可持续混合能量收集的应用:综述

IF 1.6 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Low Power Electronics and Applications Pub Date : 2023-11-26 DOI:10.3390/jlpea13040062
Hamna Shaukat, Ahsan Ali, Shaukat Ali, Wael A. Altabey, Mohammad N. Noori, S. A. Kouritem
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引用次数: 0

摘要

本文简要回顾了可持续混合能源采集及其应用。自供电无线传感器(WSN)系统的潜在用途最近引起了人们对可持续能源采集的广泛关注。这项研究的目的是确定混合能量收集器的潜力,以帮助单一能量收集器克服能量不足的问题。研究的主要结果表明,混合能源采集集成了各种能源转换技术,可以增加功率输出,提高空间利用效率。混合能源采集涉及从多种来源收集能量,并利用各种转换机制将其转换为电能。通过适当整合不同的能量转换技术,混合能源可显著增加功率输出,提高空间利用效率。在此,我们综述了用于可持续绿色能源采集的混合能源采集系统的最新进展及其在不同领域的应用。本文首先介绍了混合能量收集,展示了不同的混合能量收集器配置,即压电能量收集器和电磁能量收集器的集成;压电能量收集器和三电能收集器的集成;压电能量收集器、三电能收集器和电磁能量收集器的集成等。本综述还概述了文献中报道的常见混合系统的输出性能。随后,还讨论了混合能量收集的各种潜在应用,展示了该技术的实用性。最后,本文对未来研究提出了建议,以克服混合能量收集器开发过程中的困难。这些建议围绕提高能量转换效率、开发先进的集成技术和研究新的混合配置展开。总之,本研究提供了有关可持续混合能源采集的深刻信息,以及定量信息、数值结果和有用的研究建议,以推动和促进该技术的使用。
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Applications of Sustainable Hybrid Energy Harvesting: A Review
This paper provides a short review of sustainable hybrid energy harvesting and its applications. The potential usage of self-powered wireless sensor (WSN) systems has recently drawn a lot of attention to sustainable energy harvesting. The objective of this research is to determine the potential of hybrid energy harvesters to help single energy harvesters overcome their energy deficiency problems. The major findings of the study demonstrate how hybrid energy harvesting, which integrates various energy conversion technologies, may increase power outputs, and improve space utilization efficiency. Hybrid energy harvesting involves collecting energy from multiple sources and converting it into electrical energy using various transduction mechanisms. By properly integrating different energy conversion technologies, hybridization can significantly increase power outputs and improve space utilization efficiency. Here, we present a review of recent progress in hybrid energy-harvesting systems for sustainable green energy harvesting and their applications in different fields. This paper starts with an introduction to hybrid energy harvesting, showing different hybrid energy harvester configurations, i.e., the integration of piezoelectric and electromagnetic energy harvesters; the integration of piezoelectric and triboelectric energy harvesters; the integration of piezoelectric, triboelectric, and electromagnetic energy harvesters; and others. The output performance of common hybrid systems that are reported in the literature is also outlined in this review. Afterwards, various potential applications of hybrid energy harvesting are discussed, showing the practical attainability of the technology. Finally, this paper concludes by making recommendations for future research to overcome the difficulties in developing hybrid energy harvesters. The recommendations revolve around improving energy conversion efficiency, developing advanced integration techniques, and investigating new hybrid configurations. Overall, this study offers insightful information on sustainable hybrid energy harvesting together with quantitative information, numerical findings, and useful research recommendations that progress and promote the use of this technology.
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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
期刊最新文献
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