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Research Article

Properties and mechanism of ionic liquid/silicone oil based magnetorheological fluids

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Pages 263-272 | Received 05 Feb 2022, Accepted 12 Apr 2022, Published online: 28 Apr 2022

References

  • 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;14:13.
  • Ashtiani M, Hashemabadi SH, Ghaffari A. A review on the magnetorheological fluid preparation and stabilization. J Magn Magn Mater. 2015;374:716–730.
  • Xu Y, Gong X, Xuan S, et al. A high-performance magnetorheological material: preparation, characterization and magnetic-mechanic coupling properties. Soft Matter. 2011;7:5246.
  • de Vicente J, Klingenberg DJ, Hidalgo-Alvarez R. Magnetorheological fluids: a review. Soft Matter. 2011;7:3701–3710.
  • Kciuk M, Turczyn R. Properties and application of magnetorheological fluids. J Achieve Mater Manuf Eng. 2006;18:127–130.
  • Carlson JD, Jolly MR. MR fluid, foam and elastomer devices. Mechatronics. 2000;10:555–569.
  • Oh J, Sohn JW, Choi S. Applications of magnetorheological fluid actuator to multi-DOF systems: state-of-the-art from 2015 to 2021. Actuators. 2022;2:11: .
  • Deng L, Sun S, Christie M, et al. Investigation of a seat suspension installed with compact variable stiffness and damping rotary magnetorheological dampers. Mech Syst Signal Pr. 2022;171:108802.
  • Wang YQ, Yin SH, Huang H, et al. Magnetorheological polishing using a permanent magnetic yoke with straight air gap for ultra-smooth surface planarization. Precis Eng. 2015;40:309–317.
  • Kikuchi T, Abe I, Nagata T, et al. Twin-driven actuator with multi-layered disc magnetorheological fluid clutches for haptics. J Intel Mat Syst Str. 2020;32:12;1045389X–20943958X.
  • Xiaolin LAJZ. Magnetoresistive micro-displacement sensor based on magnetorheological fluid. Smart Mater Struct. 2021; 4:30: 045025: .
  • Olabi AG, Grunwald A. Design and application of magneto-rheological fluid. Mater Design. 2007;28:2658–2664.
  • Ronzova A, Sedlacik M, Cvek M. Magnetorheological fluids based on core–shell carbonyl iron particles modified by various organosilanes: synthesis, stability and performance. Soft Matter. 2021;17:1299–1306.
  • Fang FF, Liu YD, Choi HJ, et al. Core–shell structured carbonyl iron microspheres prepared via dual-step functionality coatings and their magnetorheological response. Acs Appl Mater Inter. 2011;3:3487–3495.
  • Liu YD, Fang FF, Choi HJ. Core–shell-structured silica-coated magnetic carbonyl iron microbead and its magnetorheology with anti-acidic characteristics. Colloid Polym Sci. 2011;289:1295–1298.
  • Mrlík M, Ilčíková M, Pavlínek V, et al. Improved thermooxidation and sedimentation stability of covalently-coated carbonyl iron particles with cholesteryl groups and their influence on magnetorheology. J Colloid Interf Sci. 2013;396:146–151.
  • Cvek M, Mrlik M, Ilcikova M, et al. A facile controllable coating of carbonyl iron particles with poly(glycidyl methacrylate): a tool for adjusting MR response and stability properties. J Mater Chem C, Mater optic electronic devices. 2015;3:4646–4656.
  • Shen C, Oda Y, Matsubara M, et al. Magnetorheological fluids with surface-modified iron oxide magnetic particles with controlled size and shape. Acs Appl Mater Inter. 2021;13:20581–20588.
  • Lee JY, Kwon SH, Choi HJ. Magnetorheological characteristics of carbonyl iron microparticles with different shapes. Korea-Aust Rheol J. 2019;31:41–47.
  • Abe H, Naka T, Sato K, et al. Shape-controlled syntheses of magnetite microparticles and their magnetorheology. Int J Mol Sci. 2019; 15:20: .
  • Tong Y, Dong X, Qi M. High performance magnetorheological fluids with flower-like cobalt particles. Smart Mater Struct. 2017;26:25023.
  • Sedlacik M, Pavlinek V. Magnetorheology of dimorphic magnetorheological fluids based on iron nanorods. J Phys. 2017;790:12031.
  • Xia Z, Wu X, Peng G, et al. A novel nickel nanowire based magnetorheological material. Smart Mater Struct. 2017;26:54006.
  • Fang FF, Choi HJ, Jhon MS. Magnetorheology of soft magnetic carbonyl iron suspension with single-walled carbon nanotube additive and its yield stress scaling function. Colloids Surf A Physicochem Eng Asp. 2009;351:46–51.
  • Hu B, Fuchs A, Huseyin S, et al. Atom transfer radical polymerized MR fluids. Polymer. 2006;47:7653–7663.
  • Cvek M, Kollar J, Mrlik M, et al. Surface-initiated mechano-ATRP as a convenient tool for tuning of bidisperse magnetorheological suspensions toward extreme kinetic stability. Polym Chem UK. 2021;12:515–593.
  • Lu Y, Zhou H, Mao H, et al. Liquid metal-based magnetorheological fluid with a large magnetocaloric effect. Acs Appl Mater Inter. 2020;12:48748–48755.
  • Bombard AJF, Gonçalves FR, de Vicente J. Magnetorheology of carbonyl iron dispersions in 1-Alkyl-3-methylimidazolium ionic liquids. Ind Eng Chem Res. 2015;54:9956–9963.
  • Guerrero-Sanchez C, Lara-Ceniceros T, Jimenez-Regalado E, et al. Magnetorheological fluids based on ionic liquids. Adv Mater. 2007;19:1740–1747.
  • Zhao P, Li X, Tong Y, et al. Effect of the interface between magnetic particles and carrier liquids on magnetorheological properties and sedimentation of magnetorheological fluids: a molecular dynamics simulation and experimental insights. J Mol Liq. 2021;342:117377.
  • Tong Y, Li X, Zhao P, et al. Improved magnetorheological properties by using ionic liquid as carrier liquid of magnetorheological fluids. Front Mater. 2021;8:.
  • Cvek M, Mrlik M, Pavlinek V. A rheological evaluation of steady shear magnetorheological flow behavior using three-parameter viscoplastic models. J Rheol. 2016;60:687–694.