论文标题

通过电子 - 普罗顿束和一对等离子体束之间的细丝不稳定性的优先加速度加速

Preferential acceleration of positrons by a filamentation instability between an electron-proton beam and a pair plasma beam

论文作者

Dieckmann, M E, Spencer, S J, Falk, M, Rowlands, G

论文摘要

环境电子 - 普罗顿血浆中的电子和正电子的无碰撞喷气器的粒子(PIC)模拟显示了正上音的加速度,以牺牲电子动能为代价。射流内的主要不稳定性是电子,质子和正电子之间的细丝不稳定性。在这项工作中,我们表明,在静止的最初未磁性环境电子血浆与以非相关速度向其移动的一束血浆之间的细丝不稳定性确实会导致优先正面加速。细丝形式主要用与电流矢量相同方向的颗粒填充。正电子丝通过梁电子丝通过电磁场分离。有些颗粒可以越过田间边界并进入其他物种的细丝。正电子细丝可以通过收集环境等离子体的电子来中和净电荷,而质子则无法轻易遵循梁电子丝。因此,与梁电子丝相比,正电子丝可以被压缩到更高的密度和温度。在不稳定性的指数生长阶段结束后发生的细丝合并导致梁电子丝的扩展,这会扩大它们产生的磁场并在此细丝中诱导电场。梁电子将其动能的很大一部分输给了电场。光束电子丝中的一些正电子被诱导的电场加速,几乎是其初始速度的两倍。模拟表明,在正电子丝中诱导了较弱的电场,并且在这种细丝中颗粒几乎不会改变其速度。

Particle-in-cell (PIC) simulations of collisionless jets of electrons and positrons in an ambient electron-proton plasma have revealed an acceleration of positrons at the expense of electron kinetic energy. The dominant instability within the jet was a filamentation instability between electrons, protons and positrons. In this work we show that a filamentation instability, between an initially unmagnetized ambient electron-proton plasma at rest and a beam of pair plasma that moves through it at a non-relativistic speed, indeed results in preferential positron acceleration. Filaments form that are filled predominantly with particles with the same direction of their electric current vector. Positron filaments are separated by electromagnetic fields from beam electron filaments. Some particles can cross the field boundary and enter the filament of the other species. Positron filaments can neutralize their net charge by collecting the electrons of the ambient plasma while protons cannot easily follow the beam electron filaments. Positron filaments can thus be compressed to a higher density and temperature than the beam electron filaments. Filament mergers, which take place after the exponential growth phase of the instability has ended, lead to an expansion of the beam electron filaments, which amplifies the magnetic field they generate and induces an electric field in this filament. Beam electrons lose a substantial fraction of their kinetic energy to the electric field. Some positrons in the beam electron filament are accelerated by the induced electric field to almost twice their initial speed. The simulations show that a weaker electric field is induced in the positron filament and particles in this filament hardly change their speed.

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