Improving FEM-based solid mechanics simulations for ultrashort pulse laser ablation by integrating an equation of state and material separation
作者:David Redka, Julian Vollmann, Jan Winter, Michael Schmidt, J. Minář, H. Huber, Philipp C. Schmid · 发表于:International Journal of Heat and Mass Transfer · 年份:2025 · DOI:10.1016/j.ijheatmasstransfer.2025.126714 · 被引用次数:9 · 研究领域:Laser Material Processing Techniques、Diamond and Carbon-based Materials Research、Advanced Surface Polishing Techniques
• Development of a two-temperature solid mechanics model incorporating an equation of state. • Inclusion of a spallation mechanism for material separation in the FEM approach. • Efficient and accessible implementation using COMSOL Multiphysics. • Verification against experimentally validated hydrodynamic simulations. • Improved accuracy over classical isobaric solid mechanics models. Accurate simulations are paramount for deepening our understanding of ultrashort pulse laser ablation, a complex process involving non-equilibrium thermal and material transport on time-scales spanning several orders of magnitude. In response to this need, we propose a novel approach that enhances the use of a readily available finite element method tool for multiphysics simulations by incorporating an equation of state (EOS). This new model, termed the two-temperature solid mechanics model including EOS (SM-EOS), has been meticulously tested against isostatic changes and compared with an experimentally validated two-temperature hydrodynamic simulation (HD). Further comparison was made with classical TTM solid mechanics (SM-ISO) simulations using constant or isobaric material parameters. A mechanism for describing material separation due to spallation is also incorporated in the model. Bulk aluminum serves as prototype within this investigation. Our results show that SM-EOS aligns closely with HD, significantly outperforming the classical SM-ISO simulations. Given its robust performance and ease ...