Particle acceleration by collisionless shocks containing large-scale magnetic-field variations
arXiv:1009.5461 · doi:10.1088/0004-637X/725/1/128
Abstract
Diffusive shock acceleration at collisionless shocks is thought to be the source of many of the energetic particles observed in space. Large-scale spatial variations of the magnetic field has been shown to be important in understanding observations. The effects are complex, so here we consider a simple, illustrative model. Here, we solve numerically the Parker transport equation for a shock in the presence of large-scale sinusoidal magnetic-field variations. We demonstrate that the familiar planar-shock results can be significantly altered as a consequence of large-scale, meandering magnetic lines of force. Because perpendicular diffusion coefficient is generally much smaller than parallel diffusion coefficient , the energetic charged particles are trapped and preferentially accelerated along the shock front in the regions where the connection points of magnetic field lines intersecting the shock surface converge, and thus create the "hot spots" of the accelerated particles. For the regions where the connection points separate from each other, the acceleration to high energies will be suppressed. Further, the particles diffuse away from the "hot spot" regions and modify the spectra of downstream particle distribution. These features are qualitatively similar to the recent Voyager's observation in the Heliosheath. These results are potentially important for particle acceleration at shocks propagating in turbulent magnetized plasmas as well as those which contain large-scale nonplanar structures. Examples include anomalous cosmic rays accelerated by the solar wind termination shock, energetic particles observed in propagating heliospheric shocks, and galactic cosmic rays accelerated by supernova blast waves, etc.
accepted to ApJ
References in corpus (1)
Cited by in corpus (16)
- Diffusive Shock Acceleration at Cosmological Shock Waves
- The Acceleration and Confinement of Energetic Electrons by a Termination Shock in a Magnetic Trap: An Explanation for Nonthermal Loop-top Sources during Solar Flares
- The acceleration of high-energy protons at coronal shocks: the effect of large-scale streamer-like magnetic field structures
- Possible role of coronal streamer as magnetically-closed structure in shock-induced energetic electrons and metric type II radio bursts
- Modeling Electron Acceleration and Transport in the Early Impulsive Phase of the 2017 September 10 Solar Flare
- The Acceleration of Energetic Particles at Coronal Shocks and Emergence of a Double Power Law Feature in Particle Energy Spectra
- Anomalous Cosmic Ray Oxygen Observations in to 0.1 au
- Electron Acceleration at a Coronal Shock Propagating Through a Large-scale Streamer-like Magnetic Field
- Dynamical modulation of solar flare electron acceleration due to plasmoid-shock interactions in the looptop region
- Diffusive shock acceleration with magnetic field amplification and Alfvenic drift
- Solar Energetic Particle Acceleration at a Spherical Shock with the Shock Normal Angle Evolving in Space and Time
- Steepening of Cosmic Ray Spectra in Shocks with Varying Magnetic Field Direction
- Double-power-law feature of energetic particles accelerated at coronal shocks
- A model of double coronal hard X-ray sources in solar flares
- Evidence of Time-Dependent Diffusive Shock Acceleration in the 2022 September 5 Solar Energetic Particle Event
- Probing Solar Wind Structures with Solar Energetic Particle Observations from Solar Orbiter