论文标题

解构Planck TT功率谱以限制$λ$ CDM的偏差

Deconstructing the Planck TT Power Spectrum to Constrain Deviations from $Λ$CDM

论文作者

Kable, Joshua A., Addison, Graeme E., Bennett, Charles L.

论文摘要

$λ$ CDM预测的一致性检查具有当前的宇宙学数据集可能会阐明解决宇宙张力所需的变化类型。 To this end, we modify the CLASS Boltzmann code to create phenomenological amplitudes, similar to the lensing amplitude parameter $A_L$, for the Sachs-Wolfe, Doppler, early Integrated Sachs-Wolfe (eISW), and Polarization contributions to the CMB temperature anisotropy, and then we include these additional amplitudes in fits to the Planck TT power spectrum.我们发现,允许其中一个幅度在一次变化的情况下变化几乎没有$λ$ CDM的改善,这表明鉴于当前的精度水平,这些物理效应中的每一个都在正确地解释了这些效果。此外,我们发现,唯一一对现象学振幅会导致对Planck温度数据的拟合,这是由于同时改变Sachs-Wolfe和多普勒效应的幅度而导致的。但是,我们表明该模型实际上只是在挑选$λ$ cdm + $ a_l $解决方案。我们测试添加现象学幅度以及$ n _ {\ textrm {eff}} $,$ y _ _ _ {\ textrm {he}} $,以及$ n _ {\ n _ {\ textrm {run}} $拟合普朗克温度数据。最后,我们通过允许从每种效应到变化的现象学幅度来量化EISW效应和镜头对物理物质密度约束的贡献。我们发现这些效果起着相对较小的作用(不确定性增加了$ 3.5 \%$和$ 16 \%$),这表明整体光子信封具有最大的约束功率。

Consistency checks of $Λ$CDM predictions with current cosmological data sets may illuminate the types of changes needed to resolve cosmological tensions. To this end, we modify the CLASS Boltzmann code to create phenomenological amplitudes, similar to the lensing amplitude parameter $A_L$, for the Sachs-Wolfe, Doppler, early Integrated Sachs-Wolfe (eISW), and Polarization contributions to the CMB temperature anisotropy, and then we include these additional amplitudes in fits to the Planck TT power spectrum. We find that allowing one of these amplitudes to vary at a time results in little improvement over $Λ$CDM alone suggesting that each of these physical effects are being correctly accounted for given the current level of precision. Further, we find that the only pair of phenomenological amplitudes that results in a significant improvement to the fit to Planck temperature data results from varying the amplitudes of the Sachs-Wolfe and Doppler effects simultaneously. However, we show that this model is really just refinding the $Λ$CDM + $A_L$ solution. We test adding our phenomenological amplitudes as well as $N_{\textrm{eff}}$, $Y_{\textrm{He}}$, and $n_{\textrm{run}}$ to $Λ$CDM + $A_L$ and find that none of these model extensions provide significant improvement over $Λ$CDM + $A_L$ when fitting Planck temperature data. Finally, we quantify the contributions of both the eISW effect and lensing on the constraint of the physical matter density from Planck temperature data by allowing the phenomenological amplitude from each effect to vary. We find that these effects play a relatively small role (the uncertainty increases by $3.5\%$ and $16\%$ respectively) suggesting that the overall photon envelope has the greatest constraining power.

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