论文标题
R-Matrix横截面的窗户多极表示
Windowed multipole representation of R-matrix cross sections
论文作者
论文摘要
核横截面是任何核计算的基本输入。实验活动与量子核相互作用的参数R -Matrix模型拟合,并且在标准评估的核数据库中,记录了所得的跨段 - 既可以记录到点和作为共振参数(具有不确定性)的参数(Endf,Jeff,Jeff,Jeff,Jeff,Brond,Jendl,Cendl,Cendl,tertl):这些构成我们的常识性核心知识。在过去的十年中,已经采取了合作的努力来建立新的核横截面图书馆格式 - 窗户的多极库 - ,目的是大大降低了核运输模拟中横截面计算的成本。本文为这些努力奠定了理论基础。从一般的R-Matrix散射理论中,我们得出了核横截面的窗户多极表示。尽管在物理上和数学上等效,但窗户的多极表示特别适合随后的角度集成横截面的温度处理:我们表明,可以在分析上进行精确的多普勒拓宽,直到第一个反应阈值。我们将横截面温度衍生物推导为任何顺序。此外,我们在这里建立了一种将R-Matrix共振参数不确定性(协方差矩阵)转换为窗口的多极参数不确定性的方法。我们表明,通过从所得窗口的多极协方差矩阵中进行采样来产生随机核横截面可以重现原始核数据文件中的横截面不确定性。通过这篇基本文章,我们希望使窗户的多台表示可以访问,可再现和可用于核物理界,并为将来的研究提供了扩大其功能的理论基础。
Nuclear cross sections are basic inputs to any nuclear computation. Campaigns of experiments are fitted with the parametric R-matrix model of quantum nuclear interactions, and the resulting cross sections are documented - both point-wise and as resonance parameters (with uncertainties) - in standard evaluated nuclear data libraries (ENDF, JEFF, BROND, JENDL, CENDL, TENDL): these constitute our common knowledge of fundamental nuclear physics. In the past decade, a collaborative effort has been deployed to establish a new nuclear cross section library format - the Windowed Multipole Library - with the goal of considerably reducing the cost of cross section calculations in nuclear transport simulations. This article lays the theoretical foundations underpinning these efforts. From general R-matrix scattering theory, we derive the windowed multipole representation of nuclear cross sections. Though physically and mathematically equivalent, the windowed multipole representation is particularly well suited for subsequent temperature treatment of angle-integrated cross sections: we show that accurate Doppler broadening can be performed analytically up to the first reaction threshold; and we derive cross sections temperature derivatives to any order. Furthermore, we here establish a way of converting the R-matrix resonance parameters uncertainty (covariance matrices) into windowed multipole parameters uncertainty. We show that generating stochastic nuclear cross sections by sampling from the resulting windowed multipole covariance matrix can reproduce the cross section uncertainty in the original nuclear data file. Through this foundational article, we hope to make the Windowed Multipole Representation accessible, reproducible, and usable for the nuclear physics community, as well as provide the theoretical basis for future research on expanding its capabilities.