Published February 1994 | Version v1
Miscellaneous

A study on the development of advanced models to predict the critical heat flux for water and liquid metals

Description

The critical heat flux (CHF) phenomenon in the two-phase convective flows has been an important issue in the fields of design and safety analysis of light water reactor (LWR) as well as sodium cooled liquid metal fast breeder reactor (LMFBR). Especially in the LWR application many physical aspects of the CHF phenomenon are understood and reliable correlations and mechanistic models to predict the CHF condition have been proposed. However, there are few correlations and models which are applicable to liquid metals. Compared with water, liquid metals show a divergent picture for boiling pattern. Therefore, the CHF conditions obtained from investigations with water cannot be applied to liquid metals. In this work a mechanistic model to predict the CHF of water and a correlation for liquid metals are developed. First, a mechanistic model to predict the CHF in flow boiling at low quality was developed based on the liquid sublayer dryout mechanism. In this approach the CHF is assumed to occur when a vapor blanket isolates the liquid sublayer from bulk liquid and then the liquid entering the sublayer falls short of balancing the rate of sublayer dryout by vaporization. Therefore, the vapor blanket velocity is the key parameter. In this work the vapor blanket velocity is theoretically determined based on mass, energy, and momentum balance and finally the mechanistic model to predict the CHF in flow boiling at low quality is developed. The accuracy of the present model is evaluated by comparing model predictions with the experimental data and tabular data of look-up tables. The predictions of the present model agree well with extensive CHF data. In the latter part a correlation to predict the CHF for liquid metals is developed based on the flow excursion mechanism. By using Baroczy two-phase frictional pressure drop correlation and Ledinegg instability criterion, the relationship between the CHF of liquid metals and the principal parameters is derived and finally the correlation to predict CHF is developed. Data for simple geometries reported in the literatures are used for the evaluation of the present correlation accuracy. And, also, typical liquid metal CHF correlations are used here for reference purposes. From the assessment of prediction accuracy, developed correlation predicts the extensive experimental data more precisely than the existing correlations

Availability note (English)

Available from Korea Advanced Institute of Science and Technology, Daejeon (KR)

Additional details

Publishing Information

Imprint Pagination
122 p.

INIS

Country of Publication
Korea, Republic of
Country of Input or Organization
Korea, Republic of
INIS RN
46033639
Subject category
S21: SPECIFIC NUCLEAR REACTORS AND ASSOCIATED PLANTS;
Resource subtype / Literary indicator
Thesis, Numerical Data, Non-conventional Literature
Descriptors DEI
ACCURACY; CORRELATIONS; CRITICAL HEAT FLUX; DESIGN; EXPERIMENTAL DATA; GEOMETRY; LIQUID METALS; SAFETY ANALYSIS; TWO-PHASE FLOW; USES; WATER COOLED REACTORS
Descriptors DEC
DATA; ELEMENTS; FLUID FLOW; FLUIDS; HEAT FLUX; INFORMATION; LIQUIDS; MATHEMATICS; METALS; NUMERICAL DATA; REACTORS