首页> 外文期刊>Nuclear Physics, A: Journal Devoted to the Experimental Study of the Fundamental Constituents of Matter and Their Actions >The LOCV nucleonic matter correlation and distribution functions versus the FHNC/SOC and the Monte Carlo calculations
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The LOCV nucleonic matter correlation and distribution functions versus the FHNC/SOC and the Monte Carlo calculations

机译:LOCV核物质相关性和分布函数与FHNC / SOC和蒙特卡洛计算

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摘要

The nucleonic matter operator-dependent two-body correlation and distribution functions, for different two-body potentials, e.g. the Av(18) and the Av(8)' interactions, are calculated, using the lowest order constrained variational (LOCV) approach. It is shown that the LOCV results are reasonably consistent with the corresponding predictions of the more sophisticated methods, i.e. the Fermi hypernetted chain approach in the single-operator approximation (FHNC/SOC) and the Monte Carlo (MC) technique. The main reason for this consistence is the LOCV normalization constraint of the two-body radial distribution function, which is optimally satisfied at the two-body cluster approximation. In this way, the many-body effects, which are considered in the FHNC/SOC and the MC calculations, become negligible. Furthermore, in the LOCV formalism, the spin-orbit correlation function is employed, instead of the tensor correlation function, in the P-3(2)-F-3(2) channel. It is demonstrated that using the Av(18) interaction, the nuclear (neutron) matter equation of state, for the former case, fairly differs from that of the latter case, especially at high densities. However, applying the Reid potential, the former and the latter equations of state lie close together. Finally, it should be mentioned that the spin-orbit dependent distribution functions, which have not been reported by the FHNC/SOC method, can be evaluated in the LOCV framework, for the Av(18) and the Av(8)' potentials. (C) 2015 Elsevier B.V. All rights reserved.
机译:对于不同的两体电势,例如核子物质算子依赖的两体相关和分布函数。使用最低阶约束变分(LOCV)方法计算Av(18)和Av(8)的相互作用。结果表明,LOCV结果与更复杂的方法(即单算子逼近(FHNC / SOC)和蒙特卡洛(MC)技术中的费米超网链方法)的相应预测合理地一致。产生这种一致性的主要原因是两体径向分布函数的LOCV归一化约束,该约束在两体群集近似时可以得到最佳满足。这样,在FHNC / SOC和MC计算中考虑的多体效应可以忽略不计。此外,在LOCV形式主义中,在P-3(2)-F-3(2)通道中采用自旋轨道相关函数代替张量相关函数。结果表明,使用Av(18)相互作用,对于前一种情况,尤其是在高密度情况下,核(中子)状态方程与后一种情况完全不同。但是,利用里德电势,前者和后者的状态方程非常接近。最后,应该提到的是,尚未通过FHNC / SOC方法报告的自旋轨道相关分布函数可以在LOCV框架中针对Av(18)和Av(8)的势进行评估。 (C)2015 Elsevier B.V.保留所有权利。

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