The developments and the applications of the numerical algorithms in simulating the incompressible magnetohydrodynamics with complex boundaries and free surfaces /

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Bibliographic Details
Author / Creator:Zhang, Jie, author.
Imprint:Singapore : Springer, 2019.
Description:1 online resource (xv, 145 pages) : illustrations (some color)
Language:English
Series:Springer theses, 2190-5053
Springer theses,
Subject:
Format: E-Resource Book
URL for this record:http://pi.lib.uchicago.edu/1001/cat/bib/11745155
Hidden Bibliographic Details
ISBN:9789811063404
9811063400
9811063397
9789811063398
9789811063398
9789811063411
9811063419
9789811338809
9811338809
Digital file characteristics:text file PDF
Notes:"Doctoral thesis accepted by the University of Chinese Academy of Sciences, Huairou, China."
Includes bibliographical references.
Online resource; title from PDF title page (SpringerLink, viewed May 29, 2018).
Summary:This thesis presents an accurate and advanced numerical methodology to remedy difficulties such as direct numerical simulation of magnetohydrodynamic (MHD) flow in computational fluid dynamics (CFD), grid generation processes in tokamak fusion facilities, and the coupling between the surface tension force and Lorentz force in the metallurgical industry. In addition, on the basis of the numerical platform it establishes, it also investigates selected interesting topics, e.g. single bubble motion under the influence of either vertical or horizontal magnetic fields. Furthermore, it confirms the relation between the bubble's path instability and wake instability, and observes the anisotropic (isotropic) effect of the vertical (horizontal) magnetic field on the vortex structures, which determines the dynamic behavior of the rising bubble. The direct numerical simulation of magnetohydrodynamic (MHD) flows has proven difficult in the field of computational fluid dynamic (CFD) research, because it not only concerns the coupling of the equations governing the electromagnetic field and the fluid motion, but also calls for suitable numerical methods for computing the electromagnetic field. In tokamak fusion facilities, where the MHD effect is significant and the flow domain is complex, the process of grid generation requires considerable time and effort. Moreover, in the metallurgical industry, where multiphase MHD flows are usually encountered, the coupling between the surface tension force and Lorentz force adds to the difficulty of deriving direct numerical simulations.
Other form:Printed edition: 9789811063398
Standard no.:10.1007/978-981-10-6340-4