Rapid Energy Dissipation by Colliding Waves in Strongly Magnetized Plasmas
Tianshu Wu, Xinyu Li, Yangyang Cai
Abstract
Rapid dissipation of magnetic energy in highly magnetized environments around neutron stars and black holes is a key open question in high-energy astrophysics. We develop a general kinetic picture of counter-propagating wave collisions in magnetized pair plasmas for arbitrary polarizations and find that magnetic energy can be dissipated on the wave-crossing timescale. The two magnetohydrodynamical conditions on the field invariants, I1 B2-E2>0 and I2 E·B=0, can be spontaneously violated during the collision. Parallel electric fields develop to screen nonzero I2 with little energy loss, consistent with the evolution described by Force-Free Electrodynamics. When magnetic dominance is lost, strong particle energization is triggered, dissipating magnetic energy on the wave-crossing timescale. This dynamical process yields a rapid dissipation channel of magnetic energy and provides a kinetic pathway to high-energy emission.
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