Introduction to Plasma Dynamics

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A01=A. I. Morozov
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advanced plasma technologies
Author_A. I. Morozov
Azimuthal Magnetic Field
Boltzmann-Davydov equation
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Classic corpuscular optics
Coaxial plasma accelerator
Cold Plasma
Controlled thermonuclear fusion
cosmic plasma phenomena
Coulomb plasma
debye
Debye Layer
Debye layers or Langmuir layers
Debye length or Debye radius
Debye Radius
Dielectric permittivity
Diffusion boundary layer
Discharge Current
Distribution Function
Driftelectronic boundary layers
Earth magnetosphere
electric
Electromagnetic fields
Electron boundary layers
Electron magnetic hydrodynamics
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Euler equations
field
GD
Hall structures
Hydrodynamic and plasma instabilities
Hydrodynamics
Ion thruster
Ionisation Front
Ionisation Zone
ionization processes
Kinetic Equation
langmuir
Langmuir frequency
Langmuir Waves
Larmor Radius
Larmor structures
LHD stellarator
magnetic
Magnetic Field
Magnetic hydrodynamics (MHD)
Magnetic Lines
Magnetic Surfaces
Magneto-plasma compressor (MPC)
Magnetron
Maxwell equations
mirror
Mirror Trap
Morphology of magnetic fields
multi-component plasma system analysis
Navier-Stokes equations
Newton-Lorenz equation
Plasma Accelerators
Plasma chemistry
Plasma Configurations
Plasma dynamics
Plasma Flow
Plasma kinetics
Plasma particles
Plasma physics
Plasma Pinch
plasma simulation models
Plasma Systems
Plasma Volume
Plasmas
Positive Column
Prandtl blasius boundary layer
Radiation transition equation
radiation transport
radius
Railgun
self-organization in plasmas
Solar activity
Solar protuberances
Spacecraft propulsion
Stationary Plasma Thruster (SPT) or SPD
Stress tensor
Sun spots
systems
Thermonuclear reactor
Tokamaks
trap
Vacuum corpuscular optics
waves
Z-pinch
Zero-dimensional models of plasma systems

Product details

  • ISBN 9781439881323
  • Weight: 1710g
  • Dimensions: 156 x 234mm
  • Publication Date: 06 Dec 2012
  • Publisher: Taylor & Francis Inc
  • Publication City/Country: US
  • Product Form: Hardback
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As the twenty-first century progresses, plasma technology will play an increasing role in our lives, providing new sources of energy, ion–plasma processing of materials, wave electromagnetic radiation sources, space plasma thrusters, and more. Studies of the plasma state of matter not only accelerate technological developments but also improve the understanding of natural phenomena. Beginning with an introduction to the characteristics and types of plasmas, Introduction to Plasma Dynamics covers the basic models of classical diffuse plasmas used to describe such phenomena as linear and shock waves, stationary flows, elements of plasma chemistry, and principles of plasma lasers.

The author presents specific examples to demonstrate how to use the models and to familiarize readers with modern plasma technologies. The book describes structures of magnetic fields—one- and zero-dimensional plasma models. It considers single-, two-, and multi-component simulation models, kinetics and ionization processes, radiation transport, and plasma interaction with solid surfaces. The text also examines self-organization and general problems associated with instabilities in plasma systems. In addition, it discusses cosmic plasma dynamic systems, such as Earth’s magnetosphere, spiral nebulas, and plasma associated with the Sun.

This text provides wide-range coverage of issues related to plasma dynamics, with a final chapter addressing advanced plasma technologies, including plasma generators, plasma in the home, space propulsion engines, and controlled thermonuclear fusion. It demonstrates how to approach the analysis of complex plasma systems, taking into account the diversity of plasma environments. Presenting a well-rounded introduction to plasma dynamics, the book takes into consideration the models of plasma phenomena and their relationships to one another as well as their applications.

Professor A. I. Morozov was one of the founders of plasma dynamics. His main scientific interests included plasma accelerators, plasma optics, magnetic plasma sustainment, and philosophy of science. He played a major role in the development and construction of space stationary plasma engines and worked at the Institute of Atomic Energy and the Kurchatov Institute in Moscow.

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