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Frontiers of nuclear astrophysics

机译:核天体物理学前沿

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The main goals of nuclear astrophysics have been to probe the interiors of stars, stellar explosions, the early moments of cosmic expansion, and the formation and evolution of galaxies and cosmic structure by measurement and application of the relevant nuclear physics. The approach to these goals have generally been from three directions: 1) Careful measurements of the relevant nuclear reactions; 2) Detailed computer models of the relevant astrophysical environments; and 3) Observations of the relevant terrestrial and extra-terrestrial atomic and isotopic abundances. These approaches provide not only insight into the formation and evolution of the elements, but are also pillars upon which a variety of cosmological models as well as models for physics beyond the standard model of particle physics can stand or fall. At present there is a very exciting frontier on all three of these approaches. The development and applications of radioactive-ion-beam and low-background facilities have begun to clarify the input nuclear physics. The development of hydrodynamic stellar-evolution and explosion models in three spatial dimensions, along with detailed radiation and neutrino transport has provided new and unexpected insights into some of the deep mysteries regarding the origin and evolution of the elements. Also, for the first time in history, ground and space-based observations of elemental abundances in stars and gas are being made from the time of the very first stars and cosmic structures to the present. Observation of the cosmic microwave background can now also be used to analyze the development of structure in the universe from before the time of photon decoupling to the present. These observations provide unprecedented views of the history of cosmic evolution. They also provide new questions. In this review we summarize some some of the developments in each of these areas and highlight the exciting frontiers where new breakthroughs are likely to occur.
机译:核天体物理学的主要目标是通过测量和应用相关的核物理来探测恒星内部,恒星爆炸,宇宙膨胀的早期,以及星系和宇宙结构的形成和演化。实现这些目标的方法通常从三个方向进行:1)仔细测量相关核反应; 2)有关天体物理环境的详细计算机模型; 3)观测有关的陆地和陆地外原子和同位素丰度。这些方法不仅为元素的形成和演化提供了见识,而且还是各种宇宙学模型以及超出粒子物理学标准模型的物理学模型可以立足的基础。目前,这三种方法都有一个非常令人兴奋的领域。放射性离子束和低本底设施的开发和应用已经开始澄清输入核物理。流体动力学恒星演化和爆炸模型在三个空间维度上的发展,以及详细的辐射和中微子传输,为有关元素起源和演化的一些深奥谜团提供了新的和出乎意料的见解。同样,从最初的恒星和宇宙结构到现在,对恒星和气体中元素丰度的地面和空基观测也是历史上的第一次。从光子解耦之前到现在,宇宙微波背景的观察现在也可以用来分析宇宙结构的发展。这些观察为宇宙演化的历史提供了前所未有的观点。他们还提出了新的问题。在这篇综述中,我们总结了这些领域中每个领域的一些发展,并着重指出了可能会出现新突破的令人兴奋的领域。

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