Zhang Xuhui, Xu Hengtao, Chen Xiaoyu, Zhu Fulin, Guo Yan, Tian Hao
College of Mechanical Engineering, Xi'an University of Science and Technology, Xi'an 710054, China.
Shaanxi Key Laboratory of Mine Electromechanical Equipment Intelligent Monitoring, Xi'an University of Science and Technology, Xi'an 710054, China.
Micromachines (Basel). 2022 Sep 4;13(9):1465. doi: 10.3390/mi13091465.
Vibration energy harvesting technology is expected to solve the power supply and endurance problems of wireless sensor systems, realize the self-power supply of wireless sensor systems in coal mines, and promote the intelligent development of coal mine equipment. A combined beam tri-stable piezoelectric energy harvester (CTPEH) is designed by introducing magnetic force into the combined beam structure. In order to explore the vibration characteristics of CTPEH, a nonlinear magnetic model is obtained based on the magnetic dipole theory, and the dynamic equation of the system is established using the Lagrange theorem and Rayleigh-Ritz theory. The influence of the different magnet distances and excitation conditions on the static bifurcation characteristics and dynamic response characteristics of the system are analyzed by numerical simulation, and the simulation results are validated by the experiments. The research results show that the motion state of the CTPEH system has four transition forms from mono-stable to tri-stable with the change in magnet distance. The tri-stable system has three potential energy curves with different characteristic shapes. The appropriate starting excitation position and excitation frequency can make it easier for the system to realize a large-amplitude response state, thereby improving the output performance of the system. This research provides new ideas and methods for optimizing the performance of the combined beam piezoelectric energy harvester.
振动能量采集技术有望解决无线传感器系统的供电和续航问题,实现煤矿无线传感器系统的自供电,推动煤矿设备智能化发展。通过在组合梁结构中引入磁力,设计了一种组合梁三稳态压电能量采集器(CTPEH)。为探究CTPEH的振动特性,基于磁偶极子理论得到非线性磁模型,并利用拉格朗日定理和瑞利-里兹理论建立系统动力学方程。通过数值模拟分析了不同磁距和激励条件对系统静态分岔特性和动态响应特性的影响,并通过实验验证了模拟结果。研究结果表明,随着磁距的变化,CTPEH系统的运动状态有从单稳态到三稳态的四种转变形式。三稳态系统有三条具有不同特征形状的势能曲线。合适的起始激励位置和激励频率能使系统更容易实现大幅响应状态,从而提高系统输出性能。该研究为优化组合梁压电能量采集器的性能提供了新的思路和方法。