Published August 6, 2018 | Version v1
Journal article Open

A Conceptual Approach to Eliminate Bypass Release of Fission Products by In-Containment Relief Valve under SGTR Accident

  • 1. Department of Nuclear Engineering, Hanyang University, Seoul 04763, Republic of Korea
  • 2. Institute of Nano Science and Technology, Hanyang University, Seoul 04763, Republic of Korea

Description

During a hypothesized severe accident, a containment building is designed to act as a final barrier to prevent release of fission products to the environment in nuclear power plants. However, in a bypass scenario of steam generator tube rupture (SGTR), radioactive nuclides can be released to environment even if the containment is not ruptured. Thus, thorough mitigation strategies are needed to prevent such unfiltered release of the radioactive nuclides during SGTR accidents. To mitigate the consequence of the SGTR accident, this study was conducted to devise a conceptual approach of installing In-Containment Relief Valve (ICRV) from steam generator (SG) to the free space in the containment building and it was simulated by MELCOR code for numerical analysis. Simulation results show that the radioactive nuclides were not released to the environment in the ICRV case. However, the containment pressure increased more than the base case, which is a disadvantage of the ICRV. To minimize the negative effects of the ICRV, the ICRV linked to Reactor Drain Tank (RDT) and cavity flooding was performed. Because the overpressurization of containment is due to heat of ex-vessel corium, only cavity flooding was effective for depressurization. The conceptual design of the ICRV is effective in mitigating the SGTR accident.

Files

10.1155_2018_5936214.pdf

Files (5.0 MB)

Name Size Download all
md5:070aabe4e3fb0329f656940abc709fa1
5.0 MB Preview Download

System files (49.4 kB)

Name Size Download all

Additional details

Identifiers

DOI
10.1155/2018/5936214;
Crossref Funder ID
10.13039/501100002701;

Publishing Information

Journal Title
Science and Technology of Nuclear Installations
Journal Volume
2018
Journal Page Range
1-12
ISSN
1687-6075

Optional Information

Copyright
© Author(s)
Contract/Grant/Project number
NRF-2017M2A8A4018213, NRF-2017M2B2A9A02049735
Notes
Record automatically processed
Funding organization
Ministry of Education