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Numerical modelling of magnetic nanoparticle behavior in an alternating magnetic field based on multiphysics coupling

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Identificadores
URI: https://hdl.handle.net/10481/88964
DOI: 10.1080/15376494.2022.2136805
ISSN: 1537-6532
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Auteur
Ashofteh, Alireza; Marqués, Rafael; Callejas Zafra, Antonio Manuel; Muñoz Beltrán, Rafael; Melchor Rodríguez, Juan Manuel
Editorial
Taylor & Francis
Materia
Magnetic Nanoparticle Hyperthermia
 
Alternating magnetic field
 
Drug delivery
 
Multiphysics
 
Date
2022-11-21
Referencia bibliográfica
A. Ashofteh, R. Marqués, A. Callejas, R. Muñoz & J. Melchor (2022) Numerical modelling of magnetic nanoparticle behavior in an alternating magnetic field based on multiphysics coupling, Mechanics of Advanced Materials and Structures, DOI: 10.1080/15376494.2022.2136805
Patrocinador
Department of Statistics and Operations Research, University of Granada, Granada, Spain; bMNat Scientific Unit of Excellence, University of Granada, Spain; Instituto de Investigación Biosanitaria, ibs.GRANADA, Spain; Department of Structural Mechanics, University of Granada, Spain; Department of Civil Engineering, University of Granada, Spain
Résumé
In magnetic nanoparticle hyperthermia, the magnetic nanoparticles (MNPs) start oscillations when they are exposed to an alternating magnetic field, which may generate ultrasound waves. These resulting oscillations of nanoparticles can lead to the movement of drug carrier liposomes. In this study, a multiphysics coupling model of magnetic nanoparticle behavior in an alternating magnetic field was developed, implementing solid mechanics compliance parameters and piezomagnetic coupling matrices. A detailed sensitivity study was conducted to examine the effects of size and elastic modulus of MNPs, distribution and distance between two MNPs, elasticity and viscosity of the glycerol medium and mesh element sizes on the output displacement signals of MNPs. The results indicated that magnetic nanoparticles undergo some displacements when they are exposed to an alternating magnetic field. These oscillations may generate ultrasound waves, though the amount of displacement for each nanoparticle is negligibly small. It is expected that aggregated nanoparticles result in much higher oscillations.
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