Particle-in-cell simulations of shock-driven reconnection in relativistic striped winds
arXiv:1208.4998 · doi:10.1088/1749-4699/5/1/014014
Abstract
By means of two- and three-dimensional particle-in-cell simulations, we investigate the process of driven magnetic reconnection at the termination shock of relativistic striped flows. In pulsar winds and in magnetar-powered relativistic jets, the flow consists of stripes of alternating magnetic field polarity, separated by current sheets of hot plasma. At the wind termination shock, the flow compresses and the alternating fields annihilate by driven magnetic reconnection. Irrespective of the stripe wavelength "lambda" or the wind magnetization "sigma" (in the regime sigma>>1 of magnetically-dominated flows), shock-driven reconnection transfers all the magnetic energy of alternating fields to the particles, whose average Lorentz factor increases by a factor of sigma with respect to the pre-shock value. In the limit lambda/(r_L*sigma)>>1, where r_L is the relativistic Larmor radius in the wind, the post-shock particle spectrum approaches a flat power-law tail with slope around -1.5, populated by particles accelerated by the reconnection electric field. The presence of a current-aligned "guide" magnetic field suppresses the acceleration of particles only when the guide field is stronger than the alternating component. Our findings place important constraints on the models of non-thermal radiation from Pulsar Wind Nebulae and relativistic jets.
25 pages, 14 figures, movies available at https://www.cfa.harvard.edu/~lsironi/sironi_movies.tar ; in press, special issue of Computational Science and Discovery on selected research from the 22nd International Conference on Numerical Simulation of Plasmas
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Cited by in corpus (11)
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- Relativistic magnetic reconnection in pair plasmas and its astrophysical applications
- Nonthermal particles and photons in starburst regions and superbubbles
- The Steady Growth of the High-Energy Spectral Cutoff in Relativistic Magnetic Reconnection
- Interpreting Crab Nebula synchrotron spectrum: two acceleration mechanisms
- Particle acceleration in explosive relativistic reconnection events and Crab Nebula gamma-ray flares
- Particle acceleration in explosive relativistic reconnection events and Crab Nebula gamma-ray flares
- Particle Acceleration in Pulsar Wind Nebulae: PIC modelling
- Interaction of a Relativistic Magnetized Collisionless Shock with a Dense Clump
- Maximally-hard spectra from diffusive shock-acceleration in pulsar-wind nebulae