论文标题
基于刺激的快速无线电爆发模型
Stimulated-emission based model of fast radio bursts
论文作者
论文摘要
快速无线电爆发(FRB)是明亮的短时无线电瞬变,亮度温度很高,暗示着高度连贯的发射。我们建议FRB是由电子束与中子恒星轻缸半径以外的环境等离子体相互作用引起的。光缸半径上的磁场相对较高,可以容纳年轻的蟹状系统和旧的毫秒脉冲星,以解决FRB的各种环境。在第一阶段,穿过背景等离子体的强烈脉冲梁会导致不稳定性,从而使局部Buneman型cavitons中的颗粒捕获到局部场中饱和。然后,由于两流不稳定性产生的圆形电场,横梁被径向自聚焦,从而导致横向上的微作物不稳定性。最后,由于浆液不稳定性,芯片不稳定性的非线性饱和导致孤子的自我调节形成。共振的孤立波是具有自振荡振荡的相对论颗粒的呼吸型孤子。对于非线性分散和孤子获得的分析溶液表明,在电流板附近,相对论束被诱导的本地电场自我激发的振荡而被klystron样结构加速/放大。增强相干的无线电发射通过狭窄的圆锥体传播,由于径向电场和磁性捏合而引起强烈的聚焦。孤子子的非线性演变和刺激的发射与Buneman的不稳定性有关,并且研究了FRB中纳秒射击的可能性。
Fast radio bursts (FRBs) are bright, short-duration radio transients with very high brightness temperatures implying highly coherent emission. We suggest that the FRBs are caused by the self-focusing of an electron beam interacting with an ambient plasma right beyond the light cylinder radius of a neutron star. The magnetic field at the light cylinder radius is relatively high which can accommodate both young Crab-like systems and old millisecond pulsars addressing the diverse environments of FRBs. At the first stage, the intense pulsed-beam passing through the background plasma causes instabilities such that the trapped particles in local Buneman-type cavitons saturate the local field. The beam is then radially self-focused due to the circular electric field developed by the two-stream instability which leads to Weibel instability in the transverse direction. Finally, the non-linear saturation of the Weibel instability results in the self-modulational formation of solitons due to plasmoid instability. The resonant solitary waves are the breather-type solitons hosting relativistic particles with self-excited oscillations. The analytical solutions obtained for non-linear dispersion and solitons suggest that, near the current sheets, the relativistic bunches are accelerated/amplified by klystron-like structures due to self-excited oscillations by the induced local electric field. Boosted coherent radio emission propagates through a narrow cone with strong focusing due to radial electric field and magnetic pinching. The non-linear evolution of solitons and the stimulated emission are associated with the Buneman instability and the possibility of the presence of nanosecond shots in FRBs are investigated.