Hydrodynamic Flow Simulation Using Semiclassical Lattice Boltzmann-Elliposidal Statistical Method with Immersed Boundary Velocity Correction Method

碩士 === 國立臺灣大學 === 應用力學研究所 === 102 === Modeling gases in the continuum level is traditionally achieved with macroscopic level by using Euler or Navier-Stokes equations. However, as the degree of rarefaction of a gas increses, the governing equation becomes Boltzmann Equation. The Lattice Boltzmann...

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Main Authors: Cheng-Han Tsai, 蔡承翰
Other Authors: Jaw-Yen Yang
Format: Others
Language:zh-TW
Published: 2014
Online Access:http://ndltd.ncl.edu.tw/handle/41044575232612126101
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spelling ndltd-TW-102NTU054990492016-03-09T04:24:22Z http://ndltd.ncl.edu.tw/handle/41044575232612126101 Hydrodynamic Flow Simulation Using Semiclassical Lattice Boltzmann-Elliposidal Statistical Method with Immersed Boundary Velocity Correction Method 結合沉浸邊界速度修正法之半古典橢圓統計格子波茲曼流場模擬 Cheng-Han Tsai 蔡承翰 碩士 國立臺灣大學 應用力學研究所 102 Modeling gases in the continuum level is traditionally achieved with macroscopic level by using Euler or Navier-Stokes equations. However, as the degree of rarefaction of a gas increses, the governing equation becomes Boltzmann Equation. The Lattice Boltzmann method is derived by discretizing Boltzmann equation in physical and velocity space. In the study, the development of a semiclassical lattice Boltzmann–Ellipsoidal Statistical method is based on the Uehling-Uhlenbeck Boltzmann-BGK equation. According to the method, we can effectively link its dominant distribution function to calculate the quantities of macroscopic properties. Here, we present simulations of the flow over cylinder for several Reynolds numbers based on D2Q9 lattice model and the semiclassical lattice Boltzmann–Ellipsoidal Statistical method. In this work, the Immerse Boundary Velocity Correction method (IBVCM) has been used to model the boundary of the cylinder. We compare the results of vortices, pressure, drag coefficient for different particle statistics : Bose-Einstein, Fermi-Dirac and Maxwell-Boltzmann statistics. By studying the streamlines, we observed von Karman vortex street phenomenon as the Reynolds number increases. In addition, the movement of the cylinder boundary is not stationary in the flow channel by taking advantage of the boundary using IBVCM. We observed the wake and found differences in the results of the three statistics. Jaw-Yen Yang 楊照彥 2014 學位論文 ; thesis 103 zh-TW
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language zh-TW
format Others
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description 碩士 === 國立臺灣大學 === 應用力學研究所 === 102 === Modeling gases in the continuum level is traditionally achieved with macroscopic level by using Euler or Navier-Stokes equations. However, as the degree of rarefaction of a gas increses, the governing equation becomes Boltzmann Equation. The Lattice Boltzmann method is derived by discretizing Boltzmann equation in physical and velocity space. In the study, the development of a semiclassical lattice Boltzmann–Ellipsoidal Statistical method is based on the Uehling-Uhlenbeck Boltzmann-BGK equation. According to the method, we can effectively link its dominant distribution function to calculate the quantities of macroscopic properties. Here, we present simulations of the flow over cylinder for several Reynolds numbers based on D2Q9 lattice model and the semiclassical lattice Boltzmann–Ellipsoidal Statistical method. In this work, the Immerse Boundary Velocity Correction method (IBVCM) has been used to model the boundary of the cylinder. We compare the results of vortices, pressure, drag coefficient for different particle statistics : Bose-Einstein, Fermi-Dirac and Maxwell-Boltzmann statistics. By studying the streamlines, we observed von Karman vortex street phenomenon as the Reynolds number increases. In addition, the movement of the cylinder boundary is not stationary in the flow channel by taking advantage of the boundary using IBVCM. We observed the wake and found differences in the results of the three statistics.
author2 Jaw-Yen Yang
author_facet Jaw-Yen Yang
Cheng-Han Tsai
蔡承翰
author Cheng-Han Tsai
蔡承翰
spellingShingle Cheng-Han Tsai
蔡承翰
Hydrodynamic Flow Simulation Using Semiclassical Lattice Boltzmann-Elliposidal Statistical Method with Immersed Boundary Velocity Correction Method
author_sort Cheng-Han Tsai
title Hydrodynamic Flow Simulation Using Semiclassical Lattice Boltzmann-Elliposidal Statistical Method with Immersed Boundary Velocity Correction Method
title_short Hydrodynamic Flow Simulation Using Semiclassical Lattice Boltzmann-Elliposidal Statistical Method with Immersed Boundary Velocity Correction Method
title_full Hydrodynamic Flow Simulation Using Semiclassical Lattice Boltzmann-Elliposidal Statistical Method with Immersed Boundary Velocity Correction Method
title_fullStr Hydrodynamic Flow Simulation Using Semiclassical Lattice Boltzmann-Elliposidal Statistical Method with Immersed Boundary Velocity Correction Method
title_full_unstemmed Hydrodynamic Flow Simulation Using Semiclassical Lattice Boltzmann-Elliposidal Statistical Method with Immersed Boundary Velocity Correction Method
title_sort hydrodynamic flow simulation using semiclassical lattice boltzmann-elliposidal statistical method with immersed boundary velocity correction method
publishDate 2014
url http://ndltd.ncl.edu.tw/handle/41044575232612126101
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