Optimization of dynamic task location within a manipulator’s workspace for the utilization of the minimum required joint torques

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Abstract

The determination of the optimal position of a robotic task within a manipulator’s workspace is crucial for the manipulator to achieve high performance regarding selected aspects of its operation. In this paper, a method for determining the optimal task placement for a serial manipulator is presented, so that the required joint torques are minimized. The task considered comprises the exercise of a given force in a given direction along a 3D path followed by the end effector. Given that many such tasks are usually conducted by human workers and as such the utilized trajectories are quite complex to model, a Human Robot Interaction (HRI) approach was chosen to define the task, where the robot is taught the task trajectory by a human operator. Furthermore, the presented method considers the singular free paths of the manipulator’s end-effector motion in the configuration space. Simulation results are utilized to set up a physical execution of the task in the optimal derived position within a UR-3 manipulator’s workspace. For reference the task is also placed at an arbitrary “bad” location in order to validate the simulation results. Experimental results verify that the positioning of the task at the optimal location derived by the presented method allows for the task execution with minimum joint torques as opposed to the arbitrary position.

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APA

Wolniakowski, A., Valsamos, C., Miatliuk, K., Moulianitis, V., & Aspragathos, N. (2021). Optimization of dynamic task location within a manipulator’s workspace for the utilization of the minimum required joint torques. Electronics (Switzerland), 10(3), 1–18. https://doi.org/10.3390/electronics10030288

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