Yang Jie, Chen Yingchun
College of Architecture and Civil Engineering, Beijing University of Technology, Beijing 100124, China.
Materials (Basel). 2025 Mar 27;18(7):1503. doi: 10.3390/ma18071503.
With the rapid development of urban rail transit, the floating slab vibration isolation system has become widely used in the field due to its effective vibration reduction and isolation capabilities. Traditional floating slab vibration-isolation systems mainly focus on blocking vibration transmission, neglecting energy harvesting. This paper proposes a magnetic-coupled double-wing negative stiffness energy harvester for floating slabs. A single-wing piezoelectric beam model and a finite element model of the magnetic-coupled module are established. The modal and output characteristics of the single-wing piezoelectric beam are analyzed. Furthermore, the force characteristics of the magnetically coupled negative stiffness module are analyzed. The results show that the contribution of its width to the modal frequency gradually decreases with an increase in the length of the single-wing piezoelectric beam. The thickness significantly influences the characteristic frequency, and the load is exponentially related to the output power. At the optimal load and characteristic frequency of the single-wing piezoelectric beam, the output characteristics decrease with an increase in the width. The peak value of the magnetic-coupled negative stiffness gradually decreases with an increase in the magnetic gap. The increase in remanent magnetic strength indicates that the initial state of the magnetic ring is more easily affected by external conditions. The change in axial magnetic force becomes significant with increased displacement. This research enriches the theoretical systems of piezoelectric energy harvesting technology and magnetic-coupled negative stiffness mechanism while providing important theoretical support for subsequent experimental research, optimal design, and practical applications.
随着城市轨道交通的快速发展,浮置板隔振系统因其有效的减振和隔振能力而在该领域得到广泛应用。传统的浮置板隔振系统主要侧重于阻断振动传递,而忽视了能量收集。本文提出了一种用于浮置板的磁耦合双翼负刚度能量收集器。建立了单翼压电梁模型和磁耦合模块的有限元模型。分析了单翼压电梁的模态和输出特性。此外,还分析了磁耦合负刚度模块的受力特性。结果表明,其宽度对模态频率的贡献随着单翼压电梁长度的增加而逐渐减小。厚度对特征频率有显著影响,负载与输出功率呈指数关系。在单翼压电梁的最佳负载和特征频率下,输出特性随宽度的增加而降低。磁耦合负刚度的峰值随着磁隙的增加而逐渐减小。剩余磁强度的增加表明磁环的初始状态更容易受到外部条件的影响。轴向磁力的变化随着位移的增加而变得显著。本研究丰富了压电能量收集技术和磁耦合负刚度机理的理论体系,同时为后续的实验研究、优化设计和实际应用提供了重要的理论支持。