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Research Article

The influence of aspect ratio on the properties of cobalt nanowire-based magnetorheological fluids

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Pages 626-642 | Received 11 Aug 2022, Accepted 18 Sep 2022, Published online: 02 Oct 2022

References

  • Klingenberg DJ. Magnetorheology: applications and challenges. AlChE J. 2001;47(2):246–249.
  • de Vicente J, Klingenberg DJ, Hidalgo-Álvarez R. Magnetorheological fluids: a review. Soft. Matter. 2011;7(8):3701–3710.
  • Rabinow J. The magnetic fluid clutch. AIEE Trans. 1948;67:1308–1315.
  • Bell RC, Karli JO, Vavreck AN, et al. Magnetorheology of submicron diameter iron microwires dispersed in silicone oil. Smart Mater Struct. 2008;17(1):015028 (6pp).
  • Jones TB, Saha B. Nonlinear interactions of particles in chains. J. Appl. Phys. 1990;68(2):404–410.
  • Phulé PP, Ginder JM. Synthesis and properties of novel Magnetorheological fluids having improved stability and redispersibility. Int J Mod Phys B. 2019-2027;13(14–16):1999.
  • Kamath GM, Wereley NM, Jolly MR. Characterization of magnetorheological helicopter lag dampers. J. Am. Helicopter Soc. 1999;44(3):234–248.
  • Choi SB, Nam MH, Lee BK. Vibration control of a MR seat damper for commercial vehicles. J Intell Mat Syst Struc. 2000;11(12):936–944.
  • Wang N, Li DH, Song WL, et al. Effect of surface texture and working gap on the braking performance of the magnetorheological fluid brake. Smart Mater Struct. 2016;25(105026):13.
  • Kavlicoglu NC, Kavlicoglu BM, Liu Y, et al. Response time and performance of a high-torque magneto-rheological fluid limited slip differential clutch. Smart Mater. Struct. 2007;16(1):149–159.
  • Kumar JS, Paul PS, Raghunathan G, et al. A review of challenges and solutions in the preparation and use of magnetorheological fluids. Int. J. Mech. Mater. Eng. 2019;14(1):1–18.
  • Bell RC, Miller ED, Karli JO, et al. Influence of particle shape on the properties of magnetorheological fluids. Int J Mod Phys B. 2007;21(28n29):5018–5025.
  • López-López MT, Vertelov G, Bossis G, et al. New magnetorheological fluids based on magnetic fibers. J. Mater. Chem. 2007;17(36):3839–3844.
  • Ngatu GT, Wereley NM, Karli JO, et al. Dimorphic Magnetorheological fluids: exploiting partial substitution of microspheres by nanowires. Smart Mater Struct. 2008;17(4):045022 (8pp).
  • Gómez-Ramírez A, López-López MT, Durán JDG, et al. Influence of particle shape on the magnetic and magnetorheological properties of nanoparticle suspensions. Soft Matter. 2009;5(20):3888–3895.
  • Kuzhir P, López-López MT, Bossis G. Magnetorheology of fiber suspensions. II. Theory. J. Rheol. 2009;53(1):127–151.
  • López-López MT, Kuzhir P, Bossis G. Magnetorheology of fiber suspensions. I. Experimental. J. Rheol. 2009;53(1):115–126.
  • de Vicente J, Segovia-Gutiérrez JP, Andablo-Reyes E, et al. Dynamic rheology of sphere- and rod-based magnetorheological fluids. J Chem Phys. 2009;131(194902):(10.
  • de Vicente J, Vereda F, Segovia-Guitérrez JP, et al. Effect of particle shape in magnetorheology. J. Rheol. 2010;54(6):1337–1362.
  • Kuzhir P, Gómez-Ramírez A, López-López MT, et al. Non-linear viscoelastic response of magnetic fiber suspensions in oscillatory shear. J. Non-Newtonian Fluid Mech. 2011;166(7–8):373–385.
  • Gómez-Ramírez A, Kuzhir P, López-López MT, et al. Steady shear flow of magnetic fiber suspensions: theory and comparison with experiments. J. Rheol. 2011;51(1):43–67.
  • Bossis G, Marins JA, Kuzhir P, et al. Functionalized microfibers for field-responsive materials and biological applications. J Intell Mat Syst Struc. 1871-1879;26(14):2015.
  • Dong X, Tong Y, Ma N, et al. Properties of cobalt nanofiber-based magnetorheological fluids. RSC Advances. 2015;5(18):13958–13963.
  • Morillas JR, Carreón-González E, de Vicente J. Effect of particle aspect ratio in magnetorheology. Smart Mater Struct. 2015;24(125005):13.
  • Celzard A, McRae E, Deleuze C, et al. Critical concentration in percolating systems containing a high-aspect-ratio filler. Phys Rev B. 1996;53(10):6209–6214.
  • Metzner A. Rheology of Suspensions in Polymeric Liquids. J. Rheol. 1985;29(6):739–775.
  • Phule P, Mihalcin M, Genc S. The role of the dispersed-phase remnant magnetization on the redispersibility of magnetorheological fluids. J. Mater. Res. 1999;14(7):3037–3041.
