论文标题

宇宙中微子背景作为大规模结构模拟中流体的集合

The cosmic neutrino background as a collection of fluids in large-scale structure simulations

论文作者

Chen, Joe Zhiyu, Upadhye, Amol, Wong, Yvonne Y. Y.

论文摘要

将大规模中微子作为热的暗物质建模的重大挑战是其较大的速度分散体。在这项工作中,我们调查并实施了多流体扰动理论,该理论将宇宙中微子种群视为具有广泛散装速度的流体集合。这些流体对冷物质的聚类有线性响应,这些液体可以是线性的,并通过标准线性扰动理论或非线性描述,使用高阶扰动理论或n体模拟描述。我们验证中微子扰动的这种替代治疗方法与最先进的中微子线性响应计算在功率谱和双光谱预测方面非常吻合。将多流体中微子线性响应与冷物质聚类的非线性计算相结合,我们发现参考NulambDACDM宇宙学,中微子质量总和为0.93 eV,相对于纯线性计算,相对于纯粹的纯度计算,小规模中微子功率的增强。然而,冷物质中相应的聚类增强率为〜0.05%。重要的是,我们的多流体方法唯一地使我们能够确定最慢的中微子种群群集的最慢,足以保证非线性治疗。在小尺度上进行中微子聚类的精确计算以及伴随精细速度信息的中微子聚类对于探测太阳能邻域中局部中微子密度和速度等实验等实验是无价的。

A significant challenge for modelling the massive neutrino as a hot dark matter is its large velocity dispersion. In this work, we investigate and implement a multi-fluid perturbation theory that treats the cosmic neutrino population as a collection of fluids with a broad range of bulk velocities. These fluids respond linearly to the clustering of cold matter, which may be linear and described by standard linear perturbation theory, or non-linear, described using either higher-order perturbation theory or N-body simulations. We verify that such an alternative treatment of neutrino perturbations agrees closely with state-of-the-art neutrino linear response calculations in terms of power spectrum and bispectrum predictions. Combining multi-fluid neutrino linear response with a non-linear calculation for the cold matter clustering, we find for a reference nuLambdaCDM cosmology with neutrino mass sum of 0.93 eV an enhancement of the small-scale neutrino power by an order of magnitude relative to a purely linear calculation. The corresponding clustering enhancement in the cold matter, however, is a modest ~0.05%. Importantly, our multi-fluid approach uniquely enables us to identify that the slowest-moving 25% of the neutrino population clusters strongly enough to warrant a non-linear treatment. Such a precise calculation of neutrino clustering on small scales accompanied by fine-grained velocity information would be invaluable for experiments such as PTOLEMY that probe the local neutrino density and velocity in the solar neighbourhood.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源