...
首页> 外文期刊>Bioinspiration & biomimetics >A bio-inspired study on tidal energy extraction with flexible flapping wings
【24h】

A bio-inspired study on tidal energy extraction with flexible flapping wings

机译:柔性拍打翼提取潮汐能的生物启发研究

获取原文
获取原文并翻译 | 示例

摘要

Previous research on the flexible structure of flapping wings has shown an improved propulsion performance in comparison to rigid wings. However, not much is known about this function in terms of power efficiency modification for flapping wing energy devices. In order to study the role of the flexible wing deformation in the hydrodynamics of flapping wing energy devices, we computationally model the two-dimensional flexible single and twin flapping wings in operation under the energy extraction conditions with a large Reynolds number of 10~6. The flexible motion for the present study is predetermined based on a priori structural result which is different from a passive flexibility solution. Four different models are investigated with additional potential local distortions near the leading and trailing edges. Our simulation results show that the flexible structure of a wing is beneficial to enhance power efficiency by increasing the peaks of lift force over a flapping cycle, and tuning the phase shift between force and velocity to a favourable trend. Moreover, the impact of wing flexibility on efficiency is more profound at a low nominal effective angle of attack (AoA). At a typical flapping frequency f * = 0.15 and nominal effective AoA of 10°, a flexible integrated wing generates 7.68% higher efficiency than a rigid wing. An even higher increase, around six times that of a rigid wing, is achievable if the nominal effective AoA is reduced to zero degrees at feathering condition. This is very attractive for a semi-actuated flapping energy system, where energy input is needed to activate the pitching motion. The results from our dual-wing study found that a parallel twin-wing device can produce more power compared to a single wing due to the strong flow interaction between the two wings.
机译:先前对襟翼机翼柔性结构的研究表明,与刚性机翼相比,推进性能有所提高。但是,关于该功能对于襟翼能量装置的功率效率修改知之甚少。为了研究挠性翼变形在襟翼能量装置的流体力学中的作用,我们以能量雷射数为10〜6的大能量提取条件,对二维挠性单翼和双翼襟翼在运行中进行了建模。本研究的柔性运动是根据与被动柔性解决方案不同的先验结构结果预先确定的。研究了四个不同的模型,这些模型在前缘和后缘附近都有潜在的局部失真。我们的仿真结果表明,机翼的柔性结构通过增加襟翼周期上的升力峰值,并将力和速度之间的相移调整到有利的趋势,有利于提高动力效率。此外,机翼柔韧性对效率的影响在标称有效攻角(AoA)低的情况下更为明显。在典型的襟翼频率f * = 0.15和标称有效AoA为10°的情况下,柔性集成机翼的效率比刚性机翼高7.68%。如果在羽化条件下将标称有效AoA降低至零度,则可以实现更高的提升,约为刚性机翼的六倍。这对于半致动拍打能量系统非常有吸引力,在该系统中,需要能量输入来启动俯仰运动。我们的双翼研究结果表明,平行双翼装置比单翼更能产生动力,这是因为两翼之间的强力相互作用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号