Pekka Pessi Novel Robot Solutions for Carrying out Field Joint Welding and Machining in the Assembly of the Vacuum Vessel of ITER Lappeenranta, 2009 45 p. Acta Universitatis Lappeenrantaensis 377 Dissertation. Lappeenranta University of Technology ISBN 978-952-214-886-5, ISBN 978-952-214-887-2 (PDF) ISSN 1456-4491 It is necessary to use highly specialized robots in ITER (International Thermonuclear Experimental Reactor) both in the manufacturing and maintenance of the reactor due to a demanding environment. The sectors of the ITER vacuum vessel (VV) require more stringent tolerances than normally expected for the size of the structure involved. VV consists of nine sectors that are to be welded together. The vacuum vessel has a toroidal chamber structure. The task of the designed robot is to carry the welding apparatus along a path with a stringent tolerance during the assembly operation. In addition to the initial vacuum vessel assembly, after a limited running period, sectors need to be replaced for repair. Mechanisms with closed-loop kinematic chains are used in the design of robots in this work. One version is a purely parallel manipulator and another is a hybrid manipulator where the parallel and serial structures are combined. Traditional industrial robots that generally have the links actuated in series are inherently not very rigid and have poor dynamic performance in high speed and high dynamic loading conditions. Compared with open chain manipulators, parallel manipulators have high stiffness, high accuracy and a high force/torque capacity in a reduced workspace. Parallel manipulators have a mechanical architecture where all of the links are connected to the base and to the end-effector of the robot. The purpose of this thesis is to develop special parallel robots for the assembly, machining and repairing of the VV of the ITER. The process of the assembly and machining of the vacuum vessel needs a special robot. By studying the structure of the vacuum vessel, two novel parallel robots were designed and built; they have six and ten degrees of freedom driven by hydraulic cylinders and electrical servo motors. Kinematic models for the proposed robots were defined and two prototypes built. Experiments for machine cutting and laser welding with the 6-DOF robot were carried out. It was demonstrated that the parallel robots are capable of holding all necessary machining tools and welding end-effectors in all positions accurately and stably inside the vacuum vessel sector. The kinematic models appeared to be complex especially in the case of the 10-DOF robot because of its redundant structure. Multibody dynamics simulations were carried out, ensuring sufficient stiffness during the robot motion. The entire design and testing processes
[1]
Jean-Pierre Merlet,et al.
Direct kinematics of parallel manipulators
,
1993,
IEEE Trans. Robotics Autom..
[2]
D. Stewart,et al.
A platform with 6 degrees of freedom
,
1966
.
[3]
Raffaele Di Gregorio,et al.
Workspace analytic determination of two similar translational parallel manipulators
,
2003,
Robotica.
[4]
K. Srinivasan,et al.
Kinematic and dynamic analysis of Stewart platform-based machine tool structures
,
2003,
Robotica.
[5]
Jin-Wook Kim,et al.
Performance Analysis of Parallel Mechanism Architectures for CNC Machining Applications
,
2000
.
[6]
Jean-Pierre Merlet.
Parallel manipulators.Part I :Theory design,kinematics,dynamics and control
,
1987
.
[7]
Lung-Wen Tsai,et al.
A comparison study of two 3-DOF parallel manipulators: one with three and the other with four supporting legs
,
2002,
Proceedings 2002 IEEE International Conference on Robotics and Automation (Cat. No.02CH37292).
[8]
L. W. Tsai,et al.
Robot Analysis: The Mechanics of Serial and Parallel Ma-nipulators
,
1999
.
[9]
Kenneth J. Waldron,et al.
Direct kinematic solution of a Stewart platform
,
1990,
IEEE Trans. Robotics Autom..
[10]
Yacine Amirat,et al.
Analysis and design of a six-DOF parallel manipulator, modeling, singular configurations, and workspace
,
1998,
IEEE Trans. Robotics Autom..
[11]
Jean-Pierre Merlet,et al.
The (true) Stewart platform has 12 configurations
,
1994,
Proceedings of the 1994 IEEE International Conference on Robotics and Automation.
[12]
Marco Ceccarelli,et al.
Stiffness analysis for 6-DOF mouth training parallel robot WY-5
,
2003,
Proceedings 2003 IEEE/ASME International Conference on Advanced Intelligent Mechatronics (AIM 2003).
[13]
Eugene I. Rivin,et al.
Mechanical Design of Robots
,
1987
.