Robotic Mechanisms and DynamicsSoft Robotics and ApplicationsProsthetics and Rehabilitation Robotics
DOI: 10.1115/1.4071169

Abstract

This study introduces an approach for reducing actuation forces in a 3-RPS parallel manipulator through the integration of mechanical springs. Three distinct spring-based configurations are examined: (1) torsional springs mounted at the R-joints, (2) linear springs connected from the base to the P-joints, and (3) a planar four-bar spring linkage designed to introduce passive force balancing. To optimize the spring parameters for effective force reduction, a particle swarm optimization (PSO) framework is employed. The manipulator is evaluated under four dynamically varying trajectories, covering vertical translation, planar tilt, circular horizontal motion, and helical spatial movement. Numerical simulations reveal that the four-bar spring linkage consistently achieves the highest force reduction rate (FRR) up to 73.62% in specific trajectories, though it also introduces high variability under dynamic loading. Linear and torsional springs provide more consistent and moderate reductions, with maximum FRRs of 56.22% and 57.66%, respectively. While the four-bar spring performs best for light payloads and mid altitude conditions, its efficiency declines with increasing mass. The proposed methods provide a foundation for energy-efficient and high-precision operation in parallel robotic systems.

Citation format

NURAHMI, Latifah; NGUYEN, V. Enhancing dynamic force characteristics of a 3-RPS parallel manipulator using integrated mechanical springs. Journal of Mechanisms and Robotics-Transactions of the ASME, 2026, 18(5).