首页> 外文期刊>Journal of intelligent material systems and structures >A sub-wavelength scale acoustoelastic sonic crystal for harvesting energies at very low frequencies (< similar to 1 kHz) using controlled geometric configurations
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A sub-wavelength scale acoustoelastic sonic crystal for harvesting energies at very low frequencies (< similar to 1 kHz) using controlled geometric configurations

机译:亚波长尺度的声弹性声晶体,用于使用受控几何结构在非常低的频率(<类似于1 kHz)下收集能量

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Predictive design to control the geometric configurations of a novel sub-wavelength scale energy scavenger to harvest energy at lower sonic frequencies (< similar to 1 kHz) is presented. In this work, defying the conventional physics of structural resonance at lower frequencies, the traditional solution of large size harvesters is argued by adopting the physics of local resonance in designing the energy harvesters with sub-wavelength scale foot print. It is reported that during the local resonance, the wave energy passing through the acoustoelastic sonic crystals remains trapped within the soft matrix as the dynamic strain energy; hence, it is proposed to harvest that same trapped energy by strategically embedding the smart materials inside the matrix, capable of electromechanical transduction (e.g. lead zirconate titanate). The proposed acoustoelastic sonic crystal model was able to harvest energies at four different frequencies within < similar to 1 kHz with possible loading conditions and respective lead zirconate titanate placements. Through experimental validation, a particular acoustoelastic sonic crystal model with sub-wavelength geometry (similar to 3.65 cm) was investigated. Against 10 k Omega resistive load, a maximum power density of similar to 92.4 mu W/cm(2) was achieved. It is further reported that the geometrical model of the proposed harvesters can be predictively altered while filtering the acoustic waves and harvest the energy, simultaneously.
机译:进行了预测性设计,以控制新型亚波长尺度能量清除剂的几何结构,以在较低的声波频率(<类似于1 kHz)下收集能量。在这项工作中,为克服低频结构共振的传统物理原理,在设计具有亚波长尺度足迹的能量采集器时,采用了局部共振物理原理,提出了大型采集器的传统解决方案。据报道,在局部共振过程中,通过声弹性声波晶体的波能仍作为动态应变能被捕获在软基体内。因此,建议通过策略性地将智能材料嵌入能够机电转导的基质(例如锆钛酸铅)中,以收集相同的捕获能量。所提出的声弹性声晶体模型能够在可能的负载条件和相应的锆钛酸钛酸铅放置的情况下,在小于1 kHz的四个不同频率下收集能量。通过实验验证,研究了具有亚波长几何形状(约3.65厘米)的特定声弹性声晶体模型。在10 k Omega电阻负载下,获得的最大功率密度类似于92.4μW / cm(2)。进一步报道,提出的收割机的几何模型可以在过滤声波并同时收割能量的同时进行预测性更改。

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