On the shaft locations of two contra-rotating counterweights for balancing spatial mechanisms

Author:

Chiou S-T1,Tzou J-C2

Affiliation:

1. National Cheng Kung University Department of Mechanical Engineering Tainan, Taiwan

2. Kung Shan Institute of Technology and Commerce Department of Mechanical Engineering Tainan, Taiwan

Abstract

It has been shown in a previous work that a frequency term of the shaking force of spatial mechanisms, whose hodograph is proved to be an ellipse, can be eliminated by a pair of contrarotating counterweights. In this work, it is found that the relevant frequency term of the shaking moment is minimized if the balancing shafts are coaxial at the centre of a family of ellipsoids, called isomomental ellipsoids, with respect to (w.r.t.) any point on an ellipsoid, as is also the root mean square (r.m.s.) of the relevant frequency term of the shaking moment. It can also be minimized even though the location of either shaft, but not both, is chosen arbitrarily on a plane. The location of the second shaft is then determinate. In order to locate the centre, a derivation for the theory of isomomental ellipsoids of a frequency term of the shaking moment of spatial mechanisms is given. It is shown that the r.m.s. of a frequency term shaking moment of a spatial mechanism w.r.t. the concentric centre of the isomomental ellipsoids is the minimum. Examples of a seven-link 7-R spatial linkage and a spatial slider-crank mechanism are included.

Publisher

SAGE Publications

Subject

Mechanical Engineering

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Determination of optimal position for both support bearing and unbalance mass of balance shaft;Mechanism and Machine Theory;2012-04

2. Complete shaking force and shaking moment balancing of RSS'R spatial linkages;Proceedings of the Institution of Mechanical Engineers, Part K: Journal of Multi-body Dynamics;2007-06-01

3. Shaking moment cancellation of self-balanced slider–crank mechanical systems by means of optimum mass redistribution;Mechanics Research Communications;2006-11

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