两个恒星在40-100太阳质量范围内孤立演变的第一个引力波源
Krzysztof Belczynski1, Daniel E Holz2, Tomasz Bulik1
1Astronomical Observatory, Warsaw University, Ujazdowskie 4, 00-478 Warsaw, Poland.
Nature
|June 24, 2016
概括
通过引力波检测到的大型黑洞合并, 源自低金属度的双星. 我们的模拟解释了GW150914,
科学领域:
- 天体物理学
- 引力波天文学
- 恒星进化
背景情况:
- 首次发现的引力波事件GW150914涉及两个巨大的黑洞的合并.
- 以前的模型在模拟大质量,低金属度的双星祖先方面缺乏准确性, 限制了黑洞合并的预测.
研究的目的:
- 从孤立的双星中进行二进制黑洞形成的高精度数值模拟.
- 为解释GW150914提供一个框架,并预测黑洞合并的未来引力波事件.
主要方法:
- 模拟了与现实物理学相关的巨大双星的演变.
- 专注于在低金属度环境中的质量转移和共同层相.
- 计算了黑洞的形成,旋转和合并率.
主要成果:
- 巨大的黑洞合并可能在太阳金属度低于10%的恒星中形成.
- 大多数二进制黑洞在没有超新星的情况下形成,
- 拟议的经典场形成模型预测的合并比动态形成道多40倍.
结论:
- 这项研究提供了一个强大的模型来解释和预测通过引力波探测到的大型黑洞合并.
- 未来的引力波观测器每年可以检测到1000个黑洞的合并,总质量为20-80个太阳质量.
- 在大爆炸后的20亿年或110亿年形成.
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