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Powering Autonomous Sensors: An Integral Approach with Focus on Solar and RF Energy Harvesting

机译:为自主传感器供电:一种集成方法,重点关注太阳能和RF能量收集

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摘要

Autonomous sensors transmit data and power their electronics without using cables. They can be found in e.g. wireless sensor networks (WSNs) or remote acquisition systems. Although primary batteries provide a simple design for powering autonomous sensors, they present several limitations such as limited capacity and power density, and difficulty in predicting their condition and state of charge. An alternative is to extract energy from the ambient (energy harvesting). However, the reduced dimensions of most autonomous sensors lead to a low level of available power from the energy transducer. Thus, efficient methods and circuits to manage and gather the energy are a must. An integral approach for powering autonomous sensors by considering both primary batteries and energy harvesters is presented. Two rather different forms of energy harvesting are also dealt with: optical (or solar) and radiofrequency (RF). Optical energy provides high energy density, especially outdoors, whereas RF remote powering is possibly the most feasible option for autonomous sensors embedded into the soil or within structures. Throughout different chapters, devices such as primary and secondary batteries, supercapacitors, and energy transducers are extensively reviewed. Then, circuits and methods found in the literature used to efficiently extract and gather the energy are presented. Finally, new proposals based on the authors’ own research are analyzed and tested. Every chapter is written to be rather independent, with each incorporating the relevant literature references. Powering Autonomous Sensors is intended for a wide audience working on or interested in the powering of autonomous sensors. Researchers and engineers can find a broad introduction to basic topics in this interesting and emerging area as well as further insights on the topics of solar and RF harvesting and of circuits and methods to maximize the power extracted from energy transducers.
机译:自主传感器无需使用电缆即可传输数据并为其电子设备供电。它们可以在例如无线传感器网络(WSN)或远程采集系统。尽管一次电池提供了一种为自主传感器供电的简单设计,但它们仍存在一些局限性,例如容量和功率密度有限,以及难以预测其状况和充电状态。一种替代方法是从环境中提取能量(能量收集)。然而,大多数自主传感器的尺寸减小导致来自能量转换器的可用功率的水平较低。因此,必须有有效的方法和电路来管理和收集能量。提出了一种通过同时考虑一次电池和能量收集器为自主传感器供电的集成方法。还涉及两种截然不同的能量收集形式:光学(或太阳能)和射频(RF)。光能提供高能量密度,尤其是在户外,而射频远程供电对于嵌入土壤或建筑物内部的自主传感器来说可能是最可行的选择。在不同的章节中,对诸如一次电池和二次电池,超级电容器和能量传感器之类的设备进行了广泛的回顾。然后,介绍了文献中发现的用于有效提取和收集能量的电路和方法。最后,对基于作者自身研究的新建议进行分析和测试。每章的编写都相当独立,每章都包含了相关的文献参考。为自主传感器供电旨在供对自动传感器供电感兴趣或对其感兴趣的广泛受众。研究人员和工程师可以在这个有趣且新兴的领域中找到有关基础主题的广泛介绍,以及有关太阳能和RF收集主题以及使能量传感器提取的功率最大化的电路和方法的进一步见解。

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