论文标题
对剥离的envelope supernovae的早期光球速度演变中56ni混合的影响的系统研究
Systematic investigation of the effect of 56Ni mixing in the early photospheric velocity evolution of stripped-envelope supernovae
论文作者
论文摘要
众所周知,56NI的混合核衰减能是剥离的envelope超新星中的主要亮度来源,它会影响剥离的envelope Supernovae的观察性质,例如光曲线和颜色演化。在这里,我们系统地研究了56ni混合对剥离的envelope超新星中光球速度演变的影响。我们表明,56NI混合显着影响早期光球速度的演变。通常用来限制射出质量和爆炸能量的光球速度,仅通过改变56NI混合的程度而有很大变化。此外,具有较小程度的56NI混合的模型显示出早期光电速度演变的变平,而完全混合的模型显示单调降低。速度扁平化出现在氦气和碳+氧祖细胞爆炸中,具有各种弹出质量,爆炸能量和56ni质量。一些带有早期光电速度信息的剥离式超新星确实显示出如此扁平的速度。我们发现,具有早期光电速度信息的IB SN型,具有中等程度的56NI混合在光球速度演化中,其中大约一半的喷射符号。爆炸后不久,剥离的envelope超新星的直接光谱后续观察提供了早期光球演化,这为限制了喷射中的56ni混合提供了重要的线索。
Mixing of 56Ni, whose nuclear decay energy is a major luminosity source in stripped-envelope supernovae, is known to affect the observational properties of stripped-envelope supernovae such as light-curve and color evolution. Here we systematically investigate the effect of 56Ni mixing on the photospheric velocity evolution in stripped-envelope supernovae. We show that 56Ni mixing significantly affects the early photospheric velocity evolution. The photospheric velocity, which is often used to constrain the ejecta mass and explosion energy, significantly varies by just changing the degree of 56Ni mixing. In addition, the models with a small degree of 56Ni mixing show a flattening in the early photospheric velocity evolution, while the fully mixed models show a monotonic decrease. The velocity flattening appears in both helium and carbon+oxygen progenitor explosions with a variety of ejecta mass, explosion energy, and 56Ni mass. Some stripped-envelope supernovae with early photospheric velocity information do show such a flattening. We find that Type Ib SN 2007Y, which has early photospheric velocity information, has a signature of a moderate degree of 56Ni mixing in the photospheric velocity evolution and about a half of the ejecta is mixed in it. The immediate spectroscopic follow-up observations of stripped-envelope supernovae shortly after the explosion providing the early photospheric evolution give an important clue to constrain 56Ni mixing in the ejecta.