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No need for dark matter in galaxy clusters within Galileon theory

机译:伽利略理论中的星系团中不需要暗物质

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Modified gravity theories with a screening mechanism have acquired much interest recently in the quest for a viable alternative to General Relativity on cosmological scales, given their intrinsic property of being able to pass Solar System scale tests and, at the same time, to possibly drive universe acceleration on much larger scales. Here, we explore the possibility that the same screening mechanism, or its breaking at a certain astrophysical scale, might be responsible of those gravitational effects which, in the context of general relativity, are generally attributed to Dark Matter. We consider a recently proposed extension of covariant Galileon models in the so-called "beyond Horndeski" scenario, where a breaking of the Vainshtein mechanism is possible and, thus, some peculiar observational signatures should be detectable and make it distinguishable from general relativity. We apply this model to a sample of clusters of galaxies observed under the CLASH survey, using both new data from gravitational lensing events and archival data from X-ray intra-cluster hot gas observations. In particular, we use the latter to model the gas density, and then use it as the only ingredient in the matter clusters' budget to calculate the expected lensing convergence map. Results show that, in the context of this extended Galileon, the assumption of having only gas and no Dark Matter at all in the clusters is able to match observations. We also obtain narrow and very interesting bounds on the parameters which characterize this model. In particular, we find that, at least for one of them, the general relativity limit is excluded at 2 sigma confidence level, thus making this model clearly statistically different and competitive with respect to general relativity.
机译:考虑到能够通过太阳系规模测试并同时可能驱动宇宙的内在特性,具有筛选机制的改良引力理论最近在宇宙尺度上寻求一种相对于广义相对论的可行替代方案引起了广泛兴趣。更大范围的加速。在这里,我们探讨了以下可能性:相同的筛选机制,或者其在一定的天体物理尺度下的破裂,可能是那些在广义相对论中通常归因于“暗物质”的引力效应的原因。我们考虑了最近提出的在所谓的“超越Horndeski”场景中扩展协变Galileon模型的情况,其中可能会破坏Vainshtein机制,因此,某些特殊的观测特征应可检测到并使其与广义相对论相区别。我们使用引力透镜事件的新数据和X射线群内热气观测的档案数据,将该模型应用于在CLASH调查下观测到的星系团样本。特别是,我们使用后者对气体密度进行建模,然后将其用作物质簇预算中的唯一成分来计算预期的透镜收敛图。结果表明,在这种扩展的伽利略背景下,假设在星团中仅存在气体而完全没有暗物质的假设能够与观测值相匹配。我们还获得了表征该模型的参数的狭窄且非常有趣的界限。特别是,我们发现,至少对于其中之一,广义相对论极限在2 sigma置信水平下被排除在外,因此使该模型在统计上明显不同,并且相对于广义相对论具有竞争力。

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