Spectral Element Methods for Liquid Metal Reactors Applications

11/25/2017
by   Elia Merzari, et al.
0

Funded by the U.S. Department of Energy, the Nuclear Energy Advanced Modeling and Simulation (NEAMS) program aims to develop an integrated multiphysics simulation capability for the design and analysis of future generations of nuclear power plants. NEAMS embraces a multiresolution hierarchy designing the code suite structure to ultimately span the full range of length and time scales present in relevant reactor design and safety analyses. Advanced reactors, such as liquid metal reactors, rely on innovative component designs to meet cost and safety targets. In order to span a wider design range, advanced modeling and simulation capabilities that rely on minimal assumptions play an important role in optimizing the design. Over the past several years the NEAMS program has developed the integrated multiphysics code suite (thermal-hydraulics, structural analysis and neutronics) SHARP aimed at streamlining the prototyping of such components. For the simulation of fluid flow and heat transfer, SHARP focuses on the high-fidelity end, aiming primarily at turbulence-resolving techniques such large eddy simulation (LES) and direct numerical simulation (DNS). The computational fluid dynamics code (CFD) selected for SHARP is Nek5000, a state-of-the-art highly scalable tool employing the spectral element method (SEM). In this manuscript, to be published in a Von karman institute lecture series monograph on liquid metal reactors, we review the method and its implementation in Nek5000. We also examine several applications. We note that Nek5000 is also regularly employed for intermediate-fidelity approaches such as Reynolds-averaged Navier-Stokes (RANS) and for reduced-order models employing momentum sources or porous media, especially when coupled to neutronics modeling.

READ FULL TEXT

page 4

page 5

page 7

page 10

page 11

page 15

page 18

page 21

research
09/30/2022

Towards Exascale for Wind Energy Simulations

We examine large-eddy-simulation modeling approaches and computational p...
research
07/11/2021

Eighty Years of the Finite Element Method: Birth, Evolution, and Future

This year marks the eightieth anniversary of the invention of the finite...
research
05/18/2022

Power Module Heat Sink Design Optimization with Ensembles of Data-Driven Polynomial Chaos Surrogate Models

We consider the problem of optimizing the design of a heat sink used for...
research
06/08/2018

Data-driven modeling for boiling heat transfer: using deep neural networks and high-fidelity simulation results

Boiling heat transfer occurs in many situations and can be used for ther...
research
04/12/2021

NekRS, a GPU-Accelerated Spectral Element Navier-Stokes Solver

The development of NekRS, a GPU-oriented thermal-fluids simulation code ...
research
05/07/2020

Deep Learning Interfacial Momentum Closures in Coarse-Mesh CFD Two-Phase Flow Simulation Using Validation Data

Multiphase flow phenomena have been widely observed in the industrial ap...

Please sign up or login with your details

Forgot password? Click here to reset