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首页> 外文期刊>The Astrophysical journal >MODELING SNR CASSIOPEIA A FROM THE SUPERNOVA EXPLOSION TO ITS CURRENT AGE: THE ROLE OF POST-EXPLOSION ANISOTROPIES OF EJECTA
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MODELING SNR CASSIOPEIA A FROM THE SUPERNOVA EXPLOSION TO ITS CURRENT AGE: THE ROLE OF POST-EXPLOSION ANISOTROPIES OF EJECTA

机译:从超新星爆发到其现代年龄的SNR概率模型建模:爆发后的异位异形体的作用

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The remnants of core-collapse supernovae (SNe) have complex morphologies that may reflect asymmetries and structures developed during the progenitor SN explosion. Here we investigate how the morphology of the supernova remnant Cassiopeia A (Cas A) reflects the characteristics of the progenitor SN with the aim of deriving the energies and masses of the post-explosion anisotropies responsible for the observed spatial distribution of Fe and Si/S. We model the evolution of Cas A from the immediate aftermath of the progenitor SN to the three-dimensional interaction of the remnant with the surrounding medium. The post-explosion structure of the ejecta is described by small-scale clumping of material and larger-scale anisotropies. The hydrodynamic multi-species simulations consider an appropriate post-explosion isotopic composition of the ejecta. The observed average expansion rate and shock velocities can be well reproduced by models with ejecta mass M ej?≈?4M ⊙ and explosion energy E SN?≈?2.3?×?1051 erg. The post-explosion anisotropies (pistons) reproduce the observed distributions of Fe and Si/S if they had a total mass of ≈0.25 M ⊙ and a total kinetic energy of ≈1.5?×?1050 erg. The pistons produce a spatial inversion of ejecta layers at the epoch of Cas A, leading to the Si/S-rich ejecta physically interior to the Fe-rich ejecta. The pistons are also responsible for the development of the bright rings of Si/S-rich material which form at the intersection between the reverse shock and the material accumulated around the pistons during their propagation. Our result supports the idea that the bulk of asymmetries observed in Cas A are intrinsic to the explosion.
机译:核塌陷超新星(SNe)的残留物具有复杂的形态,可能反映了祖先SN爆炸期间形成的不对称性和结构。在这里,我们研究超新星残余仙后座A(Cas A)的形态如何反映祖先SN的特征,以期得出爆炸后各向异​​性的能量和质量,这些能量和质量负责观察到的Fe和Si / S的空间分布。我们模拟了Cas A从祖先SN的直接后果到残余物与周围介质的三维相互作用的演化过程。弹射物的爆炸后结构通过材料的小块状聚集和大尺度的各向异性来描述。流体动力学多物种模拟考虑了喷出物的适当爆炸后同位素组成。所观察到的平均膨胀率和冲击速度可以通过具有顶射质量Mej≈≈4M⊙和爆炸能量ESN≈≈2.3Ω×Δ1051erg的模型很好地再现。如果爆炸后的各向异性(活塞)的总质量为≈0.25M⊙,总动能为≈1.5?×?1050 erg,则会再现观察到的Fe和Si / S的分布。活塞在Cas A时代产生喷射层的空间反转,从而导致富含Si / S的喷射在物理上位于富Fe喷射的内部。活塞还负责形成富Si / S材料的光亮环,该光亮环形成在反向冲击与活塞在运动过程中积聚在活塞周围的材料之间的交点处。我们的结果支持了在Cas A中观察到的大量不对称性是爆炸固有的想法。

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