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Review of Play and Preisach models for hysteresis in magnetic materials
Uppsala University, Disciplinary Domain of Science and Technology, Technology, Department of Electrical Engineering, Electricity.ORCID iD: 0000-0003-1027-8914
Uppsala University, Disciplinary Domain of Science and Technology, Technology, Department of Electrical Engineering, Electricity.ORCID iD: 0000-0001-6798-0689
2023 (English)In: Materials, E-ISSN 1996-1944, Vol. 16, no 6, article id 2422Article in journal (Refereed) Published
Abstract [en]

This paper studies the properties of the Preisach model and the play model, and compare their similarities. Both are history-dependent hysteresis models that are used to model magnetic hysteresis. They are described as discrete sums of simple hysteresis operators but can easily be reformulated as integral equations of continuous distribution functions using either a Preisach weight distribution function or a play distribution function. The models are mostly seen as phenomenological or mathematical tools but can also be related to friction-like pinning of domain-wall motions, where Rayleigh’s law of magnetic hysteresis can be seen as the simplest case on either the play model or the Preisach model. They are poor at modeling other domain behavior, such as nucleation-driven hysteresis. Yet another hysteresis model is the stop model, which can be seen as the inverted version of the play model. This type of model has advantages for expressions linked to energy and can be related to Steinmetz equation of hysteresis losses. The models share several mathematical properties, such as the congruency property and wiping-out property, and both models have a history of dependence that can be described by the series of past reversal points. More generally, it is shown that the many models can be expressed as Preisach models, showing that they can be treated as subcategories of the Preisach type models. These include the play model, the stop model and also the alternative KP-hysteron model.

Place, publisher, year, edition, pages
MDPI, 2023. Vol. 16, no 6, article id 2422
Keywords [en]
friction-like pinning, domain wall pinning, domain nucleation, magnetic hysteresis, hystersis model, history-dependent hysteresis model, Preisach model, play model, stop model, Everett function, Masing model, Prandtl–Ishlinskii model, Iwan model, Jenkins elements, Maxwell-slip model, Madelung's rules
National Category
Electrical Engineering, Electronic Engineering, Information Engineering
Research subject
Engineering Science with specialization in Science of Electricity
Identifiers
URN: urn:nbn:se:uu:diva-498133DOI: 10.3390/ma16062422ISI: 000959684700001PubMedID: 36984302OAI: oai:DiVA.org:uu-498133DiVA, id: diva2:1742610
Funder
StandUpAvailable from: 2023-03-10 Created: 2023-03-10 Last updated: 2024-07-04Bibliographically approved
In thesis
1. Models of magnetism in electrical machines
Open this publication in new window or tab >>Models of magnetism in electrical machines
2023 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

The magnetic field is a fundamental part of an electrical machine, for establishing the torque and inducing voltages and currents. Then acting as the link between mechanical power and electrical power. This thesis will give a comprehensive study of how magnetism could be modeled. Covering how the magnetic field relates to energy transfer, power flow, and the forces of electrical machines.

An electromagnetic energy transfer is usually described by Poynting’s vector, which has a different formulation than the power flow of electrical engineering. The main difference is that Poynting’s vector localizes the energy flux in the surrounding electromagnetic fields of a current-carrying conductor, instead of inside the conductor itself.

The forces in a machine can be modeled by the field lines of the magnetic flux density. The force density consists of two vector components: the magnetic tension force and the magnetic pressure gradient force. The magnetic tension force acts to straighten curved field lines, based on the curvature of the flux density. The magnetic pressure gradient force acts from areas of high flux to areas of low flux. The force density could describe the forces in a synchronous machine, both for the torque of the load and for the machine’s radial forces between the rotor and the stator.

The force density could also be used to improve the understanding of Maxwell stress tensor,as they are easier to illustrate as vectors, compared to the matrix form within the Maxwell stresstensor. It also expresses the location of the force density, which can improve the use of enclosedvolumes when calculating forces based on the divergence theorem with Maxwell stress tensor.

Place, publisher, year, edition, pages
Uppsala: Acta Universitatis Upsaliensis, 2023. p. 73
Series
Digital Comprehensive Summaries of Uppsala Dissertations from the Faculty of Science and Technology, ISSN 1651-6214 ; 2248
National Category
Electrical Engineering, Electronic Engineering, Information Engineering
Research subject
Engineering Science with specialization in Science of Electricity
Identifiers
urn:nbn:se:uu:diva-498003 (URN)978-91-513-1737-3 (ISBN)
Public defence
2023-04-19, Eva von Bahrsalen, Ångströmlaboratoriet, Lägerhyddsvägen 1, Uppsala, 09:15 (English)
Supervisors
Available from: 2023-03-28 Created: 2023-03-07 Last updated: 2023-12-11Bibliographically approved

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Mörée, GustavLeijon, Mats

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