Exactly solvable model of avalanches dynamics for Barkhausen crackling noise
Francesca Colaiori

TL;DR
This paper reviews the Barkhausen effect in ferromagnetic materials, presenting an exactly solvable model that captures avalanche dynamics and explains experimental phenomena, including pulse asymmetry caused by eddy current effects.
Contribution
It introduces an exactly solvable ABBM model for Barkhausen noise that accurately reproduces experimental observations and incorporates microscopic eddy current effects.
Findings
The ABBM model effectively describes avalanche dynamics in magnetic materials.
Eddy current retardation explains pulse asymmetry in Barkhausen noise.
Inertial effects may be relevant in other crackling systems.
Abstract
We review the present state of understanding of the Barkhausen effect in soft ferromagnetic materials. Barkhausen noise (BN) is generated by the discontinuous motion of magnetic domains as they interact with impurities and defects. BN is one of the many examples of crackling noise, arising in a variety of contexts with remarkably similar features, and occurring when a system responds in a jerky manner to a smooth external forcing. Among all crackling system, we focus on BN, where a complete and consistent picture emerges thanks to an exactly solvable model of avalanche dynamics, known as the ABBM model, which ultimately describes the system in terms of a Langevin equation for the velocity of the avalanche front. Despite its simplicity, the ABBM model is able to accurately reproduce the phenomenology observed in the experiments on a large class of magnetic materials, as long as universal…
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