Neutrino transport in general relativistic neutron star merger simulations.

Francois Foucart
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引用次数: 12

Abstract

Numerical simulations of neutron star-neutron star and neutron star-black hole binaries play an important role in our ability to model gravitational-wave and electromagnetic signals powered by these systems. These simulations have to take into account a wide range of physical processes including general relativity, magnetohydrodynamics, and neutrino radiation transport. The latter is particularly important in order to understand the properties of the matter ejected by many mergers, the optical/infrared signals powered by nuclear reactions in the ejecta, and the contribution of that ejecta to astrophysical nucleosynthesis. However, accurate evolutions of the neutrino transport equations that include all relevant physical processes remain beyond our current reach. In this review, I will discuss the current state of neutrino modeling in general relativistic simulations of neutron star mergers and of their post-merger remnants. I will focus on the three main types of algorithms used in simulations so far: leakage, moments, and Monte-Carlo scheme. I will review the advantages and limitations of each scheme, as well as the various neutrino-matter interactions that should be included in simulations. We will see that the quality of the treatment of neutrinos in merger simulations has greatly increased over the last decade, but also that many potentially important interactions remain difficult to take into account in simulations (pair annihilation, oscillations, inelastic scattering).

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一般相对论中子星合并模拟中的中微子输运。
中子星-中子星和中子星-黑洞双星的数值模拟对我们模拟由这些系统驱动的引力波和电磁信号的能力起着重要作用。这些模拟必须考虑到广泛的物理过程,包括广义相对论、磁流体力学和中微子辐射传输。后者对于了解许多并合喷出物质的性质、喷出物中核反应产生的光学/红外信号以及喷出物对天体物理核合成的贡献尤为重要。然而,包含所有相关物理过程的中微子输运方程的精确演化仍然超出了我们目前的能力范围。在这篇综述中,我将讨论中子星合并及其合并后残余物的广义相对论模拟中微子建模的现状。我将重点讨论迄今为止在模拟中使用的三种主要算法:泄漏、矩和蒙特卡洛方案。我将回顾每种方案的优势和局限性,以及模拟中应包含的各种中微子-物质相互作用。我们将看到,在过去十年中,合并模拟中对中微子的处理质量有了很大提高,但许多潜在的重要相互作用(对湮灭、振荡、非弹性散射)仍然难以在模拟中考虑在内。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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