首页> 外文会议>International Conference on Humanoid, Nanotechnology, Information Technology, Communication and Control, Environment, and Management >Multiple-Input Energy Harvesting DC Adder Combiner for Internet of Things (IoT) Wireless Sensor Nodes (WSN) Applications in 65nm CMOS Technology
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Multiple-Input Energy Harvesting DC Adder Combiner for Internet of Things (IoT) Wireless Sensor Nodes (WSN) Applications in 65nm CMOS Technology

机译:用于65NM CMOS技术的多输入能量收集DC Adder Combiner(IOT)无线传感器节点(WSN)应用

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Wireless technology has its inherent need for battery to power-up a system. One way to overcome this challenge is to extract power from ambient sources. Ambient energy harvesting is a way to utilize the energy from the surroundings as this energy is considered "free-energy." Different ambient sources are available and among the commonly utilized sources are solar energy, thermal energy and RF signals.This paper presents a DC adder combiner with a crosscoupled charge pump structure that provides concurrent addition utilizing the DC outputs from photovoltaic (PV), radio frequency (RF) and thermoelectric generator (TEG) sources. First-level gate controls are added to the conventional crosscoupled structure to provide a higher power conversion efficiency. The circuit is composed of two stages of the modified cross-coupled charge pump structure with bypass transmission gates that will bypass the charge pump structure whenever some sources are weak or are not available. Different availabilities of the three inputs are tested. The proposed DC adder combiner circuit has a maximum power conversion efficiency of 76.10% when three inputs are available. The highest maximum power conversion efficiency obtained is 98.1% when only one source is available. The DC adder combiner covers a chip area of 290 um x 297 um
机译:无线技术具有其固有的电池供电系统。克服这一挑战的一种方法是从环境源中提取权力。环境能量收集是一种利用周围环境的能量,因为这种能量被认为是“自由能”。可以使用不同的环境来源,并且通常利用的来源是太阳能,热能和RF信号。本文介绍了一种带有横耦合电荷泵结构的DC加法器组合器,可以使用从光伏(PV),射频输出,射频的DC输出。 (RF)和热电发电机(TEG)来源。将第一级栅极控制添加到传统的交叉耦合结构中以提供更高的功率转换效率。电路由改进的交叉耦合电荷泵结构的两个阶段组成,随时随地绕过电荷泵结构,或者不可用的旁路传输闸门。测试了三个输入的不同可用性。当有三个输入可用时,所提出的直流加法器组合电路的最大功率转换效率为76.10%。获得的最高最大功率转换效率为98.1%,只有一个源可用。直流加法器组合器涵盖290 um x 297 um的芯片面积

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