Tailoring the material properties, nanostructure and grain alignment of Alnico magnets through micromagnetic simulations

Fuente: arXiv
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Hauptverfasser: Stanciu, Anda Elena, Fischbacher, Johann, Gusenbauer, Markus, Kovacs, Alexander, Oezelt, Harald, Graff, Joachim Seland, Carvalho, Patricia, Gunnæs, Anette Eleonora, Zaplotnik, Matej, Sagvolden, Espen, Diplas, Spyros, Schrefl, Thomas
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Veröffentlicht: 2026
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author Stanciu, Anda Elena
Fischbacher, Johann
Gusenbauer, Markus
Kovacs, Alexander
Oezelt, Harald
Graff, Joachim Seland
Carvalho, Patricia
Gunnæs, Anette Eleonora
Zaplotnik, Matej
Sagvolden, Espen
Diplas, Spyros
Schrefl, Thomas
author_facet Stanciu, Anda Elena
Fischbacher, Johann
Gusenbauer, Markus
Kovacs, Alexander
Oezelt, Harald
Graff, Joachim Seland
Carvalho, Patricia
Gunnæs, Anette Eleonora
Zaplotnik, Matej
Sagvolden, Espen
Diplas, Spyros
Schrefl, Thomas
contents Alnico magnets have gained renewed interest in the search for rare-earth free permanent magnets due to their high thermal stability and magnetisation. However, the limited coercivity of these shape-anisotropy-based alloys constrains their performance. Starting from a reference Alnico sample, we realised a finite elements micromagnetic study of exchange-decoupled rods by varying their dimensions and interrod spacing across those observed experimentally. We computed the hysteresis properties by progressing from micromagnetic simulations of a small number of rods within the magnetostatic field of their neighbours to large systems treated statistically based on the distribution of orientations of the grains. We compared the coercivity of an isolated rod with that of the exchange-decoupled system to highlight the effect of magnetostatic interactions. We computed analytically the stray field acting on a single rod as a consequence of its surrounding rods in order to confirm the scaling of the coercivity with the packing fraction p. We explored how intrinsic material properties influence magnetic behaviour by examining materials with different magnetocrystalline anisotropy constants and saturation polarisation values. Results from several hundred simulations were used to train a multi-layer perceptron regressor and predict the magnetic properties as function of the dimensions of the rods, interrod spacing and orientation of the grains. With this approach, we highlight the underlying trends by which nanoscale structuring, intrinsic material properties and grain alignment can be tailored to improve the magnetic properties of Alnico alloys.
format Preprint
id arxiv_https___arxiv_org_abs_2605_11982
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Tailoring the material properties, nanostructure and grain alignment of Alnico magnets through micromagnetic simulations
Stanciu, Anda Elena
Fischbacher, Johann
Gusenbauer, Markus
Kovacs, Alexander
Oezelt, Harald
Graff, Joachim Seland
Carvalho, Patricia
Gunnæs, Anette Eleonora
Zaplotnik, Matej
Sagvolden, Espen
Diplas, Spyros
Schrefl, Thomas
Materials Science
Applied Physics
Alnico magnets have gained renewed interest in the search for rare-earth free permanent magnets due to their high thermal stability and magnetisation. However, the limited coercivity of these shape-anisotropy-based alloys constrains their performance. Starting from a reference Alnico sample, we realised a finite elements micromagnetic study of exchange-decoupled rods by varying their dimensions and interrod spacing across those observed experimentally. We computed the hysteresis properties by progressing from micromagnetic simulations of a small number of rods within the magnetostatic field of their neighbours to large systems treated statistically based on the distribution of orientations of the grains. We compared the coercivity of an isolated rod with that of the exchange-decoupled system to highlight the effect of magnetostatic interactions. We computed analytically the stray field acting on a single rod as a consequence of its surrounding rods in order to confirm the scaling of the coercivity with the packing fraction p. We explored how intrinsic material properties influence magnetic behaviour by examining materials with different magnetocrystalline anisotropy constants and saturation polarisation values. Results from several hundred simulations were used to train a multi-layer perceptron regressor and predict the magnetic properties as function of the dimensions of the rods, interrod spacing and orientation of the grains. With this approach, we highlight the underlying trends by which nanoscale structuring, intrinsic material properties and grain alignment can be tailored to improve the magnetic properties of Alnico alloys.
title Tailoring the material properties, nanostructure and grain alignment of Alnico magnets through micromagnetic simulations
topic Materials Science
Applied Physics
url https://arxiv.org/abs/2605.11982