Browse > Article
http://dx.doi.org/10.5303/PKAS.2015.30.2.545

PARTICLE ACCELERATION IN SUPERNOVA REMNANTS  

KANG, HYESUNG (Department of Earth Sciences, Pusan National University)
Publication Information
Publications of The Korean Astronomical Society / v.30, no.2, 2015 , pp. 545-548 More about this Journal
Abstract
Most high energy cosmic rays (CRs) are thought to be produced by diffusive shock acceleration (DSA) in supernova remnants (SNRs) within the Galaxy. Plasma and MHD simulations have shown that the self-excitation of MHD waves and amplification of magnetic fields via plasma instabilities are an integral part of DSA for strong collisionless shocks. In this study we explore how plasma processes such as plasma instabilities and wave-particle interactions can affect the energy spectra of CR protons and electrons, using time-dependent DSA simulations of SNR shocks. We demonstrate that the time-dependent evolution of the shock dynamics, the self-amplified magnetic fields and $Alfv{\acute{e}nic$ drift govern the highest energy end of the CR energy spectra. As a result, the spectral cutoffs in nonthermal X-ray and ${\gamma}$-ray radiation spectra are regulated by the evolution of the highest energy particles, which are injected at the early phase of SNRs. We also find that the maximum energy of CR protons can be boosted significantly only if the scale height of the magnetic field precursor is long enough to contain the diffusion lengths of the particles of interests. Thus, detailed understandings of nonlinear wave-particle interactions and time-dependent DSA simulations are crucial for understanding the nonthermal radiation from CR acceleration sources.
Keywords
cosmic ray acceleration; shock wave; Supernova Remnants;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
연도 인용수 순위
1 Bell, A. R., 1978, The Acceleration of Cosmic Rays in Shock Fronts. I, MNRAS, 182, 147   DOI
2 Bell, A. R., 2004, Turbulent Amplification of Magnetic Field and Diffusive Shock Acceleration of Cosmic Rays, MNRAS, 353, 550   DOI   ScienceOn
3 Caprioli, D., 2012, Cosmic-Ray Acceleration in Supernova Remnants: Non-Linear Theory Revised, JCAP, 7, 38
4 Kang, H., 2010, Cosmic Ray Spectrum in Supernova Remnant Shocks, JKAS, 43, 25
5 Kang, H., 2012, Diffusive Shock Acceleration with Magnetic Field Amplification and Alfvenic Drift, JKAS, 45, 127
6 Kang, H., 2013, Effects of Wave-Particle Interactions on Diffusive Shock Acceleration at Supernova Remnants, JKAS, 46, 49
7 Kang, H. & Jones, T. W., 2006, Numerical Studies of Diffusive Shock Acceleration at Spherical Shocks, APh, 25, 246
8 Kang, H., Jones, T. W., & Edmon, P. P., 2013, Nonthermal Radiation from Supernova Remnants: Effects of Magnetic Field Amplification and Particle Escape, ApJ, 777, 25   DOI
9 Kang, H., Jones, T. W., & Gieseler, U. D. J., 2002, Numerical Studies of Cosmic-Ray Injection and Acceleration, ApJ, 579, 337   DOI
10 Kang, H., Vahe, P., Ryu, D., & Jones, T. W., 2014, Injection of $\kappa$-like Suprathermal Particles into Diffusive Shock Acceleration, ApJ, 788, 141   DOI
11 Lucek, S. G. & Bell, A. R., 2000, Non-linear Amplification of a Magnetic Field Driven by Cosmic Ray Streaming, MNRAS, 314, 65   DOI   ScienceOn
12 Malkov M. A. & Drury, L.O'C., 2001, Nonlinear Theory of Diffusive Acceleration of Particles by Shock Waves, RPPh, 64, 429
13 Riquelme, M. A. & Spitkovsky, A., 2009, Nonlinear Study of Bell's Cosmic Ray Current-Driven Instability, ApJ, 694, 626   DOI
14 Skilling, J., 1975, Cosmic Ray Streaming. I - Effect of Alfven Waves on Particles, MNRAS, 172, 557   DOI