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Design of a Parallel Elastic Actuator with a Continuously-Adjustable Equilibrium Position

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arxiv 2212.07601 v2 pith:7QZCZMJU submitted 2022-12-15 cs.RO

classification cs.RO
keywords equilibriumactuatorelasticparallelpositionspringactuatorsadjusting
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In this paper, we present an adjustable-equilibrium parallel elastic actuator (AE-PEA). The actuator consists of a motor, an equilibrium adjusting mechanism, and a spring arranged into a cylindrical geometry, similar to a motor-gearbox assembly. The novel component of the actuator is the equilibrium adjusting mechanism which (i) does not require external energy to maintain the equilibrium position of the actuator even if the spring is deformed and (ii) enables equilibrium position control with low energy cost by rotating the spring while keeping it undeformed. Adjustable equilibrium parallel elastic actuators resolve the main limitation of parallel elastic actuators (PEAs) by enabling energy-efficient operation at different equilibrium positions, instead of being limited to energy-efficient operation at a single equilibrium position. We foresee the use of AE-PEAs in industrial robots, mobile robots, exoskeletons, and prostheses, where efficient oscillatory motion and gravity compensation at different positions are required.

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    cs.RO 2024-11 conditional novelty 3.0 of 10

    A closed-form least-squares optimization selects a knee torsion spring's stiffness and equilibrium position, cutting simulated motor energy to under 4% of baseline in the same cyclic task used for fitting.

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