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Computational Cosmology: from the Early Universe to the Large Scale Structure

机译:计算宇宙论:从早期宇宙到大规模结构

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摘要

In order to account for the observable Universe, any comprehensive theory or model of cosmology must draw from many disciplines of physics, including gauge theories of strong and weak interactions, the hydrodynamics and microphysics of baryonic matter, electromagnetic fields, and spacetime curvature, for example. Although it is difficult to incorporate all these physical elements into a single complete model of our Universe, advances in computing methods and technologies have contributed significantly towards our understanding of cosmological models, the Universe, and astrophysical processes within them. A sample of numerical calculations addressing specific issues in cosmology are reviewed in this article: from the Big Bang singularity dynamics to the fundamental interactions of gravitational waves; from the quark-hadron phase transition to the large scale structure of the Universe. The emphasis, although not exclusively, is on those calculations designed to test different models of cosmology against the observed Universe.
机译:为了解释可观测的宇宙,任何全面的宇宙学理论或模型都必须借鉴许多物理学科,包括强相互作用和弱相互作用的规范理论,重子物质的流体力学和微观物理学,电磁场和时空曲率等。 。尽管很难将所有这些物理元素整合到我们的宇宙的单个完整模型中,但是计算方法和技术的进步极大地促进了我们对宇宙模型,宇宙以及其中的天体物理过程的理解。本文对解决宇宙学中特定问题的数值计算样本进行了回顾:从大爆炸奇异动力学到引力波的基本相互作用;从夸克-强子相变到宇宙的大规模结构。尽管不是排他性的,但重点是那些旨在针对观察到的宇宙测试不同宇宙学模型的计算。

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