Jul 2026· 2026 IEEE/ASME International Conference on Advanced Intelligent Mechatronics (AIM)· pp. 1-7· 0 citations· 22 references
Abstract
Mechanical compliance is essential for stable and safe human–machine interaction in force-rendering interfaces. Instability is particularly problematic when a low-inertia, highly backdrivable actuator with intrinsic delay interacts with a human or compliant environment. Pneumatic actuators offer a high power-to-weight ratio, low moving mass, and inherent backdrivability; however, their pressure dynamics introduce delays that can destabilize low-damping, compliant contacts. This study examines delay-induced oscillations during virtual-spring rendering using a pneumatic–electromagnetic fusion hybrid linear actuator (FHLA) with distributed macro–mini actuation. We demonstrate that, even under light-contact conditions, cross-coupling between the rendered virtual spring and physical compliance forms a feedback loop susceptible to oscillation in delayed, low-impedance systems. To enable this actuation in the integrated FHLA—where only the combined output force is measurable—the pneumatic force component is estimated from pressure measurements. Experiments with 10mm displacement and 2–4N/mm virtual stiffness under light-contact conditions demonstrate a reduction of more than 99% in oscillation amplitude compared with pneumatic-only actuation. These results highlight enhanced force-rendering behavior through delay-compensated hybrid actuation.
Ensuring intrinsic safety in physical human robot interaction (pHRI) is a critical requirement for social and service robots. While Series Elastic Actuators (SEAs) offer hardware based compliance, traditional metallic designs often require complex, multi part assemblies. This paper presents the design, finite element a...
Joel Hidalgo Pisco, Melissa Cobos Condo, Luigi Miranda et al.· World Congress on Mechanical...· 0 citations
The inherent compliance of cable-driven continuum robots (CDCRs) enables safe interaction but often degrades manipulation accuracy and payload capacity. To address this trade-off, this article proposes a novel variable stiffness control (VSC) framework that exploits actuation redundancy for stiffness regulation. Unlike...
Tao-Wen Guo, Chen Zhao, Xin-Liang Li et al.· IEEE Transactions on Automat...· 0 citations
This paper presents the design, fabrication, and Lyapunov-based closed-loop control of a novel Pleated McKibben (PMcKibben) pneumatic artificial muscle for upper-limb rehabilitation robots. The actuator is fabricated from ultra-soft Ecoflex 00-20 (Shore 00-20 hardness), which substantially reduces the threshold and max...
Muhammad Shafiq, Rahmatollah Rahimi, Mostefa Mesbah et al.· IEEE Access· 0 citations
Soft actuators enable dexterous and compliant interaction, but closed-loop task-space control remains challenging due to strong nonlinearities, distributed deformation, and uncertainty in their dynamics. This paper presents a real-time dynamic-model-based task-space feedback and estimation framework based on a non-mini...
Nithin S. Kumar, Joshua Gaston, D. C. Rucker et al.· 0 citations
Passive stiffness modulation is essential for compliant robotic systems in dynamic and uncertain environments, where rigid actuators or constant stiffness designs are often insufficient to ensure safety and adaptability. This paper presents the design, modeling, optimization, and experimental validation of a Load-Dep...
Zhenjie Shi, Yan-Jun Liu, Yiran Wang et al.· Journal of Mechanisms and Ro...· 0 citations
In physical human-robot interaction applications involving the co-manipulation of heavy and bulky payloads, inertia compensation of the load is a key element for the ergonomics, precision and comfort of the task led by a human operator. This letter investigates experimentally the capability and limitations of a force-s...
J. Lacombe, Clément Gosselin· IEEE Robotics and Automation...· 0 citations
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