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contributor authorLiu, Yu
contributor authorNishimura, Michael
contributor authorSeydaliev, Marat
contributor authorPiro, Markus
date accessioned2017-11-25T07:18:48Z
date available2017-11-25T07:18:48Z
date copyright2016/20/12
date issued2017
identifier issn2332-8983
identifier otherners_3_1_011020.pdf
identifier urihttp://138.201.223.254:8080/yetl1/handle/yetl/4235417
description abstractRecent trends in nuclear reactor performance and safety analyses increasingly rely on multiscale multiphysics computer simulations to enhance predictive capabilities by replacing conventional methods that are largely empirically based with a more scientifically based methodology. Through this approach, one addresses the issue of traditionally employing a suite of stand-alone codes that independently simulate various physical phenomena that were previously disconnected. Multiple computer simulations of different phenomena must exchange data during runtime to address these interdependencies. Previously, recommendations have been made regarding various approaches for piloting different design options of data coupling for multiphysics systems (Seydaliev and Caswell, 2014, “CORBA and MPI Based “Backbone” for Coupling Advanced Simulation Tools,” AECL Nucl. Rev., 3(2), pp. 83–90). This paper describes progress since the initial pilot study that outlined the implementation and execution of a new distribution framework, referred to as “Backbone,” to provide the necessary runtime exchange of data between different codes. The Backbone, currently under development at the Canadian Nuclear Laboratories (CNL), is a hybrid design using both common object request broker architecture (CORBA) and message passing interface (MPI) systems. This paper also presents two preliminary cases for coupling existing nuclear performance and safety analysis codes used for simulating fuel behavior, fission product release, thermal hydraulics, and neutron transport through the Backbone. Additionally, a pilot study presents a few strategies of a new time step controller (TSC) to synchronize the codes coupled through the Backbone. A performance and fidelity comparison is presented between a simple heuristic method for determining time step length and a more advanced third-order method, which was selected to maximize configurability and effectiveness of temporal integration, saving time steps and reducing wasted computation. The net effect of the foregoing features of the Backbone is to provide a practical toolset to couple existing and newly developed codes—which may be written in different programming languages and used on different operating systems—with minimal programming effort to enhance predictions of nuclear reactor performance and safety.
publisherThe American Society of Mechanical Engineers (ASME)
titleBackbone: A Multiphysics Framework for Coupling Nuclear Codes Based on CORBA and MPI
typeJournal Paper
journal volume3
journal issue1
journal titleJournal of Nuclear Engineering and Radiation Science
identifier doi10.1115/1.4034061
journal fristpage11020
journal lastpage011020-10
treeJournal of Nuclear Engineering and Radiation Science:;2017:;volume( 003 ):;issue: 001
contenttypeFulltext


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