Magnetomechanical Behaviors of Hard-Magnetic Elastomer Membranes Placed in Uniform Magnetic Field.

Materials (Basel)

Department of Engineering Mechanics, Zhejiang University, Hangzhou 310027, China.

Published: September 2024

AI Article Synopsis

  • The paper develops a theoretical model for a viscoelastic hard-magnetic elastomer membrane (HMEM), focusing on its behavior under pressure and magnetic fields.
  • The HMEM experiences significant nonlinear deformation and is described using a rheological model that combines a spring with a Maxwell unit to represent its viscoelastic properties.
  • Numerical simulations show distinct behaviors in stress and other field variables under varying conditions, revealing an intersection point that remains consistent irrespective of the magnetic field, offering insights for designing advanced elastomer structures and actuators.

Article Abstract

This paper aims to develop a theoretical model for a viscoelastic hard-magnetic elastomer membrane (HMEM) actuated by pressure and uniform magnetic field. The HMEM is initially a flat, circular film with a fixed boundary. The HMEM undergoes nonlinear large deformations in the transverse direction. The viscoelastic behaviors are characterized by using a rheological model composed of a spring in parallel with a Maxwell unit. The governing equations for magneto-visco-hyperelastic membrane under the axisymmetric large deformation are constructed. The Zeeman energy, which is related to the magnetization of the HMEM and the magnetic flux density, is employed. The governing equations are solved by the shooting method and the improved Euler method. Several numerical examples are implemented by varying the magnitude of the pre-stretch, pressure, and applied magnetic field. Under different magnetic fields, field variables such as latitudinal stress exhibit distinct curves in the radial direction. It is observed that these varying curves intersect at a point. The position of the intersection point is independent of the applied magnetic field and only controlled by pressure and pre-stretch. On the left side of the intersection point, the field variables increase as magnetic field strength increases. However, on the other side, this trend is reversed. During viscoelastic evolution, one can find that the magnetic field can be used to modulate the instability behaviors of the HMEM. These findings may provide valuable insights into the design of the hard-magnetic elastomer membrane structures and actuators.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11477602PMC
http://dx.doi.org/10.3390/ma17194732DOI Listing

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