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Energy harvesting from flow-induced vibration of a low-mass square cylinder with different incidence angles

机译:从流动诱导的低质量方圆柱振动具有不同入射角的能量收集

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This numerical study investigates the flow-induced vibration responses and energy harvesting characteristics of a low-mass square oscillator. We first test three typical incidence angles of α = 0°, 22.5°, and 45° with reduced velocities U r ranging from 3.8 to 26. The most interesting phenomenon is that large-amplitude vibrations can be generated at high reduced velocities, regardless of the angle α . We show that this is because of the following mechanisms: (i) For α = 0°, galloping occurs, resulting in high-amplitude and low-frequency vibrations; (ii) for α = 45°, the cylinder undergoes vortex-induced vibrations (VIVs) without the high-amplitude galloping instability. The unsteady vortex shedding effects are enhanced by a very low mass ratio, leading to “VIV forever” in the tested range of U r with high-level amplitudes; and (iii) for α = 22.5°, the oscillations in the high- U r range include both VIV and galloping components. Thus, the large amplitude is caused by the galloping instability and enhanced vortex-shedding effects. Due to the existence of large-amplitude vibrations, the low-mass square cylinder demonstrates the potential and necessary robustness for energy harvesting applications. Overall, α = 45° is the most suitable arrangement for the conversion of power. To further improve the efficiency, we test a 45° cylinder under damping ratios ζ ranging from 0.01 to 0.7. The results indicate that the energy harvesting characteristics are sensitive to the damping ratio when ζ 0.3. Of all the tested cases, ζ = 0.7 provides the highest average efficiency.
机译:该数值研究研究了低质量方形振荡器的流量诱导的振动响应和能量采集特性。我们首先测试三个典型的α= 0°的典型发射角度,22.5°,45°,从3.8到26的速度降低。最有趣的现象是可以在高速度下产生大幅度振动,无论如何角度α。我们表明这是因为以下机制:(i)对于α= 0°,发生疾驰,导致高幅度和低频振动; (ii)对于α= 45°,气缸经历涡旋诱导的振动(VIV),而不高幅度良好的不稳定性。不稳定的涡流脱落效果通过非常低的质量比增强,导致U r的测试范围内的“VIV永远”; (iii)对于α= 22.5°,高u r频率的振荡包括VIV和疾驰组件。因此,大幅度是由良好的不稳定性和增强的涡流效果引起的。由于存在大幅度振动,低质量方形气缸表明了能量收集应用的潜在和必要的稳健性。总体而言,α= 45°是最适合转换功率的布置。为了进一步提高效率,我们在阻尼比率下测试45°圆柱体ζ范围为0.01至0.7。结果表明,当ζ+时,能量收集特性对阻尼比对阻尼比敏感。 0.3。在所有测试的情况下,ζ= 0.7提供最高的平均效率。

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