在星系NGC 253中,由星爆驱动的分子风抑制恒星形成
Alberto D Bolatto1, Steven R Warren, Adam K Leroy
1Department of Astronomy, Laboratory for Millimeter-wave Astronomy, and Joint Space Institute, University of Maryland, College Park, Maryland 20742, USA. bolatto@astro.umd.edu
Nature
|July 27, 2013
概括
巨大的星系是罕见的,因为银河系的风. 新的观测揭示了NGC 253中的冷分子气体外流,表明这些风调节了恒星形成和星系生长.
科学领域:
- 天体物理学 天体物理学
- 银河系的进化 银河系的进化
- 星星形成的形成
背景情况:
- 巨大的星系数量不足通常与银河系风有关.
- 虽然有离子风是可见的,但大多数被排出的质量很可能在较冷的原子和分子阶段.
- 观察风中分子气体的携带需要高空间分辨率和跨尺度的灵敏度.
研究的目的:
- 为了研究银河系风的冷分子成分.
- 为了确定分子气体,膨胀外和电离风之间的联系.
- 要量化附近星体爆发星系中的分子外流率.
主要方法:
- 高分辨率 (50 帕秒) 观测附近的星爆星系NGC 253.
- 追踪外平面分子气体及其与Hα纤维的关系.
- 在星爆区域内分析分子外.
主要成果:
- 在NGC 253中观测到的超平面分子气体是以50帕塞克分辨率观察到的.
- 发现分子外流与Hα纤维和膨胀的外密切相关.
- 分子外流速度被确定为>3,可能每年约9个太阳质量.
结论:
- 星爆驱动的风通过限制恒星形成,显著影响银河系的进化.
- 质量流出率与恒星形成率的比率至少为1,表明强烈的反.
- 这些发现为调节大质量星系生长的机制提供了关键的见解.
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