  • Aruna MN, Rahman MR, Joladarashi S, et al. Investigation of sedimentation, rheological, and damping force characteristics of carbonyl iron magnetorheological fluid with/without additives. J Braz Soc Mech Sci Eng. 2020;42(5):228.
  • Weiss KD, Nixon DA, Carlson JD, et al., Thixotropic magnetorheological materials, US Patent No. 5,645,752 (1997).
  • de Vicente J, López-López MT, González-Caballero F, et al. Rheological study of the stabilization of magnetizable colloidal suspensions by addition of silica nanoparticles. J Rheol. 2003;47(5):1093–1109.
  • Lim ST, Cho MS, Choia HJ, et al. Magnetorheological characterization of organoclay added carbonyl-iron suspensions. Int J Mod Phys B. 2005;19(7–9):1142–1148.
  • Song KH, Park BJ, Choi HJ. Effect of magnetic nanoparticle additive on characteristics of magnetorheological fluid. IEEE Trans Magn. 2009;45(10):4045–4048.
  • Rosenfeld N, Wereley NM, Radakrishnan R, et al. Behavior of magnetorheological fluids utilizing nanopowder iron. Int J Mod Phys B. 2002;16(17n18):2392–2398.
  • Wereley NM, Chaudhuri A, Yoo JH, et al. Bidisperse Magnetorheological fluids using fe particles at nanometer and micron scale. Journal of Intelligent Material Systems and Structures. 2006;17(5):393–401.
  • Yin J, Zhao X. Titanate nano-whisker electrorheological fluid with high suspended stability and ER activity. Nanotechnology. 2006;17(1):192–196.
  • Vereda F, Segovia-Gutiérrez JP, de Vicente J, et al. Faceted particles: an approach for the enhancement of the elasticity and the yield-stress of magnetorheological fluids. Appl Phys Lett. 2016;108(211904):4.
  • Anupama AV, Choudhary HK, Kumar R, et al. Steady-shear response of magnetorheological fluid containing coral-shaped yttrium-iron-garnet particles. Mater Res Bull. 2019;113:45–50.
  • Cantu-Valle J, Betancourt I, Sanchez JE, et al. Mapping the magnetic and crystal structure in cobalt nanowires. J. Appl. Phys. 2015;118(2):024302.
  • Maaz K, Karim S, Usman M, et al. Effect of Crystallographic Texture on Magnetic Characteristics of Cobalt Nanowires. Nanoscale Res. Lett. 2010;5(7):1111–1117.
  • Xua J, Huangb X, Xiea G, et al. Fabrication and magnetic property of monocrystalline cobalt nanowire array by direct current electrodeposition. Mater Lett. 2005;59(8–9):981–984.
  • Kröll M, Blau WJ, Grandjean D, et al. Magnetic properties of ferromagnetic nanowires embedded in nanoporous alumina membranes. J Magn Magn Mater. 2002;249(1–2):241–245.
  • Fert A, Piraux L. Magnetic nanowires. J. Magn. Magn. Mater. 1999;200(1–3):338–358.
  • Jolly M, Bender J, Bender J. Properties and applications of commercial MR fluids. J. Intel. Mat. Syst. Str. 1999;10(1):5–13.
  • Vereda F, Segovia-Gutiérrez JP, de Vicente J, et al. Particle roughness in magnetorheology: effect on the strength of the field-induced structures. J Phys D Appl Phys. 2015;48( 015309):11.
  • Vereda F, de Vicente J, Hidalgo-Álvarez R. Effect of surface roughness on the magnetic interaction between micron-sized ferromagnetic particles: finite element method calculations. J Intell Mat Syst Struc. 2017;28(8):992–998.
  • Sundararajakumar RR, Koch DL. Structure and properties of sheared fiber suspensions with mechanical contacts. J. Non-Newtonian Fluid Mech. 1997;73(3):205–239.
  • Keshtkar M, Heuzey MC, Carreau PJ. Rheological behavior of fiber-filled model suspensions: effect of fiber flexibility. J. Rheol. 2009;53(3):631–650.
  • Tao R. The physical mechanism to reduce viscosity of liquid suspensions. In: Gordaninejad F, Graeve OA, Fuchs A, et al., editors. Electrorheological fluids and magnetorheological suspensions proceedings of the 10th international conference on ERMR. Vol. 2007, New Jersey: World Scientific Publishing Company, Inc.; 2006. p. 21–28.
  • Tao R, Xu X. Reducing the viscosity of crude oil by pulsed electric or magnetic field. Energy Fuels. 2006;20(5):2046–2051.
  • Forgacs OL, Mason SG. Particle motions in sheared suspensions IX. Spin and deformation of threadlike particles. J. Colloid Sci. 1959;14(5):457–472.
  • Zhang D, Breguet J-M, Clavel R, et al. In situ tensile testing of individual Co nanowires inside a scanning electron microscope. Nanotechnology. 2009;20(365706):(6.
  • Esfahani MN, Alaca BE. A review on size-dependent mechanical properties of nanowires. Adv Eng Mater. 2019;21(1900192):23.
  • Doi M, Edwards SF. Dynamics of rod-like macromolecules in concentrated solution. J Chem Soc Faraday Trans. 1978;74(3):560–570.
  • Switzer LH, Klingenberg DJ. III and D. J. Klingenberg. Rheology of sheared flexible fiber suspensions via fiber-level simulations. J. Rheol. 2003;47(3):759–778.