Published August 2015 | Version v1
Journal article

Improvement of CUPID code for simulating filmwise steam condensation in the presence of noncondensable gases

  • 1. Dept. of Nuclear Engineering, Seoul National University, Seoul (Korea, Republic of)

Description

In a nuclear reactor containment, wall condensation forms with noncondensable gases and their accumulation near the condensate film leads to a significant reduction in heat transfer. In the framework of nuclear reactor safety, the film condensation in the presence of noncondensable gases is of high relevance with regards to safety concerns as it is closely associated with peak pressure predictions for containment integrity and the performance of components installed for containment cooling in accident conditions. In the present study, CUPID code, which has been developed by KAERI for the analysis of transient two-phase flows in nuclear reactor components, is improved for simulating film condensation in the presence of noncondensable gases. In order to evaluate the condensate heat transfer accurately in a large system using the two-fluid model, a mass diffusion model, a liquid film model, and a wall film condensation model were implemented into CUPID. For the condensation simulation, a wall function approach with a heat/mass transfer analogy was applied in order to save computational time without considerable refinement for the boundary layer. This paper presents the implemented wall film condensation model, and then introduces the simulation result using the improved CUPID for a conceptual condensation problem in a large system

Additional details

Publishing Information

Journal Title
Nuclear Engineering and Technology
Journal Volume
47
Journal Issue
5
Series
30 refs, 15 figs
Journal Page Range
p. 567-578
ISSN
1738-5733

INIS

Country of Publication
Korea, Republic of
Country of Input or Organization
Korea, Republic of
INIS RN
47119042
Subject category
S22: GENERAL STUDIES OF NUCLEAR REACTORS;
Descriptors DEI
ACCURACY; C CODES; COMPUTERIZED SIMULATION; CONTAINMENT; GASES; HEAT TRANSFER; PERFORMANCE; REACTORS; REDUCTION; SAFETY; STEAM
Descriptors DEC
CHEMICAL REACTIONS; COMPUTER CODES; ENERGY TRANSFER; FLUIDS; SIMULATION