论文标题

核裂变的宏观微观方法的改进

Improvements to the macroscopic-microscopic approach of nuclear fission

论文作者

Verriere, Marc, Mumpower, Matthew R.

论文摘要

核裂变的宏观显微镜(MAC-MIC)描述可以预测裂变片段的产量,以预测广泛的裂变系统。在这项工作中,我们为这种方法介绍了几个关键增强功能。我们通过放大lipkin-nogami方程的​​分辨率并加强Strutinsky程序,从而改善核能能表面的显微镜扇区,从而减少了连续体的虚假效应。我们进一步提出了一种新的确定性方法,用于在强烈阻尼的核次运动的假设下计算裂变动力学。我们的技术直接根据随机步行步骤的数量而不是裂变事件的统计积累来直接确定分裂形状分布的演变。我们表明,我们的新技术等同于Randrup及其同事在过去十年中的大都市随机步行。它进一步改善了它,因为我们消除了通过有偏见的潜力改变核景观的需求。通过最终改进,我们使用粒子数投影计算裂变片段质量和电荷分布,这提供了质量和电荷屈服分布的同时计算。因此,裂变片段是根据势能表面的量子机械$ a $体状态计算得出的,而不是过去工作中使用的有限范围液体滴滴模型(frldm)的集体质量不对称变量($α_ {\ rm g} $)。我们通过预测$ {}^{233} $ u和$ {}^{235} $ u的中子诱导的裂变的裂纹来强调增强的成功。

The well established macroscopic-microscopic (mac-mic) description of nuclear fission enables the prediction of fission fragment yields for a broad range of fissioning systems. In this work, we present several key enhancements to this approach. We improve upon the microscopic sector of nuclear potential energy surfaces by magnifying the resolution of the Lipkin-Nogami equations and strengthening the Strutinsky procedure, thus reducing spurious effects from the continuum. We further present a novel deterministic method for calculating fission dynamics under the assumption of strongly damped nucleonic motion. Our technique directly determines the evolution of the scissioned shape distribution according to the number of random walk steps rather than the statistical accumulation of fission events. We show that our new technique is equivalent to the Metropolis random walk pioneered over the past decade by Randrup and colleagues. It further improves upon it, as we remove the need for altering the nuclear landscape via a biased potential. With our final improvement, we calculate fission fragments mass and charge distributions using particle number projection, which affords the simultaneous calculation of both mass and charge yield distributions. Fission fragments are thus calculated from the quantum mechanical $A$-body states of the potential energy surface rather than the collective mass asymmetry variable ($α_{\rm g}$) of the Finite-Range Liquid-Drop Model (FRLDM) used in past work. We highlight the success of our enhancements by predicting the odd-even staggering and the charge polarization for the neutron-induced fission of ${}^{233}$U and ${}^{235}$U.

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