论文标题

用于一般相对论核心偏离超新星模拟的黑洞切除方案

A Black-Hole Excision Scheme for General Relativistic Core-Collapse Supernova Simulations

论文作者

Sykes, B., Mueller, B., Cordero-Carrión, I., Cerdá-Durán, P., Novak, J.

论文摘要

后备超新星和长伽玛射线爆发和Hypernovae的折叠场景作为黑洞形成和极端短暂事件的途径引起了极大的兴趣。对这些情况的一致模拟需要一般的相对论治疗,并且需要适当处理奇异性的形成。爱因斯坦方程的游离进化方案可以通过切除或穿刺方案处理黑洞的形成。然而,在有限的方案中,在恒星崩溃模拟的长期数值稳定性方面具有明显的优势,远高于$ 10^{4} $浅色的时间尺度,黑洞空间的动态处理更具挑战性。在以前的切除术中,在同型平坦的空间上进行了研究,我们在这里介绍了使用椰子-FMT中微子传输代码的超新星模拟的黑洞切除方案的实现。我们详细描述了确保长期数值稳定性的边界条件的选择,并解决了升级到流体动力学求解器的升级,这些升级是稳定地发展到黑洞上的相对论增生流动所必需的。该方案目前仅限于球形对称度量,但是流体动力学可以通过多维处理。为了演示,我们在$ 85 M_ \ odot $ Star中提供了黑洞形成的球形对称模拟,以及对同一祖细胞的后备爆炸的二维模拟。这些分别在黑洞形成后延伸超过9s和0.3s。

Fallback supernovae and the collapsar scenario for long-gamma ray burst and hypernovae have received considerable interest as pathways to black-hole formation and extreme transient events. Consistent simulations of these scenarios require a general relativistic treatment and need to deal appropriately with the formation of a singularity. Free evolution schemes for the Einstein equations can handle the formation of black holes by means of excision or puncture schemes. However, in constrained schemes, which offer distinct advantages in long-term numerical stability in stellar collapse simulations over well above $10^{4}$ light-crossing time scales, the dynamical treatment of black-hole spacetimes is more challenging. Building on previous work on excision in conformally flat spacetimes, we here present the implementation of a black-hole excision scheme for supernova simulations with the CoCoNuT-FMT neutrino transport code. We describe in detail a choice of boundary conditions that ensures long-time numerical stability, and also address upgrades to the hydrodynamics solver that are required to stably evolve the relativistic accretion flow onto the black hole. The scheme is currently limited to a spherically symmetric metric, but the hydrodynamics can be treated multi-dimensionally. For demonstration, we present a spherically symmetric simulation of black-hole formation in an $85 M_\odot$ star, as well as a two-dimensional simulation of the fallback explosion of the same progenitor. These extend past 9s and 0.3s after black-hole formation, respectively.

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