漩涡中的火与冰:M51中x射线发射热气体和冷分子气体之间的空间分辨尺度关系

Chunyi Zhang, Junfeng Wang and Tian-Wen Cao
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引用次数: 0

摘要

在形成恒星的星系中,冷的和热的星际介质类似于恒星形成的储存库,它们分别由恒星风和恒星演化过程中的爆炸产生。我们利用钱德拉的深度观测数据和档案毫米测量数据,在千秒尺度上研究了这两个阶段之间的联系以及与M51恒星形成活动的关系。在M51的内部2kpc内,热气体表面亮度曲线呈径向急剧下降。红外总光度(LIR)与热气体光度()的比值与中心区域的星系半径呈正相关。对于整个星系,在-LIR图中揭示了双重相关性,其中中心的LIR急剧增加,但在磁盘中变化较慢。对于M51的中心,最佳的拟合给出了一个陡峭的关系。在CO(1-0)、CO(2-1)、HCN(1-0)和HCO+(1-0)的-分子线光度()关系中也发现了类似的双重相关性。我们证明了核心坍缩超新星(SNe)是M51星系中心加热气体的主要能量来源,导致观测到陡峭的- lir和-关系,因为它们的x射线辐射效率(η≡/)随着恒星形成速率和表面密度(ΣSFR)的增加而增加,其中SN的机械能输入率。
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Fire and Ice in the Whirlpool: Spatially Resolved Scaling Relations between X-Ray-emitting Hot Gas and Cold Molecular Gas in M51
The cold and hot interstellar medium in star-forming galaxies resembles the reservoir for star formation and associated heating by stellar winds and explosions during stellar evolution, respectively. We utilize data from deep Chandra observations and archival millimeter surveys to study the interconnection between these two phases and the relation to star formation activities in M51 on kiloparsec scales. A sharp radial decrease is present in the hot gas surface brightness profile within the inner 2 kpc of M51. The ratio between the total infrared luminosity (LIR) and the hot gas luminosity ( ) shows a positive correlation with the galactic radius in the central region. For the entire galaxy, a twofold correlation is revealed in the –LIR diagram, where sharply increases with LIR in the center but varies more slowly in the disk. The best fit gives a steep relation of for the center of M51. The similar twofold correlations are also found in the –molecular line luminosity ( ) relations for the four molecular emission lines CO(1–0), CO(2–1), HCN(1–0), and HCO+(1–0). We demonstrate that the core-collapse supernovae (SNe) are the primary source of energy for heating gas in the galactic center of M51, leading to the observed steep –LIR and – relations, as their X-ray radiation efficiencies (η ≡ / ) increase with the star formation rate surface densities (ΣSFR), where is the SN mechanical energy input rate.
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