在早期的宇宙中,一个巨大的死盘星系
Sune Toft1, Johannes Zabl1,2, Johan Richard3
1Dark Cosmology Centre, Niels Bohr Institute, University of Copenhagen, Juliane Maries Vej 32, København Ø, 2100, Denmark.
Nature
|June 23, 2017
概括
在红移z=2的大型星系惊人地发现是快速旋转的磁盘,而不是紧的星体爆发. 这挑战了早期星系演变的融合驱动模型,并表明了盘形成的途径.
科学领域:
- 宇宙的演化
- 星系的形成和演变
- 观测天体物理学
背景情况:
- 红移z=2的大型星系通常是紧的,并且已停止恒星形成.
- 主流理论认为这些星系是通过激烈的核爆炸形成的, 并通过合并成长.
- 这种模型的验证需要对银河系中心进行高分辨率观测,
研究的目的:
- 为了研究高红移的紧,大质量星系的形成路径.
- 为了测试早期巨型星系形成的聚合驱动的恒星爆发模式.
- 了解早期星系的结构和运动演变.
主要方法:
- 使用引力透镜实现更高分辨率的遥远星系的核心.
- 在红移z=2.1478时分析了透镜星系的恒星群和动力学.
- 解释观察数据以推断形成机制.
主要成果:
- 一个在z=2.1478的镜头紧星系被确定为旋转快,旋转支持的圆盘星系.
- 银河系的恒星形成在一个圆盘内,这与核星爆假说相矛盾.
- 证据表明冷气流养了银河系,直到被暗物质光环所震撼.
结论:
- 早期停止恒星形成的巨大星系可能经历了显著的结构和运动变化.
- 在早期大质量星系的演化过程中,
- 这一发现需要修订星系进化模型,以包括基于磁盘的形成和进化途径.
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