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Modeling and experimental investigation of an impact-driven piezoelectric energy harvester from human motion

机译:基于人体运动的冲击驱动压电能量采集器的建模和实验研究

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An impact-driven piezoelectric energy harvester from human motion is proposed in this paper. A high-frequency PZT-5A bimorph cantilever beam with attached proof mass at the free end was selected. A frequency up-conversion strategy was realized using impulse force generated by human motion. An aluminum prototype was attached to the leg of a person on a treadmill and measurements taken of the dissipated electric energy across multiple resistances over a range of walking speeds. The outer dimensions of this prototype are 90 mm × 40 mm × 24 mm. It has been shown that the average output voltage generated by the piezoelectric bimorph increases sequentially with a faster walking speed, the power varies with the external resistances and maximum levels occur at the optimal resistance, which is consistent with the simulation result. An open circuit voltage of 2.47 V and maximum average power of 51 μW can be achieved across a 20 kΩ external load resistance and 5 km h~(-1) walking speed. Experimental results reveal that the impact-driven piezoelectric energy harvesting system mounted on a person's leg has the potential for driving wearable devices.
机译:提出了一种基于人体运动的冲击驱动压电能量采集器。选择了在自由端具有附加质量保证的高频PZT-5A双压电晶片悬臂梁。利用人体运动产生的脉冲力实现了频率上变频策略。将铝制原型机连接到跑步机上人的腿上,并在一定的行走速度范围内通过多个电阻对耗散的电能进行测量。该原型的外部尺寸为90 mm×40 mm×24 mm。结果表明,压电双压电晶片产生的平均输出电压随着行走速度的加快而依次增加,功率随外部电阻而变化,并且在最佳电阻下出现最大电平,这与仿真结果一致。在20kΩ外部负载电阻和5 km h〜(-1)的行走速度下,可实现2.47 V的开路电压和51μW的最大平均功率。实验结果表明,安装在人腿上的冲击驱动压电能量收集系统具有驱动可穿戴设备的潜力。

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