论文标题

中微子驱动的爆炸在核心偏离超新星的多维模拟中得到了轴心冷却的帮助

Neutrino Driven Explosions aided by Axion Cooling in Multidimensional Simulations of Core-Collapse Supernovae

论文作者

Betranhandy, Aurore, O'Connor, Evan

论文摘要

在这项研究中,我们介绍了第一个多维核心折叠超新星(CCSNE)模拟,包括QCD轴,以评估对CCSN爆炸机制的影响。我们在模拟中通过核子核子Bremsstrahlung发射通道中的轴包括轴,并在发射后轴自由流的假设下作为纯能 - 链术语。我们同时执行球形对称(1D)和轴对称(2D)模拟。在一维中,我们利用一种参数化的加热方案来实现爆炸,而在2D中,我们通过中微子加热机制自谐地实现爆炸。我们的2D结果$ 20 m_ \ odot $祖细胞显示了轴,在考虑Peccei-Quinn Energy Scale $ F_A \ LEQ 2 \ times 10^8 $ GEV时,轴心发射对冲击行为和爆炸时间的影响。由于轴轴发射引起的强烈冷却加速了核心的收缩,并导致更有效的中微子加热和更早的爆炸。对于所使用的斧头发射形式主义,影响爆炸的$ f_a $的值接近,但根据从SN1987A检测到的中微子基于当前限制的张力。但是,鉴于CCSNE发射的非线性行为和多维性质,我们建议需要一种自洽的多维方法来模拟CCSNE,包括任何后期的积聚和冷却,以充分探索超级Novae的轴支界限以及对CCSN爆炸机制的影响。

In this study, we present the first multidimensional core-collapse supernovae (CCSNe) simulations including QCD axions in order to assess the impact on the CCSN explosion mechanism. We include axions in our simulations through the nucleon-nucleon bremsstrahlung emission channel and as a pure energy-sink term under the assumption that the axions free-stream after being emitted. We perform both spherically symmetric (1D) and axisymmetric (2D) simulations. In 1D, we utilize a parameterized heating scheme to achieve explosions, whereas in 2D we self-consistently realize explosions through the neutrino heating mechanism. Our 2D results for a $20 M_\odot$ progenitor show an impact of the axion emission on the shock behavior and the explosion time when considering values of the Peccei-Quinn energy scale $f_a \leq 2 \times 10^8$ GeV. The strong cooling due to the axion emission accelerates the contraction of the core and leads to more efficient neutrino heating and earlier explosions. For the axion emission formalism utilized, the values of $f_a$ that impact the explosion are close to, but in tension with current limits based on the neutrinos detected from SN1987A. However, given the non-linear behavior of the emission and the multidimensional nature of CCSNe, we suggest that a self-consistent, multidimensional approach to simulating CCSNe, including any late time accretion and cooling, is needed to fully explore the axion bounds from supernovae and the impact on the CCSN explosion mechanism.

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