Windowed multipole representation of R-matrix cross sections
Pablo Ducru, Vladimir Sobes, Abdulla Alhajri, Isaac Meyer and, Benoit Forget, Colin Josey, Jingang Liang

TL;DR
This paper introduces a theoretical framework for the windowed multipole representation of R-matrix nuclear cross sections, enabling efficient temperature treatment, uncertainty propagation, and reducing computational costs in nuclear simulations.
Contribution
It derives the windowed multipole representation from R-matrix theory, facilitating analytical Doppler broadening and uncertainty propagation, advancing nuclear data processing methods.
Findings
Derived the windowed multipole representation from R-matrix theory.
Showed analytical Doppler broadening up to the first reaction threshold.
Established a method to propagate resonance parameter uncertainties.
Abstract
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.…
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