. Lupi
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引用次数: 1

摘要

交叉流涡轮机(CFTs)正引起人们越来越多的兴趣来收集离岸风和潮汐。在多设备集群或电场的情况下,CFTs的一个有前途的特性可能是高功率密度,这可以通过缩短阵列之间的距离来实现,因为在尾流内部观察到快速的能量回收。然而,只有少数研究,只涉及对称翼型/水翼,在文献中发现。通过3d-URANS模拟和动量预算方法,我们研究了叶型和涡轮坚固度对叶尖涡产生的影响,以及对支持向流动量重新引入尾迹的混合机制的影响。结果表明:(a)在涡轮顶端和底端尾迹处存在一对反向旋转涡,其旋转方向与叶片型型有关,如外弯型产生正垂直平流,内弯型产生负垂直平流;(b)由于叶尖涡诱导的大量垂直平流,弧度廓形在支持尾流能量回收方面更为有效;(c)对于弧面型,叶顶涡对尾迹恢复的贡献不大,尾迹恢复似乎被湍流输送延迟和促进;(d)更高的固体度意味着更强的叶顶涡和更高的湍流输运,因此尾迹恢复更快。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fluid dynamic mechanisms for the wake energy recovery in cross-flow turbines: effects of hydrofoil shape and turbine solidity
Cross-flow turbines (CFTs) are arousing a growing interest to harvest both off-shore wind and tidal currents. A promising characteristic of CFTs could be a high power-density in case of multi-device clusters or farms, achievable by shortening the distance between arrays as allowed by the fast energy recovery observed inside the wakes. However just few studies, only concerning symmetrical airfoils/hydrofoils, are found in literature. By means of 3d-URANS simulations and the momentum budget approach we investigated the effects of blade profile and turbine solidity on blade tip vortex generation and then on the mixing mechanisms supporting the reintroduction of streamwise momentum into the wake. Results indicate that: (a) a pair of counter-rotating vortices occurs in the wake at the turbine top and bottom ends, which rotation verse depends on blade profile and it is such as to generate positive vertical advection for camber-out profiles, but negative vertical advection for camber-in profiles; (b) camber-out profiles are much more effective in supporting the wake energy recovery due to the massive vertical advection induced by tip vortices; (c) for camber-in profiles the tip vortices poorly contribute to the wake recovery, that appears delayed and promoted by turbulent transport; (d) higher solidity implies stronger tip vortices and higher turbulent transport, therefore a faster wake recovery.
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