arXiv · 2511.03884
Scalable Autoregressive Deep Surrogates for Dendritic Microstructure Dynamics
Abstract
Microstructural pattern formation, such as dendrite growth, occurs widely in materials and energy systems, significantly influencing material properties and functional performance. While the phase-field method has emerged as a powerful computational tool for modeling microstructure dynamics, its high computational cost limits its integration into practical materials design workflows. Here, we introduce a machine-learning framework using autoregressive deep surrogates trained on short trajectories from quantitative phase-field simulations of alloy solidification in limited spatial domains. Once trained, these surrogates accurately predict dendritic evolution at scalable length and time scales, achieving a speed-up of more than two orders of magnitude. Demonstrations in isothermal growth and in directional solidification of a dilute Al-Cu alloy validate their ability to predict microstructure evolution. Quantitative comparisons with phase-field benchmarks further show excellent agreement in the tip-selection constant, morphological symmetry, and primary spacing evolution.
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Kaihua Ji, Luning Sun, Shusen Liu, Fei Zhou, Tae Wook Heo. 2025-11-05. Scalable Autoregressive Deep Surrogates for Dendritic Microstructure Dynamics. https://arxiv.org/abs/2511.03884
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