基于压电驱动的自感知振动抑制研究

刘永斌1,2,陈凤林1,张连生2,张 平2

振动与冲击 ›› 2015, Vol. 34 ›› Issue (12) : 42-45.

PDF(1735 KB)
PDF(1735 KB)
振动与冲击 ›› 2015, Vol. 34 ›› Issue (12) : 42-45.
论文

基于压电驱动的自感知振动抑制研究

  • 刘永斌1,2,陈凤林1,张连生2,张 平2
作者信息 +

Investigation in Self-Sensing Vibration Suppressing Based on Charger Driven Piezoelements

  • Liu Yongbin1,2, Chen Fenglin1, Zhang Liansheng2, Zhang Ping2
Author information +
文章历史 +

摘要

提出一种压电自感知电荷驱动方法,研究用同一压电元件在抑制振动的同时又能感知振动状态。该方法控制电路简单,在智能结构中易于实现,且电路调节方便,振动抑制效果好。将该方法应用于悬臂梁的一阶振动抑制,悬臂梁自由端振幅可被抑制约达90%。实验结果表明,该方法在驱动压电元件致动的同时可感知结构的运动状态,有望应用于诸如扫描探针显微镜、智能结构监测与控制等领域中。

Abstract

A method of self-sensing charger driver for piezoelements was presented. The possibility was investigated that a piezoelectric element is utilized as a sensor while actuating based on the presented method. The control circuit of the method is simple, convenient to be adjusted and easy to be implemented in smart structures. And it is effective to damp vibration of beam using the method. The amplitude of the vibration was actively damped by a factor exceeding 90%, when the method is applied to the first-order cantilever vibration suppression. Experimental results show that the piezoelectric actuator can effectively perceive structure motion while being driven by charger driver. Furthermore, the method can also be used in numerous fields, such as scanning probe microscopy, monitoring and control of smart structures.

关键词

自感知 / 振动抑制 / 电荷驱动 / 压电元件

Key words

Self-sensing / Vibration Suppressing / Charger Driver / Piezoelements

引用本文

导出引用
刘永斌1,2,陈凤林1,张连生2,张 平2. 基于压电驱动的自感知振动抑制研究[J]. 振动与冲击, 2015, 34(12): 42-45
Liu Yongbin1,2, Chen Fenglin1, Zhang Liansheng2, Zhang Ping2. Investigation in Self-Sensing Vibration Suppressing Based on Charger Driven Piezoelements[J]. Journal of Vibration and Shock, 2015, 34(12): 42-45

参考文献

[1]. G. Song, P. Z. Qiao, et al, Active Vibration Damping of Composite Beam using Smart Sensors and Actuators[J], Journal of Aerospace Engineering, Vol. 15, No.3(2002)97-103.
[2]. C.M.A. Vasques, J. Dias Rodrigues, Active vibration control of smart piezoelectric beams: Comparison of classical and optimal feedback control strategies[J], Computers and Structures 84 (2006) 1402-1414.
[3]. Jeffrey J. Dosch, Daniel J. Inman, A Self-Sensing Piezoelectric Actuator for Collocated Control[J], J. of Intell. Mater. Syst. And Struct., Vol. 3, January 1992.
[4]. 胡芳,张志谊, 华宏星,振动控制中压电作动器非线性的补偿方法研究[J],振动与冲击,2010,29(11):55-60.
HU Fang, ZHANG Zh yi, HUA Hongxing, A compensation method for nonlinearity of piezoelectric actuators in vibration control[J], JOURNAL OF VIBRATION AND SHOCK, Vo.l 29 No. 11, 2010,55-60.
[5]. 任建亭,闫云聚,姜节胜,振动控制传感器/作动器的数目和位置优化设计[J],振动工程学报,2001,14(2):237-241.
Ren Jianting, Yan Yunju, Jiang Jiesheng, Optimal Design Method for Sensors/Actuators Placement and Numbers in the Vibration Control of Flexible Structure System[J], Journal of Vibration Engineering, Vo l. 14(2), 2001, 237-241.
[6]. S. Kuiper, G. Schitter, Active damping of a piezoelectric tube scanner using self-sensing piezo actuation[J], Mechatronics 20 (2010) 656-665.
[7]. Christian Rudolf, Thomas Martin, et al, Control of PKM machine tools using piezoelectric self-sensing actuators on basis of the functional principle of a scale with a vibrating string[J], Smart Structures and Systems, Vol. 6, No. 2 (2010) 167-182.
[8]. Liang Huang, Yu Ting Ma, et al, Switched capacitor charge pump reduces hysteresis of piezoelectric actuators over a large frequency range[J], Rev. Sci. Instrum. 81, 094701, 2010.
[9]. Yu Ting Ma, Liang Huang, et al, Note: Creep character of piezoelectric actuator under switched capacitor charge pump control[J], Rev. Sci. Instrum. 82, 046106 (2011).
[10]. Sun Guojun, Zhao Shexu, Material Mechanics[M], Shanghai: Shanghai jiaotong university press, 2006.

PDF(1735 KB)

Accesses

Citation

Detail

段落导航
相关文章

/