采用Dirac Brueckner-Hartree-Fock理论方法,计算了零温核物质中每核子的结合能、压强和单核子能量,着重讨论了不同的T矩阵协变表示对核物质中Hugenholtz-Van Hove(HVH)定理满足程度的影响.结果表明:不同的协变表示对核子自能各分量的动量相关性和密度依赖性均有重要影响,进而对核介质中HVH定理的满足程度产生重要影响.在完全的膺矢量表示下,HVH定理遭到了相当大程度的破坏,从而体现出基态关联效应对单核子性质的重要性,并与非相对论BHF理论方法得到的结论一致,因而完全的膺矢量表示要优于膺标量表示。
Within the framework of Dirac Brueckner-Hartree-Fock (DBHF) approach, we calculate the energy per nucleon, the pressure, the nucleon self-energy and the single-nucleon energy in the nuclear matter by adopting two different covariant representations for T-matrix. We mainly investigate the influence of different covariant representations on the satisfiable extent of the Hugenholtz-Van Hove (HVH) theorem in the nuclear medium in the framework of DBHF. By adopting the two different covariant representations of T-matrix, the predicted nucleon self-energy shows a quite different momentum and density dependence. Different covariant representations affect remarkably the satisfiable extent of the HVH theorem. By adopting the complete pseudo-vector representation of the T-matrix, HVH theorem is largely violated, which is in agreement with the result in the non-relativistic Brueckner-Hartree-Fock approach and reflects the importance of ground state correlations for single nucleon properties in nuclear medium, whereas by using the pseudo- scalar representation, the ground state correlation cannot be shown. It indicates that the complete pseudo-vector presentation is more feasible than the pseudo-scalar one.