基于耦合振动的高性能可变形压电风能收集器的设计与特性分析

IF 8.6 2区 工程技术 Q1 ENERGY & FUELS Sustainable Materials and Technologies Pub Date : 2024-09-30 DOI:10.1016/j.susmat.2024.e01134
Zemeng Yang , Yucun Zhang , Zhe Li , Shijie Lin , Zhonghua Zhang , Linfei Fu , Junwu Kan
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引用次数: 0

摘要

目前的涡流诱导振动压电风能收集器工作风速范围较窄,而疾驰压电风能收集器在高风速下有可能因振幅过大而损坏,因此提出了一种基于耦合振动的新型高性能可变形压电风能收集器(DPWEH)。改变复合钝体的形状可有效改变涡流的脱落特性和强度,从而影响系统的振动模式和输出电压。振动模式从奔腾振动过渡到耦合振动,最终过渡到涡流诱导振动。刚性机翼和长弹性梁抑制了高风速下的奔腾。较薄的弹性机翼可延长耦合振动的持续时间。较小的翼宽比和较大的 Y 型基翼宽度有利于提高输出电压。通过优化复合钝体的参数,可以有效降低起始风速,扩大有效风速带宽,延长 DPWEH 的耦合振动时间,同时稳定发电。在负载为 150 kΩ 时,峰值输出功率为 0.36 mW。此外,该能量收集器还展示了信号发射器和 100 盏 LED 灯的长时间发电能力。
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Design and characteristic analysis of a high-performance deformable piezoelectric wind energy harvester based on coupled vibrations
The current vortex-induced vibration piezoelectric wind energy harvesters have a narrow operating wind speed range, while galloping piezoelectric energy harvesters are at risk of damage from excessive amplitude at high wind speeds, a novel high-performance deformable piezoelectric wind energy harvester based on coupled vibrations (DPWEH) has been proposed. The alteration of the compound blunt body shape effectively modifies the shedding characteristics and intensity of vortices, subsequently influencing the vibration mode and output voltage of the system. The vibration mode transitions from galloping to coupled vibration, ultimately to vortex-induced vibration. The rigid wing and long elastic beam suppress galloping at high wind speeds. A thinner flexible wing can extend the duration of coupled vibration. A smaller wing width ratio and larger Y-type base wing width are beneficial for increasing the output voltage. By optimizing the parameters of the compound blunt body, the onset wind speed can be effectively reduced, the effective wind speed bandwidth can be expanded, and the DPWEH can undergo coupled vibration for an extended duration while stably generating electricity. The peak output power is 0.36 mW at a load of 150 kΩ. Moreover, the energy harvester demonstrates the prolonged power generation capability of signal transmitters and 100 LED lights.
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来源期刊
Sustainable Materials and Technologies
Sustainable Materials and Technologies Energy-Renewable Energy, Sustainability and the Environment
CiteScore
13.40
自引率
4.20%
发文量
158
审稿时长
45 days
期刊介绍: Sustainable Materials and Technologies (SM&T), an international, cross-disciplinary, fully open access journal published by Elsevier, focuses on original full-length research articles and reviews. It covers applied or fundamental science of nano-, micro-, meso-, and macro-scale aspects of materials and technologies for sustainable development. SM&T gives special attention to contributions that bridge the knowledge gap between materials and system designs.
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