English

Homogenization and simulation of heat transfer through a thin grain layer

Analysis of PDEs 2024-07-18 v3

Abstract

We investigated the effective influence of grain structures on the heat transfer between a fluid and solid domain using mathematical homogenization. The presented model consists of heat equations inside the different domains, coupled through either perfect or imperfect thermal contact. The size and the period of the grains are of order ε\varepsilon, therefore forming a thin layer. The equation parameters inside the grains also depend on ε\varepsilon. We considered two distinct scenarios: Case (a), where the grains are disconnected, and Case (b), where the grains form a connected geometry but in a way such that the fluid and solid are still in contact. In both cases, we determined the effective differential equations for the limit ε0\varepsilon \to 0 via the concept of two-scale convergence for thin layers. We also presented and studied a numerical algorithm to solve the homogenized problem.

Keywords

Cite

@article{arxiv.2312.02704,
  title  = {Homogenization and simulation of heat transfer through a thin grain layer},
  author = {Tom Freudenberg and Michael Eden},
  journal= {arXiv preprint arXiv:2312.02704},
  year   = {2024}
}

Comments

Updated the article to the published version, including a small fix in the argumentation of the proof of Lemma 5

R2 v1 2026-06-28T13:41:34.215Z