论文标题
在由激光驱动的反平行磁重新连接期间的离子和电子声爆发
Ion and Electron Acoustic Bursts during Anti-Parallel Magnetic Reconnection Driven by Lasers
论文作者
论文摘要
磁重新连接将磁能转化为血浆中的热能和动能。在众多候选机制中,已经建议由离子和电子之间的相对漂移或等效电流驱动的离子声学不稳定性在消除无碰撞等离子体中的磁能中起关键作用。但是,由于离子Landau阻尼和解决实验室中的Debye长度量表的困难,它们在重新连接期间的存在和有效性尚未得到充分理解。在这里,我们报告了通过使用高功率激光器在磁性磁性驱动的重新连接中,通过集体汤姆森散射测得的离子声爆发突然发作。离子声爆发后,具有电子加热和散装加速度的电子声爆发。我们通过1D和2D粒子中的模拟重现了这些观测值,其中电子流射机驱动离子声音不稳定性,形成双层。这些层诱导电子两流的不稳定性,产生电子声音爆发并为电子供电。我们的结果表明,当离子Landau阻尼无效时,在重新连接期间离子和电子声学的重要性,适用于一系列天体物理等离子体的条件,包括近乎地球的空间,恒星耀斑和黑洞增强引擎。
Magnetic reconnection converts magnetic energy into thermal and kinetic energy in plasma. Among numerous candidate mechanisms, ion acoustic instabilities driven by the relative drift between ions and electrons, or equivalently electric current, have been suggested to play a critical role in dissipating magnetic energy in collisionless plasmas. However, their existence and effectiveness during reconnection have not been well understood due to ion Landau damping and difficulties in resolving the Debye length scale in the laboratory. Here we report a sudden onset of ion acoustic bursts measured by collective Thomson scattering in the exhaust of anti-parallel magnetically driven reconnection using high-power lasers. The ion acoustic bursts are followed by electron acoustic bursts with electron heating and bulk acceleration. We reproduce these observations with 1D and 2D particle-in-cell simulations in which electron outflow jet drives ion-acoustic instabilities, forming double layers. These layers induce electron two-stream instabilities that generate electron acoustic bursts and energize electrons. Our results demonstrate the importance of ion and electron acoustic dynamics during reconnection when ion Landau damping is ineffective, a condition applicable to a range of astrophysical plasmas including near-Earth space, stellar flares, and black hole accretion engines.