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从X射线观测中确定的一颗白矮星增积行星物质
Tim Cunningham1,2, Peter J Wheatley3,4, Pier-Emmanuel Tremblay3,4
1Department of Physics, The University of Warwick, Coventry, UK. timothy.cunningham@warwick.ac.uk.
Nature
|February 10, 2022
概括
我们检测到来自受污染的白矮星G29-38的X射线, 这一发现提供了对白矮星碎片积聚的直接证据.
科学领域:
- 天文学与天体物理学
- 恒星进化
- 外行星科学
背景情况:
- 许多白矮星表现出大气中的重元素污染, 暗示行星碎片的积聚.
- 以前的证据依赖于间接的光球金属检测, 严重依赖于大气模型.
- 直接测量积累率和组成一直是具有挑战性的.
研究的目的:
- 直接测量一个受污染的白矮星的瞬间积累率,G29-38.
- 通过分析X射线排放来测试持续堆积的假设.
- 为了限制恒星大气层模型的积累速度.
主要方法:
- 检测到来自白矮星G29-38的X射线辐射,显著度为4.4σ.
- 使用测量的X射线光度计算瞬间积累率.
- 测量了积聚物质的等离子体温度.
主要成果:
- 从X射线发光率得出一个直接的,与模型无关的瞬间增量率.
- 对G29-38的提取增积率高于从光球丰度中预估的.
- 测定了低等离子体温度 (0. 5 ± 0. 2 keV),与低增量模型一致.
结论:
- 通过X射线检测可以直接证明白矮星的碎片正在不断积累.
- 较高的积累率表明当前大气模型的潜在局限性,可能需要对流超标.
- 这些发现支持白矮星在低速增长的轰炸方案.
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