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A higher-order kinetic wave/particle flux-splitting algorithm for the Euler equations
Hem Reksoprodjo,
Ramesh Agarwal
Department of Mechanical Engineering & Materials Science
Roy and Diana Vagelos Division of Biology & Biomedical Sciences (DBBS)
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Dive into the research topics of 'A higher-order kinetic wave/particle flux-splitting algorithm for the Euler equations'. Together they form a unique fingerprint.
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Keyphrases
High-order
100%
Flux Splitting
100%
Euler Equations
100%
Particle Flux
100%
Kinetic-like Wave
100%
Wave-particle
100%
Splitting Algorithm
100%
Kinetic Scheme
75%
Split Scheme
75%
Discretized
25%
First-order
25%
First Derivative
25%
Distribution Function
25%
Bump
25%
Circular Arc
25%
Transonic Flow
25%
Shock Tube Problem
25%
High-order Accurate
25%
Any Order
25%
Collision Invariants
25%
Invariant Vectors
25%
Vector Forms
25%
Shock Reflection
25%
Second-order Kinetics
25%
Reflection Problem
25%
Upwind Discretization
25%
Taylor Expansion
25%
Engineering
Euler Equation
100%
Particle Flux
100%
Circular Arc
33%
Transonic Flow
33%
Taylor Series Expansion
33%
Systematic Approach
33%
Discretization
33%