首页> 外文期刊>The Astrophysical journal >A CHANDRA X-RAY ANALYSIS OF ABELL 1664: COOLING, FEEDBACK, AND STAR FORMATION IN THE CENTRAL CLUSTER GALAXY
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A CHANDRA X-RAY ANALYSIS OF ABELL 1664: COOLING, FEEDBACK, AND STAR FORMATION IN THE CENTRAL CLUSTER GALAXY

机译:ABELL 1664的CHANDRA X射线分析:中央星系中的冷却,反馈和恒星形成

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摘要

The brightest cluster galaxy (BCG) in the Abell 1664 cluster is unusually blue and is forming stars at a rate of ~ 23 M ☉ yr–1. The BCG is located within 5 kpc of the X-ray peak, where the cooling time of 3.5 × 108 yr and entropy of 10.4 keV cm2 are consistent with other star-forming BCGs in cooling flow clusters. The center of A1664 has an elongated, "barlike" X-ray structure whose mass is comparable to the mass of molecular hydrogen, ~1010 M ☉ in the BCG. We show that this gas is unlikely to have been stripped from interloping galaxies. The cooling rate in this region is roughly consistent with the star formation rate, suggesting that the hot gas is condensing onto the BCG. We use the scaling relations of B?rzan et al. to show that the active galactic nucleus (AGN) is underpowered compared to the central X-ray cooling luminosity by roughly a factor of three. We suggest that A1664 is experiencing rapid cooling and star formation during a low state of an AGN feedback cycle that regulates the rates of cooling and star formation. Modeling the emission as a single-temperature plasma, we find that the metallicity peaks 100 kpc from the X-ray center, resulting in a central metallicity dip. However, a multi-temperature cooling flow model improves the fit to the X-ray emission and is able to recover the expected, centrally peaked metallicity profile.
机译:阿贝尔1664星团中最亮的星系星系(BCG)异常地呈蓝色,并以〜23 M☉yr-1的速度形成恒星。 BCG位于X射线峰的5 kpc以内,其中3.5×108 yr的冷却时间和10.4 keV cm2的熵与冷却流簇中的其他恒星BCG一致。 A1664的中心具有细长的“棒状” X射线结构,其质量与分子氢的质量相当,在BCG中约为1010 M☉。我们表明,这种气体不太可能已经从互穿星系中清除掉了。该区域的冷却速率与恒星形成速率大致相符,表明热气体正在冷凝到BCG上。我们使用B?rzan等人的比例关系。表明与中央X射线冷却光度相比,活跃银河核(AGN)的功率不足约三倍。我们建议A1664在AGN反馈周期的低状态下经历快速冷却和恒星形成,该循环调节冷却和恒星形成的速率。将发射建模为单温度等离子体,我们发现金属性从X射线中心达到100 kpc峰值,导致中心金属性下降。但是,多温度冷却流模型可以改善对X射线发射的拟合,并能够恢复预期的中心峰值金属度分布。

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