Wang Yi-Ren, Huang Po-Chuan
Department of Aerospace Engineering, Tamkang University, Tamsui District, NewTaipei City 25137, Taiwan.
Sensors (Basel). 2024 Aug 17;24(16):5334. doi: 10.3390/s24165334.
This study introduces an innovative energy harvesting system designed for industrial applications such as fluid pipelines, air conditioning ducts, sewer systems, and subsea oil pipelines. The system integrates magneto-electric flow coupling and utilizes a dynamic vibration absorber (DVA) to mitigate the vibrations induced by fluid flow while simultaneously harvesting energy through magnetic dipole-dipole interactions in a vibration energy harvester (VEH). The theoretical models, based on Hamilton's Principle and the Biot-Savart Law, were validated through comprehensive experiments. The results indicate the superior performance of the small-magnet system over the large-magnet system in both damping and power generation. The study analyzed the frequency response and energy conversion efficiency across different parameters, including the DVA mass, spring constant, and placement location. The experimental findings demonstrated significant vibration reduction and increased voltage output, validating the theoretical model. This research offers new avenues for energy harvesting systems in pipeline infrastructures, potentially enhancing energy efficiency and structural integrity.
本研究介绍了一种创新的能量收集系统,该系统专为工业应用而设计,如流体管道、空调管道、下水道系统和海底输油管道。该系统集成了磁电流动耦合,并利用动态振动吸收器(DVA)来减轻流体流动引起的振动,同时通过振动能量收集器(VEH)中的磁偶极-偶极相互作用来收集能量。基于哈密顿原理和毕奥-萨伐尔定律的理论模型通过全面的实验得到了验证。结果表明,小磁体系统在阻尼和发电方面均优于大磁体系统。该研究分析了不同参数(包括DVA质量、弹簧常数和放置位置)下的频率响应和能量转换效率。实验结果表明,振动显著降低,电压输出增加,验证了理论模型。本研究为管道基础设施中的能量收集系统提供了新的途径,有望提高能源效率和结构完整性。