AI Article Synopsis

  • The study focuses on the magnetic properties of ferroparticles in a viscoelastic matrix modeled as a Maxwell fluid, which has a specific stress relaxation time.
  • It explores how the embedded nanoparticle probes can be influenced by an external alternating magnetic field to study the fluid's deformational characteristics through magnetic microrheology.
  • The research highlights the differences between Maxwell and Newtonian fluids in terms of particle behavior, especially noting important limitations on stress relaxation time when assuming an inertialess motion for particles around 10nm in size.

Article Abstract

We study magnetic response of an assembly of ferroparticles suspended in a viscoelastic matrix which is modeled by a Maxwell fluid with a unique stress relaxation time. The problem refers to the magnetic microrheology approach where deformational properties of a complex fluid are tested with the aid of embedded nanoparticle probes set to motion by an external ac magnetic field. A possibility is considered to simplify the description of the orientational kinetics of the system at the expense of neglecting inertia effects in particle rotary motion. It is shown that in this aspect a Maxwell matrix differs essentially from the Newtonian one. In the latter the inertialess approximation for the particles of the approximately 10nm size is valid practically unboundedly. For a viscoelastic matrix the inertialess approximation means an important restriction on the value of the stress relaxation time. Assuming weak nonequilibrium, the magneto-orientational relaxation times are found and low-frequency magnetic spectra of a viscoelastic suspension are determined in the presence of a constant (magnetizing) field.

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Source
http://dx.doi.org/10.1103/PhysRevE.72.061406DOI Listing

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