论文标题
相互作用的暗能量对星系簇中质量温度关系的影响
The Effect of Interacting Dark Energy on Mass-Temperature Relation in Galaxy Clusters
论文作者
论文摘要
有多种用于暗物质和暗能量的宇宙学模型,其中在宇宙的这两个重要组成部分之间考虑了可能的相互作用。我们专注于五个建议的相互作用的暗物质和暗能量的模型,并通过开发先前的方法为其得出修改后的病毒定理。它提供了一个机会,可以随着时间的流逝研究这种修饰的病毒定理的演变,并为不同的相互作用模型进行了相互作用的常数。然后,我们使用这种病毒条件来通过三种不同方法研究星系簇中的修饰质量温度关系。它揭示了暗物质和暗能之间的相互作用的影响仅出现在$ m \ propto t^{\ frac {3} {2}} $的标准化因子中。这种关系还导致对相互作用模型常数的新约束,这仅取决于群集的浓度参数和密度曲线。然后,我们使用五个观察数据集检查了一些由其他观察性约束而产生的相互作用常数。最后,通过将观察结果拟合到修改的质量温度关系中,我们获得了三个模型的相互作用常数和两个剩余模型的四个特定情况的值。与许多其他观察结果一致,我们发现,根据质量和星系簇的温度的观测数据,在七个研究的模型中,能量传递从暗物质到暗能量发生。
There are a variety of cosmological models for dark matter and dark energy in which a possible interaction is considered between these two significant components of the universe. We focus on five suggested models of interacting dark matter and dark energy and derive the modified virial theorem for them by developing a previous approach. It provides an opportunity to study the evolution of this modified virial theorem with time and interacting constants for different interacting models. Then we use this obtained virial condition to investigate the modified mass-temperature relation in galaxy clusters via three various methods. It reveals that the effect of interaction between dark matter and dark energy merely appears in the normalization factor of $M\propto T^{\frac{3}{2}}$. This relation also leads to a new constraint on the constants of interacting models, which only depends on the concentration parameter and density profile of the cluster. Then we use five observational data sets to check some proposed figures for the constants of interaction which have been resulted from other observational constraints. Finally, by fitting the observational results to the modified mass-temperature relation, we obtain values for interacting constants of three models and four specific cases of the two remained models. In agreement with many other observational outcomes, we find that according to observational data for masses and temperatures of the galaxy clusters, energy transfer occurs from dark matter to dark energy in the seven investigated models.