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From Boltzmann to Vlasov equation
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Related lectures (31)
Plasma Physics: Self-consistent Description
MOOC: Plasma Physics: Introduction
Covers the self-consistent description of a plasma and conservation principles.
Astrophysical Fluids & Plasmas
Explores the composition of the cosmos, dynamics of fluids and plasmas, and conservation equations.
Kinetic Theory: Distribution Function Evolution
Explores the evolution of the distribution function describing particles in phase space.
Symmetries and Conservation Laws
Covers symmetries and conservation laws in fluid dynamics, emphasizing the importance of maximizing symmetries in ideal fluid systems.
Fluid Dynamics: Differential Conservation Laws and Equations
Covers the differential approach to fluid dynamics, focusing on conservation laws and the Cauchy stress tensor.
Fluid Quantities and Two-Fluid Model
MOOC: Plasma Physics: Introduction
Covers fluid quantities, moments of kinetic equation, two-fluid model, and plasma turbulence simulation.
Lattice Boltzmann: Fluid Dynamics Modeling
MOOC: Sorption and transport in cementitious materials
Covers the lattice Boltzmann method for fluid dynamics modeling, including collision terms, phase separation, and practical applications.
Global Energy Conservation
Covers the global conservation laws related to energy, momentum, and helicity.
Conservation Laws in Plasma Physics
Covers the conservation laws in plasma physics, highlighting entropy, energy, and momentum conservation.
Conservation Laws: Properties and Known Laws
Covers the definition of conservation laws and known laws related to momentum, energy, and helicity.
Conservation of Momentum and Kinetic Energy
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Explores conservation of momentum and kinetic energy in collisions, emphasizing the importance of understanding collision outcomes.
Linear Momentum Conservation and Stress in Continuum
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Explores the conservation of linear momentum and stress in a continuum, focusing on governing equations and constitutive laws.
Fluid Dynamics: Navier-Stokes Equations
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Explores fluid dynamics, covering Navier-Stokes equations, momentum conservation, stresses, and dimensional analysis.
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Continuum Mechanics: Conservation Laws and Kinematics
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Introduces continuum mechanics, focusing on conservation laws and kinematics for continuous media.
Shock Waves: Oblique Shock Theory
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Explores the classification and characteristics of oblique shock waves and integral formulations for conservation laws.
Governing Equations: Incompressible and Compressible Flows
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Covers the governing equations for incompressible and compressible flows and numerical flow simulation techniques.
Fundamental Equations: Conservation and Thermodynamics
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Covers mass, momentum, energy conservation, and thermodynamics in fluid dynamics.
Biomechanics of Musculoskeletal System: Linear Constitutive Law
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Explores biomechanics of musculoskeletal system and tissue behavior under mechanical loading.
Classical Equations and Conservation Laws
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Explores classical equations, conservation laws, and quantum distributions in various systems, shedding light on particle behavior.
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