论文标题
双重爆炸中的sne ia:核壳混合对碳点火机制的影响
SNe Ia from double detonations: Impact of core-shell mixing on the carbon ignition mechanism
论文作者
论文摘要
在碳氧气芯上积聚氦壳的亚chandrasekhar质量白矮人是正常IA型超新星的潜在祖细胞。这项工作重点介绍了双爆炸子章s型模型中碳爆炸发作的细节。为了模拟核壳混合对碳点火机制的影响,与其他恒星相比,氦壳及其爆炸的分辨率增加了,从而更准确地处理了爆炸波的传播。这显着提高了氦燃烧的核合成产量的预测。使用AREPO代码进行了模拟。在一个维度上设置了带有氦壳的碳氧芯,并映射到三个维度。在开始流体动力爆炸模拟之前,我们通过放松步骤确保了白矮人的稳定性。使用辐射传输代码工匠计算合成可观察物。观察到碳爆炸的点火机制,以前很少受到关注。在这种“剪刀机制”中,氦气爆发波对未燃烧物质的影响与点火点相反时的影响足以点燃碳爆炸。这在核心和壳之间的富含碳富含过渡区域中可能是可能的。发现爆炸机制对核心壳过渡的细节很敏感,我们的模型说明了考虑在积聚过程中考虑发生的核壳混合的必要性。即使爆炸点火机制不同地构成了融合的冲击机制,但合成可观察物的差异并不显着。尽管它们没有比以前的模拟更好地拟合观测值,但它们说明了对多维模拟的需求。
Sub-Chandrasekhar mass white dwarfs accreting a helium shell on a carbon-oxygen core are potential progenitors of normal Type Ia supernovae. This work focuses on the details of the onset of the carbon detonation in the double detonation sub-Chandrasekhar model. In order to simulate the influence of core-shell mixing on the carbon ignition mechanism, the helium shell and its detonation are followed with an increased resolution compared to the rest of the star treating the propagation of the detonation wave more accurately. This significantly improves the predictions of the nucleosynthetic yields from the helium burning. The simulations were carried out with the AREPO code. A carbon-oxygen core with a helium shell was set up in one dimension and mapped to three dimensions. We ensured the stability of the white dwarf with a relaxation step before the hydrodynamic detonation simulation started. Synthetic observables were calculated with the radiative transfer code ARTIS. An ignition mechanism of the carbon detonation was observed, which received little attention before. In this "scissors mechanism", the impact the helium detonation wave has on unburnt material when converging opposite to its ignition spot is strong enough to ignite a carbon detonation. This is possible in a carbon enriched transition region between the core and shell. The detonation mechanism is found to be sensitive to details of the core-shell transition and our models illustrate the need to consider core-shell mixing taking place during the accretion process. Even though the detonation ignition mechanism differs form the converging shock mechanism, the differences in the synthetic observables are not significant. Though they do not fit observations better than previous simulations, they illustrate the need for multi-dimensional simulations.