Development of an anthropomorphic robot finger : mechanical and kinematic aspects
Nathaniel Mifsud, Audrey Grech, Michael A. Saliba, Simon G. Fabri
- 发表年份
- 2006
- 引用次数
- 3
摘要
In this work, we report on the mechanical design and development, the kinematic analysis, and the simulation \nof a new dexterous robot finger. The robot finger design is based on that of the human counterpart in size, mechanical \nstructure, and range of motion, and exhibits four distinct joint motions (one abduction/adduction or yaw motion, and three \nflexion/extension or pitch motions), as does the human finger. Three miniature DC motors with built-in encoders drive the \nyaw motion of the finger and the two innermost pitch joints. The finger therefore has three independent degrees of \nfreedom. The outermost pitch joint of the finger is mechanically coupled to the middle joint, and the design allows for the \nvariation of the ratio of angular speed between the two coupled joint motions. The motors are installed on the finger itself \nand on the adjoining section of palm, and the required torques at the joints are obtained through speed reduction \ntransmission systems. An analytical study of the finger, including forward and inverse kinematics and differential \nkinematics analyses, static force analysis, and computation of joint velocity profiles for straight-line motion of the \nfingertip, has been carried out. The results of these analyses have been used to develop the control program for the finger, \nas well as a versatile simulation tool that can be used to optimise future designs of the finger. The simulation program has \nbeen validated by comparison to the results of tests carried out on the prototype finger. The ultimate aim of the work is to \nproduce a dexterous robot hand to be used in a flexible manufacturing environment in industry or as a prosthetic device.
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