Plasma physics of the intracluster medium
arXiv:2205.02489 · doi:10.1007/978-981-16-4544-0_125-1
Abstract
This Chapter provides a brief tutorial on some aspects of plasma physics that are fundamental to understanding the dynamics and energetics of the intracluster medium (ICM). The tutorial is split into two parts: one that focuses on the thermal plasma component -- its stability, viscosity, conductivity, and ability to amplify magnetic fields to dynamical strengths via turbulence and other plasma processes; and one that focuses on the non-thermal population of charged particles known as cosmic rays -- their acceleration, re-acceleration, and transport throughout the cluster volume. Observational context is woven throughout the narrative, from constraints on the strength and geometry of intracluster magnetic fields and the effective viscosity of the ICM, to examples of radio halos, radio relics, and cluster shocks that can test theories of particle acceleration. The promise of future X-ray missions to probe intracluster turbulence and discover the impact of small-scale plasma physics, coupled with sensitive, high-resolution radio observations of synchrotron-emitting plasma that reveal the properties of intracluster magnetic fields and particle-acceleration mechanisms, are likely to establish galaxy clusters as the premier cosmic laboratories for deciphering the fundamental physics of hot, dilute plasmas.
This Chapter will appear in the Section "Galaxy Clusters" (Section Editors: E. Pointecouteau, E. Rasia, A. Simionescu) of the "Handbook of X-ray and Gamma-ray Astrophysics" (Editors in chief: C. Bambi and A. Santangelo)
References in corpus (24)
- Diffuse Radio Emission from Galaxy Clusters
- Revised equipartition & minimum energy formula for magnetic field strength estimates from radio synchrotron observations
- Particle Acceleration on Megaparsec Scales in a Merging Galaxy Cluster
- Compressible Turbulence in Galaxy Clusters: Physics and Stochastic Particle Re-acceleration
- Simulations of nonhelical hydromagnetic turbulence
- On the structure of relativistic collisionless shocks in electron-ion plasmas
- Strong magnetic fields in normal galaxies at high redshifts
- Magnetic support of the optical emission line filaments in NGC 1275
- Buoyancy Instabilities in Weakly Magnetized Low Collisionality Plasmas
- Is nonhelical hydromagnetic turbulence peaked at small scales?
- The relation between gas density and velocity power spectra in galaxy clusters: high-resolution hydrodynamic simulations and the role of conduction
- The Matryoshka Run (II): Time Dependent Turbulence Statistics, Stochastic Particle Acceleration and Microphysics Impact in a Massive Galaxy Cluster
- Suppressed effective viscosity in the bulk intergalactic plasma
- Suppression of electron thermal conduction by whistler turbulence in a sustained thermal gradient
- The Effect of Anisotropic Viscosity on Cold Fronts in Galaxy Clusters
- Fast magnetic field amplification in distant galaxyclusters
- Electron Preacceleration in Weak Quasi-perpendicular Shocks in High-beta Intracluster Medium
- The intra-cluster magnetic field in the double relic galaxy cluster Abell 2345
- Dissipation in intercluster plasma
- Characterizing the Uncertainty in Cluster Magnetic Fields derived from Rotation Measures
- Deep XMM-Newton Observations of the Most Distant SPT-SZ Galaxy Cluster
- Constraints on dynamo action in plasmas
- Linear Vlasov theory of a magnetised, thermally stratified atmosphere
- On the influence of supra-thermal particle acceleration on the morphology of low-Mach, high- shocks
Cited by in corpus (7)
- Critical magnetic Reynolds number of the turbulent dynamo in collisionless plasmas
- Searching for cold gas traced by MgII quasar absorbers in massive X-ray-selected galaxy clusters
- The effects of finite electron inertia on helicity-barrier-mediated turbulence
- A Parallel-Kinetic-Perpendicular-Moment Model for Magnetized Plasmas
- Turbulent heating in collisionless low-beta plasmas: imbalance, Landau damping, and electron-ion energy partition
- HelioSwarm: A Multipoint, Multiscale Mission to Characterize Turbulence
- Braginskii Viscosity in Cosmological Simulations of Galaxy Clusters: Implementation, Validation, and First Application