English

Contact phase-field modeling for chemo-mechanical degradation processes. Part I: Theoretical foundations

Statistical Mechanics 2019-07-09 v2

Abstract

As phase-field modeling (PFM) is booming across various disciplines and has been proven fitted for numerically modeling interfacial problems, we aim at taking a step back to revisit its fundamental validity, in the light of non-equilibrium thermodynamics. For that, a general contact thermodynamics (CT) framework is derived from contact geometry, based on the maximum dissipation principle (MaxDP), thus extending Gibbs' seminal geometrical representation of thermostatics. Combining CT and micro-force balance, the gradient flow equation usually derived for PFM from the variational formulation can be written as generalized relaxation equations. The obtained viscous Allen-Cahn equation allows both the PFM kinematic degrees of freedom, the order parameter and its gradient, to be fully dissipative. The model is also extended to a double PFM, in order to include chemo-mechanical coupling, corresponding respectively to endothermic and exothermic processes and thus leading to a phase change bidirectionality. This contact PFM (CPFM) will be applied in the second part of this work to irregular microstructures like geomaterials, valid for porous media in general, with a focus on pressure solution.

Keywords

Cite

@article{arxiv.1906.07755,
  title  = {Contact phase-field modeling for chemo-mechanical degradation processes. Part I: Theoretical foundations},
  author = {Alexandre Guevel and Hadrien Rattez and Sotiris Alevizos and Manolis Veveakis},
  journal= {arXiv preprint arXiv:1906.07755},
  year   = {2019}
}