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An experimentally validated bimorph cantilever model for piezoelectric energy harvesting from base excitations

机译:经过实验验证的双压电晶片悬臂模型,用于从基本激励中收集压电能量

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Piezoelectric transduction has received great attention for vibration-to-electric energy conversion over the last five years. A typical piezoelectric energy harvester is a unimorph or a bimorph cantilever located on a vibrating host structure, to generate electrical energy from base excitations. Several authors have investigated modeling of cantilevered piezoelectric energy harvesters under base excitation. The existing mathematical modeling approaches range from elementary single-degree-of-freedom models to approximate distributed parameter solutions in the sense of Rayleigh-Ritz discretization as well as analytical solution attempts with certain simplifications. Recently, the authors have presented the closed-form analytical solution for a unimorph cantilever under base excitation based on the Euler-Bernoulli beam assumptions. In this paper, the analytical solution is applied to bimorph cantilever configurations with series and parallel connections of piezoceramic layers. The base excitation is assumed to be translation in the transverse direction with a superimposed small rotation. The closed-form steady state response expressions are obtained for harmonic excitations at arbitrary frequencies, which are then reduced to simple but accurate single-mode expressions for modal excitations. The electromechanical frequency response functions (FRFs) that relate the voltage output and vibration response to translational and rotational base accelerations are identified from the multi-mode and single-mode solutions. Experimental validation of the single-mode coupled voltage output and vibration response expressions is presented for a bimorph cantilever with a tip mass. It is observed that the closed-form single-mode FRFs obtained from the analytical solution can successfully predict the coupled system dynamics for a wide range of electrical load resistance. The performance of the bimorph device is analyzed extensively for the short circuit and open circuit resonance frequency excitations and the accuracy of the model is shown in all cases.
机译:在过去的五年中,压电换能在振动到电能的转换方面引起了极大的关注。典型的压电能量收集器是位于振动主体结构上的单压电晶片或双压电晶片悬臂,以从基础激励中产生电能。一些作者研究了在基础激励下悬臂式压电能量收集器的建模。现有的数学建模方法从基本的单自由度模型到近似的分布参数解(在Rayleigh-Ritz离散化意义上)以及具有某些简化形式的解析解尝试。最近,作者基于Euler-Bernoulli束假设,提出了在基础激发下单晶悬臂的闭式解析解。在本文中,该分析解决方案适用于压电陶瓷层具有串联和并联连接的双压电晶片悬臂结构。假设基本励磁在横向方向上平移且叠加了很小的旋转。获得了任意频率下的谐波激励的闭式稳态响应表达式,然后将其简化为模态激励的简单但精确的单模表达式。从多模式和单模式解决方案中可以识别出将频率输出和振动响应与平移和旋转基本加速度相关联的机电频率响应函数(FRF)。提出了具有尖端质量的双压电晶片悬臂的单模耦合电压输出和振动响应表达式的实验验证。可以观察到,从解析解决方案获得的闭合形式单模FRF可以成功预测宽范围的电负载电阻的耦合系统动力学。针对短路和开路谐振频率激励,广泛分析了双压电晶片器件的性能,并在所有情况下均显示了模型的准确性。

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