Please use this identifier to cite or link to this item: http://studentrepo.iium.edu.my/handle/123456789/5293
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dc.contributor.authorHamza, Mohammad Ameeren_US
dc.date.accessioned2020-08-20T11:25:31Z-
dc.date.available2020-08-20T11:25:31Z-
dc.date.issued2017-
dc.identifier.urihttp://studentrepo.iium.edu.my/jspui/handle/123456789/5293-
dc.description.abstractThe classical problem of the stability and dynamics of thin liquid films on solid surfaces has been studied extensively. Particularly, thin liquid films subjected to various physico-chemical effects such as thermocapillarity, solutal-Marangoni and evaporative instabilities at the film surface has been the focus of research for more than two decades. Various flow configurations of thin film such as thin film on plane, inclined, and wavy surfaces had been the subject of recent investigations.. An inclined film compared to a horizontal film, also experiences the gravity force which may significantly influence the nonlinear dynamics of the film coupled with other forces. In this research, an attempt is made to characterise qualitatively the stability and dynamics of a thin liquid film on an inclined plane which is subjected to instabilities owing to thermocapillarity and evaporative effects as well as van der Waals attractive intermolecular forces, and to compare the results to those in the standard literature. For a Newtonian liquid, flow in thin liquid film on a planar support and bounded by a passive gas, is represented by Navier-Stokes equation, equation of continuity and appropriate boundary conditions. The external effects are incorporated in the body force term of the Navier-Stokes equation. These governing equations are simplified using the so called long-wave approximation to arrive at a nonlinear partial differential equation, henceforth called equation of evolution (EOE), which describes the time evolution of the interfacial instability in the film caused by internal and/or external effects. Efficient numerical method is required for the solution of the equation of evolution (EOE) in order to comprehend the nonlinear dynamics of the thin film. Here we present the results of our numerical simulations using Crank-Nicholson implicit finite difference scheme applied to the thin film model incorporating instabilities owing to gravity, evaporation and thermo-capillarity. Comparison of our results with those obtained from Spectral method, show remarkable agreement for most of the cases investigated. The film rupture times obtained using our implicit finite difference method closely conform to those of Fourier spectral results of Joo et al. (1991) within a deviation of 1.5% for films going to rupture. For cases not resulting into rupture, the film interface profiles at various stages of deformation are almost identically similar to the profiles obtained in our numerical simulations. Thus implicit Crank-Nicholson mid-point rule proves to be an efficient and reliable method for numerical simulation of the nonlinear dynamics of thin film flows. Keywords: Thin liquid film flow; Nonlinear Dynamics; Implicit Finite Difference; Spectral Method.en_US
dc.language.isoenen_US
dc.publisherKuala Lumpur :International Islamic University Malaysia,2017en_US
dc.rightsCopyright International Islamic University Malaysia
dc.subject.lcshThin films -- Mathematical modelsen_US
dc.subject.lcshLiquid filmsen_US
dc.titleThe numerical simulation of non-isothermal thin liquid film flow on inclined planeen_US
dc.typeMaster Thesisen_US
dc.identifier.urlhttps://lib.iium.edu.my/mom/services/mom/document/getFile/ckuG2llp6RJcj7hcFHqrGIGTajLeqcSM20180628114535063-
dc.description.identityt11100370307MohdAmeerHamzaen_US
dc.description.identifierThesis : The numerical simulation of non-isothermal thin liquid film flow on inclined plane /by Mohammad Ameer Hamzaen_US
dc.description.kulliyahKulliyyah of Engineeringen_US
dc.description.programmeMaster of Science (Mechanical Engineering).en_US
dc.description.degreelevelMasteren_US
dc.description.callnumbert QC 176.83 H198N 2017en_US
dc.description.notesThesis (MSME)--International Islamic University Malaysia, 2017.en_US
dc.description.physicaldescriptionxiv, 62 leaves :illustrations ;30cm.en_US
item.openairetypeMaster Thesis-
item.grantfulltextopen-
item.fulltextWith Fulltext-
item.languageiso639-1en-
item.openairecristypehttp://purl.org/coar/resource_type/c_18cf-
item.cerifentitytypePublications-
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