Application de la méthode d’homogénéisation numérique pour la prédiction du comportement élastique d’un empilement de couches minces
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This work presents a numerical study dedicated to the application of the numerical
homogenization method to predict the elastic behavior of a thin-film stack (metallic and
dielectric) used in microelectronic and micro-electro-mechanical systems (MEMS), providing
an efficient alternative to full heterogeneous modeling which is computationally expensive and
time-consuming. The methodology is based on modeling a 5-layer Representative Volume
Element (RVE) alternating between conductive materials (AlCu or Platinum Pt) and a
dielectric insulator (USG), while including a parametric study on layer thickness variations.
Simulations were performed using Abaqus software coupled with the EasyPBC plugin to apply
periodic boundary conditions and identify effective elastic constants via virtual tensile and
shear tests. To validate the homogenized model, a quantitative comparison was conducted
against the reference heterogeneous model under 3-point and 4-point bending loads. The results
demonstrate an excellent macroscopic agreement between both models regarding global
deflection and stiffness predictions, while showing that increasing the metallic layer thickness
enhances structural rigidity but amplifies interfacial stresses. However, despite the drastic
computational efficiency of the homogenization method, the study highlights its limitations
related to the stress-smoothing effect, which masks local stress concentrations at the material
interfaces. Finally, this research opens future perspectives regarding the incorporation of
elastoplastic laws for metals, cohesive zone modeling (CZM) for interfacial damage, and the
consideration of manufacturing-induced residual thermal stresses.
