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Redundancy Resolution of Manipulators through Torque Optimization

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dc.creator Hollerbach, John M.
dc.creator Suh, Ki C.
dc.date 2004-10-01T20:10:42Z
dc.date 2004-10-01T20:10:42Z
dc.date 1986-01-01
dc.date.accessioned 2013-10-09T02:40:16Z
dc.date.available 2013-10-09T02:40:16Z
dc.date.issued 2013-10-09
dc.identifier AIM-882
dc.identifier http://hdl.handle.net/1721.1/5607
dc.identifier.uri http://koha.mediu.edu.my:8181/xmlui/handle/1721
dc.description Methods for resolving kinematic redundancies of manipulators by the effect on joint torque are examined. When the generalized inverse is formulated in terms of accelerations and incorporated into the dynamics, the effect of redundancy resolution on joint torque can be directly reflected. One method chooses the joint acceleration null-space vector to minimize joint torque in a least squares sense; when the least squares is weighted by allowable torque range, the joint torques tend to be kept within their limits. Contrasting methods employing only the pseudoinverse with and without weighting by the inertia matrix are presented. The results show an unexpected stability problem during long trajectories for the null-space methods and for the inertia-weighted pseudoinverse method, but rarely for the unweighted pseudoinverse method. Evidently a whiplash action develops over time that thrusts the endpoint off the intended path, and extremely high torques are required to overcome these natural movement dynamics.
dc.format 16 p.
dc.format 2362698 bytes
dc.format 933936 bytes
dc.format application/postscript
dc.format application/pdf
dc.language en_US
dc.relation AIM-882
dc.subject robotics
dc.subject manipulator control
dc.subject redundant manipulators
dc.subject smanipulator dynamics
dc.title Redundancy Resolution of Manipulators through Torque Optimization


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