中微子快速风味演化理论。第二部分。不稳定边缘的解

IF 5.5 1区 物理与天体物理 Q1 Physics and Astronomy Journal of High Energy Physics Pub Date : 2024-12-27 DOI:10.1007/JHEP12(2024)205
Damiano F. G. Fiorillo, Georg G. Raffelt
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引用次数: 0

摘要

在密集的中微子环境中,例如由核心坍缩超新星或中子星合并提供的环境,中微子的角分布可能对集体风味转换不稳定,其结果仍有待充分了解。这些转换比流体动力学尺度快得多,这表明自洽结构可能永远不会非常不稳定。考虑到这个动机,我们研究弱不稳定模式,即那些具有小增长率的模式。我们证明了我们新开发的色散关系(本系列的第1篇)允许在小增长率的幂次上展开。对于弱不稳定分布,我们证明了不稳定模式要么以亚光速相速度运动,要么非常接近光速。不稳定性来自中微子与引力波共振运动,使我们能够推导出增长率的显式表达式。对于文献中经常假设的轴对称分布,数值例子表明了这些表达式的准确性。我们还注意到,对于经常研究的一维系统,人们不应该忘记轴对称破缺模式,并且我们提供了表现不稳定性的波数范围的显式表达式。
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Theory of neutrino fast flavor evolution. Part II. Solutions at the edge of instability

In dense neutrino environments, such as provided by core-collapse supernovae or neutron-star mergers, neutrino angular distributions may be unstable to collective flavor conversions, whose outcome remains to be fully understood. These conversions are much faster than hydrodynamical scales, suggesting that self-consistent configurations may never be strongly unstable. With this motivation in mind, we study weakly unstable modes, i.e., those with small growth rates. We show that our newly developed dispersion relation (Paper I of this series) allows for an expansion in powers of the small growth rate. For weakly unstable distributions, we show that the unstable modes must either move with subluminal phase velocity, or very close to the speed of light. The instability is fed from neutrinos moving resonantly with the waves, allowing us to derive explicit expressions for the growth rate. For axisymmetric distributions, often assumed in the literature, numerical examples show the accuracy of these expressions. We also note that for the often-studied one-dimensional systems one should not forget the axial-symmetry-breaking modes, and we provide explicit expressions for the range of wavenumbers that exhibit instabilities.

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来源期刊
Journal of High Energy Physics
Journal of High Energy Physics 物理-物理:粒子与场物理
CiteScore
10.30
自引率
46.30%
发文量
2107
审稿时长
1.5 months
期刊介绍: The aim of the Journal of High Energy Physics (JHEP) is to ensure fast and efficient online publication tools to the scientific community, while keeping that community in charge of every aspect of the peer-review and publication process in order to ensure the highest quality standards in the journal. Consequently, the Advisory and Editorial Boards, composed of distinguished, active scientists in the field, jointly establish with the Scientific Director the journal''s scientific policy and ensure the scientific quality of accepted articles. JHEP presently encompasses the following areas of theoretical and experimental physics: Collider Physics Underground and Large Array Physics Quantum Field Theory Gauge Field Theories Symmetries String and Brane Theory General Relativity and Gravitation Supersymmetry Mathematical Methods of Physics Mostly Solvable Models Astroparticles Statistical Field Theories Mostly Weak Interactions Mostly Strong Interactions Quantum Field Theory (phenomenology) Strings and Branes Phenomenological Aspects of Supersymmetry Mostly Strong Interactions (phenomenology).
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