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  • I***N:9787510058202
  • 作者:暂无作者
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  • 出版时间:2013-03
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  • 价格:37.00
  • 纸张:胶版纸
  • 装帧:平装
  • 开本:24开
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书籍目录:

1 Introduction

2 LES Governing Equati***

 2.1 Preliminary Discussion

 2.2 Governing Equati***

  2.2.1 Fundamental Assumpti***

  2.2.2 C***ervative Formulation

  2.2.3 Alternative Formulati***

 2.3 Filtering ***

  2.3.1 Definition

  2.3.2 Discrete Representation of Filters

  2.3.3 Filtering of Discontinuities

  2.3.4 Filter Associated to the Numerical Method

  2.3.5 Commutation Error

  2.3.6 Favre Filtering

  2.3.7 Summary of the Different Type of Filters

 2.4 Formulation of the Filtered Governing Equati***

  2.4.1 Enthalpy Formulation

  2.4.2 Temperature Formulation

  2.4.3 Pressure Formulation

  2.4.4 Entropy Formulation

  2.4.5 Filtered Total Energy Equati***

  2.4.6 Momentum Equati***

  2.4.7 Simplifying Assumpti***

 2.5 Additional Relati*** for LES of Compressible Flows ..

  2.5.1 Preservation of Original Symmetries

  2.5.2 Discontinuity Jump Relati*** for LES

  2.5.3 Second Law of Thermodynamics

  2.6 Model C***truction

  2.6.1 Basic Hypothesis

  2.6.2 Modeling Strategies

E. Gamier et al., Large Eddy Simulation for Compressible Flows,

Scientific Computation,

Springer Science + Business Media B.V. 2009

3 Compressible Turbulence Dynamics

 3.1 Scope and Content of This Chapter

 3.2 Kovasznay Decomposition of Turbulent Fluctuati***

  3.2.1 Kovasznay's Linear Decomposition

  3.2.2 Weakly Nonlinear Kovasznay Decomposition

 3.3 Statistical Description of Compressible Turbulence

 3.4 Shock-Turbulence In***ction

  3.4.1 Introduction to the Linear In***ctionApproximation Theory

  3.4.2 Vortical Turbulence-Shock In***ction

  3.4.3 Mixed-Mode Turbulence-Shock In***ction

  3.4.4 C***equences for Subgrid Modeling

 3.5 Different Regimes of Isotropic Compressible Turbulence

  3.5.1 Quasi-Isentropic-Turbulence Regime

  3.5.2 Nonlinear Subsonic Regime

  3.5.3 Supersonic Regime

  3.5.4 C***equences for Subgrid Modeling

4 Functional Modeling

 4.1 Basis of Functional Modeling

  4.1.1 Phenomenology of Scale In***cti***

  4.1.2 Basic Functional Modeling Hypothesis

 4.2 SGS Viscosity

  4.2.1 The Boussinesq Hypothesis

  4.2.2 Smagorinsky Model

  4.2.3 Structure Function Model

  4.2.4 Mixed Scale Model

 4.3 Isotropic Tensor Modeling

 4.4 SGS Heat Flux

 4.5 Modeling of the Subgrid Turbulent Dissipation Rate

 4.6 Improvement of SGS models

  4.6.1 Structural Sensors and Selective Models

  4.6.2 Accentuation Technique and Filtered Models

  4.6.3 High-Pass Filtered Eddy Viscosity

  4.*** Wall-Adapting Local Eddy-Viscosity Model

  4.6.5 Dynamic Procedure.

  4.6.6 Implicit Diffusion and the Implicit LES Concept

Explicit Structural Modeling

 5.1 Motivation of Structural Modeling

 5.2 Models Based on Deconvolution

  5.2.1 Scale-Similarity Model

  5.2.2 Approximate Deconvolution Model

  5.2.3 Tensor-Diffusivity Model

 5.3 Regularization Techniques

  5.3.1 Eddy-Viscosity Regularization

  5.3.2 Relaxation Regularization

  5.3.3 Regularization by Explicit Filtering

 5.4 Multi-Scale Modeling of Subgrid-Scales

  5.4.1 Multi-Level Approaches

  5.4.2 Stretched-Vortex Model

  5.4.3 Variational Multi-Scale Model

Relation Between SGS Model and Numerical

Discretization

 6.1 Systematic Procedures for Nonlinear Error Analysis

  6.1.1 Error Sources

  6.1.2 Modified Differential Equation Analysis

  6.1.3 Modified Differential Equation Analysis in Spectral

  Space

 6.2 Implicit LES Approaches Based on Linear and Nonlinear Discretization Schemes

  6.2.1 The Volume Balance Procedure of Schumamm

  6.2.2 The Kawamura-Kuwahara Scheme

  6.2.3 The Piecewise-Parabolic Method

  6.2.4 The Flux-Corrected-Transport Method

  6.2.5 The MPDATA Method

  6.2.6 The Optimum Finite-Volume Scheme

 6.3 Implicit LES by Adaptive Local Deconvolution

  6.3.1 Fundamental Concept of ALDM

  6.3.2 ALDM for the Incompressible Navier-Stokes Equati***

  6.3.3 ALDM for the Compressible Navier-Stokes Equati***

 7 Boundary Conditi*** for Large-Eddy Simulation of Compressible Flows

  7.1 Introduction

  7.2 Wall Modeling for Compressible LES

   7.2.1 Statement of the Problem

   7.2.2 Wall Boundary Conditi*** in the Kovasznay

Decomposition Framework: an Insight

   7.2.3 Turbulent Boundary Layer: Vorticity and Temperature

Fields

  7.2.4 Turbulent Boundary Layer: Acoustic Field

  7.2.5 C***equences for the Development of Compressible Wall Models

  7.2.6 Extension of Existing Wall Models for Incompressible Flows

 7.3 Unsteady Turbulent Inflow Conditi*** for Compressible LES.

  7.3.1 Fundamentals

  7.3.2 Precursor Simulation: Advantages and Drawbacks

  ……

8 Subsonic Applicati*** with Compressibility Effects

9 Supersonic Applicati***

10 Supersonic Applicati*** with Shock-Turbulence In***ction

References

Index


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