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Design and Experimental Validation of the Self-powered IoT for Indoor Temperature-Humidity Monitoring

机译:用于室内温湿度监控的自供电物联网的设计和实验验证

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The Internet of Things (IoT) refers to electronic device communications, one of them is the wireless sensor network (WSN). Battery life is the main challenge for WSN. Battery life refers to the maximum time until one node not work. This study proposed to increase the battery life of WSN by applying solar energy harvesting technology. The system consists of several nodes equipped with solar cell and energy harvester. The system uses sleep mode with certain active intervals to save power. The active system interval determined based on the daily energy that can be harvested. Room temperature-humidity data displayed in graphical form via a smartphone application. The daily energy requirements of the system based on the energy consumption of the microcontroller, sensors, and energy loss due to the phenomenon of battery self-discharge. The energy harvester circuit tested with four configurations of the number of turns ratio and resistor values on the transistor base. Each configuration tested at a light intensity of 800-1000 lux. The highest output power produced by the energy harvester configuration is used to determine the daily energy that can be harvested. The results show the harvested daily energy still not sufficient for the system's energy requirements. In future studies, the system's energy requirement will be minimized and the harvested daily energy will be increased.
机译:物联网(IoT)是指电子设备​​通信,其中之一是无线传感器网络(WSN)。电池寿命是WSN的主要挑战。电池寿命是指直到一个节点无法工作的最长时间。这项研究提出通过应用太阳能收集技术来延长WSN的电池寿命。该系统由几个装有太阳能电池和能量收集器的节点组成。系统以一定的活动间隔使用睡眠模式以节省电量。活动系统间隔是根据可以收集的每日能量确定的。通过智能手机应用程序以图形形式显示室温湿度数据。系统的每日能量需求基于微控制器,传感器的能量消耗以及由于电池自放电现象引起的能量损失。能量收集器电路使用晶体管基极上的匝数比和电阻值的四种配置进行了测试。每种配置均在800-1000 lux的光强度下进行了测试。能量收集器配置产生的最高输出功率用于确定可以收集的每日能量。结果表明,所收集的每日能量仍然不足以满足系统的能量需求。在未来的研究中,系统的能源需求将降到最低,并且收获的每日能源将增加。

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