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An Input Power-Aware Efficiency Tracking Technique for Energy Harvesters in IoT

机译:IoT中能量收集器的输入功率感知效率跟踪技术

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This paper presents a two-dimensional maximum efficiency tracking technique for switched-capacitor based energy harvesting circuits in IoT applications. Conventional maximum power point trackers that sweep switching frequency (fSW) achieve high power conversion efficiency (PCE) for a limited range of input power. The purpose of this technique is to extend the input power harvesting range at which high power conversion efficiency can be achieved. To realize that, the proposed input-power aware system adds the capability of tuning the average load current to minimize converter power losses based on the sensed input power. This is fundamentally based on a discontinuous charging technique that delivers current to the load only during a controllable clock non-overlap time. Hence, the system can dynamically optimize the maximum PCE to actual ambient power levels. The system also tunes fSW to deliver the maximum output power. To demonstrate this technique, the system is designed and simulated in 90nm CMOS technology. For the same 40kΩ load conditions, the proposed technique achieves at least 45% PCE at a 5uW input power, as opposed to a conventional system which requires at least 18uW of input power to maintain the same PCE. The harvesting range is therefore extended by 72%.
机译:本文提出了一种针对物联网应用中基于开关电容器的能量采集电路的二维最大效率跟踪技术。扫描开关频率(f的常规最大功率点跟踪器 SW )在有限的输入功率范围内实现了高功率转换效率(PCE)。该技术的目的是扩展可以实现高功率转换效率的输入功率收集范围。为了实现这一点,所提出的输入功率感知系统增加了根据检测到的输入功率来调节平均负载电流以最小化转换器功率损耗的能力。这基本上是基于不连续充电技术的,该技术仅在可控时钟非重叠时间内将电流提供给负载。因此,系统可以动态地将最大PCE优化为实际环境功率水平。系统还会调整f SW 以提供最大的输出功率。为了演示该技术,在90nm CMOS技术中对系统进行了设计和仿真。对于相同的40kΩ负载条件,与要求至少18uW的输入功率来维持相同的PCE的常规系统相比,所提出的技术在5uW的输入功率下可获得至少45%的PCE。因此,收割范围扩大了72%。

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