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Prospects for energy harvesting using ferroelectric/ferroelastic switching

机译:使用铁电/熔旋式开关的能量收集前景

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Piezoelectric transducers have been widely employed for energy harvesting from vibration or kinetic energy sources. These systems, however, suffer from low energy density and consequently low power density at frequencies corresponding to common ambient vibrations. An alternative approach, using ferroelectric and ferroelastic switching offers potentially much greater energy density, at the cost of loss of linearity. Using a simple model of switching, a working cycle that could generate electrical energy from a harmonically varying source of stress is explored. The cycle uses depolarization by stress, followed by repolarization with combined electromechanical loading. A harvesting electric field and bias electric field are imposed to ensure a stable repeatable working cycle during the depolarization process and repolarization process, respectively. The bias electric field affects ferroelectric/ferroelastic switching, leading to a preferred direction of repolarization. By contrast, without bias electric field, stress alone would not trigger repolarization because of mechanically equivalent states with opposite polarization. The results illustrate that the bias electric field can be much lower than the harvesting electric field, requiring only a small electrical energy input during the cycle. Finally, the conversion efficiency of this cycle is estimated and improvements to the cycle are explored by adjusting the electrical and mechanical field amplitudes.
机译:压电换能器已广泛用于从振动或动力学源采集的能量收集。然而,这些系统遭受低能量密度并且因此在与公共环境振动相对应的频率下的低功率密度。一种替代方法,使用铁电和源性开关的能量密度具有更大的能量密度,以线性丧失。利用简单的交换模型,探索了可以从谐振源产生电能的工作循环。该循环使用压力去极化,然后用组合机电负载进行复极化。施加收获电场和偏置电场,以确保在去极化过程和倒波过程中稳定的可重复的工作循环。偏置电场影响铁电/碳水化合物切换,导致优选的复极化方向。相比之下,没有偏离电场,由于具有相反极化的机械等同的状态,单独的应力不会触发复极化。结果说明偏置电场可以远低于收获电场,在循环期间只需要小电能输入。最后,通过调整电气和机械场幅度来估计该循环的转换效率并改善循环。

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