The p-Laplacian as a framework for generalizing Newtonian gravity and Milgromian gravitation

IF 5.4 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
D. Scherer, J. Pflamm-Altenburg, P. Kroupa, E. Gjergo
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引用次数: 0

Abstract

Context. The radial acceleration relation (RAR) follows from Milgromian gravitation (MoND) and velocity dispersion data of many dwarf spheroidal galaxies (dSphs) and galaxy clusters have been reported to be in tension with it.Aims. We consider the generalized Poisson equation (GPE), expressed in terms of the p-Laplacian, which has been applied in electrodynamics, and investigate whether it can address these tensions.Methods. From the GPE we derive a generalized RAR characterized by the p parameter from the p-Laplacian and a velocity dispersion formula for a Plummer model. We apply these models to Milky Way and Andromeda dSphs and HIFLUGS galaxy clusters and derive a p parameter for each dSph and galaxy cluster. We explore a relation of p to the mass density of the bound system, and alternatively a relation of p to the external field predicted from Newtonian gravityResults. This ansatz allows the deviations of dSphs and galaxy clusters from the RAR without the need of introducing dark matter. Data points deviate from the Milgromian case, p = 3, with up to 5σ-confidence. Also, we find the model predicts velocity dispersions, each of which lies in the 1σ-range of their corresponding data point allowing the velocity dispersion to be predicted for early-type dwarf satellite galaxies from their baryonic density. The functional relation between the mass density of the bound system and p suggests p to increase with decreasing density. We find for the critical cosmological density p(ρcrit) = 12.27±0.39. This implies significantly different behaviour of gravitation on cosmological scales. Alternatively, the functional relation between p and the external Newtonian gravitational field suggests p to decrease with increasing field strength.Conclusions. The GPE fits the RAR data of dSphs and galaxy clusters, reproduces the velocity dispersions of the dSphs, gives a prediction for the velocity dispersion of galaxy clusters from their baryonic density and may explain the non-linear behaviour of galaxies in regions beyond the Newtonian regime.
作为推广牛顿引力和米尔格罗米引力框架的p-拉普拉斯
上下文。径向加速度关系(RAR)是由Milgromian引力(MoND)推导出来的,许多矮球状星系(dSphs)和星系团的速度色散数据已被报道与之相矛盾。我们考虑用p-拉普拉斯表示的广义泊松方程(GPE),它已经应用于电动力学,并研究它是否可以解决这些张力。从GPE中,我们得到了p-拉普拉斯函数中以p参数为特征的广义RAR和Plummer模型的速度色散公式。我们将这些模型应用于银河系和仙女座dSph和HIFLUGS星系团,并推导出每个dSph和星系团的p参数。我们探索了p与束缚系统的质量密度的关系,以及p与牛顿引力结果预测的外场的关系。这种分析允许在不需要引入暗物质的情况下,从RAR中偏离dsph和星系团。数据点偏离Milgromian情况,p = 3,高达5σ-置信度。此外,我们发现该模型预测的速度色散均在对应数据点的1σ范围内,从而可以根据早期矮卫星星系的重子密度预测其速度色散。结合体系的质量密度与p的函数关系表明,p随密度的减小而增大。我们得到临界宇宙密度p(ρcrit) = 12.27±0.39。这意味着引力在宇宙尺度上的行为有很大的不同。另外,p与外牛顿引力场之间的函数关系表明,p随场强的增加而减小。GPE拟合了dSphs和星系团的RAR数据,再现了dSphs的速度色散,根据它们的重子密度对星系团的速度色散进行了预测,并可能解释星系在牛顿体系以外区域的非线性行为。
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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