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Physics-informed neural operator for predictive parametric phase-field modelling

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Predicting the microstructural and morphological evolution of materials through phase-field modelling is computationally intensive, particularly for high-throughput parametric studies. While neural operators such as the Fourier neural operator (FNO) show promise in accelerating the solution of parametric partial differential equations (PDEs), the lack of explicit physical constraints, may limit generalisation and long-term accuracy for complex phase-field dynamics. Here, we develop a physics-informed neural operator framework to learn parametric phase-field PDEs, namely PF-PINO. By embedding the residuals of phase-field governing equations into the data-fidelity loss function, our framework effectively enforces physical constraints during training. We validate PF-PINO against benchmark phase-field problems, including electrochemical corrosion, dendritic crystal solidification, and spinodal decomposition. Our results demonstrate that PF-PINO significantly outperforms conventional FNO in accuracy, generalisation capability, and long-term stability. This work provides a robust and efficient computational tool for phase-field modelling and highlights the potential of physics-informed neural operators to advance scientific machine learning for complex interfacial evolution problems.

Nanxi Chen, Airong Chen, Rujin Ma• 2026

Related benchmarks

TaskDatasetResultRank
Phase-field simulationPencil-electrode corrosion (test)
Relative L2 Error0.53
2
Phase-field simulationElectro-polishing corrosion unseen configurations (test)
Rel. L2 Error1.44
2
Phase-field simulationDendritic crystal solidification unseen parameter values (test)
Relative L2 Error1.72
2
Phase-field simulationSpinodal decomposition (test)
Relative L2 Error (%)9.71
2
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