热核超新星:对防火阶段的模拟及其影响
Vadim N Gamezo1, Alexei M Khokhlov, Elaine S Oran
1Laboratory for Computational Physics and Fluid Dynamics, Naval Research Laboratory (NRL), Center for Computational Science, NRL, Washington, DC 20375, USA. gamezo@lcp.nrl.navy.mil
概括
模拟显示,白矮星超新星中的流火焰在中心部留下未燃烧的物质,这与观察相矛盾. 随后的引爆可能会解决这种差异.
科学领域:
- * 天体物理学 * 天体物理学
- * 计算物理 计算物理
背景情况:
- *热核超新星爆炸是重要的天体物理事件.
- * 了解碳氧白矮星的消火阶段是超新星模型的关键.
研究的目的:
- * 为了研究白矮星超新星的消火阶段的流火焰的形成和演变.
- *分析雷利-泰勒不稳定性对火焰动态和燃烧速度的影响.
- *为了解决模拟的未燃材料分布与观测数据之间的差异.
主要方法:
- * 大规模的三维数值模拟.
- *模拟碳氧白矮星的防火阶段.
- * 分析在重力影响下流的火焰演变.
主要成果:
- *形成一个高度卷曲的流火焰.
- * 引力诱导的雷利-泰勒不稳定性对火焰动态的支配.
- * 在恒星中心附近保留了大量未燃烧/部分燃烧的物质.
- * 足够的能量释放为一个实质性的爆炸.
结论:
- * 单靠流性反燃模型无法完全解释观测到的超新星残留物组成.
- * 未燃烧材料的模拟中央保留与外层存在的观测证据相矛盾.
- *从防火到爆炸的过渡可能使模拟结果与观察结果相协调.
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