论文标题

气体角动量对磁性逮捕磁盘形成和发射强大的喷气机的影响

The Effects of Gas Angular Momentum on the Formation of Magnetically Arrested Disks and the Launching of Powerful Jets

论文作者

Kwan, Tom M., Dai, Lixin, Tchekhovskoy, Alexander

论文摘要

在这封信中,我们通过执行3D一般相对论磁性水力动力学模拟来研究以零或低角度动量为零或低比角动量的键样积聚。为了检查相对论的喷气机是否可以从此类流中磁性发射,我们将大规模的多磁场插入积聚流中,并考虑快速旋转的黑洞。我们证明,在这种条件下,积聚流量最初需要具有特定的角动量以上的特定阈值,以最终到达并坚固地维持磁性固定的磁盘状态。如果流动能够达到这样的状态,它可以以$ \ gtrsim 100 \%$ $能源效率发射非常强大的喷气机。有趣的是,我们还发现,即使积聚流的最初特定角动量低于阈值,它仍然可以发射以$ \ sim 10 \%$的平均能源效率发射发作的射流。然而,积聚流具有非典型行为,例如在不同的倾斜倾斜下具有不同的旋转方向,甚至在内部磁盘区域也沿着平面沿着中平面表现出持续的流出。我们的结果给出了关于为什么可以从各种天体物理系统中产生喷气机的合理解释,这些天体物理系统可能缺乏大量气体特异性角动量,例如SGR A*,风喂X射线二进制文件,潮汐破坏事件以及长期持续的伽马射线爆发。

In this letter, we investigate Bondi-like accretion flows with zero or low specific angular momentum by performing 3D general relativistic magnetohydrodynamic simulations. In order to check if relativistic jets can be launched magnetically from such flows, we insert a large-scale poloidal magnetic field into the accretion flow and consider a rapidly spinning black hole. We demonstrate that under such conditions the accretion flow needs to initially have specific angular momentum above a certain threshold to eventually reach and robustly sustain the magnetically arrested disk state. If the flow can reach such a state, it can launch very powerful jets at $\gtrsim 100\%$ energy efficiency. Interestingly, we also find that even when the accretion flow has initial specific angular momentum below the threshold, it can still launch episodic jets with an average energy efficiency of $\sim 10\%$. However, the accretion flow has nontypical behaviors such as having different rotation directions at different inclinations and exhibiting persistent outflows along the midplane even in the inner disk region. Our results give plausible explanations as to why jets can be produced from various astrophysical systems that likely lack large gas specific angular momenta, such as Sgr A*, wind-fed X-ray binaries, tidal disruption events, and long-duration gamma-ray bursts.

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