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Wake

  • Analysis of Flow Structures in Wake Flows for Train Aerodynamics Tomas W. Muld

    Analysis of Flow Structures in Wake Flows for Train Aerodynamics Tomas W. Muld

  • A Review of Wind Turbine Wake Models and Future Directions

    A Review of Wind Turbine Wake Models and Future Directions

  • The Kelvin Wedge

    The Kelvin Wedge

  • Waves and Structures

    Waves and Structures

  • Dynamics and Low-Dimensionality of a Turbulent Near Wake

    Dynamics and Low-Dimensionality of a Turbulent Near Wake

  • Resistance and Wake Prediction for Early Stage Ship Design

    Resistance and Wake Prediction for Early Stage Ship Design

  • Numerical Investigation of the Turbulent Wake-Boundary Interaction in a Translational Cascade of Airfoils and Flat Plate

    Numerical Investigation of the Turbulent Wake-Boundary Interaction in a Translational Cascade of Airfoils and Flat Plate

  • Unsteady Shock Wave Dynamics

    Unsteady Shock Wave Dynamics

  • Computational Fluid Dynamics Simulations of Ship Airwake

    Computational Fluid Dynamics Simulations of Ship Airwake

  • The Aerodynamics of the Curled Wake: a Simplified Model in View of Flow

    The Aerodynamics of the Curled Wake: a Simplified Model in View of Flow

  • Review of CFD for Wind-Turbine Wake Aerodynamics

    Review of CFD for Wind-Turbine Wake Aerodynamics

  • Knowing Your Boat Means Knowing Its Wake

    Knowing Your Boat Means Knowing Its Wake

  • A Simple Model of Ship Wakes

    A Simple Model of Ship Wakes

  • Chapter 7 Resistance and Powering of Ships

    Chapter 7 Resistance and Powering of Ships

  • An Experimental Study on the Wake Behind a Rectangular Forebody with Variable Inlet Conditions Renzo Trip

    An Experimental Study on the Wake Behind a Rectangular Forebody with Variable Inlet Conditions Renzo Trip

  • Wake Structure and Drag of Vehicles with Rounded Rear Edges

    Wake Structure and Drag of Vehicles with Rounded Rear Edges

  • Ship Wakes in Shallow Waters

    Ship Wakes in Shallow Waters

  • The Law of the Wake in the Turbulent Boundary Layer

    The Law of the Wake in the Turbulent Boundary Layer

Top View
  • Dispersive and Non-Dispersive Nonlinear Long Wave Transformations
  • The Influence of Front Wing Pressure Distribution on Wheel Wake
  • Chapter 15: Turbulence [Version 1215.1.K]
  • Wave Patterns of Gravity–Capillary Waves from Moving Localized Sources
  • Stokes Layers in Horizontal- Wave Outer Flows J
  • Wind Turbine Wake Characterization for Improvement of the Ainslie Eddy Viscosity Wake Model
  • Nominal Vs. Effective Wake Fields and Their Influence on Propeller Cavitation Performance
  • Demonstration and Study of the Dispersion of Water Waves with A
  • Modeling and Measuring Ferry Boat Wake Propagation
  • Wake Vortices of Landing Aircraft
  • Finding the Stokes Wave: Low Steepness to Highest Wave
  • Kinematics of the Ship's Wake in the Presence of a Shear Flow
  • Ship Wakes: Kelvin Or Mach Angle?
  • Physics of Meteor Generated Shock Waves in the Earth's Atmosphere
  • Wake Effect Assessment in Long- and Short-Crested Seas of Heaving-Point Absorber and Oscillating Wave Surge WEC Arrays
  • Wind Turbine Modeling for Computational Fluid Dynamics December 2010 — December 2012 L.A
  • Vortex Dynamics in the Wake of Three Generic Types of Free-Stream Turbines Matthieu Boudreau, Guy Dumas
  • What Is the Apparent Angle of a Kelvin Ship Wave Pattern?


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