Magnetorheological Fluid of High-Speed Unsteady Flow in a Narrow-Long Gap: An Unsteady Numerical Model and Analysis

To investigate the unsteady flow field generated by magnetorheological (MR) fluid of a high-speed unsteady laminar boundary layer flow in a narrow-long gap of the magnetorheological absorber (MRA), a new unsteady numerical model is proposed. The gap has magnetic-field-activated and inactivated regio...

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Main Authors: Pengfei Zheng, Baolin Hou, Mingsong Zou
Format: Article
Language:English
Published: MDPI AG 2022-07-01
Series:Mathematics
Subjects:
Online Access:https://www.mdpi.com/2227-7390/10/14/2493
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author Pengfei Zheng
Baolin Hou
Mingsong Zou
author_facet Pengfei Zheng
Baolin Hou
Mingsong Zou
author_sort Pengfei Zheng
collection DOAJ
description To investigate the unsteady flow field generated by magnetorheological (MR) fluid of a high-speed unsteady laminar boundary layer flow in a narrow-long gap of the magnetorheological absorber (MRA), a new unsteady numerical model is proposed. The gap has magnetic-field-activated and inactivated regions, with MR fluid flowing as bi-viscous (non-Newtonian) and Newtonian fluid. The unsteady flow field is described by the unsteady incompressible governing partial differential equation (PDE) and initial-boundary conditions with the moving boundary. The space-time solution domain is discretized using the finite difference method, and the governing PDE is transformed into implicit partial difference equations. The volume flow rate function is constructed to solve numerical solutions of pressure gradient and fluid velocity based on mass conservation, the continuity equation, and the bisection method. The accuracy of unsteady numerical model is validated by the experiment data. The results show that the fluid acceleration profiles along the gap’s height are non-uniform distribution. Further, the volume flow rate and excitation current has a significant impact on the dynamic distribution of fluid velocity profiles, and the moving boundary makes the flow field asymmetric about the central plane. Furthermore, as the transition stress increases, the thickness of the pre-yield region in the activated region increases. There is also a transition flow phenomenon in the activated region as the volume flow rate increases. Finally, the unsteady numerical model has good stability and convergence.
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spelling doaj.art-edc978578ade47e7aa7df566fa6fcec72023-12-03T11:53:58ZengMDPI AGMathematics2227-73902022-07-011014249310.3390/math10142493Magnetorheological Fluid of High-Speed Unsteady Flow in a Narrow-Long Gap: An Unsteady Numerical Model and AnalysisPengfei Zheng0Baolin Hou1Mingsong Zou2School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing 210094, ChinaSchool of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing 210094, ChinaChina Ship Scientific Research Center, Wuxi 214082, ChinaTo investigate the unsteady flow field generated by magnetorheological (MR) fluid of a high-speed unsteady laminar boundary layer flow in a narrow-long gap of the magnetorheological absorber (MRA), a new unsteady numerical model is proposed. The gap has magnetic-field-activated and inactivated regions, with MR fluid flowing as bi-viscous (non-Newtonian) and Newtonian fluid. The unsteady flow field is described by the unsteady incompressible governing partial differential equation (PDE) and initial-boundary conditions with the moving boundary. The space-time solution domain is discretized using the finite difference method, and the governing PDE is transformed into implicit partial difference equations. The volume flow rate function is constructed to solve numerical solutions of pressure gradient and fluid velocity based on mass conservation, the continuity equation, and the bisection method. The accuracy of unsteady numerical model is validated by the experiment data. The results show that the fluid acceleration profiles along the gap’s height are non-uniform distribution. Further, the volume flow rate and excitation current has a significant impact on the dynamic distribution of fluid velocity profiles, and the moving boundary makes the flow field asymmetric about the central plane. Furthermore, as the transition stress increases, the thickness of the pre-yield region in the activated region increases. There is also a transition flow phenomenon in the activated region as the volume flow rate increases. Finally, the unsteady numerical model has good stability and convergence.https://www.mdpi.com/2227-7390/10/14/2493fluid dynamicsunsteady flow fieldlaminar boundary layernon-Newtonian fluidpartial differential equationinitial boundary value problem
spellingShingle Pengfei Zheng
Baolin Hou
Mingsong Zou
Magnetorheological Fluid of High-Speed Unsteady Flow in a Narrow-Long Gap: An Unsteady Numerical Model and Analysis
Mathematics
fluid dynamics
unsteady flow field
laminar boundary layer
non-Newtonian fluid
partial differential equation
initial boundary value problem
title Magnetorheological Fluid of High-Speed Unsteady Flow in a Narrow-Long Gap: An Unsteady Numerical Model and Analysis
title_full Magnetorheological Fluid of High-Speed Unsteady Flow in a Narrow-Long Gap: An Unsteady Numerical Model and Analysis
title_fullStr Magnetorheological Fluid of High-Speed Unsteady Flow in a Narrow-Long Gap: An Unsteady Numerical Model and Analysis
title_full_unstemmed Magnetorheological Fluid of High-Speed Unsteady Flow in a Narrow-Long Gap: An Unsteady Numerical Model and Analysis
title_short Magnetorheological Fluid of High-Speed Unsteady Flow in a Narrow-Long Gap: An Unsteady Numerical Model and Analysis
title_sort magnetorheological fluid of high speed unsteady flow in a narrow long gap an unsteady numerical model and analysis
topic fluid dynamics
unsteady flow field
laminar boundary layer
non-Newtonian fluid
partial differential equation
initial boundary value problem
url https://www.mdpi.com/2227-7390/10/14/2493
work_keys_str_mv AT pengfeizheng magnetorheologicalfluidofhighspeedunsteadyflowinanarrowlonggapanunsteadynumericalmodelandanalysis
AT baolinhou magnetorheologicalfluidofhighspeedunsteadyflowinanarrowlonggapanunsteadynumericalmodelandanalysis
AT mingsongzou magnetorheologicalfluidofhighspeedunsteadyflowinanarrowlonggapanunsteadynumericalmodelandanalysis