电器与能效管理技术 ›› 2025, Vol. 0 ›› Issue (9): 71-77.doi: 10.16628/j.cnki.2095-8188.2025.09.010

• 电器设计与探讨 • 上一篇    下一篇

高效环境声能拾取与声电电源设计研究

江思乐   

  1. 上海星河湾双语学校, 上海 201108
  • 收稿日期:2025-06-11 出版日期:2025-09-30 发布日期:2025-10-31
  • 作者简介:江思乐(2010—),男,研究方向为声能采集技术。

Research on Efficient Environmental Acoustic Energy Harvesting and Acoustic-Electrical Power Supply Design

JIANG Sile   

  1. Shanghai Star River Bilingual School, Shanghai 201108, China
  • Received:2025-06-11 Online:2025-09-30 Published:2025-10-31

摘要:

针对复杂环境中清洁能源供给难题,提出一种基于聚偏氟乙烯(PVDF)压电薄膜的声电电源系统,通过高效环境声能拾取与转换技术实现低功耗设备自供电。分析了高电压变电站、高山、海洋及阴雨环境的声源频谱特征,结合聚声罩声聚焦效应与COMSOL声学仿真,优化声电转换阵列结构与布局。声电电源的电路设计采用肖特基二极管整流、1 F法拉电容储能及TPS63900稳压芯片来保证电能的稳定输出。研究结果表明,所提声电转换阵列及其最优布置能够使集能器采集声压提高至原始发射声压的387.8%,可高效捕获10 Hz~20 kHz环境声能,并通过电路设计可实现1.8~5.0 V理论稳定输出,有效解决声能波动问题。最终,在实验室40~45 dB的声压级场景中,验证了所提声电电源样机对主要可听声波段具有良好的电压输出响应。设计为特殊场景的能量自供给提供了新方案,未来可进一步优化材料性能与电路效率,推动其规模化应用。

关键词: 环境声能拾取, 声电转换, 声电电源, 自供电系统

Abstract:

To address the challenges of clean energy supply in complex environments,an acoustic-electric power system based on polyvinylidene fluoride (PVDF) piezoelectric films is proposed to achieve self-powering for low-power devices through efficient environmental acoustic energy harvesting and conversion.By analyzing the spectral characteristics of sound sources in high voltage substations,mountainous regions,marine environments,and rainy conditions,combined with the acoustic focusing effect of a sound concentrator and COMSOL acoustic simulations,the structure and layout of the acoustic-electric conversion array are optimized.The circuit design employs Schottky diode rectification,a 1 F supercapacitor for energy storage,and a TPS63900 voltage regulator chip to ensure stable power output.Results demonstrate that the proposed acoustic-electric conversion array with its optimal configuration enhances the collected sound pressure to 387.8% of the original emission pressure,efficiently capturing environmental acoustic energy within 10 Hz-20 kHz.The circuit design theoretically achieves a stable output of 1.8-5.0 V,effectively resolving acoustic energy fluctuations.Experimental validation in a laboratory environment with 40-45 dB sound pressure level (SPL) confirmed the prototype’s robust voltage output response across the primary audible frequency band.The design provides a novel solution for energy self-supply in specialized scenarios.Future work will focus on optimizing material and circuit efficiency to advance its large-scale applications.

Key words: environmental acoustic energy harvesting, acoustic-electric conversion, acoustic-electrical power supply, self-powered system

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