| Literature DB >> 33917665 |
Mahmuda Khatun Mishu1,2, Md Rokonuzzaman1,2, Jagadeesh Pasupuleti1, Mohammad Shakeri1, Kazi Sajedur Rahman3, Shuza Binzaid4, Sieh Kiong Tiong1, Nowshad Amin1,2.
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, ∆T = 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 ∆T = 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.Entities:
Keywords: energy harvesting (EH); hybrid energy harvesting (HEH); internet of things (IoT); low power electronic devices; solar photovoltaic; thermoelectric; wireless sensor networks (WSNs)
Year: 2021 PMID: 33917665 DOI: 10.3390/s21082604
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576