中微子对中子星合并产生的“磁星”发射相对论喷流的影响

Carlo Musolino, Luciano Rezzolla and Elias R. Most
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引用次数: 0

摘要

最近,人们对双中子星(BNS)合并后的长寿命残余物是否能产生准直和超相对论性喷流产生了浓厚的兴趣,不同的方法会导致不同的结果。为了澄清这一过程的某些方面,我们报告了长期(即~ 110 ms)最先进的广义相对论磁流体动力学模拟磁化恒星BNS系统的吸气和合并的结果。我们发现,在合并后约50 ms,由磁旋不稳定性驱动的α -Ω发电机在磁盘最密集的区域开始运行,并导致残骸周围吸积盘的磁力线爆发。这次爆发产生了一种准直的、磁驱动的外流,其速度只有轻微的相对论性,并导致了电磁能量的剧烈爆发。我们提供的证据表明,这种流出部分是通过布兰德福德-佩恩机制校准的。最后,通过包括或不包括中微子的辐射输运,我们确定了它们在准直风的发射中所起的作用。由此,我们得出结论,我们观察到的磁场爆发机制是稳健的,即使在没有中微子的情况下也会发生。与之前的预期相反,中微子的吸收和发射导致极地重子污染较小,因此加速了爆发的发生,产生了更大的电磁光度。考虑到这些盘驱动的爆发流出的轻微相对论性质,很难认为它们是在短伽马射线爆发中观察到的喷射现象的原因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the Impact of Neutrinos on the Launching of Relativistic Jets from “Magnetars” Produced in Neutron Star Mergers
A significant interest has emerged recently in assessing whether collimated and ultrarelativistic outflows can be produced by a long-lived remnant from a binary neutron star (BNS) merger, with different approaches leading to different outcomes. To clarify some of the aspect of this process, we report the results of long-term (i.e., ∼110 ms) state-of-the-art general relativistic magnetohydrodynamics simulations of the inspiral and merger of a BNS system of magnetized stars. We find that after ∼50 ms from the merger an α–Ω dynamo driven by the magnetorotational instability sets in in the densest regions of the disk and leads to the breakout of the magnetic field lines from the accretion disk around the remnant. The breakout is responsible for generating a collimated, magnetically driven outflow with only mildly relativistic velocities and for a violent eruption of electromagnetic energy. We provide evidence that this outflow is partly collimated via a Blandford–Payne mechanism. Finally, by including or not the radiative transport via neutrinos, we determine the role they play in the launching of the collimated wind. In this way, we conclude that the mechanism of magnetic field breakout we observe is robust and takes place even without neutrinos. Contrary to previous expectations, the inclusion of neutrino absorption and emission leads to a smaller baryon pollution in polar regions and hence accelerates the occurrence of the breakout, yielding a larger electromagnetic luminosity. Given the mildly relativistic nature of these disk-driven breakout outflows, it is difficult to consider them responsible for the jet phenomenology observed in short gamma-ray bursts.
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