Macroscopic stress, couple stress and flux tensors derived through energetic equivalence from microscopic continuous and discrete heterogeneous finite representative volumes

Jan Eliáš*, Gianluca Cusatis

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

This paper presents a rigorous derivation of equations to evaluate the macroscopic stress tensor, the couple stress tensor, and the flux vector equivalent to underlying microscopic fields in continuous and discrete heterogeneous systems with independent displacements and rotations. Contrary to the classical asymptotic expansion homogenization, finite size representative volume is considered. First, the macroscopic quantities are derived for a heterogeneous Cosserat continuum. The resulting continuum equations are discretized to provide macroscopic quantities in discrete heterogeneous systems. Finally, the expressions for discrete system are derived once again, this time considering the discrete nature directly. The formulations are presented in two variants, considering either internal or external forces, couples, and fluxes. The derivation is based on the virtual work equivalence and elucidates the fundamental significance of the couple stress tensor in the context of balance equations and admissible virtual deformation modes. Notably, an additional term in the couple stress tensor formula emerges, explaining its dependence on the reference system and position of the macroscopic point. The resulting equations are verified by comparing their predictions with known analytical solutions and results of other numerical models under both steady state and transient conditions.

Original languageEnglish (US)
Article number117688
JournalComputer Methods in Applied Mechanics and Engineering
Volume436
DOIs
StatePublished - Mar 1 2025

Funding

Jan Eli\u00E1\u0161 acknowledges financial support from the Czech Science Foundation under project number 23-04974S. Gianluca Cusatis acknowledges support by the Engineering Research and Development Center (ERDC) \u2013 Construction Engineering Research Laboratory (CERL) under Contract No. W9132T22C0015. We also thank prof. Milan Jir\u00E1sek from the Czech Technical University for a discussion at the beginning of the work. Jan Eli\u00E1\u0161 acknowledges financial support from the Czech Science Foundation under project number 23-04974S . Gianluca Cusatis acknowledges support by the Engineering Research and Development Center (ERDC) \u2013 Construction Engineering Research Laboratory (CERL) under Contract No. W9132T22C0015 . We also thank prof. Milan Jir\u00E1sek from Czech Technical University for a discussion at the beginning of the work.

Keywords

  • Cosserat continuum
  • Discrete model
  • Energy equivalence
  • Heterogeneity
  • Homogenization
  • Macroscale
  • Mechanics
  • Mesoscale
  • Poisson's equation

ASJC Scopus subject areas

  • Computational Mechanics
  • Mechanics of Materials
  • Mechanical Engineering
  • General Physics and Astronomy
  • Computer Science Applications

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