Theoretical analysis for non-linear effects of magnetic fields on unsteady boundary layer flows

Fuente: arXiv
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Main Authors: Fu, Jing-Yu, Ni, Ming-Jiu, Zhang, Nian-Mei
Format: Preprint
Published: 2025
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author Fu, Jing-Yu
Ni, Ming-Jiu
Zhang, Nian-Mei
author_facet Fu, Jing-Yu
Ni, Ming-Jiu
Zhang, Nian-Mei
contents This study investigates unsteady boundary layer phenomena in electrically conducting fluids subjected to static magnetic fields. Using a semi-explicit similarity transformation method, the momentum equation associated with the Stokes stream function is solved. The nonlinear closed analytical solutions for both stagnation flow and converging flow are derived. The results demonstrate that the boundary layer structure incorporates similar shock and solitary wave components which are promoted by Lorentz force. Under extreme magnetic fields, the flow exhibits sine and cosine wave patterns, which are motivated by the strong Lorentz force. An in-depth asymptotic analysis establishes the square root scaling laws that quantify the growth of friction and flux with increasing magnetic field strength. The boundary layer thickness scales inversely with the Hartmann number, a consequence of dominant Lorentz force, which differs from the conclusion of duct flow (Hunt 1965). These findings elucidate the physical mechanisms governing the nonlinear coupling between magnetic fields and the dynamics of the boundary layer.
format Preprint
id arxiv_https___arxiv_org_abs_2504_06576
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Theoretical analysis for non-linear effects of magnetic fields on unsteady boundary layer flows
Fu, Jing-Yu
Ni, Ming-Jiu
Zhang, Nian-Mei
Fluid Dynamics
This study investigates unsteady boundary layer phenomena in electrically conducting fluids subjected to static magnetic fields. Using a semi-explicit similarity transformation method, the momentum equation associated with the Stokes stream function is solved. The nonlinear closed analytical solutions for both stagnation flow and converging flow are derived. The results demonstrate that the boundary layer structure incorporates similar shock and solitary wave components which are promoted by Lorentz force. Under extreme magnetic fields, the flow exhibits sine and cosine wave patterns, which are motivated by the strong Lorentz force. An in-depth asymptotic analysis establishes the square root scaling laws that quantify the growth of friction and flux with increasing magnetic field strength. The boundary layer thickness scales inversely with the Hartmann number, a consequence of dominant Lorentz force, which differs from the conclusion of duct flow (Hunt 1965). These findings elucidate the physical mechanisms governing the nonlinear coupling between magnetic fields and the dynamics of the boundary layer.
title Theoretical analysis for non-linear effects of magnetic fields on unsteady boundary layer flows
topic Fluid Dynamics
url https://arxiv.org/abs/2504.06576