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首页> 外文期刊>Journal of intelligent material systems and structures >Geometric nonlinear distributed parameter model for cantilever-beam piezoelectric energy harvesters and structural dimension analysis for galloping mode
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Geometric nonlinear distributed parameter model for cantilever-beam piezoelectric energy harvesters and structural dimension analysis for galloping mode

机译:悬臂梁压电能量采集器的几何非线性分布参数模型和驰gall模式的结构尺寸分析

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摘要

To investigate the effects of structural dimension on the performance of cantilever-beam piezoelectric energy harvesters, a novel distributed parameter model considering the geometric nonlinearity of the cantilever beam is proposed using the extended Hamilton's principle. Electromechanical decoupling method is utilized to simplify the coupling simulation and facilitate the geometric dimension analysis. For such harvesters operated in galloping mode, the effects of the geometric dimension of the cantilever beam on the electromechanical coupling term, modified natural frequency, electrical damping, modal velocity, power, power density, and tip displacement are investigated. The geometric nonlinearity is found to affect the tip displacement and power greatly at high wind speed. Due to subtle changes of the modal velocity with the geometric parameters, the variation of the power with these parameters is found to be approximately predicted from that of the electrical damping, while the variation of the tip displacement with these parameters is detected to be opposite to that of the modified natural frequency. For higher power with smaller tip displacement, shorter narrower thicker substrate layer fully covered with thicker piezoelectric layer is preferred. For higher power density with smaller tip displacement, shorter wider thicker substrate layer covered with shorter thinner piezoelectric layer is recommended.
机译:为了研究结构尺寸对悬臂梁压电能量采集器性能的影响,利用扩展的汉密尔顿原理,提出了一种考虑悬臂梁几何非线性的新型分布参数模型。机电解耦方法用于简化耦合仿真并简化几何尺寸分析。对于以疾驰模式运行的此类收割机,研究了悬臂梁的几何尺寸对机电耦合项,修改的固有频率,电阻尼,模态速度,功率,功率密度和叶尖位移的影响。发现几何非线性在高风速下会极大地影响尖端的位移和功率。由于模态速度随几何参数的细微变化,发现根据这些参数的功率变化可以从电阻尼的变化中大致预测出来,而检测到尖端位移随这些参数的变化则与之相反。修改后的固有频率。对于具有较小尖端位移的较高功率,优选的是较短的较窄,较厚,较厚的基底层,该基底层被较厚的压电层完全覆盖。对于较高的功率密度和较小的尖端位移,建议使用较短,较宽,较厚的衬底层,并用较短的较薄的压电层覆盖。

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