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Design considerations for solar energy harvesting wireless embedded systems

机译:太阳能收集无线嵌入式系统的设计注意事项

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Sustainable operation of battery powered wireless embedded systems (such as sensor nodes) is a key challenge, and considerable research effort has been devoted to energy optimization of such systems. Environmental energy harvesting, in particular solar based, has emerged as a viable technique to supplement battery supplies. However, designing an efficient solar harvesting system to realize the potential benefits of energy harvesting requires an in-depth understanding of several factors. For example, solar energy supply is highly time varying and may not always be sufficient to power the embedded system. Harvesting components, such as solar panels, and energy storage elements, such as batteries or ultracapacitors, have different voltage-current characteristics, which must be matched to each other as well as the energy requirements of the system to maximize harvesting efficiency. Further, battery non-idealities, such as self-discharge and round trip efficiency, directly affect energy usage and storage decisions. The ability of the system to modulate its power consumption by selectively deactivating its sub-components also impacts the overall power management architecture. This paper describes key issues and tradeoffs which arise in the design of solar energy harvesting, wireless embedded systems and presents the design, implementation, and performance evaluation of Heliomote, our prototype that addresses several of these issues. Experimental results demonstrate that Heliomote, which behaves as a plug-in to the Berkeley/Crossbow motes and autonomously manages energy harvesting and storage, enables near-perpetual, harvesting aware operation of the sensor node.
机译:电池供电的无线嵌入式系统(例如传感器节点)的可持续运行是一个关键的挑战,并且已经对这种系统的能源优化进行了大量的研究工作。收集环境能量,特别是太阳能,已成为一种可行的技术来补充电池电源。但是,设计一种有效的太阳能收集系统以实现能量收集的潜在好处需要深入了解几个因素。例如,太阳能供应随时间变化很大,可能并不总是足以为嵌入式系统供电。收获组件(例如太阳能电池板)和能量存储元件(例如电池或超级电容器)具有不同的电压-电流特性,必须将它们相互匹配以及系统的能量要求,才能使收获效率最大化。此外,电池的非理想性(例如自放电和往返效率)直接影响能源使用和存储决策。系统通过有选择地停用其子组件来调节其功耗的能力也影响了整个电源管理体系结构。本文介绍了太阳能收集,无线嵌入式系统设计中出现的关键问题和折衷,并介绍了Heliomote的设计,实现和性能评估,Holiomote是我们的原型,可以解决其中的一些问题。实验结果表明,Heliomote充当Berkeley / Crossbow微粒的插件,并自主管理能量的收集和存储,可实现传感器节点的近乎永久性的,可感知收集的操作。

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