Skip to main navigation Skip to search Skip to main content

Numerical study on thermal-hydraulics of external reactor vessel cooling in high-power reactor using MARS-KS1.5 code: CFD-aided estimation of natural circulation flow rate

  • Min Seop Song
  • , Il Woong Park
  • , Eung Soo Kim
  • , Yeon Gun Lee

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

This paper presents a numerical investigation of two-phase natural circulation flows established when external reactor vessel cooling is applied to a severe accident of the APR1400 reactor for the in-vessel retention of the core melt. The coolability limit due to external reactor vessel cooling is associated with the natural circulation flow rate around the lower head of the reactor vessel. For an elaborate prediction of the natural circulation flow rate using a thermal-hydraulic system code, MARS-KS1.5, a three-dimensional computational fluid dynamics (CFD) simulation is conducted to estimate the flow rate and pressure distribution of a liquid-state coolant at the brink of significant void generation. The CFD calculation results are used to determine the loss coefficient at major flow junctions, where substantial pressure losses are expected, in the nodalization scheme of the MARS-KS code such that the single-phase flow rate is the same as that predicted via CFD simulations. Subsequently, the MARS-KS analysis is performed for the two-phase natural circulation regime, and the transient behavior of the main thermal-hydraulic variables is investigated.

Original languageEnglish
Pages (from-to)72-83
Number of pages12
JournalNuclear Engineering and Technology
Volume54
Issue number1
Early online dateJul 22 2021
DOIs
StatePublished - Jan 2022

Keywords

  • CFD analysis
  • External reactor vessel cooling
  • MARS-KS1.5
  • Natural circulation flow

Fingerprint

Dive into the research topics of 'Numerical study on thermal-hydraulics of external reactor vessel cooling in high-power reactor using MARS-KS1.5 code: CFD-aided estimation of natural circulation flow rate'. Together they form a unique fingerprint.

Cite this