Quantum hadrodynamic and nuclear matter

B. D. Serot
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引用次数: 0

Abstract

The properties of infinite nuclear matter are studied in the model relativistic quantum field theory of Walecka. Neutral scalar and vector meson exchange reproduces the basic Lorentz structure of the observed nucleon‐nucleon interaction, and the consequences of this structure are studied in detail. In the mean‐field approximation, nuclear saturation involves a cancellation between large attractive and repulsive components in the average potential energy. The attractive scalar field decreases the nucleon mass significantly, and the strong vector repulsion implies a stiff high‐density equation of state. Corrections to the mean‐field approach arising from vacuum fluctuations, self‐consistent nucleon exchange, and two‐nucleon correlations are examined. These have a small effect on the condensed meson fields but may produce significant changes in the binding energy. Corrections to the mean‐field equation of state are small at high density.
量子流体力学与核物质
在Walecka的模型相对论量子场论中研究了无限核物质的性质。中性标量和矢量介子交换再现了观测到的核子-核子相互作用的基本洛伦兹结构,并详细研究了这种结构的后果。在平均场近似中,核饱和涉及平均势能中较大的吸引和排斥分量之间的抵消。有吸引力的标量场显著地降低了核子质量,强矢量斥力意味着一个僵硬的高密度状态方程。对由真空波动、自洽核子交换和两核子相关引起的平均场方法的修正进行了检验。这些对凝聚态介子场的影响很小,但可能对结合能产生显著的变化。在高密度下,平均场状态方程的修正很小。
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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