Center for Intelligent Material Systems and Structures Virginia Tech, Blacksburg, VA, USA.
IEEE Trans Ultrason Ferroelectr Freq Control. 2011 Jul;58(7):1508-20. doi: 10.1109/TUFFC.2011.1969.
This research presents an experimental and theoretical energy harvesting characterization of beam-like, uniform cross-section, unimorph structures employing single-crystal piezoelectrics. Different piezoelectric materials, substrates, and configurations are examined to identify the best design configuration for lightweight energy harvesting devices for low-power applications. Three types of piezoelectrics (singlecrystal PMN-PZT, polycrystalline PZT-5A, and PZT-5H-type monolithic ceramics) are evaluated in a unimorph cantilevered beam configuration. The devices have been excited by harmonic base acceleration. All of the experimental characteristics have been used to validate an exact electromechanical model of the harvester. The study shows the optimum choice of substrate material for single-crystal piezoelectric energy harvesting. Comparison of energy scavengers with stainless steel substrates reveals that single-crystal harvesters produce superior power compared with polycrystalline devices. To further optimize the power harvesting, we study the relation between the thickness of the substrate and the power output for different substrate materials. The relation between power and substrate thickness profoundly varies among different substrate materials. The variation is understood by examining the change of mechanical transmissibility and the variations of the coupling figure of merit of the harvesters with thickness ratio. The investigation identifies the optimal thickness of the substrate for different substrate materials. The study also shows that the densities of the substrates and their mechanical damping coefficients have significant effects on the power output.
本研究对采用单晶压电材料的梁状、均匀横截面、单边结构进行了实验和理论能量收集特性研究。研究了不同的压电材料、衬底和结构,以确定适用于低功率应用的轻量级能量收集装置的最佳设计配置。在单边悬臂梁配置中评估了三种类型的压电材料(单晶 PMN-PZT、多晶 PZT-5A 和 PZT-5H 型整体陶瓷)。该设备通过谐波基座加速度激励。所有的实验特性都被用来验证收集器的精确机电模型。该研究展示了用于单晶压电能量收集的最佳衬底材料选择。与不锈钢衬底的能量收集器的比较表明,与多晶器件相比,单晶收集器产生更高的功率。为了进一步优化功率收集,我们研究了不同衬底材料的衬底厚度与功率输出之间的关系。对于不同的衬底材料,功率与衬底厚度之间的关系存在很大差异。通过检查机械传递率的变化以及与厚度比相关的收集器的耦合品质因数的变化,可以理解这种变化。该研究确定了不同衬底材料的最佳衬底厚度。研究还表明,衬底的密度及其机械阻尼系数对功率输出有显著影响。