GRMHD Simulations of Accreting Proto-Magnetars I. Implications for Gamma-Ray Burst Jets and Energetic Explosions
吸积原磁星的 GRMHD 模拟 I:对 GRB 喷流与高能爆炸的启示
Newly formed, rapidly rotating, strongly magnetized neutron stars ("millisecond proto-magnetars") are promising central engines for gamma-ray bursts (GRBs) and luminous supernovae. Although often modeled in isolation, they can be born surrounded by accretion disks in stellar collapse, neutron-star mergers, or accretion-induced collapse. We present axisymmetric GRMHD simulations of hyperaccretion onto such objects, including a physical equation of state and charged-current weak interactions. Holding the weakly magnetized accretion torus fixed, we vary the stellar dipole field strength to span crushed-magnetosphere, magnetically channeled accretion, and centrifugal-propeller regimes, and compare with an otherwise similar accreting black hole. Accretion compresses the stellar magnetosphere and opens additional magnetic flux, producing relativistic jet powers that exceed isolated-dipole spin-down estimates by factors of a few to ~10. Even while the magnetosphere remains compressed against the stellar surface, stronger fields increasingly impede accretion and enhance outflows. Channeled-accretion models show strong jet variability driven by plasmoid eruptions and intermittent magnetospheric accretion, whereas the propeller model produces a steadier, more powerful jet and rapid spin-down. The disk-magnetosphere interaction also regulates how efficiently the neutron star grows and whether it spins up or down; near spin equilibrium, inefficient accretion can delay collapse to a black hole relative to estimates based on the external mass-supply rate. Accreting proto-magnetars can therefore power relativistic jets and baryon-rich outflows with energetics comparable to those inferred for long GRBs and GRB-supernovae. A companion paper explores implications for neutron-rich ejecta and r-process nucleosynthesis.
展开 ▾首次在 GRMHD 中同时加入物态方程与弱相互作用,系统比较不同偶极场强下的盘-磁层-喷流耦合;发现 propeller 态喷流更稳更强且快速自旋减慢,吸积延缓磁星坍缩为黑洞。
早期对吸积磁星的研究已指出,盘将磁层压缩到光柱内可打开额外磁通量,使喷流功率超过孤立偶极自旋减慢 Parfrey+ 2016,并显著改变喷流时变与重子装载 Metzger+ 2018a。本文在轴对称 GRMHD 框架中加入真实物态和带电弱相互作用,系统性扫描偶极场强,定量给出从压碎磁层、通道吸积到 propeller 的连续过渡,并直接比较黑洞吸积。未来需将二维结果推广到三维:二维轴对称为主可能高估等离子团喷发驱动的间歇性 Zhu+ 2024,而三维盘磁场极性、MRI 湍流和斜转子效应仍需进一步系统探索。更现实的模型还需解析中子星表面大气与中微子加热,从而预言喷流的绝对磁化强度。
预印本 2026-08-31 · 收录 2026-09-02