Please use this identifier to cite or link to this item: http://bura.brunel.ac.uk/handle/2438/27612
Title: Towards Robust and Effective Passive Compliance Design of End-Effectors for Robotic Train Fluid Servicing
Authors: Eshraghi, K
Wang, M
Mares, C
Keywords: robotic and autonomous systems;rolling stock maintenance;passive compliance;compliant mechanism;remote centre compliance;robust design;peg in hole
Issue Date: 27-Oct-2023
Publisher: MDPI
Citation: Eshraghi, K., Wang, M. and Mares, C. (2023) 'Towards Robust and Effective Passive Compliance Design of End-Effectors for Robotic Train Fluid Servicing', Machines, 11 (11), 997, pp. 1 - 15. doi: 10.3390/machines11110997.
Abstract: Copyright © 2023 by the authors. Without mechanical compliance robots rely on controlled environments and precision equipment to avoid clashes and large contact forces when interacting with an external workpiece, e.g., a peg-in-hole (PiH) task. In such cases, passive compliance devices are used to reduce the insertion force (and in turn the robot payload) while guiding corrective motions. Previous studies in this field are limited to small misalignments and basic PiH geometries inapplicable to prevalent robotic and autonomous systems (RASs). In addition to these issues, our work argues that there is a lack of a unified approach to the development of passive compliance systems. To this end, we propose a higher-level design approach using robust engineering design (RED) methods. In a case study, we demonstrated this general approach with a Taguchi design framework, developing a remote centre compliant (RCC) end-effector for robotic train fluid servicing. For this specific problem, a pseudo-rigid-body model (PRBM) is suggested in order to save enormous computation time in design, modelling, and optimisation. Our results show that the compliant end-effector is capable of significantly reducing the insertion force for large misalignments up to 15 mm and 6 degrees.
URI: https://bura.brunel.ac.uk/handle/2438/27612
DOI: https://doi.org/10.3390/machines11110997
Other Identifiers: ORCID iD: Mingfeng Wang https://orcid.org/0000-0001-6551-0325
ORCID iD: Cristinel Mares https://orcid.org/0000-0001-7515-9559
997
Appears in Collections:Dept of Mechanical and Aerospace Engineering Research Papers

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