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Constraints on Cosmological Parameters from the Lyα Forest Power Spectrum and COBE DMR

机译:Lyα森林功率谱和COBE DMR对宇宙学参数的约束

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We combine COBE DMR measurements of cosmic microwave background (CMB) anisotropy with a recent measurement of the mass power spectrum at redshift z = 2.5 from Lyα forest data to derive constraints on cosmological parameters and test the inflationary cold dark matter (CDM) scenario of structure formation. By treating the inflationary spectral index n as a free parameter, we are able to find successful fits to the COBE and Lyα forest constraints in Ωm = 1 models with and without massive neutrinos and in low-Ωm models with and without a cosmological constant. Within each class of model, the combination of COBE and the Lyα forest P(k) constrains a parameter combination of the form ΩmhαnβΩ, with different indices for each case. This new constraint breaks some of the degeneracies in cosmological parameter determinations from other measurements of large-scale structure and CMB anisotropy. The Lyα forest P(k) provides the first measurement of the slope of the linear mass power spectrum on ~Mpc scales, ν = -2.25 ± 0.18, and it confirms a basic prediction of the inflationary CDM scenario: an approximately scale invariant spectrum of primeval fluctuations (n ≈ 1) modulated by a transfer function that bends P(k) toward kn-4 on small scales. Considering additional observational data, we find that COBE-normalized, Ωm = 1 models that match the Lyα forest P(k) do not match the observed masses of rich galaxy clusters, and that low-Ωm models with a cosmological constant provide the best overall fit to the available data, even without the direct evidence for cosmic acceleration from Type Ia supernovae. With our fiducial parameter choices, the flat, low-Ωm models that match COBE and the Lyα forest P(k) also match recent measurements of small-scale CMB anisotropy. Modest improvements in the Lyα forest P(k) measurement could greatly restrict the allowable region of parameter space for CDM models, constrain the contribution of tensor fluctuations to CMB anisotropy, and achieve a more stringent test of the current consensus model of structure formation.
机译:我们结合宇宙微波背景(CMB)各向异性的COBE DMR测量结果和最近从Lyα森林数据中对红移z = 2.5的质量功率谱的测量结果,得出对宇宙学参数的约束,并测试了结构的膨胀冷暗物质(CDM)方案编队。通过将通货膨胀光谱指数n作为一个自由参数,我们能够找到带有和不带有大量中微子的Ωm= 1模型以及带有和不带有宇宙学常数的低Ωm模型的COBE和Lyα森林约束的成功拟合。在每个模型类别中,COBE和Lyα森林P(k)的组合都约束了ΩmhαnβΩ形式的参数组合,每种情况下的索引不同。这个新的约束打破了从其他大规模结构和CMB各向异性测量中获得的宇宙学参数确定中的某些简并性。 Lyα林P(k)提供了〜Mpc尺度上线性质量功率谱的斜率的首次测量,ν= -2.25±0.18,它证实了通胀CDM情景的基本预测:原始波动(n≈1)由传递函数调制,该函数将P(k)在小尺度上向kn-4弯曲。考虑到其他观测数据,我们发现,与Lyα森林P(k)匹配的COBE归一化Ωm= 1模型与实测的丰富星系团质量不匹配,并且具有宇宙常数的低Ωm模型提供了最佳的整体即使没有直接证据证明Ia型超新星的宇宙加速,也适合现有数据。通过我们的基准参数选择,与COBE和Lyα森林P(k)相匹配的平坦,低Ωm模型也与对小规模CMB各向异性的最新测量值相匹配。 Lyα森林P(k)测量的适度改进可能会大大限制CDM模型的参数空间的允许区域,限制张量波动对CMB各向异性的贡献,并对当前的结构形成共识模型进行更严格的测试。

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