论文标题
通过现场群集质量函数的漂移系数破坏黑暗变性
Breaking the Dark Degeneracy with the Drifting Coefficient of the Field Cluster Mass Function
论文作者
论文摘要
我们提出了一个数值分析,支持证据表明,场群质量函数的漂流系数的红移演化能够打破几个宇宙脱位。该证据基于对各种非标准宇宙学分别执行的编解码器和dustrain-pathfinder模拟的数据,包括耦合的暗能量,$ f(r)$重力和$ f(r)$重力的组合,带有大量中微子以及标准的$λ$ CDM宇宙学。我们首先在数值上确定每个宇宙学的$ 0 \ le z \ le 1 $范围内的字段群集质量函数。然后,我们通过在每个红移时调整其漂移系数$β$,比较先前工作中开发的分析公式与数值获得的场群质量函数。发现具有最佳拟合系数的分析公式可与所有宇宙学的所有红移相匹配。漂流系数的经验确定的红移演化,$β(z)$,事实在不同的宇宙学之间显着差异。还表明,即使不使用有关背景宇宙学的任何先前信息,漂流系数$β(z)$也可以以高统计意义来区分退化的非标准宇宙学不仅与$λ$ cdm,而且彼此之间。可以得出结论,从爱因斯坦 - de保姆状态和球形对称崩溃过程中,由$β(z)$量化的球体是对重力和黑暗扇形物理学的有力探测。
We present a numerical analysis supporting the evidence that the redshift evolution of the drifting coefficient of the field cluster mass function is capable of breaking several cosmic degeneracies. This evidence is based on the data from the CoDECS and DUSTGRAIN-pathfinder simulations performed separately for various non-standard cosmologies including coupled dark energy, $f(R)$ gravity and combinations of $f(R)$ gravity with massive neutrinos as well as for the standard $Λ$CDM cosmology. We first numerically determine the field cluster mass functions at various redshifts in the range of $0\le z\le 1$ for each cosmology. Then, we compare the analytic formula developed in previous works with the numerically obtained field cluster mass functions by adjusting its drifting coefficient, $β$, at each redshift. It is found that the analytic formula with the best-fit coefficient provides a good match to the numerical results at all redshifts for all of the cosmologies. The empirically determined redshift evolution of the drifting coefficient, $β(z)$, turns out to significantly differ among different cosmologies. It is also shown that even without using any prior information on the background cosmology the drifting coefficient, $β(z)$, can discriminate with high statistical significance the degenerate non-standard cosmologies not only from the $Λ$CDM but also from one another. It is concluded that the evolution of the departure from the Einstein-de Sitter state and spherically symmetric collapse processes quantified by $β(z)$ is a powerful probe of gravity and dark sector physics.