MIT Libraries logoDSpace@MIT

MIT
View Item 
  • DSpace@MIT Home
  • MIT Libraries
  • MIT Theses
  • Doctoral Theses
  • View Item
  • DSpace@MIT Home
  • MIT Libraries
  • MIT Theses
  • Doctoral Theses
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.

A correction function method to solve incompressible fluid flows to high accuracy with immersed geometries

Author(s)
Marques, Alexandre Noll
Thumbnail
DownloadFull printable version (17.33Mb)
Other Contributors
Massachusetts Institute of Technology. Dept. of Aeronautics and Astronautics.
Advisor
Rodolfo R. Rosales and Jean-Christophe Nave.
Terms of use
M.I.T. theses are protected by copyright. They may be viewed from this source for any purpose, but reproduction or distribution in any format is prohibited without written permission. See provided URL for inquiries about permission. http://dspace.mit.edu/handle/1721.1/7582
Metadata
Show full item record
Abstract
Numerical simulations of incompressible viscous flows in realistic configurations are increasingly important in many scientific and engineering fields. In Aeronautics, for instance, relatively cheap numerical computations replace costly hours of wind tunnel investigations in the early design stages of new aircraft. However, standard methods to obtain numerical solutions over complex geometries require sophisticated meshing techniques and intensive human interaction. In contrast, "immersed methods" incorporate complex boundaries and/or interfaces into regular meshes (Cartesian meshes or simple triangulations). Hence, immersed methods simplify the task of mesh generation and are of great interest in the study of incompressible viscous flows. The objective of this thesis is to advance current immersed methods by formulations that yield highly accurate discretizations without compromising computational efficiency. This is achieved by introducing a new type of immersed method, the correction function method. This new method is based on the concept of a correction function that provides smooth extensions of the solution across boundaries and/or interfaces, such that standard (accurate and efficient) discretizations of the governing equations remain valid everywhere in the computational domain. Furthermore, the key concept behind the correction function method is the introduction of the correction functions as solutions to partial differential equations, which are defined locally around the immersed boundaries and interfaces. Then, we can solve these equations to any desired order of accuracy, resulting in high accuracy methods. Specifically, in this thesis the correction function method is implemented to 4th order of accuracy in the context of Poisson's equation, the heat equation, and the nonlinear convection advection diffusion in 2D. Then, these techniques are combined to solve the incompressible Navier-Stokes equations, which govern the dynamics of incompressible viscous flows.
Description
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Aeronautics and Astronautics, 2012.
 
This thesis was scanned as part of an electronic thesis pilot project.
 
Cataloged from PDF version of thesis. This thesis was scanned as part of an electronic thesis pilot project.
 
Includes bibliographical references (p. 157-165).
 
Date issued
2012
URI
http://hdl.handle.net/1721.1/76825
Department
Massachusetts Institute of Technology. Department of Aeronautics and Astronautics
Publisher
Massachusetts Institute of Technology
Keywords
Aeronautics and Astronautics.

Collections
  • Doctoral Theses

Browse

All of DSpaceCommunities & CollectionsBy Issue DateAuthorsTitlesSubjectsThis CollectionBy Issue DateAuthorsTitlesSubjects

My Account

Login

Statistics

OA StatisticsStatistics by CountryStatistics by Department
MIT Libraries
PrivacyPermissionsAccessibilityContact us
MIT
Content created by the MIT Libraries, CC BY-NC unless otherwise noted. Notify us about copyright concerns.