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Two-dimensional octagonal phononic crystals for highly dense piezoelectric energy harvesting

机译:用于高度密集的压电能量收获的二维八角形旋流晶体

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摘要

Piezoelectric energy harvesting at multi-scales has received considerable attention as an attractive powering technology which enables sustainable self-powered operation of small electronics such as wireless sensors. Self-powered wireless sensors for structural health monitoring, biomedical and wearable applications would be great potential applications with high market demand. A key challenge has been insufficient power generation for practical applications, which necessitates a new paradigm in the design of energy harvesting systems. In this work, drastic enhancement of harvesting performance along with energy focusing is demonstrated both analytically and experimentally by introducing metamaterial-based energy harvesting (MEH) systems. Metamaterials, artificially engineered structures, exhibit unique properties including band gap and negative refractive index and thus enable us to manipulate mechanical wave propagations. Wave guide and localization toward a desired position can lead to amplification of harvestable input mechanical energy. In this work, systematic design of two-dimensional octagonal phononic crystals (PnCs) through geometric and band gap optimization process is proposed and followed by experimental demonstration. Energy confinement and localization at the defect of proposed PnCs leads to successful enhancement of harvesting power up to 22.8 times compare to the case without the presence of metamaterial.
机译:多尺度的压电能量收获是充分的关注,作为一种吸引力的动力技术,使得能够进行可持续的小型电子产品,例如无线传感器。用于结构健康监测,生物医学和可穿戴应用的自动无线传感器将是具有高市场需求的巨大潜在应用。实际应用的发电不足的关键挑战,这需要在能量收集系统设计中进行新的范式。在这项工作中,通过引入基于超材料的能量收集(MEH)系统,在分析和实验上证明了收获性能的急剧增强。超材料,人工化工制造结构,具有独特的性质,包括带隙和负折射率,因此使我们能够操纵机械波传播。波导和朝向所需位置的定位可以导致收获的输入机械能的放大。在这项工作中,提出了通过几何和带隙优化过程的二维八角形旋流晶体(PNC)的系统设计,并进行了实验演示。拟议的PNCS缺陷的能量限制和定位导致在没有超材料的情况下,成功增强收获功率高达22.8倍。

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