论文标题
Proca固定的宇宙学II:物质,光环和镜头统计数据
Proca-stinated Cosmology II: Matter, Halo, and Lensing Statistics in the vector Galileon
论文作者
论文摘要
广义PROCA(GP)理论是一种修改的重力模型,其中宇宙扩张率的加速可以通过宇宙学矢量场的自我相互作用来解释。在本文中,我们研究了GP理论的特定子类,并以立方顺序拉格朗日语(称为立方体载体Galileon(CVG)模型)研究。该模型在许多方面与立方标量galileon(CSG)相似,包括第五力和Vainshtein筛选机制,但具有额外的灵活性,即第五力的强度取决于额外的参数 - 在零和CSG模型的完整强度之间插值 - 而背景扩展历史记录独立于该参数。它为LambDACDM提供了有趣的替代方法,可以解释宇宙加速度,并解决了哈勃常数H_0的早期和晚期测量之间的张力。为了确定测试该模型的最佳方法,在本文中,我们使用经过修改的重力代码EcoSmog运行的N型模拟套件,对大规模结构形成的非线性制度进行了对该模型的现象学进行全面研究。通过检查深色物质场,暗物质光环和弱透镜图的13个统计数据,我们发现该模型中的第五力对大规模速度场和镜头潜力可能在后期产生特别重要的影响,这表明弹出空间扭曲和弱透镜可能对其产生强大的约束。
The generalised Proca (GP) theory is a modified gravity model in which the acceleration of the cosmic expansion rate can be explained by self interactions of a cosmological vector field. In this paper we study a particular sub-class of the GP theory, with up to cubic order Lagrangian, known as the cubic vector Galileon (cvG) model. This model is similar to the cubic scalar Galileon (csG) in many aspects, including a fifth force and the Vainshtein screening mechanism, but with the additional flexibility that the strength of the fifth force depends on an extra parameter -- interpolating between zero and the full strength of the csG model -- while the background expansion history is independent of this parameter. It offers an interesting alternative to LambdaCDM in explaining the cosmic acceleration, as well as a solution to the tension between early- and late-time measurements of the Hubble constant H_0. To identify the best ways to test this model, in this paper we conduct a comprehensive study of the phenomenology of this model in the nonlinear regime of large-scale structure formation, using a suite of N-body simulations run with the modified gravity code ECOSMOG. By inspecting thirteen statistics of the dark matter field, dark matter haloes and weak lensing maps, we find that the fifth force in this model can have particularly significant effects on the large-scale velocity field and lensing potential at late times, which suggest that redshift-space distortions and weak lensing can place strong constraints on it.