论文标题
模拟中子星中的散装粘度。 ii。球形对称性的进化
Simulating bulk viscosity in neutron stars. II. Evolution in spherical symmetry
论文作者
论文摘要
不同颗粒物种之间的不平衡反应是导致中子恒星散装粘度的主要过程。 In this work, we numerically compare three different approaches to the modeling of bulk viscosity: the multi-component fluid with reacting particle species and two bulk stress formalism based on the Müller-Israel-Stewart theory, namely the Hiscock-Lindblom and the Maxwell-Cattaneo models, whose flux-conservative formulation in radial gauge-polar slicing coordinates and spherical symmetry is derived in a伴侣纸。据我们所知,这是首次使用完整的Hiscock-Lindblom散装粘度模型模拟中子恒星。我们发现,对于小扰动而言,Hiscock-Lindblom和Maxwell-Cattaneo模型是多组分流体的良好近似值,而流体状态的非平衡方程仅取决于一个独立的粒子分数。对于多个独立的粒子部分和大扰动,大量应力近似仍然有效,但准确性较差。此外,我们还包括由于大体应力公式中反应的光度而导致的能量损失。我们发现,由于块状粘度而引起的能量损失对动力学的影响比散装应力或粒子组成本身的变化更大。为这项工作开发的新的一维,一般性的流体动力法规Hydro-Bulk-1D已公开可用。
Out-of-equilibrium reactions between different particle species are the main processes contributing to bulk viscosity in neutron stars. In this work, we numerically compare three different approaches to the modeling of bulk viscosity: the multi-component fluid with reacting particle species and two bulk stress formalism based on the Müller-Israel-Stewart theory, namely the Hiscock-Lindblom and the Maxwell-Cattaneo models, whose flux-conservative formulation in radial gauge-polar slicing coordinates and spherical symmetry is derived in a companion paper. To our knowledge, this is the first time that a neutron star is simulated with the complete Hiscock-Lindblom model of bulk viscosity. We find that the Hiscock-Lindblom and Maxwell-Cattaneo models are good approximations of the multi-component fluid for small perturbations and when the non-equilibrium equation of state of the fluid depends on only one independent particle fraction. For more than one independent particle fraction and for large perturbations, the bulk stress approximation is still valid but less accurate. In addition, we include the energy loss due to the luminosity of the reactions in the bulk stress formulation. We find that the energy loss due to bulk viscosity has a larger effect on the dynamics than the bulk stress or the variation in particle composition per se. The new one-dimensional, general-relativistic hydrodynamic code developed for this work, hydro-bulk-1D, is publicly available.