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Performance analysis of galloping-based piezoaeroelastic energy harvesters with different cross-section geometries

机译:疾驰的不同截面几何形状的压电气动弹性能量采集器的性能分析

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The concept of harvesting energy from galloping oscillations of a bluff body with different cross-section geometries attached to a cantilever beam is investigated. To convert these oscillations into electrical power, a piezoelectric transducer is attached to the transverse degree of freedom of the prismatic structure. Modal analysis is performed to determine the exact mode shapes of the structure. A coupled nonlinear distributed-parameter model is developed to determine the effects of the cross-section geometry, load resistance, and wind speed on the level of the harvester power. The quasi-steady approximation is used to model the aerodynamic loads. Linear analysis is performed to investigate the effects of the electrical load resistance and the cross-section geometry on the onset speed of galloping. The results show that the electrical load resistance and the cross-section geometry affect significantly the onset speed of galloping. Nonlinear analysis is performed to determine the effects of the electrical load resistance, cross-section geometry, and wind speed on the system's outputs and particularly the level of the harvested power. A comparison of the performance of the different cross sections in terms of displacement and harvested power is presented. The results show that different sections are better for harvesting energy over different regions of the flow speed. The results also show that maximum levels of harvested power are accompanied with minimum transverse displacement amplitudes for all considered (square, D, and triangular) cross-section geometries.
机译:研究了从具有不同横截面几何形状的悬臂梁的舞动振荡中获取能量的概念,该悬臂梁悬臂梁具有不同的截面几何形状。为了将这些振荡转换为电能,将压电换能器安装在棱柱结构的横向自由度上。执行模态分析以确定结构的确切模态形状。建立了耦合的非线性分布参数模型,以确定横截面几何形状,负载阻力和风速对收割机功率水平的影响。拟稳态近似用于对空气动力载荷进行建模。进行线性分析以研究电负载电阻和横截面几何形状对舞动开始速度的影响。结果表明,电气负载电阻和横截面几何形状显着影响驰gall的开始速度。进行非线性分析,以确定电气负载电阻,横截面几何形状和风速对系统输出,尤其是所采集功率水平的影响。比较了不同横截面在位移和收集功率方面的性能。结果表明,不同的截面更适合于在流速的不同区域上收集能量。结果还表明,对于所有考虑的(正方形,D和三角形)横截面几何形状,最大的采集功率水平都具有最小的横向位移幅度。

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