The ferrofluid flow model of the Shliomis and continuity equation for the film and porous interface with the theory of Darcy, the modified Reynolds equation for ferrofluid squeeze film between curved annular plates is discussed with the impact of the rotation of Ferro-particles and slip velocity at the boundary. Beavers and Joseph’s slip conditions are adopted to study the impact of slip velocity. The generalized non-dimensional pressure equation is derived and expression for dimensionless load-carrying capacity is obtained for the same. The graphical representation suggests that the bearing's performance enhances due to ferrofluid, considering the appropriate values of parameters for slip velocity and porosity.
Agrawal V. Magnetic fluid-based porous inclined slider bearing. Wear. 1986;133–9.
2.
Bhat M. Porous composite slider bearing lubricated with magnetic fluid. Team Spirit (India) Pvt Ltd, India Bhat MV, Deheri GM. 2003;2513–4.
3.
Bhat M, Deheri G. Squeeze film behaviour in porous annular discs lubricated with magnetic fluid. Wear. 1991;123–8.
4.
Bhat M, Deheri G. Magnetic-fluid-based squeeze film in curved porous circular discs. J Magn Magn Mater. 1993;159–62.
5.
Bujurke N, Naduvinamani N, Basti D. Effect of surface roughness on the squeeze film lubrication between curved annular plates, Industrial Lubrication and Tribology. 2007;(4):178–85.
6.
Deheri GM, Patel SJ. Combined effect of slip velocity and surface roughness on a magnetic squeeze film for a sphere in a spherical seat. Indian Journal of Materials Science. 2015;2015(ID. 159698):1–9.
7.
Deheri G, Patel S. Combined effect of slip velocity and surface roughness on a magnetic squeeze film for a sphere in a spherical seat. Indian Journal of Materials Science. 2015;1–9.
8.
Deheri G, Patel J, Patel N. Shliomis Model Based Ferrofluid Lubrication of a Rough Porous Convex Pad Slider Bearing. Tribology in Industry. 2016;(1):46–65.
9.
Gupta J, Vora L, K. Analysis of Squeeze Films between Curved Annular Plates. J of Lubrication Tech. 1980;(1):48–50.
10.
Hanumagowda B, Savitramma G, Salma A, Noorjahan. Combined effect of Piezo-Viscous dependency and non-newtonian couple stresses in annular plates squeeze-film characteristics. 2018;12083.
11.
Kumar D. Contributions to the Theory of Ferrofluid Lubrication. . PhD Thesis, IIT Kanpur, India. 1989;
12.
Kumar D, Sinha P, Chandra P. Ferrofluid squeeze film for spherical and conical bearings. Int J Engg Sci. 1992;(5):645–56.
13.
Lin J. Magneto-hydrodynamic squeeze film characteristics between annular disks. Industrial Lubrication and Tribology. 2001;(2):66–71.
14.
Mishra SR, Barik M, Dash GC. An analysis of hydrodynamic ferrofluid lubrication of an inclined rough slider bearing. Tribology - Materials, Surfaces & Interfaces. 2018;12(1):17–26.
15.
Munshi M, Patel A, Deheri G. Lubrication of Rough Short Bearing on Shliomis Model by Ferrofluid Considering Viscosity Variation Effect. International Journal of Mathematical, Engineering and Management Sciences. 2019;(4):982–97.
16.
Murti P. Squeeze film in curved circular plate. J Lubr Technol. 1975;650–2.
17.
Patel J, Deheri G. Combined Effect of Slip Velocity and Roughness on the Jenkins Model Based Ferrofluid Lubrication of a Curved Rough Annular Squeeze Film. Journal of Applied Fluid Mechanics. 2016;(2):855–65.
18.
Patel J, Deheri G. Shliomis model based magnetic fluid lubrication of a squeeze film in rotating rough curved circular plates. Carib J Sci Tech. 2013;138–50.
19.
Patel J, Deheri G. Effect of various porous structures on the Shliomis model based ferrofluid lubrication of the film squeezed between rotating rough curved circular plates. FACTA UNIVERSITATIS Series: Mechanical Engineering. 2014;(3):305–23.
20.
Patel J, Deheri G. Performance of a Ferrofluid Based Rough Parallel Plate Slider Bearing: A Comparison of Three Magnetic Fluid Flow Models. Advances in Tribology. 2016;1–9.
21.
Shah R, Patel D. Analysis and comparative study of ferrofluid lubricated circular porous squeeze film-bearings. Proc IMechE Part J: J Engineering Tribology. 2017;(11):1450–63.
22.
Shah R, Bhat M. Ferrofluid squeeze film between curved annular plates including rotation of magnetic particles. Journal of Engineering Mathematics. 2005;317–24.
23.
Shah R, Patel N, Kataria R. Some porous squeeze film-bearings using ferrofluid lubricant: A review with contributions. Proc of the IME Part J: Journal of Engg Tribology. 2016;(9):1157–71.
24.
Shah R, Tripathi S, Bhat M. Magnetic fluid based squeeze film between porous annular curved plates with the effect of rotational inertia. Pramana-J Phys. 2002;545–50.
25.
Shah R, Bhat M. Ferrofluid squeeze film in a long journal bearing. Tribology International. 2004;441–6.
26.
Shah R, Bhat M. Squeeze film based on magnetic fluid in curved porous rotating circular plates. J Magn Magn Mater. 2000;115–9.
27.
Shimpi M, Deheri G. Magnetic fluid based squeeze film in rough rotating curved porous annular plates: deformation effect. World Academy of Science, Engineering and Technology International Journal of Mathematical and Computational Sciences. 2013;(8):1370–1080.
28.
Shliomis M. Effective viscosity of magnetic suspensions. Sov Phys JETP. 1972;1291–4.
29.
Shukla J, Kumar D. A theory of ferrofluid lubrication. J Magn Magn Mater. 1987;375–8.
30.
Sinha P, Chandra P, Kumar D. Ferrofluid lubrication of cylindrical rollers with cavitation. Acta Mech. 1993;27–38.
31.
Vasanth K, Hanumagowda B, Kumar J. Combined Effect of Piezoviscous Dependency and Non-Newtonian Couple Stress on Squeeze-Film Porous Annular Plate. NCMTA. 2018;12080.
The statements, opinions and data contained in the journal are solely those of the individual authors and contributors and not of the publisher and the editor(s). We stay neutral with regard to jurisdictional claims in published maps and institutional affiliations.