观测和天体物理宇宙学:1980-2018

M. Longair
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引用次数: 1

摘要

自1980年以来,我们对宇宙的经验知识有了巨大的进步,精确的宇宙学已经成为现实。这些发展在很大程度上是由技术推动的,这是计算机能力增强、新一代适用于所有波段的望远镜、新型半导体探测器(如ccd)以及许多国家对一流观测设施进行重大投资的结果。这门学科也得益于大量实验和理论物理学家涌入宇宙学领域。宇宙学参数值的准确性和可靠性已经大大提高,其中许多值现在已知约为1%。ΛCDM模型与所有观测数据非常吻合,证明宇宙常数不为零,宇宙的整体几何形状是平坦的。星系和大尺度结构形成的基础物理学取得了巨大进展,并证明了暗物质和暗能量在其中所起的关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Observational and astrophysical cosmology: 1980–2018
Since 1980, our empirical knowledge of the universe has advanced tremendously and precision cosmology has become a reality. These developments have been largely technology-driven, the result of increased computer power, new generations of telescopes for all wavebands, new types of semiconductor detectors, such as CCDs, and major investments by many nations in superb observing facilities. The discipline also benefitted from the influx of experimental and theoretical physicists into the cosmological arena. The accuracy and reliability of the values of the cosmological parameters has improved dramatically, many of them now being known to about 1%. The ΛCDM model provides a remarkable fit to all the observational data, demonstrating that the cosmological constant is non-zero and that the global geometry of the universe is flat. The underlying physics of galaxy and large-scale structure formation has advanced dramatically and demonstrated the key roles played by dark matter and dark energy.
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