论文标题

CMB I的光谱空间演化:热绿色功能的离散化

Spectro-spatial evolution of the CMB I: discretisation of the thermalisation Green's function

论文作者

Chluba, Jens, Kite, Thomas, Ravenni, Andrea

论文摘要

宇宙微波背景(CMB)的光谱失真已被认为是早期宇宙的重要探测。现有的理论研究主要集中在描述平均扭曲的演变和创造,忽略了血浆中的空间扰动。这种选择的主要原因之一是,对原始宇宙深入的光子场的光谱空间演变的处理需要解决失真信号的辐射转移问题,这完全详细地是计算上具有挑战性的。在这里,我们通过制定基本平均热量绿色功能的新光谱离散化来解决解决此问题的第一步。我们的方法使我们能够将高维偏微分方程系统(〜1,000-10,000个方程)转换为较低尺寸的普通微分方程(〜10个方程)的集合。我们证明了方法的精度,并强调了将来如何进一步改进它。我们还阐明了可观察到的光谱失真参数(例如MU和Y)与我们在频率离散化中使用的计算光谱基础的联系。这揭示了如何在将来的CMB分析中解释几种基础依赖性歧义。即使不是确切的,新的Green的功能离散化也可以用于制定广义的光子玻尔兹曼层结构,然后可以通过从CMB温度和极化各向异性的理论研究中熟悉的方法来求解。我们将在一系列伴侣论文中执行该程序,从而为CMB提供完整的光谱空间探索的道路,并使用未来的CMB成像仪和光谱仪。

Spectral distortions of the cosmic microwave background (CMB) have been recognized as an important future probe of the early Universe. Existing theoretical studies primarily focused on describing the evolution and creation of average distortions, ignoring spatial perturbations in the plasma. One of the main reasons for this choice is that a treatment of the spectro-spatial evolution of the photon field deep into the primordial Universe requires solving a radiative transfer problem for the distortion signals, which in full detail is computationally challenging. Here we provide the first crucial step towards tackling this problem by formulating a new spectral discretisation of the underlying average thermalisation Green's function. Our approach allows us to convert the high-dimensional partial differential equation system (~1,000-10,000 equations) into and set of ordinary differential equations of much lower dimension (~10 equations). We demonstrate the precision of the approach and highlight how it may be further improved in the future. We also clarify the link of the observable spectral distortion parameters (e.g., mu and y) to the computational spectral basis that we use in our frequency discretisation. This reveals how several basis-dependent ambiguities can be interpreted in future CMB analysis. Even if not exact, the new Green's function discretisation can be used to formulate a generalised photon Boltzmann-hierarchy, which can then be solved with methods that are familiar from theoretical studies of the CMB temperature and polarisation anisotropies. We will carry this program out in a series of companion papers, thereby opening the path to full spectro-spatial exploration of the CMB with future CMB imagers and spectrometers.

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