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A relativistic mean field theory for nuclear matter at T not equal 0

机译:T不等于0时核物质的相对论平均场理论

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We study effects of temperature in hadron dense matter within a generalized relativistic mean field approach based on the naturalness of the various coupling constants of the theory, The Lagrangian density of our formulation contains the fundamental baryon octet, nonlinear self-couplings of the sigma and delta meson fields coupled to the baryons and to the omega and rho meson fields. By adjusting the model parameters, after inclusion in a consistent way of chemical equilibrium, baryon number and electric charge conservation, our model describes static bulk properties of ordinary nuclear matter and neutron stars. In the framework of the Sommerfeld approximation, we extend our approach to the T not equal 0 domain. The Sommerfeld approximation allows a drastic simplification of computational work while improving the capability of the theoretical analysis of the role of temperature on static properties of protoneutron stars. We perform the calculations by using our nonlinear model, which we extend by considering trapped neutrinos introduced into the formalism by fixing the lepton fraction. Integrating the Tolman-Oppenheimer-Volkoff equations we have obtained standard plots for the mass and radius of protoneutron stars as a function of the central density and temperature. Our predictions include the determination of an absolute value for the protoneutron star limiting mass at low and intermediate temperature regimes.
机译:我们基于理论的各种耦合常数的自然性,在广义相对论平均场方法中研究了强子致密物质中温度的影响。我们的公式的拉格朗日密度包含基本的重子八位位组,σ和δ的非线性自耦合介子场与重子以及欧米茄和罗姆介子场耦合。通过调整模型参数,在以一致的化学平衡,重子数和电荷守恒的方式包含之后,我们的模型描述了普通核物质和中子星的静态体积性质。在Sommerfeld逼近的框架中,我们将方法扩展到T不等于0的域。 Sommerfeld逼近可以大大简化计算工作,同时可以提高温度对原质子恒星静态特性的作用的理论分析能力。我们使用非线性模型执行计算,我们通过考虑通过固定轻子分数将引入形式学的俘获中微子进行扩展。整合Tolman-Oppenheimer-Volkoff方程,我们获得了原质子星质量和半径随中心密度和温度变化的标准图。我们的预测包括在低温和中温条件下确定原质子星恒星质量的绝对值。

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