论文标题
在广义的Rastall重力中形成的结构形成
Structure Formation in Generalized Rastall Gravity
论文作者
论文摘要
最近,引入了Rastall重力理论的修改版本,其中不同的耦合参数可以充当暗能量(DE),因此可以负责宇宙的当前加速膨胀。在这种修饰的驱动下,我们在这里研究了宇宙含量中线性和非线性扰动的演变,利用球形对称的顶级帽子崩溃场景。我们在线性状态下获得的确切解决方案表明,随着宇宙的发展,物质密度的扰动会在某个红移处生长并达到最大值,此后这些扰动开始在当前朝着有限的正值下降。根据模型参数,还可以找到确切的振荡解决方案,代表物质扰动可能在宇宙的动态演化过程中经历过度密度和低强度区域。非线性方案中的数值解决方案表明,扰动的幅度比线性的振幅增长快得多,并且在临界红移处发散。但是,与$λ$ {\ rm cdm}型号相比,折叠结构的形成被延迟。发现在变量rastall耦合参数中编码的物质和几何之间的运行相互作用可能会严重影响物质扰动的动力学及其在宇宙演化过程中的生长速率。
Recently a modified version of Rastall theory of gravity has been introduced in which a varying coupling parameter could act as dark energy (DE) and thus, it can be held responsible for the current accelerated expansion of the Universe. Motivated by this modification, we study here the evolution of linear and non-linear perturbations in the matter content of the Universe, utilizing spherically symmetric top-hat collapse scenario. The exact solutions we obtain in linear regime show that as the Universe evolves, matter density perturbations grow and reach a maximum value at a certain redshift after which these perturbations start decreasing towards a finite positive value at the present time. Depending on model parameters, exact oscillatory solutions can be also found representing that matter perturbations could experience either overdense and underdense regions during the dynamical evolution of the Universe. Numerical solutions in non-linear regime show that the amplitude of perturbations grow much faster than the linear one and diverges at a critical redshift. However, the formation of collapsed structures is delayed as compared to $Λ${\rm CDM} model. It is found that the running mutual interaction between matter and geometry, encoded in the variable Rastall coupling parameter, could drastically affect the dynamics of matter perturbations and their growth rate during the evolution of the Universe.