Published March 2003 | Version v1
Journal article

Analysis of the critical heat flux in round vertical tubes under low pressure and flow oscillation conditions. Applications of artificial neural network

Description

Artificial neural networks (ANNs) for predicting critical heat flux (CHF) under low pressure and oscillation conditions have been trained successfully for either natural circulation or forced circulation (FC) in the present study. The input parameters of the ANN are pressure, mean mass flow rate, relative amplitude, inlet subcooling, oscillation period and the ratio of the heated length to the diameter of the tube, L/D. The output is a nondimensionalized factor F, which expresses the relative CHF under oscillation conditions. Based on the trained ANN, the influences of principal parameters on F for FC were analyzed. The parametric trends of the CHF under oscillation obtained by the trained ANN are as follows: the effects of pressure below 500 kPa are complex due to the influence of other parameters. F will increase with increasing mean mass flow rate under any conditions, and will decrease generally with an increase in relative amplitude. F will decrease initially and then increase with increasing inlet subcooling. The influence curves of mean mass flow rate on F will be almost the same when the period is shorter than 5.0 s or longer than 15 s. The influence of L/D will be negligible if L/D>200. It is found that the minimum number of neurons in the hidden layer is a product of the number of neurons in the input layer and in the output layer

Additional details

Identifiers

PII
S0029549302003047;

Publishing Information

Journal Title
Nuclear Engineering and Design
Journal Volume
220
Journal Issue
1
Journal Page Range
p. 17-35
ISSN
0029-5493
CODEN
NEDEAU

INIS

Country of Publication
Netherlands
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
34014304
Subject category
S42: ENGINEERING;
Descriptors DEI
CRITICAL HEAT FLUX; FORCED CONVECTION; LOW PRESSURE; NATURAL CONVECTION; NEURAL NETWORKS; OSCILLATION MODES; SUBCOOLING; TUBES
Descriptors DEC
CONVECTION; COOLING; ENERGY TRANSFER; HEAT FLUX; HEAT TRANSFER; MASS TRANSFER

Optional Information

Copyright
Copyright (c) 2002 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.