Numerical simulations of boundary layer transition by combined compact difference methods

The objective of this study is to produce a stable and accurate numerical model for investigating the physical mechanism of boundary layer transition. A velocity–vorticity formulation of the unsteady, incompressible Navier–Stokes (NS) equations is used to simulate the boundary layer transition proce...

Full description

Saved in:
Bibliographic Details
Main Author: Chen, Weijia.
Other Authors: Lo Yat-Man, Edmond
Format: Theses and Dissertations
Language:English
Published: 2013
Subjects:
Online Access:http://hdl.handle.net/10356/52721
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-52721
record_format dspace
spelling sg-ntu-dr.10356-527212023-03-03T19:06:49Z Numerical simulations of boundary layer transition by combined compact difference methods Chen, Weijia. Lo Yat-Man, Edmond School of Civil and Environmental Engineering DRNTU::Engineering::Mathematics and analysis::Simulations DRNTU::Engineering::Aeronautical engineering::Aerodynamics The objective of this study is to produce a stable and accurate numerical model for investigating the physical mechanism of boundary layer transition. A velocity–vorticity formulation of the unsteady, incompressible Navier–Stokes (NS) equations is used to simulate the boundary layer transition process under excitation by small-amplitude time-dependent disturbances. To capture the non-linear wave dynamics in the transition process, Combined Compact Difference (CCD) schemes up to 12th order accuracy are constructed. On a uniform grid, for the streamwise direction, an upwind CCD scheme is co-optimized with a 5-6 alternating-stage Runge–Kutta temporal scheme. In this method, the dispersion and dissipation errors are optimized to simulate physical waves accurately. Simultaneously, the schemes can efficiently suppress numerical grid-mesh oscillations. On a non-uniform grid, for the wall-normal direction, CCD schemes are derived based on generalized polynomial interpolation. A new 2-piecewise function is also provided for the generation of non-uniform grid. Excellent stability properties and spectral resolution are observed when CCD schemes are implemented with this grid-generation method. The numerical methods for simulating the transition simulation have been validated with theoretical, experimental, and other simulation results. The present numerical model is used to investigate the vortex dynamics in the boundary layer transition under excitation by random disturbances. Although coherent structures are found in random spatial locations and have distorted shapes compared to those in the typical transition process, their localized properties are quite universal. Further, a Soliton-like Coherent Structure (SCS) is shown to play a dominant role in the vortex evolution process. The present simulation results support recent published finding that a universal scenario may underlie the boundary layer transition. Doctor of Philosophy (CEE) 2013-05-23T03:13:03Z 2013-05-23T03:13:03Z 2013 2013 Thesis http://hdl.handle.net/10356/52721 en 345 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Mathematics and analysis::Simulations
DRNTU::Engineering::Aeronautical engineering::Aerodynamics
spellingShingle DRNTU::Engineering::Mathematics and analysis::Simulations
DRNTU::Engineering::Aeronautical engineering::Aerodynamics
Chen, Weijia.
Numerical simulations of boundary layer transition by combined compact difference methods
description The objective of this study is to produce a stable and accurate numerical model for investigating the physical mechanism of boundary layer transition. A velocity–vorticity formulation of the unsteady, incompressible Navier–Stokes (NS) equations is used to simulate the boundary layer transition process under excitation by small-amplitude time-dependent disturbances. To capture the non-linear wave dynamics in the transition process, Combined Compact Difference (CCD) schemes up to 12th order accuracy are constructed. On a uniform grid, for the streamwise direction, an upwind CCD scheme is co-optimized with a 5-6 alternating-stage Runge–Kutta temporal scheme. In this method, the dispersion and dissipation errors are optimized to simulate physical waves accurately. Simultaneously, the schemes can efficiently suppress numerical grid-mesh oscillations. On a non-uniform grid, for the wall-normal direction, CCD schemes are derived based on generalized polynomial interpolation. A new 2-piecewise function is also provided for the generation of non-uniform grid. Excellent stability properties and spectral resolution are observed when CCD schemes are implemented with this grid-generation method. The numerical methods for simulating the transition simulation have been validated with theoretical, experimental, and other simulation results. The present numerical model is used to investigate the vortex dynamics in the boundary layer transition under excitation by random disturbances. Although coherent structures are found in random spatial locations and have distorted shapes compared to those in the typical transition process, their localized properties are quite universal. Further, a Soliton-like Coherent Structure (SCS) is shown to play a dominant role in the vortex evolution process. The present simulation results support recent published finding that a universal scenario may underlie the boundary layer transition.
author2 Lo Yat-Man, Edmond
author_facet Lo Yat-Man, Edmond
Chen, Weijia.
format Theses and Dissertations
author Chen, Weijia.
author_sort Chen, Weijia.
title Numerical simulations of boundary layer transition by combined compact difference methods
title_short Numerical simulations of boundary layer transition by combined compact difference methods
title_full Numerical simulations of boundary layer transition by combined compact difference methods
title_fullStr Numerical simulations of boundary layer transition by combined compact difference methods
title_full_unstemmed Numerical simulations of boundary layer transition by combined compact difference methods
title_sort numerical simulations of boundary layer transition by combined compact difference methods
publishDate 2013
url http://hdl.handle.net/10356/52721
_version_ 1759852984804573184