Design and Power Management of Energy Harvesting Embedded Systems

V. Raghunathan, P. Chou
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引用次数: 120

Abstract

Harvesting energy from the environment is a desirable and increasingly important capability in several emerging applications of embedded systems such as sensor networks, biomedical implants, etc. While energy harvesting has the potential to enable near-perpetual system operation, designing an efficient energy harvesting system that actually realizes this potential requires an in-depth understanding of several complex tradeoffs. These tradeoffs arise due to the interaction of numerous factors such as the characteristics of the harvesting transducers, chemistry and capacity of the batteries used (if any), power supply requirements and power management features of the embedded system, application behavior, etc. This paper surveys the various issues and tradeoffs involved in designing and operating energy harvesting embedded systems. System design techniques are described that target high conversion and storage efficiency by extracting the most energy from the environment and making it maximally available for consumption. Harvesting aware power management techniques are also described, which reconcile the very different spatio-temporal characteristics of energy availability and energy usage within a system and across a network
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能量收集嵌入式系统的设计与电源管理
在传感器网络、生物医学植入物等嵌入式系统的一些新兴应用中,从环境中收集能量是一种理想的、越来越重要的能力。虽然能量收集有可能实现近乎永久的系统运行,但设计一个有效的能量收集系统,真正实现这一潜力,需要对几个复杂的权衡有深入的了解。这些权衡是由于许多因素的相互作用而产生的,例如采集传感器的特性,所使用电池的化学和容量(如果有的话),电源要求和嵌入式系统的电源管理功能,应用程序行为等。本文调查了设计和操作能量收集嵌入式系统所涉及的各种问题和权衡。系统设计技术描述了通过从环境中提取最多的能量并使其最大限度地用于消费来实现高转换和存储效率的目标。还描述了收集感知电源管理技术,它调和了系统内和整个网络中能源可用性和能源使用的非常不同的时空特征
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