Skip to main content
U.S. Department of Energy
Office of Scientific and Technical Information

The effect of spherical nanoparticles on rheological properties of bi-dispersed magnetorheological fluids

Journal Article · · AIP Conference Proceedings
DOI:https://doi.org/10.1063/1.4918168· OSTI ID:22490566
; ;  [1]
  1. P D Patel Institute of Applied Science and K C Patel R & D Center, Charotar University of Science & Technology, CHARUSAT Campus, Changa, Gujarat (India)

In the present investigation, the rheological properties of bi-dispersed magnetorheological (MR) fluid based on Fe{sub 3}O{sub 4} nanosphere and microsphere of iron particles are experimentally investigated. The MR fluid is prepared by substituting nanosphere of 40nm Fe{sub 3}O{sub 4} particles in MR fluids having microsphere iron particles (7-8 μm). Three different weight fractions (0%, 1% and 3%) of nanosphere-microsphere MR fluids are synthesized. In the absence of the magnetic field, substitution of magnetic nanosphere decreases the viscosity lower than without substituted sample at high as well as low shear rate. Upon the application of the magnetic field, the particles align along the direction of the field, which promotes the yield stress. Here too the yield stress value decreases with magnetic nanosphere substitution. This behaviour is explain based on the inter-particle interaction as well as formation of nanosphere cloud around the magnetic microsphere, which effectively reduces the viscosity and works as weak point when chains are formed. Variation of dynamic yield stress with magnetic field is explained using microscopic model. In any event such fluid does not sediment and is not abrasive so it could be useful if not too high yield stress is needed.

OSTI ID:
22490566
Journal Information:
AIP Conference Proceedings, Journal Name: AIP Conference Proceedings Journal Issue: 1 Vol. 1665; ISSN APCPCS; ISSN 0094-243X
Country of Publication:
United States
Language:
English

Similar Records

Magnetorheological effect in the magnetic field oriented along the vorticity
Journal Article · Sat Nov 01 00:00:00 EDT 2014 · Journal of Rheology · OSTI ID:22360152

Self-assembly of graphene oxide coated soft magnetic carbonyl iron particles and their magnetorheology
Journal Article · Wed May 07 00:00:00 EDT 2014 · Journal of Applied Physics · OSTI ID:22273861

Rheology of Aqueous Magnetorheological Fluid Using Dual Oxide-Coated Carbonyl Iron Particles
Journal Article · Mon Mar 14 00:00:00 EDT 2011 · Journal of the American Ceramic Society · OSTI ID:1095274