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Design and Performance Analysis of Supercapacitor Charging Circuits for Wireless Sensor Nodes

机译:无线传感器节点超级电容器充电电路的设计与性能分析

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Micro-solar energy harvesting systems have achieved efficient operations through maximum power point tracking (MPPT) and maximum power transfer tracking (MPTT) techniques. However, they may have chargers with relatively high power thresholds, below which they have 0% efficiency. As a result, these harvesters either require much larger panels than necessary, or they fail to sustain extended periods of poor weather. To address this problem, we propose to generalize MPTT to MCZT, for Maximum Charging Zone Tracking, to expand the zones of effective charging. To cover the wide dynamic range of solar irradiation, we propose a programmable charge pump driven by a direct digital synthesizer (DDS). In addition, we dynamically reconfigure the topology of multiple supercapacitors to maximize charging efficiency and minimize voltage-dependent leakage. Experimental results from simulation and measurement show that under the high solar irradiance of 1000 ${rm W/m}^{2}$, our MPTT part achieves 40%–50% faster charging time than one without MPTT; and under low solar irradiation of 300 ${rm W/m}^{2}$, the boost-up operation of our system enables fully charging the supercapacitors, thereby extending the harvesting time zone from 10:00 am–07:10 pm to 8:20 am–8:00 pm even on a sunny day, all with an MPTT overhead of 1.5 mW.
机译:微太阳能收集系统已经通过最大功率点跟踪(MPPT)和最大功率传递跟踪(MPTT)技术实现了高效运行。但是,它们的充电器可能具有相对较高的功率阈值,低于此阈值则效率为0%。结果,这些收割机要么需要比必要的大得多的面板,要么无法承受长期的恶劣天气。为了解决这个问题,我们建议将MPTT推广到MCZT,以实现最大充电区跟踪,以扩展有效充电区。为了涵盖广泛的太阳辐射动态范围,我们提出了一种由直接数字合成器(DDS)驱动的可编程电荷泵。此外,我们动态地重新配置了多个超级电容器的拓扑结构,以最大程度地提高充电效率并最大程度地降低电压相关的泄漏。模拟和测量的实验结果表明,在1000 $ {rm W / m} ^ {2} $的高太阳辐照度下,我们的MPTT部件的充电时间比没有MPTT的部件快40%–50%;在300 $ {rm W / m} ^ {2} $的低太阳辐射下,我们系统的升压操作使超级电容器可以完全充电,从而将收获时间从10:00 am–07:10 pm延长甚至在晴天的情况下,也可以保持到上午8:20 –晚上8:00,所有MPTT的开销为1.5 mW。

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