论文标题

宇宙弯曲的模型无关的约束:未来引力波观测的影响decigo

Model-independent constraints on cosmic curvature: implication from the future gravitational wave observation DECIGO

论文作者

Zheng, Xiaogang, Cao, Shuo, Liu, Yuting, Biesiada, Marek, Liu, Tonghua, Geng, Shuaibo, Lian, Yujie, Guo, Wuzheng

论文摘要

宇宙曲率参数$ω_k$的模型无关测试在宇宙学中非常重要。为了从标准蜡烛等宇宙学探针中估算宇宙曲率,必须能够测量亮度距离$ d_l(z)$,相对于红移$ d'_l(z)$,它的衍生物是在同一redShift上独立知道的扩展率$ h(z)$。在本文中,我们研究了如何与未来生成的空间deci-hertz干涉仪重力波观测站(DECIGO)结合提供与宇宙独立$ h(z)$数据的宇宙天文台相结合。我们的结果表明,对于模拟Decigo数据的Hubble图,用作标准警报器的一种新型类型,它将能够以$ΔΩ_K= 0.09 $的精度约束宇宙曲率,并使用当前可用的31个Hubble参数测量样本的样本。在第三代地面重力波检测器的框架中,对于爱因斯坦望远镜(ET)而言,空间曲率被限制为$ΔΩ_k= 0.13 $。更有趣的是,与旨在独立于模型曲率估计的其他方法相比,我们的分析还实现了$ω_k(Z)$的演变的重建,这是在与模型无关的高斯过程方法(GP)的框架中的重建,而无需假设没有特定形式。因此,人们可以期望新出现的重力波天文学在使用远处的宇宙曲率的局部测量中有用。

A model-independent test of the cosmic curvature parameter $Ω_k$ is very important in cosmology. In order to estimate cosmic curvature from cosmological probes like standard candles, one has to be able to measure the luminosity distance $D_L(z)$, it's derivative with respect to redshift $D'_L(z)$ and independently know the expansion rate $H(z)$ at the same redshift. In this paper, we study how such an idea could be implemented with the future generation of space-based DECi-hertz Interferometer Gravitational-wave Observatory (DECIGO), in combination with cosmic chronometers providing cosmology-independent $H(z)$ data. Our results show that for the Hubble diagram of simulated DECIGO data acting as a new type of standard siren, it would be able to constrain cosmic curvature with the precision of $ΔΩ_k= 0.09$ with the currently available sample of 31 measurements of Hubble parameters. In the framework of the third generation ground-based gravitational wave detectors, the spatial curvature is constrained to be $ΔΩ_k= 0.13$ for Einstein Telescope (ET). More interestingly, compared to other approaches aiming for model-independent estimations of spatial curvature, our analysis also achieves the reconstruction of the evolution of $Ω_k(z)$, in the framework of a model-independent method of Gaussian processes (GP) without assuming a specific form. Therefore, one can expect that the newly emerged gravitational wave astronomy can become useful in local measurements of cosmic curvature using distant sources.

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