论文标题
磁场在二元中子星合并中的关键作用
The key role of magnetic fields in binary neutron star mergers
论文作者
论文摘要
2017年8月,对二进制中子恒星(BNS)合并的第一个多通电者观察表明,这些非凡事件具有巨大的科学潜力。这一突破导致了许多发现,并提供了最好的证据,证明BNS合并可以发射短伽马射线爆发(SGRB)喷气机,并负责大量的重型R-Process元素。另一方面,合并和合并后动态的细节仍然受到限制,留下了重要的开放问题。数值相对性仿真是在BNS合并中揭示工作中物理过程的强大工具,因此它们为提高我们解释相应的重力波(GW)和电磁发射的能力提供了最佳机会。在这里,我们回顾了基于一般相对论磁性流体动力学模拟的BNS合并的当前理论研究,并特别注意磁场是至关重要的成分。首先,我们讨论BNS合并中磁场的演化,扩增和新兴结构。然后,我们考虑它们对各个关键方面的影响:(i)射流形成以及与SGRB的联系,(ii)物质射血,R过程核合成和放射性驱动的Kilonova瞬变以及(III) - 合并后GW发射。
The first multimessenger observation of a binary neutron star (BNS) merger in August 2017 demonstrated the huge scientific potential of these extraordinary events. This breakthrough led to a number of discoveries and provided the best evidence that BNS mergers can launch short gamma-ray burst (SGRB) jets and are responsible for a copious production of heavy r-process elements. On the other hand, the details of the merger and post-merger dynamics remain only poorly constrained, leaving behind important open questions. Numerical relativity simulations are a powerful tool to unveil the physical processes at work in a BNS merger and as such they offer the best chance to improve our ability to interpret the corresponding gravitational wave (GW) and electromagnetic emission. Here, we review the current theoretical investigation on BNS mergers based on general relativistic magnetohydrodynamics simulations, paying special attention to the magnetic field as a crucial ingredient. First, we discuss the evolution, amplification, and emerging structure of magnetic fields in BNS mergers. Then, we consider their impact on various critical aspects: (i) jet formation and the connection with SGRBs, (ii) matter ejection, r-process nucleosynthesis, and radiocatively-powered kilonova transients, and (iii) post-merger GW emission.