Rolo Pedro, Vidal João V, Kholkin Andrei L, Soares Dos Santos Marco P
Department of Mechanical Engineering and TEMA - Centre for Mechanical Technology & Automation, University of Aveiro, 3810-193, Aveiro, Portugal.
Department of Physics and CICECO - Aveiro Institute of Materials, University of Aveiro, 3810-193, Aveiro, Portugal.
Commun Eng. 2024 Jul 31;3(1):105. doi: 10.1038/s44172-024-00249-6.
Triboelectric and piezoelectric energy harvesters can hardly power most microelectronic systems. Rotational electromagnetic harvesters are very promising alternatives, but their performance is highly dependent on the varying mechanical sources. This study presents an innovative approach to significantly increase the performance of rotational harvesters, based on dynamic coil switching strategies for optimization of the coil connection architecture during energy generation. Both analytical and experimental validations of the concept of self-adaptive rotational harvester were carried out. The adaptive harvester was able to provide an average power increase of 63.3% and 79.5% when compared to a non-adaptive 16-coil harvester for harmonic translation and harmonic swaying excitations, respectively, and 83.5% and 87.2% when compared to a non-adaptive 8-coil harvester. The estimated energy conversion efficiency was also enhanced from ~80% to 90%. This study unravels an emerging technological approach to power a wide range of applications that cannot be powered by other vibrationally driven harvesters.
摩擦电和压电能量采集器几乎无法为大多数微电子系统供电。旋转电磁能量采集器是非常有前景的替代方案,但其性能高度依赖于变化的机械源。本研究提出了一种创新方法,基于动态线圈切换策略在能量产生过程中优化线圈连接架构,以显著提高旋转能量采集器的性能。对自适应旋转能量采集器的概念进行了分析和实验验证。与非自适应16线圈能量采集器相比,自适应能量采集器在谐波平移和谐波摆动激励下,平均功率分别提高了63.3%和79.5%;与非自适应8线圈能量采集器相比,分别提高了83.5%和87.2%。估计的能量转换效率也从约80%提高到了90%。本研究揭示了一种新兴的技术方法,可为其他振动驱动能量采集器无法供电的广泛应用提供电力。