基于磁致伸缩材料的交流-直流升压能量收集装置的实验表征

C. S. Clemente, D. Davino, Immacolato Iannone, V. Loschiavo
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引用次数: 0

摘要

磁致伸缩合金因其固有的耐用性,在能量收集应用中大有可为。然而,它们的应用往往导致可用电压范围大大低于 1.6 伏、3.3 伏和 5 伏等常用电子标准。因此,利用电子电路放大电压和提高能量转换效率变得至关重要。在过去的几十年里,人们为其他智能材料(如压电材料)设计出了许多转换技术,其中一些甚至已应用于商业产品中。令人惊讶的是,针对磁致伸缩设备的专门技术却非常匮乏,甚至完全没有。在潜在的解决方案中,合适的交流-直流升压转换器是应对这一挑战的极有前途的候选方案,但这一解决方案从未被充分表征过。因此,本文对这种转换器进行了全面的实验验证,该转换器由实时 Arduino 电路板驱动,该电路板配备了测量源时间周期的功能,并可在各种条件下运行。我们介绍了几个案例,展示了该电路在增强磁致伸缩材料能量收集方面的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Characterization of an AC–DC Boost for Energy Harvesting Device Based on Magnetostrictive Materials
Magnetostrictive alloys hold great promise for Energy Harvesting applications due to their inherent durability. However, their implementation often results in usable voltage ranges that fall significantly below common electronic standards like 1.6, 3.3, and 5 volts. Consequently, the utilization of electronic circuits becomes essential to amplify the voltage and enhance energy conversion efficiency. Over the past few decades, numerous conversion techniques have been devised for other intelligent materials, such as piezoelectrics, some of which have even made their way into commercial products. Surprisingly, there is a dearth of specialized techniques, if not a complete absence, tailored to magnetostrictive devices. Among potential solutions, a suitable AC–DC Boost converter stands out as a highly promising candidate for addressing this challenge, but this solution has never been fully characterized. Then, this paper presents thorough experimental validations of such a converter, driven by a real-time Arduino board equipped to measure source time periods and operate under various conditions. We present several cases demonstrating the circuit’s substantial potential for enhancing energy harvesting from magnetostrictive materials.
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CiteScore
4.80
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