论文标题
在非线性结构形成上的轻质文物的签名
Signatures of Light Massive Relics on nonlinear structure formation
论文作者
论文摘要
从粒子物理学的角度来看,具有光巨大文物(LIMR)作为黑暗扇区的亚域组成部分的宇宙学是充分动机的,并且也可能对物质聚类的早期和晚期探针之间的$σ_8$张力产生影响。有限公司对宇宙微波背景(CMB)的影响和结构形成对大(线性)尺度的影响已得到广泛研究。在本文中,我们对使用宇宙学$ n $ body模拟的较小的非线性尺度的影响进行系统研究;专注于与光度星系调查相关的数量。在我们的大多数研究中,我们都使用特定的非热模型模型,但是这些方法很容易将其推广到大量的有限模型 - 我们通过考虑速度分布的Dodelson-Widrow形式明确说明了这一点。我们发现,通常,即使模型之间匹配$σ_8$的值,LIMR对小尺度的影响与$λ$ CDM宇宙的影响不同。我们表明,在$ \ sim 0.1 H^{ - 1} $ MPC和$ \ sim 10 H^{ - 1} $ MPC之间,在$ \ sim 0.1 h^{ - 1} $ MPC之间应具有足够的信号调查,以在未来的调查中具有足够的信号,以在未来的调查中具有足够的信号,以区分$λ$ CDM和LIMR模型,以适合CMB数据和line cmb Data(lindecte fater(Limr)数据量表),在$ \ sim 10 H^{ - 1} $ MPC之间,应具有足够的信号,以在未来的调查中具有足够的信号,以在$ cMB数据和大型数据范围之间,在未来的调查中应具有足够的信号,该标准均应有足够的信号。此外,我们发现,如果它们的速度分布足够不同,则可以通过这些探针区分的不同的有限宇宙学可以区分这些探针。因此,通过在大型\ textit {and}上共同分析CMB和延迟时间结构形成的数据,可以最好地测试和约束LIMR模型。
Cosmologies with Light Massive Relics (LiMRs) as a subdominant component of the dark sector are well-motivated from a particle physics perspective, and can also have implications for the $σ_8$ tension between early and late time probes of matter clustering. The effects of LiMRs on the Cosmic Microwave Background (CMB) and structure formation on large (linear) scales have been investigated extensively. In this paper, we initiate a systematic study of the effects of LiMRs on smaller, nonlinear scales using cosmological $N$-body simulations; focusing on quantities relevant for photometric galaxy surveys. For most of our study, we use a particular model of nonthermal LiMRs but the methods developed easily generalize to a large class of models of LiMRs -- we explicitly demonstrate this by considering the Dodelson-Widrow form of the velocity distribution. We find that, in general, the effects of LiMR on small scales are distinct from those of a $Λ$CDM universe, even when the value of $σ_8$ is matched between the models. We show that weak lensing measurements around massive clusters, between $\sim 0.1 h^{-1}$Mpc and $\sim 10 h^{-1}$Mpc, should have sufficient signal-to-noise in future surveys to distinguish between $Λ$CDM and LiMR models that are tuned to fit both CMB data and large (linear) scale structure data at late times. Furthermore, we find that different LiMR cosmologies which are indistinguishable by conventional linear probes can be distinguished by these probes if their velocity distributions are sufficiently different. LiMR models can, therefore, be best tested and constrained by jointly analyzing data from CMB and late-time structure formation on both large \textit{and} small scales.