Heat Transfer Modeling of Spent Nuclear Fuel Using Uncertainty Quantification and Polynomial Chaos Expansion

Author:

Khalil Imane1,Pratt Quinn1,Schmachtenberger Harrison1,Ghanem Roger2

Affiliation:

1. Shiley-Marcos Department of Mechanical Engineering, University of San Diego, 5998 Alcala Park, San Diego, CA 92110

2. Sonny Astani Department of Civil and Environmental Engineering, 3610 S. Vermont Street, University of Southern California, Los Angeles, CA 90089

Abstract

A novel method that incorporates uncertainty quantification (UQ) into numerical simulations of heat transfer for a 9 × 9 square array of spent nuclear fuel (SNF) assemblies in a boiling water reactor (BWR) is presented in this paper. The results predict the maximum mean temperature at the center of the 9 × 9 BWR fuel assembly to be 462 K using a range of fuel burn-up power. Current related modeling techniques used to predict the heat transfer and the maximum temperature inside SNF assemblies rely on commercial codes and address the uncertainty in the input parameters by running separate simulations for different input parameters. The utility of leveraging polynomial chaos expansion (PCE) to develop a surrogate model that permits the efficient evaluation of the distribution of temperature and heat transfer while accounting for all uncertain input parameters to the model is explored and validated for a complex case of heat transfer that could be substituted with other problems of intricacy. UQ computational methods generated results that are encompassing continuous ranges of variable parameters that also served to conduct sensitivity analysis on heat transfer simulations of SNF assemblies with respect to physically relevant parameters. A two-dimensional (2D) model is used to describe the physical processes within the fuel assembly, and a second-order PCE is used to characterize the dependence of center temperature on ten input parameters.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference25 articles.

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2. Greiner, M., Araya, P., Chalasani, N. R., Li, J., and Liu, Y., 2013, “Two-Dimensional CFD Simulations of a Square 8x8 Heater Rod Array in an Isothermal Enclosure Filled With Rarified Air,” International High-Level Radioactive Waste Management Conference (IHLRWMC), Albuquerque, NM, April 28–May 2, pp. 831–840.http://wolfweb.unr.edu/homepage/greiner/pubs/Fires/2013.IHLRWM.Conference.6857.pdf

3. Storage and Transport Cask Data for Used Commercial Nuclear Fuel,2013

4. Industry Spent Fuel Storage Handbook,2010

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