Dynamical friction in a relativistic plasma.
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Summary
The force of dynamical friction, diffusion tensor, and particle relaxation rates for a Maxwellian background in the same form as Trubnikov are derived, enabling high-temperature laboratory and astrophysical plasmas to be modeled in a consistent manner.
- Type
- article
- Published
- 2014-05-01
- Cited by
- 9
- References
- 27
- OpenAlex
- https://openalex.org/W2321291175
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:32889154
Keywords
Physics, Plasma, Dynamical friction, Relaxation (psychology), Dynamical systems theory
References
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- Electron Thermalization and Heating in Relativistic Plasmas
- Fokker-Planck Equation for an Inverse-Square Force
- The physics basis for ignition using indirect-drive targets on the National Ignition Facility
- Test-particle motion in a relativistic plasma: II. The Lorentz gas
- Two-body relaxation in relativistic thermal plasmas
- Expansion of the relativistic Fokker-Planck equation including non-linear terms and a non-Maxwellian background
- Bremsstrahlung and Pair Production in the Field of Free Electrons
- Efficiency of current drive by fast waves
Cited by
- Particle Interactions in High-Temperature Plasmas
- Adaptive time-stepping Monte Carlo integration of Coulomb collisions
- Relativistic runaway electron simulations in 3D background
- Association between Quality of Family Relationships and Social Anxiety (Investigating the Mediating Role of Family Cohesion)
- Evaluation of the Dreicer runaway generation rate in the presence of high- Z impurities using a neural network
- Spatiotemporal analysis of the runaway distribution function from synchrotron images in an ASDEX Upgrade disruption
- Kinetic modeling of runaway-electron dynamics in partially ionized plasmas
- Resonant interaction between runaway electrons and the toroidal magnetic field ripple in TCV
- Particle collisionality in scaled kinetic plasma simulations
- Spatiotemporal analysis of the runaway distribution function from synchrotron images in an ASDEX Upgrade disruption
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