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Progress in Turbulence VII

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Cover of 'Progress in Turbulence VII'

Table of Contents

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    Book Overview
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    Chapter 1 Emergence of Non-Gaussianity in Turbulence
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    Chapter 2 Percolation: Statistical Description of a Spatial and Temporal Highly Resolved Boundary Layer Transition
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    Chapter 3 The Key Role of Pressure in the Turbulence Cascading Process
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    Chapter 4 Lagrangian Intermittency Based on an Ensemble of Gaussian Velocity Time Series
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    Chapter 5 Convection Velocity Variation as a Result of Amplitude Modulation Phenomena
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    Chapter 6 On the Turbulent Boundary Layer with Wall Suction
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    Chapter 7 DNS of Couette Flows With Wall Transpiration up to $$Re_\tau =1000$$
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    Chapter 8 Flow Structures and Momentum Transport in Turbulent Rotating Plane Couette Flow
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    Chapter 9 Towards a Physical Scale Decomposition of Mean Skin Friction Generation in the Turbulent Boundary Layer
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    Chapter 10 Identifying Well-Behaved Turbulent Boundary Layers
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    Chapter 11 Scaling of Adverse-Pressure-Gradient Turbulent Boundary Layers in Near-Equilibrium Conditions
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    Chapter 12 Transitional and Turbulent Bent Pipes
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    Chapter 13 Turbulent Pipe Flow Near-Wall Statistics
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    Chapter 14 High Reynolds Number Experimental Facilities for Turbulent Pipe Flow at NMIJ
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    Chapter 15 Wavenumber Dependence of Very Large-Scale Motions in CICLoPE at $$4800 \le \mathrm{Re}_{\tau } \le 37{,}000$$
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    Chapter 16 Streamwise Auto-Correlation Analysis in Turbulent Pipe Flow Using Particle Image Velocimetry at High Reynolds Numbers
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    Chapter 17 Subgrid-Scale Model with Structural Effects Incorporated Through the Helicity
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    Chapter 18 Fractional Turbulence Models
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    Chapter 19 A Framework for the Assessment and Creation of Subgrid-Scale Models for Large-Eddy Simulation
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    Chapter 20 Towards an Improved Subgrid-Scale Model for Thermally Driven Flows
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    Chapter 21 Integral Formula for Determination of the Reynolds Stress in Canonical Flow Geometries
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    Chapter 22 A Matrix-Free Incompressible DG Algorithm for the Simulation of Turbulent Flows
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    Chapter 23 Measurement of Turbulent Spatial Structure and Kinetic Energy Spectrum—Part 1: Convection Record Method
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    Chapter 24 Measurement of Turbulent Spatial Structure and Kinetic Energy Spectrum—Part 2: Convection Record Measurements
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    Chapter 25 Comparison of the Development of a Wind Turbine Wake Under Different Inflow Conditions
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    Chapter 26 The Development of Packets of Hairpin Vortices in Laminar Channel Flows in Response to Localized Disturbances
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    Chapter 27 Very Large-Scale Feature of Transitional and Turbulent Channel Flows: Dependence on Facilities
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    Chapter 28 Turbulence Structure Analysis of DNS Data Using DMD and SPOD: Mixing Jet and Channel Flow
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    Chapter 29 Signature of a Cubical Canopy on the Spatial Dynamics of an Atmospheric Boundary Layer
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    Chapter 30 Near and Far-Field Analysis of an Axisymmetric Fractal-Forced Turbulent Jet
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    Chapter 31 Study of Energetics in Drag-Reduced Turbulent Channel Flows
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    Chapter 32 Evolution of Vortex Formation in the Wake of Thin Flat Plates with Different Aspect-Ratios
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    Chapter 33 Structure of Turbulence in a Flow Around a Rectangular Cylinder
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    Chapter 34 Application of Sponge Boundary Conditions to Large-Eddy Simulation of Multiple Thermal Plumes
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    Chapter 35 Heat Transport in Horizontal and Inclined Convection
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Title
Progress in Turbulence VII
Published by
Springer International Publishing, January 2017
DOI 10.1007/978-3-319-57934-4
ISBNs
978-3-31-957934-4, 978-3-31-957933-7
Editors

Ramis Örlü, Alessandro Talamelli, Martin Oberlack, Joachim Peinke

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Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 36 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Indonesia 1 3%
Puerto Rico 1 3%
Unknown 34 94%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 14 39%
Student > Doctoral Student 5 14%
Researcher 5 14%
Student > Master 3 8%
Other 2 6%
Other 7 19%
Readers by discipline Count As %
Engineering 26 72%
Unspecified 4 11%
Physics and Astronomy 2 6%
Earth and Planetary Sciences 1 3%
Chemical Engineering 1 3%
Other 2 6%