Energy-based viscoelastic model: a physical approach for material an elastic behavior by the bond graph approach
Author(s) -
Zanj Amir,
He Fangpo,
Breedveld Peter C
Publication year - 2020
Publication title -
simulation
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.301
H-Index - 48
eISSN - 1741-3133
pISSN - 0037-5497
DOI - 10.1177/0037549719857136
Subject(s) - viscoelasticity , bond graph , dissipative system , physical system , computer science , domain (mathematical analysis) , statistical physics , mechanics , physics , mathematics , mathematical analysis , thermodynamics , quantum mechanics , combinatorics
Understanding the true nature of viscoelastic behaviors in multi-physical systems has always been a challenging issue in system dynamic investigations, as each existing physical subdomain of the system may follow a different attenuation pattern during the dynamic process. In this study, to generate a viscoelastic model suitable for multi-physical domain dynamic investigations, a physical combined viscoelastic model is proposed. To this aim, by means of the bond graph approach, an energy-based conventional viscoelastic model is first generated, and its embedded dispersive mechanisms are interpreted physically. By including the interpreted dissipative mechanisms into the relative subdomains of an elastic domain, an energy-based combined viscoelastic model is then proposed. The obtained simulation results indicate that the proposed viscoelastic model is able to capture a variety of viscoelastic behaviors in the system with respect to the true physical nature of the system.
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