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Time dependent analysis of magnetic fluid based on Navier-Stokes equations, Maxwell's equations and heat equations

Author(s)
Lohakan, M.
Wiriyanuruknakorn, Ornanong
Boonsang, S.
Pintavirooj, C.
Date Issued
August 1, 2006
Type
Article
Abstract
In this paper, time dependent analysis of magnetic fluid is purposed. The ferrofluids is a biocompatible magnetic nanocarrier, which play an important role as drug carrier in the human body to treat the tumor or cancer. The various types of cancerous cells have been studied from the mathematical point of view. Based on Navier-Stokes equations, Maxwell's equation and Heat equation, two models of time dependent analysis are created and compared. A finite element method, which is used to solve those equations, of two-dimensional computational models of magnetic fluid flow is employed to simulate the velocity field and heat diffusion in the models. To reduce side effect of global drug therapy, the results of simulation show that the ferrofluids can be focused in interested area efficiently.
Citation
Wseas Transactions on Electronics, 3(8), 410-416, 2006
Subjects

Finite element method...

Heat equation

Maxwell's equation

Navier-Stokes equatio...

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