← 返回
一种受指尖陀螺启发的混合微风风能采集器,用于自供能无线环境监测系统
A fidget spinner-inspired hybrid breeze wind energy harvester for self-sustainable wireless environmental monitoring system
语言:
中文摘要
摘要 从不稳定的微风中产生显著能量对风力驱动的能量采集器而言是一个重大挑战。为应对这一问题,本文提出并开发了一种受指尖陀螺启发的微风风能采集器,旨在最大化从微风中捕获能量。该装置借鉴指尖陀螺的力学原理,转子在单次激励下可持续旋转约25秒,从而实现从不稳定微风中连续采集能量。类似地,该装置采用定制设计的螺母和螺栓来承载磁体负载,使轴仅专注于驱动转子旋转,而无需承受磁体的重量。这一优化促进了从微风中高效采集能量,并提升了发电性能。通过进一步堆叠六个磁体以增强输出功率,在3 m/s的风速下实现了75.82 mW/m³的功率密度——这是目前在此类条件下报道的最高值。此外,该装置还集成了一个自供能风速传感器(灵敏度为1.91 μA/(m/s)),利用兔毛与苯乙烯-乙烯-丁烯-苯乙烯共聚物(SEBS)结合产生摩擦电效应。该传感器采用叉指状花形激光诱导石墨烯(LIG)电极,通过简便的激光刻写技术制备,并可轻松转移至SEBS基底上,无需复杂的制造工艺或粘合剂。作为概念验证,该装置已在火车站、公共公园等多风环境中部署,用于实时环境监测,展示了其从微风中采集大量能量的能力以及在实际应用中的可行性。
English Abstract
Abstract Generating significant energy from inconsistent breeze winds poses a major challenge for wind-driven energy harvesters. To address this, a fidget spinner-inspired breeze wind energy harvester is newly proposed and developed to maximize energy capture from breeze winds. Leveraging the mechanics of a fidget spinner, the rotor can spin for approximately 25 s with single actuation, enabling continuous energy harvesting from inconsistent breeze winds. Similarly, the device incorporates custom-designed nuts and bolts to support magnetic load, enabling shaft to focus solely on rotating the rotor without the need to bear the magnet’s load. This optimization promotes effective energy harvesting from breezy winds and enhances energy generation. With six stacked magnets further boosting power output, a power density of 75.82 mW/m 3 is achieved at wind speed of 3 m/s—the highest reported for such conditions. Additionally, the device includes a self-powered wind speed sensor (sensitivity 1.91 μ A / ms - 1 ), which generates a triboelectric signal using rabbit fur in combination with Styrene–Ethylene–Butylene–Styrene (SEBS). This sensor features interdigitated, flower-patterned, Laser-Induced Graphene (LIG) electrodes that are fabricated via a facile laser scribing technique and can easily transferred onto SEBS substrate without complex fabrication techniques or adhesives. As a proof of concept, the device is deployed in breezy environments like train stations and public parks for real-time environmental monitoring, demonstrating its potential to harvest substantial energy from breeze winds and feasibility for real-world applications.
S
SunView 深度解读
该微风能量采集技术对阳光电源分布式储能系统具有启发意义。其高转动惯量设计和磁悬浮轴承优化思路,可应用于ST系列储能PCS的飞轮储能模块,提升微电网场景下的能量缓冲能力。自供电风速传感技术可集成至iSolarCloud平台,为光伏电站提供免维护的微气象监测方案。激光诱导石墨烯电极制备工艺,对PowerTitan储能系统的柔性传感器开发具有参考价值,可降低环境监测模块成本,增强储能系统智能化水平。