Jul 2026· 2026 IEEE/ASME International Conference on Advanced Intelligent Mechatronics (AIM)· pp. 1-6· 0 citations· 17 references
Abstract
Low-tolerance assembly tasks in physical human–robot interaction (pHRI) often involve intermittent contact with stiff environments, which can induce instability in admittance-controlled manipulators. Increasing virtual damping improves stability but reduces responsiveness and increases operator effort. This paper introduces a series nonlinear compliance mechanism that reshapes interaction dynamics through adjustable stiffness at the robot end-effector. The mechanism provides low stiffness during fine manipulation and higher stiffness at larger displacements to enhance stability during contact-rich assembly. Experimental evaluation in a collaborative peg-in-hole task demonstrates reduced contact forces, improved insertion stability, and faster task completion. In an ultra-low-clearance scenario (0.05 mm), insertion fails under conventional rigid configurations but succeeds consistently with the proposed mechanism. Task completion time is reduced by up to 30% without increasing admittance damping. These results demonstrate that passive nonlinear compliance can improve stability without sacrificing responsiveness in contact-rich pHRI tasks.
Robotic grinding and related surface-contact tasks require smooth contact establishment and stable force regulation during sustained interaction. Fixed-parameter admittance control often cannot meet both requirements, because damping that suppresses initial impact may compromise compliant behavior after contact. This...
Fang-Fang Dong, Jia-Bao Li, Zhi Ding et al.· Journal of Mechanisms and Ro...· 0 citations
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
Supportive continuum robots (SCRs) enhance the load-bearing capability of an operative continuum robot by mechanically coupling it with a supportive arm. However, their passive stiffness is determined by the mechanical configuration and cannot be adjusted online for varying payloads or interaction forces. Active stiffn...
ABSTRACT Enhancing contact compliance and task flexibility is essential for expanding the real‐world use of robotic systems. This paper presents a modular collaborative robot system that combines antagonistic actuation with hybrid soft–rigid variable‐stiffness components, including a modular variable‐stiffness bending...
Wenlong Gaozhang, Yue Li, Jia-Lei Shi et al.· Advancement of science· 0 citations
Multi-link aerial robots can actively deform their articulated structures during flight, giving them strong potential for aerial manipulation. However, they still face substantial challenges in contact-rich aerial manipulation tasks such as surface sliding, which requires both disturbance robustness and compliance to u...
Zicheng Luo, Mao-Lin Lei, Jin-Jie Li et al.· 0 citations
In response to the requirements for high-precision motion control and adaptive compliance in rehabilitation training and human-robot interaction scenarios, this paper proposes a hierarchical control strategy for a dual-motor-driven variable stiffness actuator (VSA), enabling coordinated control of position tracking and...
Jin-Liang Liu, Xiu-Long Wu, Yiqing Zheng et al.· International Conference on...· 0 citations
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