Li Xiaotao, Wang Shengjiang, Peng Xiangyou, Xu Guan, Dong Jingshi, Tian Fengjun, Zhang Qiuyu
School of Mechanical and Aerospace Engineering, Nanling Campus, Jilin University, Changchun 130025, China.
Transportation College, Nanling Campus, Jilin University, Changchun 130025, China.
Sensors (Basel). 2023 Oct 8;23(19):8314. doi: 10.3390/s23198314.
Piezoelectric accurate actuation plays an important role in industrial applications. The intrinsic frequency of previous actuators is invariable. However, variable frequency can approach the range near the low-intrinsic-frequency and realize a high actuation capability. The frequency-variable linear and rotary motion (FVLRM) principle is proposed for rotor-blade-based two-degree-of-freedom driving. Inertial force is generated by frequency-variable piezoelectric oscillators (FVPO), the base frequency and vibration modes of which are adjustable by the changeable mass and position of the mass block. The variable-frequency principle of FVPO and the FVLRM are recognized and verified by the simulations and experiments, respectively. The experiments show that the FVLRM prototype moves the fastest when the mass block is placed at the farthest position and the prototype is at the second-order intrinsic frequencies of 42 Hz and 43 Hz, achieving a linear motion of 3.52 mm/s and a rotary motion of 286.9 mrad/s. The actuator adopts a lower operating frequency of less than 60 Hz and has the function of adjusting the natural frequency. It can achieve linear and rotational motion with a larger working stroke with 140 mm linear movement and 360° rotation.
压电精确驱动在工业应用中起着重要作用。以往的驱动器固有频率是固定不变的。然而,可变频率能够接近低固有频率附近的范围并实现高驱动能力。针对基于转子叶片的两自由度驱动提出了变频直线和旋转运动(FVLRM)原理。惯性力由变频压电振荡器(FVPO)产生,其基频和振动模式可通过质量块的可变质量和位置进行调节。FVPO的变频原理和FVLRM分别通过仿真和实验得到了验证。实验表明,当质量块置于最远位置且原型处于42Hz和43Hz的二阶固有频率时,FVLRM原型移动速度最快,实现了3.52mm/s的直线运动和286.9mrad/s的旋转运动。该驱动器采用低于60Hz的较低工作频率,并具有调节固有频率的功能。它能够以140mm的直线运动和360°旋转的较大工作行程实现直线和旋转运动。