Computational study of magnetohydrodynamic squeeze flow between infinite parallel disks

dc.contributor.authorSyam, Mahmmoud M.
dc.contributor.authorSyam, Mahmmoud I.
dc.date.accessioned2025-12-04T05:58:26Z
dc.date.available2025-12-04T05:58:26Z
dc.date.issued2024-11-11
dc.descriptionIncorporating magneto-hydrodynamic (MHD) fluids in lubrication systems is a practical and effective solution that mitigates the adverse effects of temperature on fluid viscosity when operating under extreme conditions. This topic, of broad interest within the field of magneto-hydrodynamic lubrication, has significant implications for related applications. The findings from this research, particularly relevant to the study of high-temperature bearings lubricated with liquid metals, provide not just theoretical insights but practical and reliable solutions that can be confidently applied. Multiple experimental and theoretical researches have studied the MHD effects in lubrication, including notable contributions by Hughes and Elco [1], Kuzma et al. [2], and Krieger et al. [3]
dc.description.abstractThis paper explores the magnetohydrodynamic (MHD) squeeze flow of an electrically conducting fluid between two infinite parallel disks with a perpendicular magnetic field. The study focuses on the case where the upper disk moves towards a stationary lower disk. By employing similarity variables, we reduce the MHD momentum and continuity equations into a fourth-order linear boundary value problem, solved using a modified operational matrix method. The numerical approach is validated through -truncation error analysis, boundary condition comparisons, and by comparing results with other methods like HAM, HPM, and bvp4c that produce analytical and numerical solutions. Graphical analyses reveal the effects of the squeeze number, Hartman number, and the boundary parameter on velocity and flow profile. Results indicate that the Hartman number significantly affects the velocity due to the Lorentz force, while the squeeze number and boundary parameter influence the velocity and flow profile differently in suction and injection cases. The numerical solution demonstrates high accuracy and convergence compared to previous methods in terms of absolute error. Keywords Squeeze flow, Heat and mass transfer, Hydro-magnetic, Hartmann number, Squeeze number
dc.identifier.citationSyam, M. M., & Syam, M. I. (2024). Computational study of magnetohydrodynamic squeeze flow between infinite parallel disks. International Journal of Thermofluids, 24, 100847.‏
dc.identifier.doihttps://doi.org/10.1016/j.ijft.2024.100847
dc.identifier.urihttps://repository.adu.ac.ae/handle/1/7814
dc.language.isoen
dc.publisherElsevier
dc.titleComputational study of magnetohydrodynamic squeeze flow between infinite parallel disks
dc.typeArticle

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