TY - GEN
T1 - BOUNDARY CONTROL OF A FLEXIBLE LINK ELECTRICALLY DRIVEN GANTRY ROBOT
AU - Baicu, Catalin F.
AU - Rahn, Christopher D.
AU - Dawson, Darren M.
N1 - Publisher Copyright:
© 1996 American Society of Mechanical Engineers (ASME). All rights reserved.
PY - 1996
Y1 - 1996
N2 - Gantry robot.s are used for precision manufacturing and material handling in the electronics, nuclear, and automotive industries. Light flexible links require less power but may vibrate excessively. In this paper, an implementable boundary controller is developed to damp out undesirable vibrations in a flexible link gantry robot driven by a brushed DC motor. Hamilton’s principle produces the governing equations of motion and boundary conditions for the flexible link. The electrical subsystem dynamics for a permanent magnet brushed DC motor couple with the link dynamics to form a hybrid ODE-PDE system. Through an embedded desired current control law, an integrator backstepping controller generates the desired control force on the mechanical subsystem. A velocity observer estimates the gantry velocity eliminating one feedback sensor. Numerical simulations using a Galerkin discretized model demonstrate the improved vibration damping characteristics provided by the backstepping boundary control law. Experimental results confirm the theoretical predictions, showing twenty times faster transient decay than PD control with backstepping boundary control.
AB - Gantry robot.s are used for precision manufacturing and material handling in the electronics, nuclear, and automotive industries. Light flexible links require less power but may vibrate excessively. In this paper, an implementable boundary controller is developed to damp out undesirable vibrations in a flexible link gantry robot driven by a brushed DC motor. Hamilton’s principle produces the governing equations of motion and boundary conditions for the flexible link. The electrical subsystem dynamics for a permanent magnet brushed DC motor couple with the link dynamics to form a hybrid ODE-PDE system. Through an embedded desired current control law, an integrator backstepping controller generates the desired control force on the mechanical subsystem. A velocity observer estimates the gantry velocity eliminating one feedback sensor. Numerical simulations using a Galerkin discretized model demonstrate the improved vibration damping characteristics provided by the backstepping boundary control law. Experimental results confirm the theoretical predictions, showing twenty times faster transient decay than PD control with backstepping boundary control.
UR - https://www.scopus.com/pages/publications/85169436987
UR - https://www.scopus.com/pages/publications/85169436987#tab=citedBy
U2 - 10.1115/IMECE1996-0911
DO - 10.1115/IMECE1996-0911
M3 - Conference contribution
AN - SCOPUS:85169436987
T3 - ASME International Mechanical Engineering Congress and Exposition, Proceedings (IMECE)
SP - 109
EP - 115
BT - Active Control of Vibration and Noise
PB - American Society of Mechanical Engineers (ASME)
T2 - ASME 1996 International Mechanical Engineering Congress and Exposition, IMECE 1996
Y2 - 17 November 1996 through 22 November 1996
ER -