Published April 2016 | Version v1
Journal article

Effect of compensation error in drift-flux parameters on predictions of thermal-hydraulic parameters in nuclear safety system analysis codes

  • 1. Tokai Works, Nuclear Fuel Industries Ltd., 3135-41 Muramatsu, Tokai-mura, Naka-gun, Ibaraki, 319-1196 (Japan)
  • 2. School of Nuclear Engineering, Purdue University, 400 Central Drive, West Lafayette, IN, 47907-2017 (United States)

Description

Highlights: •Compensation error of drift-flux parameters on interfacial shear model is estimated. •Sensitivity Analysis model is developed to estimate compensation error. •Effects of compensation error on TRAC code performance are identified. •Effects of compensation error on steady and transient calculation are evaluated. •Effects of compensation error on real plant analysis are estimated. -- Abstract: Void fraction in a nuclear reactor core is one of the most important parameters in a safety analysis using nuclear reactor thermal-hydraulics system analysis codes such as TRAC-BF1, RELAP5 and TRACE. Interfacial shear term governing void fraction in the two-fluid code is often estimated by Andersen approach which uses drift-flux type correlation to compute the interfacial shear term. The accuracy of two drift-flux parameters such as distribution parameter and drift velocity is anticipated to affect the accuracy of predicted void fraction significantly. In principle, the distribution parameter and drift velocity are independent parameters which should be determined by local gas and liquid velocities and void fraction. However, due to very limited local data, the distribution parameter and drift velocity are commonly determined by area-averaged void fraction and superficial gas and liquid velocities. This "approximate method" is acceptable when the distribution parameter and drift velocity are used together. However, in the Anderson's approach, the distribution parameter and drift velocity determined by the approximate method are used separately which may cause some compensation error in code calculations. In view of the great importance in accurately computing the interfacial shear term, the effect of the compensation error on the predicted void fraction is investigated. Intensive sensitivity analysis suggests the compensation error propagating to void fraction only up to 1% for steady state computations, whereas the effect of the compensation error on the predicted void fraction for transient computations becomes larger because temporal reduction of drag force may cause the increase in void fraction. A prototypic nuclear power plant analysis for ATWS scenario suggests that the overestimation of the void fraction may affect the neutron flux calculation.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.pnucene.2015.11.017

Additional details

Additional titles

Augmented title (English)
Compensation error;Interfacial shear;Drift-flux model;TRAC;Peach bottom 2;ATWS

Identifiers

DOI
10.1016/j.pnucene.2015.11.017;
PII
S0149197015301177;

Publishing Information

Journal Title
Progress in Nuclear Energy
Journal Volume
88
Journal Page Range
p. 398-411
ISSN
0149-1970

Optional Information

Notes
Copyright © 2015 Elsevier Ltd. All rights reserved.