Proposal and Validation of an Immersed Interface Method applied to the Lattice-Boltzmann Method

Master Thesis (2022)
Author(s)

S.J. van Elsloo (TU Delft - Aerospace Engineering)

Contributor(s)

Saullo G.P. Castro – Mentor (TU Delft - Aerospace Structures & Computational Mechanics)

AH Van Zuijlen – Mentor (TU Delft - Aerodynamics)

Faculty
Aerospace Engineering
Copyright
© 2022 Sam van Elsloo
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 Sam van Elsloo
Graduation Date
27-06-2022
Awarding Institution
Delft University of Technology
Programme
Aerospace Engineering
Faculty
Aerospace Engineering
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Abstract

The Lattice Boltzmann Method (LBM) is an appealing framework to apply to unsteady, incompressible, low Reynolds number flow due to its simplicity and potential for massive parallelisation. The immersed boundary method is often used in conjunction with the LBM to simulate flow around curved, moving boundaries in the interior of the fluid domain. In the immersed boundary method, the boundary is imposed on a non-conforming grid by applying an external forcing at the boundary. The distribution of this external forcing is calculated based on interpolation of nearby fluid nodes, and the force field is then distributed over a number of nearby fluid nodes.

The immersed interface method is an approach similar to the immersed boundary method, but imposes this applied force field directly on the solution field through jump conditions. It has yet to be correctly applied to the LBM framework. In this thesis, a proposal of an immersed interface method in the LBM is made, and its implementation is validated and compared against the immersed boundary method. To aid in this, a solver capable of solving fluid-structure interaction is developed.

It is shown that the immersed interface method in the LBM has significant benefits compared to the immersed boundary method, in particular with regards to reducing numerical oscillations in the spatial variation of the boundary force distribution, as well appearing to yield a slight increase in overall accuracy at the same level of grid refinement.

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