Long-Travel 3-PRR Parallel Platform Based on Biomimetic Variable-Diameter Helical Flexible Hinges

Author:

Dong Hao1,Liu Pengbo12ORCID,Lu Shuaishuai12ORCID,Yan Peng3,Sun Qiyuan1

Affiliation:

1. School of Mechanical Engineering, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250353, China

2. Shandong Institute of Mechanical Design and Research, Jinan 250031, China

3. Key Laboratory of High-Efficiency and Clean Mechanical Manufacture, Ministry of Education, School of Mechanical Engineering, Shandong University, Jinan 250061, China

Abstract

Technological advancements across various sectors are driving a growing demand for large-scale three-degree-of-freedom micro–nano positioning platforms, with substantial pressure to reduce footprints while enhancing motion range and accuracy. This study proposes a three-prismatic-revolute-revolute (3-PRR) parallel mechanism based on biomimetic variable-diameter helical flexible hinges. The resulting platform achieves high-precision planar motion along the X- and Y-axes, a centimeter-level translation range, and a rotational range of 35° around the Z-axis by integrating six variable-diameter flexible helical hinges that serve as rotational joints when actuated by three miniature linear servo drives. The drives are directly connected to the moving platform, thereby enhancing the compactness of the system. A kinematic model of the motion platform was established, and the accuracy and effectiveness of the forward and inverse kinematic solutions were validated using finite element analysis. Finally, a prototype of the 3-PRR parallel platform was fabricated, and its kinematic performance was experimentally verified visually for improved endpoint displacement detection. The assessment results revealed a maximum displacement error of 9.5% and confirmed that, judging by its favorable workspace-to-footprint ratio, the final system is significantly more compact than those reported in the literature.

Funder

Key Research and Development Program of Shandong Province

Natural Science Foundation of Shandong Province

the Science, Education, and Industry Integration Innovation Pilot Project from Qilu University of Technology

Publisher

MDPI AG

Reference22 articles.

1. Inverse dynamics and control of a 3-dof planar parallel (U-shaped 3-PPR) manipulator;Singh;Robot. Comput. Integr. Manuf.,2015

2. Stiffness analysis of a novel flexible positioning mechanism for large-aperture grating tiling;Shao;J. Mech. Eng.,2018

3. Ren, J., Li, Q., Wu, H., and Cao, Q. (2022). Optimal design for 3-PSS Flexible Parallel micromanipulator based on kinematic and dynamic characteristics. Micromachines, 13.

4. Huang, H., Sun, D., Mills, J.K., and Cheng, S.H. (2008, January 19–23). Integrated vision and force control in suspended cell injection system: Towards automatic batch biomanipulation. Proceedings of the 2008 IEEE International Conference on Robotics and Automation, Pasadena, CA, USA.

5. Robotic cell injection system with position and force control: Toward automatic batch biomanipulation;Huang;IEEE Trans. Robot.,2009

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