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March 1, 2026Robotics2 citationsOpen Access

The Impact of Kinematic Redundancy on the Energetic Performance of Robotic Manipulators

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GFGiuliano FabrisUniversity of UdineLSLorenzo ScaleraUniversity of UdineARAldo RossiUniversity of Padua

Key Points

  • This research aims to improve energy efficiency in robotic manipulators by addressing kinematic redundancy.
  • Developed a strategy for energy-efficient trajectory planning in redundant robotic systems.
  • Optimized inverse kinematics solutions for specified waypoints in tasks.
  • Validated the approach using simulations and experiments on robots with 7 and 8 degrees of freedom.
  • Achieved energy savings of 82.54% with the 7-DOF robot and 94.28% with the 8-DOF robot versus reference cases.
  • Demonstrated effectiveness in point-to-point motion and pick-and-place tasks.

Abstract

Energy efficiency is a challenging research topic in robotics, since it can reduce operating costs and increase production sustainability. In this paper, we present a strategy for energy-efficient trajectory planning in redundant robotic systems. The proposed approach aims at optimizing the solution of inverse kinematics at each of the waypoints that define the considered task, so as to minimize the energy consumption. The approach is validated with simulations and bespoke experiments on two different robotic systems with seven and eight degrees of freedom (DOFs). Two test cases are considered, i.e., a point-to-point motion and a pick-and-place task. The experimental results quantify the energy saving capabilities of the proposed approach up to 82.54% and 94.28% with the seven-DOF and eight-DOF robots, respectively, with respect to reference cases.

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Cite This Study

Fabris et al. (2026) studied this question.

synapsesocial.com/papers/69a3d8caec16d51705d2ff6dhttps://doi.org/10.3390/robotics15030051
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