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23.5 An energy pile-up resonance circuit extracting maximum 422 energy from piezoelectric material in a dual-source energy-harvesting interface

机译:23.5能量堆积谐振电路在双源能量收集界面中从压电材料中提取最大422%的能量

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Energy harvesting is one of the key technologies used to realize self-sustaining systems such as wireless sensor networks and health-care devices. Much research on circuit design has been conducted to extract as much energy as possible from transducers, such as the thermoelectric generator (TEG) and the piezoelectric transducer (PZT). Specifically, the energy in a PZT could be extracted more efficiently by utilizing resonance as [1] and [2] demonstrated. However, the maximum output voltage swing in those techniques are limited to twice of the original swing of the PZT, and thus, had a limited energy extraction capability in spite of more energy being available from the PZT. In [3], on the other hand, the large energy is obtained with higher voltage swing, but is limited up to 247% because the load energy is used to increase the output voltage swing of PZT. To obtain far more power from PZT, we propose an alternative resonance technique through which the PZT output swing can be boosted as high as CMOS devices can sustain. This technique is applied to a dual-energy-sourced (PZT and TEG) energy-harvesting interface (EHI) as a battery charger.
机译:能量收集是用于实现自我维持系统(例如无线传感器网络和保健设备)的关键技术之一。已经进行了许多电路设计研究,以从诸如热电发生器(TEG)和压电换能器(PZT)的换能器中提取尽可能多的能量。具体地,如[1]和[2]所示,通过利用共振可以更有效地提取PZT中的能量。但是,这些技术中的最大输出电压摆幅限制为PZT原始摆幅的两倍,因此,尽管PZT可以提供更多的能量,但其能量提取能力有限。另一方面,在[3]中,较大的能量是通过较高的电压摆幅获得的,但由于负载能量用于增加PZT的输出电压摆幅,因此限制在247%以内。为了从PZT获得更多的功率,我们提出了另一种谐振技术,通过该技术可以将PZT输出摆幅提高到CMOS器件可以承受的水平。该技术已应用于电池充电器的双能量来源(PZT和TEG)能量收集接口(EHI)。

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