Yang Xiaokang, Xu Bingke, Shang Zhendong, Liu Chunyang, Cai Haichao, Hu Xiangyi
School of Mechatronics Engineering, Henan University of Science and Technology, Luoyang 471002, China.
Longmen Laboratory, Luoyang 471002, China.
Sensors (Basel). 2025 Mar 7;25(6):1657. doi: 10.3390/s25061657.
This study explores the potential effect of a cross-sectional shape with an arcuate protruding and depressed features on the performance. The geometric configurations include two feature types (protruding and depressed), each with six distinct perimeter arrangements and three depths per arrangement, yielding thirty-six different cross-sectional shapes for systematic evaluation. The aerodynamic characteristics and electrical performance are numerically analyzed, using a computational fluid dynamics model and a distributed parameter electromechanical coupling model, respectively. A smooth protruding feature on the front, top, or bottom side suppresses the electrical output; however, when located on the rear side, it significantly increases the slope of the power versus wind speed curve. Depressed features on the rear, top, or bottom side only reduce the critical wind speed and the power enhancement positively correlates with the feature depth. Compared to a square, a harvester with depressed feature on both top and bottom sides exhibits a significant jump in power at the critical wind speed, greatly improving the power. These findings provide important design guidelines for structural optimization of galloping piezoelectric energy harvesters, enabling them to match the wind energy distribution characteristics of specific regions with optimal performance.
本研究探讨了具有弧形突出和凹陷特征的横截面形状对性能的潜在影响。几何构型包括两种特征类型(突出和凹陷),每种类型有六种不同的周边排列方式,且每种排列方式有三种深度,从而产生三十六种不同的横截面形状用于系统评估。分别使用计算流体动力学模型和分布参数机电耦合模型对空气动力学特性和电气性能进行了数值分析。在前侧、顶部或底部的光滑突出特征会抑制电输出;然而,当位于后侧时,它会显著增加功率与风速曲线的斜率。在后侧、顶部或底部的凹陷特征仅降低临界风速,且功率增强与特征深度呈正相关。与方形相比,顶部和底部均具有凹陷特征的采集器在临界风速下功率有显著跃升,极大地提高了功率。这些发现为驰振压电能量采集器的结构优化提供了重要的设计指导,使其能够以最佳性能匹配特定区域的风能分布特性。