Power requirements of sensing nodes and adequacy of piezoelectric energy harvesting

R. Sriramdas, Shreevar Rastogi, R. Pratap
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引用次数: 1

Abstract

Sensing nodes are employed for intelligent ambient monitoring and information dissemination. The primary challenge in making a sensing node autonomous is the ability to power it continuously. The conventional method of powering these nodes through batteries has an associated drawback of periodic maintenance and replacement. Alternate methods of powering sensing nodes are gaining impetus with the advent of low power electronics. The use of piezoelectric harvesters is an alternative approach to power these sensing nodes. These harvesters innately convert the energy from the unused ambient vibration into electrical energy. The energy extractable from vibrations is characterized by the structure of the vibrating surface. We analyze a harvester as a dynamic vibration absorber mounted on a vibrating structure. The influence of mass ratio, damping ratio, and the number of harvesters on the energy transmitted to the harvesters is addressed. We also assess the power levels required by typical sensing nodes. Our analysis addresses the selection of a particular piezoelectric material, categorically, for a given sensing node. We find that the power required by typical sensing nodes can be easily fulfilled by arrays of harvesters. The current work addresses the concept of available energy from vibrations and the selection of appropriate harvesting configuration for a sensing node.
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传感节点的功率要求和压电能量收集的充分性
传感节点用于智能环境监测和信息传播。使传感节点自治的主要挑战是持续供电的能力。通过电池为这些节点供电的传统方法存在定期维护和更换的缺点。随着低功耗电子技术的出现,为传感节点供电的替代方法正在获得动力。使用压电收集器是为这些传感节点供电的另一种方法。这些收割机天生就能将未使用的环境振动转化为电能。从振动中提取的能量是由振动表面的结构决定的。我们将收割机分析为安装在振动结构上的动态减振器。讨论了质量比、阻尼比和收割机数量对传输到收割机的能量的影响。我们还评估了典型传感节点所需的功率水平。我们的分析解决了特定压电材料的选择,分类地,为给定的传感节点。我们发现典型的传感节点所需的功率可以很容易地由收割机阵列来满足。目前的工作解决了振动中可用能量的概念以及为传感节点选择适当的采集配置。
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