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一种用于自供电物联网传感器应用的自适应热释电-压电混合能量收集系统。

An Adaptive TE-PV Hybrid Energy Harvesting System for Self-Powered IoT Sensor Applications.

作者信息

Mishu Mahmuda Khatun, Rokonuzzaman Md, Pasupuleti Jagadeesh, Shakeri Mohammad, Rahman Kazi Sajedur, Binzaid Shuza, Tiong Sieh Kiong, Amin Nowshad

机构信息

Institute of Sustainable Energy (ISE), Universiti Tenaga Nasional, Kajang 43000, Selangor, Malaysia.

College of Engineering (COE), Universiti Tenaga Nasional, Kajang 43000, Selangor, Malaysia.

出版信息

Sensors (Basel). 2021 Apr 8;21(8):2604. doi: 10.3390/s21082604.

Abstract

In this paper, an integrated thermoelectric (TE) and photovoltaic (PV) hybrid energy harvesting system (HEHS) is proposed for self-powered internet of thing (IoT)-enabled wireless sensor networks (WSNs). The proposed system can run at a minimum of 0.8 V input voltage under indoor light illumination of at least 50 lux and a minimum temperature difference, ∆ = 5 °C. At the lowest illumination and temperature difference, the device can deliver 0.14 W of power. At the highest illumination of 200 lux and ∆ = 13 °C, the device can deliver 2.13 W. The developed HEHS can charge a 0.47 F, 5.5 V supercapacitor (SC) up to 4.12 V at the combined input voltage of 3.2 V within 17 s. In the absence of any energy sources, the designed device can back up the complete system for 92 s. The sensors can successfully send 39 data string to the webserver within this time at a two-second data transmission interval. A message queuing telemetry transport (MQTT) based IoT framework with a customised smartphone application 'MQTT dashboard' is developed and integrated with an ESP32 Wi-Fi module to transmit, store, and monitor the sensors data over time. This research, therefore, opens up new prospects for self-powered autonomous IoT sensor systems under fluctuating environments and energy harvesting regimes, however, utilising available atmospheric light and thermal energy.

摘要

本文提出了一种集成热电(TE)和光伏(PV)的混合能量收集系统(HEHS),用于支持物联网(IoT)的自供电无线传感器网络(WSN)。所提出的系统在室内光照至少50勒克斯且最小温差∆ = 5°C的情况下,能够在最低0.8V的输入电压下运行。在最低光照和温差条件下,该设备可输出0.14W的功率。在200勒克斯的最高光照和∆ = 13°C的条件下,该设备可输出2.13W的功率。所开发的HEHS在3.2V的组合输入电压下,能够在17秒内将一个0.47F、5.5V的超级电容器(SC)充电至4.12V。在没有任何能源的情况下,所设计的设备可为整个系统提供92秒的备用电源。在此期间,传感器能够以两秒的数据传输间隔成功地向网络服务器发送39个数据串。开发了一个基于消息队列遥测传输(MQTT)的物联网框架,并集成了一个定制的智能手机应用程序“MQTT仪表板”,以及一个ESP32 Wi-Fi模块,用于随时间传输、存储和监测传感器数据。因此,本研究为波动环境和能量收集模式下的自供电自主物联网传感器系统开辟了新的前景,即利用可用的大气光和热能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4550/8068088/f3627ca17d80/sensors-21-02604-g001.jpg

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