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Aeroelastic characteristics of linear and nonlinear piezo-aeroelastic energy harvester

机译:线性和非线性压电-气动弹性能量采集器的气动弹性特性

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In the present study, a piezo-aeroelastic energy harvester using nonlinear aeroelastic behaviors is proposed, and their characteristics and performance are investigated. The energy harvester is modeled by a two-dimensional typical section airfoil. The nondimensional parameters of the harvester are introduced, and the nondimensional piezo-aeroelastic equations are formulated. For the piezo-aeroelastic analysis, the root-locus method and time-integration method are used, and the present method is verified with experimental and analytical results. The iterative method is introduced to calculate the frequency response functions of a nonlinear piezo-aeroelastic energy harvester. The aeroelastic characteristics of a linear piezo-aeroelastic energy harvester and the effects of parameters are investigated. The results show that the linear piezo-aeroelastic energy harvester can be used to generate electricity only at the vicinity of flutter speed. It is assumed that the nonlinear piezo-aeroelastic energy harvester has free play and cubic hardening in pitch. For free play, nonlinear aeroelastic results show that stable limit cycle oscillations are observed in the wide range of air speed below flutter speed when the frequency ratio is 1.3, and unstable limit cycle oscillations are observed at air speeds over flutter speed when the frequency ratio is 0.3. For cubic hardening, unstable limit cycle oscillations are observed at air speeds below flutter speed when the frequency ratio is 0.3, and stable limit cycle oscillations are observed at air speeds over flutter speed when the frequency ratio is 1.3. Finally, the authors discussed how to use these aeroelastic responses for piezo-aeroelastic energy harvesting.
机译:在本研究中,提出了一种利用非线性气动弹性行为的压电气动弹性能量采集器,并研究了它们的特性和性能。能量收集器由二维典型截面翼型建模。介绍了收割机的无量纲参数,并建立了无量纲的压电-气动弹性方程。对于压电-气动弹性分析,使用根轨迹法和时间积分法,并通过实验和分析结果验证了该方法的有效性。引入了迭代方法来计算非线性压电-气动弹性能量采集器的频率响应函数。研究了线性压电-气动弹性能量采集器的气动弹性特性以及参数的影响。结果表明,线性压电-气动弹性能量采集器仅可在振颤速度附近用于发电。假定非线性压电-气动弹性能量采集器具有自由游隙和立方硬化的螺距。对于自由运动,非线性气动弹性结果表明,当频率比为1.3时,在低于振颤速度的大风速范围内观察到稳定的极限循环振荡,而当频率比为1.3时,在超过振颤速度的风速下观察到不稳定的极限循环振荡。 0.3。对于三次硬化,当频率比为0.3时,在风速低于振颤速度时观察到不稳定的极限循环振荡,而当频率比为1.3时,在风速超过振颤速度时观察到稳定的极限循环振荡。最后,作者讨论了如何使用这些气弹响应进行压电-气弹能量收集。

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