Computational Modeling of Magnetorheological Elastomers

ORAL

Abstract

Ultra-soft polydimethylsiloxane (PDMS) based magnetorheological elastomers (MREs) are composite materials of polymeric matrix with embedded micro- or nano- sized ferromagnetic particles. They are promising candidates for dynamic cell culture substrata due to their magnetic field dependent mechanical properties. In this work, we have used a two-step, multi-scale approach to model the complex magnetic reversal behavior of MREs. Micro-magnetic simulations were performed using MuMax3 to obtain a detailed description of the magnetic reversal process of individual Fe particles. The micromagnetic modeling results are then used as input parameters for a particle interaction model that includes dipolar interactions and elastic deformations. This model was used to study the magneto-mechanical interactions between a large collection of particles and their surrounding elastomer matrix, which provides insight into the complex magneto-mechanical interactions of MREs.

*This work is supported by the Center for Engineering MechanoBiology (CEMB), an NSF Science and Technology Center, under grant agreement CMMI: 15-48571.
Work at Colorado State University is supported by NSF (DMR # 1709525)

Presenters

  • Tong Dang

    • Physics, Bryn Mawr College
    • Department of Physics, Bryn Mawr College

Authors

  • Tong Dang

    • Physics, Bryn Mawr College
    • Department of Physics, Bryn Mawr College
  • Andy T Clark

    • Physics, Bryn Mawr College
    • Department of Physics, Bryn Mawr College
  • Jiajia Li

    • Department of Physics, Fudan University
  • David Marchfield

    • Department of Physics, Colorado State University
  • Kristen S. Buchanan

    • Colorado State University
    • Physics, Colorado State University
    • Department of Physics, Colorado State University
  • Xuemei Cheng

    • Physics, Bryn Mawr College
    • Department of Physics, Bryn Mawr College