论文标题
天体物理反应率与逼真的核水平密度
Astrophysical reaction rates with realistic nuclear level densities
论文作者
论文摘要
在光谱分布方法(SDM)中获得的现实核水平密度(NLDS)用于研究天体物理兴趣的核过程。 SDM的优点在于一个事实,即可以在完整的配置空间中获得与许多由残留相互作用组成的Body Shell模型对应的NLD,而无需求助于巨大矩阵的精确诊断。我们计算NLD和S波中子共振间距,这些间距与可用的实验数据相当一致。通过采用这些NLD,我们计算了几个Fe组核中辐射性中子捕获的反应横截面和天体物理反应率,并将它们与实验数据以及与现象学和显微图平均模型中的NLDS相比。从SDM获得的NLD获得的结果能够很好地解释实验数据。这些结果尤其重要,因为配置通过残差相互作用自然解释了集体激发。在平均场模型中,通过振动和旋转增强因子包括集体效应,其NLD通过中子共振数据进一步归一化。
Realistic nuclear level densities (NLDs) obtained within the spectral distribution method (SDM) are employed to study nuclear processes of astrophysical interest. The merit of SDM lies in the fact that the NLDs corresponding to many body shell model Hamiltonian consisting of residual interaction can be obtained for the full configurational space without recourse to the exact diagnolization of huge matrices. We calculate NLDs and s-wave neutron resonance spacings which agree reasonably well with the available experimental data. By employing these NLDs, we compute reaction cross-sections and astrophysical reaction rates for radiative neutron capture in few Fe-group nuclei, and compare them with experimental data as well as with those obtained with NLDs from phenomenological and microscopic mean-field models. The results obtained for the NLDs from SDM are able to explain the experimental data quite well. These results are of particular importance since the configuration mixing through the residual interaction naturally accounts for the collective excitations. In the mean-field models, the collective effects are included through the vibrational and rotational enhancement factors and their NLDs are further normalized at low energies with neutron resonance data.