TY - GEN
T1 - A VARIABLE STIFFNESS END-OF-ARM MECHANISM FOR SAFE OPERATION IN INDUSTRIAL ENVIRONMENTS
AU - Jujjavarapu, Sri Sadhan
AU - Esfahani, Ehsan T.
N1 - Publisher Copyright:
Copyright © 2022 by ASME.
PY - 2022
Y1 - 2022
N2 - In robotic manipulation, uncertainties in the operating environment can result in the exchange of unintended forces that can harm the operator, robot, tool, or the operating environment. In this study, we present a variable stiffness end-of-arm mechanism (VSEAM) to improve the collision safety of industrial robots. In VSEAM, the endpoint stiffness of the robotic manipulator is controlled using the displacement of permanent magnets. Additionally, a calibrated force model is developed for these magnets to detect external collisions. In the event of an unintended collision, the nonlinear compliance of the VSEAM provides passive displacement of the tool and provides enough time for the robot to react to the collision. Such passive displacement helps in absorbing the partial impact energy and thus protects the tool and the environment from damage. The proposed mechanism is validated during unintended collisions with two different operational speeds (end-effector speeds of 0.3 m/s, and 0.5 m/s) and two different loads at the end-effector (0.4 Kg and 1 Kg). The transmitted forces in low and medium stiffness settings of the VSEAM is compared to the high stiffness setting of the robot (in the absence of the VSEAM) demonstrating the capability of the proposed system to reduce the transmitted forced by approximately 50%.
AB - In robotic manipulation, uncertainties in the operating environment can result in the exchange of unintended forces that can harm the operator, robot, tool, or the operating environment. In this study, we present a variable stiffness end-of-arm mechanism (VSEAM) to improve the collision safety of industrial robots. In VSEAM, the endpoint stiffness of the robotic manipulator is controlled using the displacement of permanent magnets. Additionally, a calibrated force model is developed for these magnets to detect external collisions. In the event of an unintended collision, the nonlinear compliance of the VSEAM provides passive displacement of the tool and provides enough time for the robot to react to the collision. Such passive displacement helps in absorbing the partial impact energy and thus protects the tool and the environment from damage. The proposed mechanism is validated during unintended collisions with two different operational speeds (end-effector speeds of 0.3 m/s, and 0.5 m/s) and two different loads at the end-effector (0.4 Kg and 1 Kg). The transmitted forces in low and medium stiffness settings of the VSEAM is compared to the high stiffness setting of the robot (in the absence of the VSEAM) demonstrating the capability of the proposed system to reduce the transmitted forced by approximately 50%.
UR - https://www.scopus.com/pages/publications/85142497385
U2 - 10.1115/DETC2022-91310
DO - 10.1115/DETC2022-91310
M3 - Conference contribution
AN - SCOPUS:85142497385
T3 - Proceedings of the ASME Design Engineering Technical Conference
BT - 46th Mechanisms and Robotics Conference (MR)
PB - American Society of Mechanical Engineers (ASME)
T2 - ASME 2022 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, IDETC-CIE 2022
Y2 - 14 August 2022 through 17 August 2022
ER -