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Micro-Scale Motion Precision Simulation Method for a New-Type 6-DOF Micro-Manipulation Robot
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作者 叶鑫 张之敬 王豫枢 《Journal of Beijing Institute of Technology》 EI CAS 2007年第4期414-418,共5页
A new 6-DOF micro-manipulation robot based on 3-PPTTRS parallel mechanisms in combination with flexure hinges is proposed. The design principle of the mechanism is introduced, and the kinematics analysis method based ... A new 6-DOF micro-manipulation robot based on 3-PPTTRS parallel mechanisms in combination with flexure hinges is proposed. The design principle of the mechanism is introduced, and the kinematics analysis method based on differentiation is used to get the (inverse) kinematics equations. Then a micro-scale motion precision simulation method is proposed according to finite element analysis (FEA), and the prediction of robot’s motion precision in design phase is realized. The simulation result indicates that the 6-DOF micro-manipulation robot can meet the design specification. 展开更多
关键词 MICRO-SCALE 6-DOF micro-manipulation robot kinematics characteristic motion precision simulation
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High-Speed Active Release End-Effector Motions for Precise Positioning of Adhered Micro-Objects
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作者 Eunhye Kim Masaru Kojima +3 位作者 Kazuto Kamiyama Mitsuhiro Horade Yasushi Mae Tatsuo Arai 《World Journal of Engineering and Technology》 2018年第1期81-103,共23页
This paper presents a release method for micro-objects. To improve position accuracy after release, we propose 3D high-speed end-effector motions. The classical release task focuses on the detachment of a micro-object... This paper presents a release method for micro-objects. To improve position accuracy after release, we propose 3D high-speed end-effector motions. The classical release task focuses on the detachment of a micro-object from an end-effector. The technique utilizes merely the vibration of the end-effector regardless of the pattern of movement. To release different sizes of micro- objects and place them precisely at the desired locations in both air and liquid media, in this paper, we propose high-speed motions by analyzing the adhesion force and movement of micro-objects after separation. To generate high end-effector acceleration, many researchers have applied simple vibration by using an additional actuator. However, in our research, 3D high-speed motion with apt amplitude is accomplished by using only a compact parallel mechanism. To verify the advantages of the proposed motion, we compare five motions, 1D motions (in X-, Y-, and Z-directions) and circular motions (clockwise and counterclockwise directions), by changing the frequency and amplitude of the end-effector. Experiments are conducted with different sizes of microbeads and NIH3T3 cells. From these experiments, we conclude that a counterclockwise circular motion can release the objects precisely in air, while 1D motion in the Y direction and two circular motions can detach the objects at the desired positions after release in a liquid environment. 展开更多
关键词 ADHESION Force Vibration Generation RELEASING Strategy micro-manipulation
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