xmlui.dri2xhtml.METS-1.0.item-contributor-funder:
Comunidad de Madrid European Commission
Sponsor:
D.G.G. acknowledges support from the Talent Attraction grant (CM 2018 - 2018-T2/IND-9992) from the
Comunidad de Madrid, and support from the European Research Council (ERC) under the European Union’s
Horizon 2020 research and innovation programme (grant agreement No. 947723, project 4D-BIOMAP). M.
H. acknowledges the funding through an EPSRC Impact Acceleration Award (EP/R511614/1)
Project:
info:eu-repo/grantAgreement/EC/H2020/947723/4D-BIOMAP Comunidad de Madrid. CM 2018 - 2018-T2/IND-9992
Keywords:
Magneto-active polymers (MAP)
,
Magneto-mechanics
,
Magnetic pre-stretch
,
Hard-magnetics
,
Microstructural model
,
Finite deformations
Rights:
Atribución-NoComercial-SinDerivadas 3.0 España
Abstract:
Hard-magnetic soft materials are a class of magneto-active polymers (MAPs) where the fillers are composed
of hard-magnetic (magnetised) particles. These materials present complex magneto-mechanical couplings,
which require the development of modelling framewHard-magnetic soft materials are a class of magneto-active polymers (MAPs) where the fillers are composed
of hard-magnetic (magnetised) particles. These materials present complex magneto-mechanical couplings,
which require the development of modelling frameworks in understanding their responses at the very beginning
of conceptualisation and design. Most of the current constitutive approaches available in the literature
for hard-magnetic MAPs do not consider dipole-dipole interactions of the embedded particles. However,
such interactions among the magnetised particles generate internal forces within the composite that need
to be balanced by mechanical stress from the polymeric matrix networks. This fact may imply an initial
stretch of the polymeric network and suggests that such dipole-dipole interactions may be important during
the MAP deformation process. To address these crucial points, in this contribution, we propose a novel
constitutive model relating microstructural characteristics of hard-magnetic MAPs. The model accounts for
polymeric network pre-stretch, dipole-dipole interactions, Zeeman effect as well as viscous mechanisms
which are formulated on the finite deformation theory. The results obtained herein highlight the importance
of accounting for the dipole-dipole interactions and the polymeric network pre-stretch to understand the
complex magneto-mechanically coupled behaviour of hard-magnetic MAPs.[+][-]