arXiv · 2608.18418
Solidification-cell confinement of domain-wall pinning in additively manufactured ferromagnets
Abstract
As-built printed ferromagnets typically exhibit higher coercivity than optimized wrought materials, yet existing explanations rely on empirical fits or costly simulations. Herein, we provide a missing analytical theory that links print parameters directly to cooling rates, cellular spacing, dislocation density, and domain-wall pinning coercivity. Informed by metallographic grain data and using a single fitted constant, our model predicts six experimental datasets for pure Fe, Fe-6.9Si, and a multicomponent alloy within a factor of 1.9. We demonstrate that configurational lattice distortion is negligible, implying that single-phase printed alloys follow dilute-pinning laws. Critically, we introduce a confinement factor, $E=\sqrt{\lambda_{c}/2\delta_{w}}$, proving that solidification-induced dislocation packing makes cellular microstructures harder than conventionally cold-worked metals. The framework enables an alloy-sensitivity map to screen and rank compositions before manufacturing.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Dennis Boakye, Eric K. K. Abavare, Chuang Deng. 2026-08-19. Solidification-cell confinement of domain-wall pinning in additively manufactured ferromagnets. https://arxiv.org/abs/2608.18418
Cite the original work for its findings. Save a collection to share your selection of sources.