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A pdf modeling study of self-similar turbulent free shear flows.
D. C. Haworth
, S. B. Pope
Mechanical Engineering
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Contribution to journal
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Article
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peer-review
106
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Dive into the research topics of 'A pdf modeling study of self-similar turbulent free shear flows.'. Together they form a unique fingerprint.
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Keyphrases
Probability Density Function
100%
Self-similarity
100%
Function Modeling
100%
Free Shear Flow
100%
Function Equation
66%
Molecular Diffusion
66%
Plane Mixing Layer
66%
Convection
33%
Pressure Gradient
33%
Scalar
33%
Transport Equation
33%
Mean Velocity
33%
Rate of Spread
33%
Pair Interaction
33%
Interaction Model
33%
Velocity Model
33%
Monte Carlo Method
33%
Particle Velocity
33%
Axisymmetric Jet
33%
Reynolds Stress
33%
Fluid Particles
33%
Diffusion Modeling
33%
Langevin Equation
33%
Particle Pair
33%
Intermittency
33%
Mixing Model
33%
Joint Probability Density Function
33%
Plane Jet
33%
Viscosity Effect
33%
Fluctuating Pressure
33%
Engineering
Modeling Study
100%
Shear Flow
100%
Probability Density Function
100%
Mixing Layer
66%
Axisymmetric
33%
Good Agreement
33%
Fluid Viscosity
33%
Spreading Rate
33%
Particle Velocity
33%
Reynolds Stress
33%
Particle Pair
33%
Fluid Particle
33%
Joint Probability Density Function
33%
Thermodynamics
33%
Pressure Gradient
33%
Plane Jet
33%
Chemical Engineering
Thermodynamics
100%