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THE UNIVERSAL RELATION OF GALACTIC CHEMICAL EVOLUTION: THE ORIGIN OF THE MASS-METALLICITY RELATION

机译:银河系化学演化的普遍关系:质量关系的起源

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We examine the mass-metallicity relation for z 1.6. The mass-metallicity relation follows a steep slope with a turnover, or "knee," at stellar masses around 1010 M ☉. At stellar masses higher than the characteristic turnover mass, the mass-metallicity relation flattens as metallicities begin to saturate. We show that the redshift evolution of the mass-metallicity relation depends only on the evolution of the characteristic turnover mass. The relationship between metallicity and the stellar mass normalized to the characteristic turnover mass is independent of redshift. We find that the redshift-independent slope of the mass-metallicity relation is set by the slope of the relationship between gas mass and stellar mass. The turnover in the mass-metallicity relation occurs when the gas-phase oxygen abundance is high enough that the amount of oxygen locked up in low-mass stars is an appreciable fraction of the amount of oxygen produced by massive stars. The characteristic turnover mass is the stellar mass, where the stellar-to-gas mass ratio is unity. Numerical modeling suggests that the relationship between metallicity and the stellar-to-gas mass ratio is a redshift-independent, universal relationship followed by all galaxies as they evolve. The mass-metallicity relation originates from this more fundamental universal relationship between metallicity and the stellar-to-gas mass ratio. We test the validity of this universal metallicity relation in local galaxies where stellar mass, metallicity, and gas mass measurements are available. The data are consistent with a universal metallicity relation. We derive an equation for estimating the hydrogen gas mass from measurements of stellar mass and metallicity valid for z 1.6 and predict the cosmological evolution of galactic gas masses.
机译:我们检查z 1.6的质量-金属关系。在大约1010 M st的恒星质量处,金属质量关系遵循一个具有翻转或“拐点”的陡坡。在恒星质量高于特征周转质量时,随着金属开始饱和,质量与金属的关系变平坦。我们表明质量-金属性关系的红移演化仅取决于特征周转质量的演化。金属性和标准化为特征周转质量的恒星质量之间的关系与红移无关。我们发现质量-金属性关系的与红移无关的斜率是由气体质量与恒星质量之间的关系的斜率设定的。当气相氧丰度足够高,以致锁定在低质量恒星中的氧气量是大质量恒星产生的氧气量的相当一部分时,就会发生质量-金属关系的周转。特征周转质量是恒星质量,恒星与气体的质量比为1。数值模拟表明,金属性与恒星与气体质量比之间的关系是与红移无关的普遍关系,所有星系在其演化过程中都遵循该关系。质量-金属性关系源于金属性和恒星-气体质量比之间更基本的通用关系。我们在可以测量恒星质量,金属性和气体质量的局部星系中测试这种普遍的金属性关系的有效性。数据与通用金属性关系一致。我们从恒星质量和金属性的测量值得出适用于z 1.6的估算氢气质量的方程式,并预测银河气体质量的宇宙演化。

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