论文标题
具有通货膨胀的均匀磁场的原始磁螺旋演化
Primordial magnetic helicity evolution with a homogeneous magnetic field from inflation
论文作者
论文摘要
在通货膨胀期间产生同质磁场的情况下,我们研究了两种初始条件的原始血浆运动的磁性水力动力学演化 - (i)空间均匀的领域,具有无限的相关长度,以及(ii)零量表量型型型型型型型磁性磁性磁性磁性磁性磁性磁性。在这两种情况下,我们都在短的初始时间间隔内申请单色强迫在一定的波数上进行,因此相关长度是有限的,但远小于典型的湍流长度尺度。特别是,我们研究了非螺旋和螺旋水磁湍流的衰变。我们表明,在存在均匀磁场的情况下,螺旋和非螺旋小尺度场的衰变可能会迅速发生。这是具有完全均匀磁场的系统的特殊特性,有时被认为是对背景场缓慢变化的局部近似。它永远不会改变并充当施加的磁场。这与统计上均匀的磁场的情况形成鲜明对比,在那里我们恢复了熟悉的衰减特性:磁能的衰减较慢,相关长度的生长更快,尤其是在具有磁性磁性的情况下。结果表明,如果在通货膨胀期间产生同质磁场,则应在小规模场的影响下持续存在,并且可能是宇宙中大型磁场的起源。
Motivated by a scenario of magnetogenesis in which a homogeneous magnetic field is generated during inflation, we study the magnetohydrodynamic evolution of the primordial plasma motions for two kinds of initial conditions -- (i) a spatially homogeneous field with an unlimited correlation length, and (ii) a zero flux scale-invariant statistically homogeneous magnetic field. In both cases, we apply, for a short initial time interval, monochromatic forcing at a certain wave number so that the correlation length is finite, but much smaller than the typical length scale of turbulence. In particular, we investigate the decay of nonhelical and helical hydromagnetic turbulence. We show that, in the presence of a homogeneous magnetic field, the decay of helical and nonhelical small-scale fields can occur rapidly. This is a special property of a system with a perfectly homogeneous magnetic field, which is sometimes considered as a local approximation to a slowly varying background field. It can never change and acts as an imposed magnetic field. This is in a sharp contrast to the case of a statistically homogeneous magnetic field, where we recover familiar decay properties: a much slower decay of magnetic energy and a faster growth of the correlation length, especially in the case with magnetic felicity. The result suggests that a homogeneous magnetic field, if generated during inflation, should persist under the influence of small-scale fields and could be the origin of the large-scale magnetic field in the Universe.