An Optimized Energy Harvesting Circuit for Low-Power IoT Applications

The concept and development of an independent energy harvesting mechanism functioning intermittently are described in this paper. A power management circuit (PMC) that is self-regulating, an energy scavenging module, a circuit for charging batteries, as well as an electronic load are all a compon...

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Prif Awduron: Barua, Arnob, Rasel, Salauddin
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Cyhoeddwyd: Research and Development Wing, MIST 2023
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Mynediad Ar-lein:http://dspace.mist.ac.bd:8080/xmlui/handle/123456789/739
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author Barua, Arnob
Rasel, Salauddin
author_browse Barua, Arnob
Rasel, Salauddin
author_facet Barua, Arnob
Rasel, Salauddin
author_sort Barua, Arnob
collection DSpace
description The concept and development of an independent energy harvesting mechanism functioning intermittently are described in this paper. A power management circuit (PMC) that is self-regulating, an energy scavenging module, a circuit for charging batteries, as well as an electronic load are all a component of the system that has been proposed. This proposed circuit is designed to attain a fixed output power with a diverse input range. In the unavailability of an additional voltage supply, the PMC can react, maintain, and smartly control the electronic load's power supply. The self-powered energy accumulating technique is expected to be used in situations when supplied power is inadequate to drive the load properly, such as Internet of Things (IoT) applications. IoT is a dispersed architecture of reduced-power, limited-storage, lightweight, and nodes that are adaptive. The majority of embedded IoT devices and low-power IoT sensors are driven by short-life batteries that must be replaced every few years. This procedure is expensive and efficient energy regulation could be critical in enabling energy savings for connecting IoT devices. Experiments with the proposed PMC show that the voltage stored in the capacitor remained mostly fixed at 3.3V at widely diverse inputs that vary from 850mV to 4V. At 3.5V input voltage, a peak efficiency of 88.67% is achieved while the load resistance considered is 230Ω.
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spelling oai:localhost:123456789-7392023-01-22T05:24:05Z An Optimized Energy Harvesting Circuit for Low-Power IoT Applications Barua, Arnob Rasel, Salauddin energy harvesting, power management circuit, self-regulating, stable output power, internet of things The concept and development of an independent energy harvesting mechanism functioning intermittently are described in this paper. A power management circuit (PMC) that is self-regulating, an energy scavenging module, a circuit for charging batteries, as well as an electronic load are all a component of the system that has been proposed. This proposed circuit is designed to attain a fixed output power with a diverse input range. In the unavailability of an additional voltage supply, the PMC can react, maintain, and smartly control the electronic load's power supply. The self-powered energy accumulating technique is expected to be used in situations when supplied power is inadequate to drive the load properly, such as Internet of Things (IoT) applications. IoT is a dispersed architecture of reduced-power, limited-storage, lightweight, and nodes that are adaptive. The majority of embedded IoT devices and low-power IoT sensors are driven by short-life batteries that must be replaced every few years. This procedure is expensive and efficient energy regulation could be critical in enabling energy savings for connecting IoT devices. Experiments with the proposed PMC show that the voltage stored in the capacitor remained mostly fixed at 3.3V at widely diverse inputs that vary from 850mV to 4V. At 3.5V input voltage, a peak efficiency of 88.67% is achieved while the load resistance considered is 230Ω. 2023-01-22T05:24:03Z 2023-01-22T05:24:03Z 2022-06 Article 2224-2007 http://dspace.mist.ac.bd:8080/xmlui/handle/123456789/739 en application/pdf Research and Development Wing, MIST
spellingShingle energy harvesting, power management circuit, self-regulating, stable output power, internet of things
Barua, Arnob
Rasel, Salauddin
An Optimized Energy Harvesting Circuit for Low-Power IoT Applications
title An Optimized Energy Harvesting Circuit for Low-Power IoT Applications
title_full An Optimized Energy Harvesting Circuit for Low-Power IoT Applications
title_fullStr An Optimized Energy Harvesting Circuit for Low-Power IoT Applications
title_full_unstemmed An Optimized Energy Harvesting Circuit for Low-Power IoT Applications
title_short An Optimized Energy Harvesting Circuit for Low-Power IoT Applications
title_sort optimized energy harvesting circuit for low power iot applications
topic energy harvesting, power management circuit, self-regulating, stable output power, internet of things
url http://dspace.mist.ac.bd:8080/xmlui/handle/123456789/739
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