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首页> 外文期刊>International journal of modern physics, D. Gravitation, astrophysics, cosmology >LCosmological degeneracy versus cosmography: A cosmographic dark energy model
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LCosmological degeneracy versus cosmography: A cosmographic dark energy model

机译:LCosmological degeneracy versus cosmography:宇宙学暗能量模型

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In this work, we use cosmography to alleviate the degeneracy among cosmological models, proposing a way to parametrize matter and dark energy in terms of cosmokinematics quantities. The recipe of using cosmography allows to expand observable quantities in Taylor series and to directly compare those expansions with data. The strategy involves the expansions of q and j, up to the second-order around a(t) = 1. This includes additional cosmographic parameters which are fixed by current values of q0 and j0. We therefore propose a fully self-consistent parametrization of the total energy density driving the late-time universe speed up. This stratagem does not remove all the degeneracy but enables one to pass from the model-dependent couple of coefficients,.0 and Om, 0, to model-independent quantities determined from cosmography. Afterwards, we describe a feasible cosmographic dark energy model, in which matter is fixed whereas dark energy evolves by means of the cosmographic series. Our technique provides robust constraints on cosmokinematic parameters, permitting one to separately bound matter from dark energy densities. Our cosmographic dark energy model turns out to be one parameter only, but differently from the lambda cold dark matter (.CDM) paradigm, it does not contain ansatz on the dark energy form. In addition, we even determine the free parameter of our model in suitable 1s intervals through Monte Carlo analyses based on the Metropolis algorithm. We compare our results with the standard concordance model and we find that our treatment seems to indicate that dark energy slightly evolves in time, reducing to a pure cosmological constant only as z -> 0.
机译:在这项工作中,我们使用宇宙学来缓解宇宙学模型之间的简并性,提出了一种根据宇宙动力学量参数化物质和暗能量的方法。使用宇宙学的配方允许扩展泰勒级数中的可观测量,并直接将这些扩展与数据进行比较。该策略涉及 q 和 j 的扩展,直至围绕 a(t) = 1 的二阶。这包括由当前值 q0 和 j0 固定的其他宇宙学参数。因此,我们提出了一个完全自洽的总能量密度参数化,以驱动晚期宇宙加速。这种策略并不能消除所有的简并,而是使人们能够从依赖于模型的系数 0 和 Om 0 的一对传递到由宇宙学确定的与模型无关的量。之后,我们描述了一个可行的宇宙学暗能量模型,其中物质是固定的,而暗能量通过宇宙级数演化。我们的技术对宇宙动力学参数提供了强大的约束,允许人们将物质与暗能量密度分开。我们的宇宙暗能量模型被证明只是一个参数,但与λ冷暗物质(.CDM)范式,它不包含暗能量形式的ansatz。此外,我们甚至通过基于Metropolis算法的蒙特卡罗分析,以合适的1s间隔确定模型的自由参数。我们将我们的结果与标准一致性模型进行比较,我们发现我们的处理似乎表明暗能量在时间上略有演化,仅当 z -> 0 时还原为纯宇宙学常数。

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