Wrench Uncertainty Quantification and Reconfiguration Analysis in Loosely Interconnected Cooperative Systems
Author(s) -
Javad Sovizi,
Rahul Rai,
Venkat Krovi
Publication year - 2017
Publication title -
asce-asme journal of risk and uncertainty in engineering systems part b mechanical engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.35
H-Index - 13
eISSN - 2332-9025
pISSN - 2332-9017
DOI - 10.1115/1.4037122
Subject(s) - wrench , control reconfiguration , reconfigurability , control theory (sociology) , computer science , probabilistic logic , orientation (vector space) , nondeterministic algorithm , engineering , mathematics , algorithm , control (management) , artificial intelligence , structural engineering , telecommunications , geometry , embedded system
Loosely interconnected cooperative systems such as cable robots are particularly susceptible to uncertainty. Such uncertainty is exacerbated by addition of the base mobility to realize reconfigurability within the system. However, it also sets the ground for predictive base reconfiguration in order to reduce the uncertainty level in system response. To this end, in this paper, we systematically quantify the output wrench uncertainty based on which a base reconfiguration scheme is proposed to reduce the uncertainty level for a given task (uncertainty manipulation). Variations in the tension and orientation of the cables are considered as the primary sources of the uncertainty responsible for nondeterministic wrench output on the platform. For nonoptimal designs/configurations, this may require complex control structures or lead to system instability. The force vector corresponding to each agent (e.g., pulley and cable) is modeled as random vector whose magnitude and orientation are modeled as random variables with Gaussian and von Mises distributions, respectively. In a probabilistic framework, we develop the closed-form expressions of the means and variances of the output force and moment given the current state (tension and orientation of the cables) of the system. This is intended to enable the designer to efficiently characterize an optimal configuration (location) of the bases in order to reduce the overall wrench fluctuations for a specific task. Numerical simulations as well as real experiments with multiple iRobots are performed to demonstrate the effectiveness of the proposed approach.
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