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J4  2013, Vol. 47 Issue (4): 720-727    DOI: 10.3785/j.issn.1008-973X.2013.04.024
    
Displacement coupling analysis of micro/nano transmission platform
LIN Chao, TAO You-tao, CHENG Kai, YU Song-song, LIU Lei
State Key Laboratory of Mechanical Transmission, Chongqing University, Chongqing 400030, China
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Abstract  

The finite element model of micro/nano transmission platform was established according to mechanical design, mechanical principles, finite element method and linear analysis theories. The calculation formulas for displacement coupling of the platform were derived, and the decoupling equations along each moving directions were acquired. The multi-scale displacement coupling effect of micro/nano transmission platform was analyzed combined with coupling analysis diagrams. Then the displacement coupling regulations of moving along X, Y, Z axes and rotating around X, Y axes were acquired respectively. The caused coupling displacement along Z axis is minimum and the platform has the highest position accuracy. The responsive coupling displacements along X and Y axis are maximum. The displacement compensation was performed on the movement directions which have great coupling displacement. The experimental results accorded well with the finite element simulation and theoretical results through constructing experimental platform and testing, which verified the validity of the method.



Published: 01 April 2013
CLC:  TH 139  
Cite this article:

LIN Chao, TAO You-tao, CHENG Kai, YU Song-song, LIU Lei. Displacement coupling analysis of micro/nano transmission platform. J4, 2013, 47(4): 720-727.

URL:

http://www.zjujournals.com/eng/10.3785/j.issn.1008-973X.2013.04.024     OR     http://www.zjujournals.com/eng/Y2013/V47/I4/720


微/纳传动平台的位移耦合分析

根据机械设计、机械原理、有限元法及线性分析理论,建立微/纳传动平台的有限元模型,推导该平台的位移耦合计算公式,得到该平台沿各方向运动的解耦方程.结合耦合分析图,分析微/纳传动平台多尺度的位移耦合影响,获得该平台沿X、Y、Z轴移动以及绕X、Y轴转动的位移耦合规律,其中沿Z向运动引起的位移耦合最小,定位精度最高;沿X、Y向运动引起的位移耦合最大,对位移耦合影响较大的运动分支进行位移补偿.通过搭建的实验平台进行测试,将实验结果与有限元仿真和理论计算结果进行对比分析,结果基本一致,验证了该平台位移耦合分析方法的正确性.

[1] TANG X Y, CHEN I M, LI Q, et al. Design and nonlinear modeling of a large-displacement XYZ flexure parallel mechanism with decoupled kinematic structure [J]. Scientific Instruments, 2006, 77 (115101): 1-11.

[2] WANG H, ZHANG X M. Input coupling analysis and optimal design of a 3-DOF compliant micro-positioning stage [J]. Mechanism and Machine Theory, 2008, 43(4): 400-410.

[3] DONG W, SUN L N, DU Z J, et al. Stiffness research on a high-precision, large-workspace parallel mechanism with compliant joints [J]. Precision Engineering, 2008, 32(3): 222-231.

[4] DONG J Y, YAO Q, PLACID M F, et al. Dynamics,control and performance analysis of a novel parallel-kinematics mechanism for integrated,multi-axis nano-positioning [J]. Precision Engineering. 2008, 32(1): 20-33.

[5] 魏强,张玉林,宋会英,等.扫描隧道显微镜精密工作台及其控制技术研究[J].中国机械工程,2007,18(2): 193-196.

WEI Qiang, ZHANG Yu-lin, SONG Hui-ying, et al. Research on precision stage and control technology of scanning tunneling microscope [J]. China Mechanical Engineering, 2007,18(2): 193-196.

[6] 马立,荣伟彬,孙立宁,等.面向光学精密装配的微操作机器人[J],机械工程学报,2009,45(2): 280-287.

MA Li, RONG Wei-bin, SUN Li-ning, et al. Micro operation robot for optical precise assembly [J]. Journal of Mechanical Engineering, 2009, 45(2): 280-287.

[7] 林超,俞松松,程凯,等.大行程5-DOF微纳传动平台的设计及特性分析[J].中国机械工程,2010, 21(22): 2679-2684.

LIN Chao, YU Song-song, CHENG Kai, et al. Design and analysis of a long-displacement 5-DOF nano-transmission platform [J]. China Mechanical Engineering, 2010, 21(22): 2679-2684.

[8] RYU J W, LEE S Q, GWEON D G, et al. Inverse kinematics modeling of a coupled flexure hinge mechanism [J]. Mechatronics, 1999, 9(6): 657-674.

[9] LAI Lei-jie, GU Guo-ying, LI Peng-zhi, et al. Design of a decoupled 2-DOF translational parallel micro-positioning stage [C]∥ Proceedings of the International Conference on Robotics and Automation. Shanghai: IEEE, 2011: 5070-5075.

[10] LI Yang-min, XU Qing-song. A totally decoupled piezo-driven XYZ flexure parallel micropositioning stage for micro/nano manipulation [C]∥ IEEE Transactions on Automation Science and Engineering, 2011, 8(2): 265-279.

[11] XIAO Xiao-hui, PAN Li-zhi, LIU Pin-kuan, et al. Comprehensive optimization of an XY nano positioning stage with flexure-hinges and lever mechanisms [C]∥ Proceedings of the Nanotechnology Materials and Devices Conference (NMDC). Monterey: IEEE, 2010: 368-373.

[12] TAYLAR J B, TU J F. Precision X-Y microstage with maneuverable kinematic coupling mechanism [J]. Precision Engineering, 1999, 18(2/3): 85-94.

[13] 王华,张宪民,欧阳高飞.平面三自由度微动工作台的输入耦合分析[J].中国机械工程,2005,16(5): 377-380.

WANG Hua, ZHANG Xian-min, OUYANG Gao-fei. Coupled input analysis of a planar 3-DOF micro-positioning stage [J]. China Mechanical Engineering, 2005, 16(5): 377-380.

[14] HER I, CHANG J C. A linear scheme for the displacement analysis of micro positioning stages with flexure hinges [J]. Mechanical Design, 1994, 116(9): 770-776.

[15] BATHE K J, WILSON E L. Numerical methods in finite element analysis [M]. New Jersey: Prentice-Hall, Englewood Cliffs, 1976: 31-43.

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