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Characterization of hydrofoil damping due to fluid-structure interaction using piezocomposite actuators

机译:使用压电复合驱动器表征由于流体-结构相互作用而产生的水翼阻尼

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摘要

Hydroelectric power generation is an important non-fossil fuel power source to help meet the worlds energy needs. Fluidstructure interaction (FSI), in the form of mass loading and damping, governs the dynamic response of water turbines, such as Francis turbines. Although the effects of fluid mass loading are well documented, fluid damping is also a critical quantity that may limit vibration amplitudes during service, and therefore help to avoid premature failure of the turbines. However, fluid damping has received less attention in the literature. This paper presents an experimental investigation of damping due to FSI. Three hydrofoils were designed and built to investigate damping due to FSI. Piezoelectric actuation using macrofiber composites (MFCs) provided excitation to the hydrofoil test structure, independent of the flow conditions, to overcome the noisy environment. Natural frequency and damping estimates were experimentally obtained from sine sweep frequency response functions measured with a laser vibrometer through a window in the test section. The results indicate that, although the natural frequencies were not substantially affected by the flow, the damping ratios were observed to increase in a linear manner with respect to flow velocity.
机译:水力发电是一种重要的非化石燃料动力源,可帮助满足世界能源需求。质量载荷和阻尼形式的流固耦合(FSI)控制着水轮机(例如弗朗西斯水轮机)的动力响应。尽管充分记录了流体质量负荷的影响,但流体阻尼也是一个关键指标,可能会限制维修期间的振动幅度,因此有助于避免涡轮机过早损坏。但是,流体阻尼在文献中很少受到关注。本文介绍了FSI引起的阻尼的实验研究。设计并制造了三个水翼来研究FSI引起的阻尼。使用大纤维复合材料(MFCs)的压电驱动为水翼测试结构提供了激励,而不受流动条件的影响,从而克服了嘈杂的环境。通过使用激光振动计通过测试部分中的窗口从正弦扫描频率响应函数实验获得固有频率和阻尼估计。结果表明,尽管固有频率基本上不受流动的影响,但是观察到阻尼比相对于流速呈线性增加。

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