论文标题

来自电流宇宙弦的引力波

Gravitational Waves from Current-Carrying Cosmic Strings

论文作者

Auclair, Pierre, Blasi, Simone, Brdar, Vedran, Schmitz, Kai

论文摘要

许多标准模型扩展可以预测宇宙字符串,这些扩展涉及与非平凡的第一同型组的宇宙学破坏对称性,并代表了原始引力波(GWS)的潜在来源。目前为宇宙字符串中的GW信号建模的努力通常基于最小模型,例如,例如,Nambu-Goto动作,将宇宙字符串描述为没有任何内部结构的一维对象。因此,为了得出更现实的预测,有必要考虑尝试考虑宇宙字符串的微观特性的非微小模型。考虑到这一目标,我们在本文中得出了通过电流宇宙字符串(CCCS)发出的GW频谱,这可能在各种宇宙学场景中形成。我们的分析基于速度依赖性的一尺度(VOS)模型的广义版本,除了字符串网络的平均速度和相关长度外,该模型还描述了手性(类似光)电流的演变。正如我们所能显示的,VOS方程的解决方案意味着暂时生长的分数宇宙弦乐能量密度,$ω_ {\ rm cs} $。这导致在宽频率间隔内增强了GW信号,其边界由宇宙弦乐电流的产生和衰减时代决定。我们的发现对Hz中的GW实验具有重要意义,并激发了逼真的粒子物理模型的构建,这些模型在宇宙字符串上产生了大量的潮流。

Cosmic strings are predicted by many Standard Model extensions involving the cosmological breaking of a symmetry with nontrivial first homotopy group and represent a potential source of primordial gravitational waves (GWs). Present efforts to model the GW signal from cosmic strings are often based on minimal models, such as, eg, the Nambu--Goto action that describes cosmic strings as exactly one-dimensional objects without any internal structure. In order to arrive at more realistic predictions, it is therefore necessary to consider nonminimal models that make an attempt at accounting for the microscopic properties of cosmic strings. With this goal in mind, we derive in this paper the GW spectrum emitted by current-carrying cosmic strings (CCCSs), which may form in a variety of cosmological scenarios. Our analysis is based on a generalized version of the velocity-dependent one-scale (VOS) model, which, in addition to the mean velocity and correlation length of the string network, also describes the evolution of a chiral (light-like) current. As we are able to show, the solutions of the VOS equations imply a temporarily growing fractional cosmic-string energy density, $Ω_{\rm cs}$. This results in an enhanced GW signal across a broad frequency interval, whose boundaries are determined by the times of generation and decay of cosmic-string currents. Our findings have important implications for GW experiments in the Hz to MHz band and motivate the construction of realistic particle physics models that give rise to large currents on cosmic strings.

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