论文标题

磁场对核心偏离超新星中微子相互作用的影响

Impact of magnetic field on neutrino-matter interactions in core-collapse supernova

论文作者

Kuroda, Takami

论文摘要

我们探讨了磁场对核心偏离超新星中微子 - 物质相互作用的影响。我们首先在形式主义中得出了中微子核子散射和中微子吸收和排放过程的修改源术语。然后,我们对具有光谱中微子传输的20 $ m_ \ odot $ star进行全面相对论的三维磁化磁层超新星模拟。我们的模拟在存在外部磁场的情况下自以为是的差异违反差异的影响。结果显示出明显的全局不对称性,主要局限于原始恒星中,并且清楚地反映了磁场结构。不对称特性源于两个因素:中微子通量和磁场之间的角度,以及与磁场平行的术语,也与中微子脱离热平衡的分布函数成正比。相对于$ \ sim 10^{15-16} $ 〜g的磁场强度的总中微子交互速率,典型的校正值相对于$ \ sim1 $%。尽管这些不对称特性并未立即影响爆炸动力学,但我们的结果表明,一旦中微子扩散出来,它们将是显着的,将这些不对称的原始恒星核心散布出来。我们还表明,在弹跳后$ \ sim370 $ ms的仿真时间中,我们的结果表明,由于修改的非弹性散射过程所引起的校正值在修改的中微子吸收和排放过程中占主导地位。

We explore the impact of magnetic field on neutrino-matter interactions in core-collapse supernova. We first derive the modified source terms for neutrino-nucleon scattering and neutrino absorption and emission processes in the moment formalism. Then we perform full relativistic three-dimensional, magnetorotational core-collapse supernova simulations of a 20 $M_\odot$ star with spectral neutrino transport. Our simulations treat self-consistently the parity violation effects of weak interaction in the presence of external magnetic field. The result shows a significant global asymmetry, mostly confined in the proto-neutron star, with clearly reflecting the magnetic field structure. The asymmetric property arises from two factors: the angle between the neutrino flux and magnetic field, and the term, which is parallel to the magnetic field and is also proportional to the deviation of distribution function of neutrinos from thermal equilibrium. The typical correction value amounts to $\sim1$ % relative to the total neutrino-matter interaction rate for the magnetic field strength of $\sim 10^{15-16}$~G. Although these asymmetric properties do not immediately affect the explosion dynamics, our results imply that they would be significant once the neutrinos diffuse out the proto-neutron star core carrying those asymmetries away. We also show that, during our simulation time of $\sim370$ ms after bounce, our results indicate that the correction value due to the modified inelastic scattering process dominates over that of the modified neutrino absorption and emission process.

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