能量自主无线传感节点工作在5勒克斯从一个4平方厘米的太阳能电池

IF 1.6 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
M. Meli, S. Favre, Benjamin Maij, Stefan Stajić, Manuel Boebel, P. Poole, Martin Schellenberg, C. Kouzinopoulos
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引用次数: 0

摘要

在永久光线不足的地方为物联网节点收集能量是很重要的,因为许多这样的地方存在于建筑物和其他地方。到目前为止,在这种环境下工作的能源自主设备的需求很少受到关注。这项工作报告了一个完全由太阳能电池供电的能量自主传感器节点的设计和测试结果。该系统可以冷启动并在低光条件下运行(在本例中为20lux及以下,使用白光led作为光源)。使用了四个1平方厘米的太阳能电池,产生4平方厘米的总有效表面。该系统包括一个用作触摸探测器的电容式传感器,一个晶体精确实时时钟(RTC),以及一个与cortex - m3兼容的微控制器,该微控制器集成了蓝牙低功耗无线电(BLE)和必要的通信堆栈。采用100 μF的电容作为储能。一个低功率比较器监测能量存储的水平并上电系统。RTC和触摸传感器的组合使MCU负载能够定期上电或使用异步用户触摸活动。初步测试表明,该系统可以在+0 dBm、低至5勒克斯的照度下执行冷启动、传感和传输帧的基本工作。采收开始得更早,这意味着在5勒克斯以下有充分发挥作用的潜力。该系统还在其他光源上进行了测试。比较器是为能量收集而开发的测试芯片。其他元素是现成的组件。商用设备的使用,部件数量的减少,以及复杂存储元件的缺乏,使得将来可以建造一个小节点,用于经常或间歇性光线不足的地方。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Energy Autonomous Wireless Sensing Node Working at 5 Lux from a 4 cm2 Solar Cell
Harvesting energy for IoT nodes in places that are permanently poorly lit is important, as many such places exist in buildings and other locations. The need for energy-autonomous devices working in such environments has so far received little attention. This work reports the design and test results of an energy-autonomous sensor node powered solely by solar cells. The system can cold-start and run in low light conditions (in this case 20 lux and below, using white LEDs as light sources). Four solar cells of 1 cm2 each are used, yielding a total active surface of 4 cm2. The system includes a capacitive sensor that acts as a touch detector, a crystal-accurate real-time clock (RTC), and a Cortex-M3-compatible microcontroller integrating a Bluetooth Low Energy radio (BLE) and the necessary stack for communication. A capacitor of 100 μF is used as energy storage. A low-power comparator monitors the level of the energy storage and powers up the system. The combination of the RTC and touch sensor enables the MCU load to be powered up periodically or using an asynchronous user touch activity. First tests have shown that the system can perform the basic work of cold-starting, sensing, and transmitting frames at +0 dBm, at illuminances as low as 5 lux. Harvesting starts earlier, meaning that the potential for full function below 5 lux is present. The system has also been tested with other light sources. The comparator is a test chip developed for energy harvesting. Other elements are off-the-shelf components. The use of commercially available devices, the reduced number of parts, and the absence of complex storage elements enable a small node to be built in the future, for use in constantly or intermittently poorly lit places.
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来源期刊
Journal of Low Power Electronics and Applications
Journal of Low Power Electronics and Applications Engineering-Electrical and Electronic Engineering
CiteScore
3.60
自引率
14.30%
发文量
57
审稿时长
11 weeks
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