论文标题
改性重力中碰撞气体的球形积聚I:自相似解决方案和新的宇宙流体动力学代码
Spherical accretion of collisional gas in modified gravity I: self-similar solutions and a new cosmological hydrodynamical code
论文作者
论文摘要
球形崩溃方案在宇宙学中非常重要,因为它捕获了结构形成的几个关键方面。爱因斯坦 - de保姆(EDS)模型中的自相似解决方案的存在极大地简化了其分析,使其成为有价值的工具,可以获得对银河形成涉及的真实和更复杂的物理过程的宝贵见解。尽管已经进行了大量研究,以将各种其他物理过程纳入球形崩溃中,但在这种情况下,改良重力(MG)模型的效果(MG)模型是$λCDM$范式来解释宇宙加速的流行替代方案,但在这种情况下仍未得到很好的了解。在本文中,我们研究了特定MG模型中碰撞气体的球形积聚,这是一种罕见的情况,也可以接受自相似的溶液。该模型显示出由增强的重力和筛查机制引起的有趣行为。尽管MG产生了强烈的影响,但我们发现其自相似解决方案与EDS模型的解决方案非常吻合。这些结果用于评估此处介绍的球形崩溃模拟的新的宇宙学水动力学代码,该代码基于双曲线部分微分方程方程引擎Exahype 2。它与理论预测的良好一致性证实了该代码在球形崩溃中对天文学过程建模的可靠性。我们将使用此代码来研究未来工作中更现实的MG模型中天然气的演变。
The spherical collapse scenario has great importance in cosmology since it captures several crucial aspects of structure formation. The presence of self-similar solutions in the Einstein-de Sitter (EdS) model greatly simplifies its analysis, making it a powerful tool to gain valuable insights into the real and more complicated physical processes involved in galaxy formation. While there has been a large body of research to incorporate various additional physical processes into spherical collapse, the effect of modified gravity (MG) models, which are popular alternatives to the $ΛCDM$ paradigm to explain the cosmic acceleration, is still not well understood in this scenario. In this paper, we study the spherical accretion of collisional gas in a particular MG model, which is a rare case that also admits self-similar solutions. The model displays interesting behaviours caused by the enhanced gravity and a screening mechanism. Despite the strong effects of MG, we find that its self-similar solution agrees well with that of the EdS model. These results are used to assess a new cosmological hydrodynamical code for spherical collapse simulations introduced here, which is based on the hyperbolic partial differential equation engine ExaHyPE 2. Its good agreement with the theoretical predictions confirms the reliability of this code in modelling astrophysical processes in spherical collapse. We will use this code to study the evolution of gas in more realistic MG models in future work.