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Vibrational energy harvesting using piezoelectric ceramics and free-standing thick-film structures

机译:使用压电陶瓷和独立式厚膜结构进行振动能量收集

摘要

This thesis presents a series of broad but systematic and consecutive investigations on the topic of piezoelectric energy harvesting. These include material fabrication and characterisation, harvester fabrication and material parameter selection, electric output and dynamic behaviour tests of energy harvesters, and the feasibility of utilising lead-free piezoelectric materials for energy harvesting. Three lead-based and one lead-free perovskite solid-solutions compositions have been researched individually and compared to each other. In the form of bulk ceramics the lead-free composition is considered capable of replacing the lead-based compositions for vibrational energy harvesting at room temperature. Typical properties of ε(_r)≈4700, (P)(_r)≈9 μC/cm(^2), (d)(_3)(_3)≈500 pC/N, (k)(_p)≈0.51 have been achieved for the lead-free and lead-based compositions respectively. Vibrational energy harvesting based on a novel structure of piezoelectric/silver multi-layer free-standing thick-film unimorph and bimorph cantilevers have been investigated using two of the lead-based compositions. A planar shrinkage difference of 3-6% between the silver and piezoelectric layers is suggested in order to ensure successful fabrication. When tested under harmonic vibration conditions, a comparison of unimorph individual harvesters suggests that higher piezoelectric voltage and electromechanical coupling coefficients may be preferred when selecting materials. Further optimisations involving bimorph devices with tip proof mass have demonstrated maximum harvester outputs (root mean square) of about 9 μW and 2.8 V with approximately 14% bandwidth under resonant vibrations (I 00-150 Hz, 0.5 - I.Og). In addition, the cantilevers have utilised to harvest wind energy with a modified spinning configuration, exhibiting 3.4 V average open-circuit output voltage in optimum wind conditions.ud
机译:本文提出了一系列关于压电能量收集的广泛但系统的和连续的研究。其中包括材料制造和表征,收集器制造和材料参数选择,能量收集器的电输出和动态性能测试,以及利用无铅压电材料进行能量收集的可行性。分别研究了三种基于铅和一种无铅的钙钛矿固溶体组合物,并进行了比较。以块状陶瓷的形式,无铅组合物被认为能够代替铅基组合物,以在室温下收集振动能量。 ε(_ r )≈4700,(P )(_ r )≈9μC/ cm (^ 2 ),(d )(_ 3 )(_ 3 )≈无铅和基于铅的成分分别达到500 pC / N,(k )(_ p )≈0.51。使用两种基于铅的成分研究了基于压电/银多层独立式厚膜单压电晶片和双压电晶片悬臂的新型结构的振动能量收集。为了确保成功的制造,建议在银层和压电层之间的平面收缩率差异为3-4%。在谐波振动条件下进行测试时,对单晶收获机的比较表明,选择材料时,最好采用较高的压电电压和机电耦合系数。涉及具有尖端防护质量的双压电晶片器件的进一步优化已证明,在共振振动(100-150 Hz,0.5-1.0g)下,最大收割机输出(均方根)约为9μW,2.8 V,带宽约为14%。另外,悬臂已经利用改进的旋转配置来收集风能,在最佳风况下平均开路输出电压为3.4V。

著录项

  • 作者

    Bai Yang;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 English
  • 中图分类

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