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Journal of Mechanism and Machine Theory 40, 8 (2005) 907-930
Design Strategies for the Geometric Synthesis of Orthoglide-type Mechanisms
Anatoly Pashkevich 1, Philippe Wenger 2, Damien Chablat ( ) 2
(08/2005)

The paper addresses the geometric synthesis of Orthoglide-type mechanism, a family of 3-DOF parallel manipulators for rapid machining applications, which combine advantages of both serial mechanisms and parallel kinematic architectures. These manipulators possess quasi-isotropic kinematic performances and are made up of three actuated fixed prismatic joints, which are mutually orthogonal and connected to a mobile platform via three parallelogram chains. The platform moves in the Cartesian space with fixed orientation, similar to conventional XYZ-machine. Three strategies have been proposed to define the Orthoglide geometric parameters (manipulator link lengths and actuated joint limits) as functions of a cubic workspace size and dextrous properties expressed by bounds on the velocity transmission factors, manipulability or the Jacobian condition number. Low inertia and intrinsic stiffness have been set as additional design goals expressed by the minimal link length requirement. For each design strategy, analytical expressions for computing the Orthoglide parameters are proposed. It is showed that the proposed strategies yield Pareto-optimal solutions, which differ by the kinematic performances outside the prescribed Cartesian cube (but within the workspace bounded by the actuated joint limits). The proposed technique is illustrated with numerical examples for the Orthoglide prototype design.
1 :  Robotic Laboratory, Department of Control Systems (ROBOTIC LABORATORY)
Belarusian State University of Informatics and Radioelectronics
2 :  Institut de Recherche en Communications et en Cybernétique de Nantes (IRCCyN)
CNRS : UMR6597 – Université de Nantes – École Centrale de Nantes – Ecole des Mines de Nantes – Ecole Polytechnique de l'Université de Nantes
Méthode de Conception en Mécanique
Informatique/Robotique
Optimal design – Isotropic configuration – Orthoglide – Design strategies – condition number – velocity transmission factor – manipulability – Workspace-based design
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