论文标题
相对论粘性对原始引力波谱的影响
Relativistic viscous effects on the primordial gravitational waves spectrum
论文作者
论文摘要
我们研究了原始血浆对原始引力波(PGW)光谱从通货膨胀的演变的影响,直到今天,考虑到将GW的背部反应融合到血浆中的自隔一相互作用。我们使用基于二阶理论(SOT)的正熵产生的相对论因果流体动力框架,其中一组新的自变量有效地描述了流体的粘性特性。我们研究SOT的Spin-2模式如何捕获一阶的最简单的GW-Fulid粘性相互作用。我们认为,原始血浆的所有非理想特性都是由于重新加热后的状态变为多个粒子,并且适合有效的流体描述,其状态成为多个粒子。我们从数值上求解进化方程,并明确计算获得两个贡献的当前GW频谱。一方面,我们具有PGW的粘性演变:对于碰撞主导的策略,GW源变得可以忽略不计,而在无碰撞极限中,由于流体的自由流旋转2模式产生的阻尼效应引起的PGW能量吸收了PGW能量,并由Universe的扩张而驱动。后一种效应的特征是相对于GW游离进化光谱,相对幅度降低约1至10 \%。另一方面,由于与上述贡献相比,由于流体的初始自旋2波动的衰减,我们获得了GW的产量。 该SOT框架捕获了对GW的演变的相同定性影响,耦合在先前的工作中报道的物质,其中使用了动力学理论方法。
We study the impact of the viscous effects of the primordial plasma on the evolution of the primordial gravitational waves (pGW) spectrum from Inflation until today, considering a self-consistent interaction that incorporates the back-reaction of the GW into the plasma. We use a relativistic causal hydrodynamic framework with a positive entropy production based on a Second-Order Theory (SOT) in which the viscous properties of the fluid are effectively described by a new set of independent variables. We study how the spin-2 modes typical of SOTs capture the simplest GW-fluid viscous interaction to first order. We consider that all non-ideal properties of the primordial plasma are due to an extra effectively massless self-interacting scalar field whose state becomes a many-particles one after Reheating and for which an effective fluid description is suitable. We numerically solve the evolution equations and explicitly compute the current GW spectrum obtaining two contributions. On the one hand we have the viscous evolution of the pGW: For the collision-dominated regime the GW source becomes negligible while in the collisionless limit there exists an absorption of the pGW energy due to the damping effect produced by the free-streaming spin-2 modes of the fluid and driven by the expansion of the Universe. The latter effect is characterized by a relative amplitude decrease of about 1 to 10 \% with respect to the GW free evolution spectrum. On the other hand we get the GW production due to the decay of the initial spin-2 fluctuations of the fluid that is negligible compared with the above-mentioned contribution. This SOT framework captures the same qualitative effects on the evolution of GW coupled to matter reported in previous works in which a kinetic theory approach has been used.