DocumentCode
1123098
Title
On the Force Control of Kinematically Defective Manipulators Interacting With an Unknown Environment
Author
Zemiti, Nabil ; Morel, Guillaume ; Micaelli, Alain ; Cagneau, Barthélemy ; Bellot, Delphine
Author_Institution
Inst. des Syst. Intelligents et Robot., Univ. Pierre & Marie Curie - Paris 6, Paris, France
Volume
18
Issue
2
fYear
2010
fDate
3/1/2010 12:00:00 AM
Firstpage
307
Lastpage
322
Abstract
In this paper, the problem of force feedback control of kinematically defective manipulators (KDMs) is considered. KDMs are robot manipulators that have fewer joints than the dimension of the space in which their end-effector moves. It is well known that controlling the end-effector velocity of an n-joint KDM can be easily solved by appropriately selecting n components of the output twist, thus squaring the control problem. On the contrary, we show that such a component selection approach is not appropriate in general to solve the force control problem for KDMs. In particular, for advanced force control applications, such as comanipulation, where the contact geometry is not known in advance, the selection of the wrench components leads to a lack of passivity, which in turn may induce instability. This instability does not arise from the system dynamics. Rather, it can be viewed as a new form of kinematic instability. Moreover, by formulating the problem in the joint space, we show how to properly design a stable force controller for KDMs subject to arbitrary external forces applied to their end-effector. Furthermore, we propose several implementations for pure force control and damping control. Experimental results with a kinematically defective laparoscopic comanipulator illustrate these propositions.
Keywords
end effectors; force control; force feedback; manipulator kinematics; damping control; end effector velocity; force feedback control; kinematic instability; kinematically defective manipulators; laparoscopic comanipulator; robot manipulators; unknown environment; Defective manipulators; force control; kinematic constraints; passivity; surgical robotics;
fLanguage
English
Journal_Title
Control Systems Technology, IEEE Transactions on
Publisher
ieee
ISSN
1063-6536
Type
jour
DOI
10.1109/TCST.2009.2022170
Filename
5153129
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