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Development of Real-Time Active Type Seals

실시간 능동형 타입 격납장치 개발

  • Jung-ki Shin (Neosiskorea Co., Ltd.) ;
  • Heekyun Baek (Neosiskorea Co., Ltd.) ;
  • Yongju Lee (Neosiskorea Co., Ltd.)
  • 신중기 ((주)네오시스코리아) ;
  • 백희균 ((주)네오시스코리아) ;
  • 이용주 ((주)네오시스코리아)
  • Received : 2024.02.01
  • Accepted : 2024.03.26
  • Published : 2024.03.31

Abstract

In order to thoroughly verify the denuclearization of the Korean Peninsula, it is urgent to develop technology capabilities to monitor, detect, collect, analyze, interpret, and evaluate nuclear activities using nuclear materials and secure nuclear transparency. The IAEA is actively using seal technology to maximize the efficiency of safety measures, and currently uses metal cap, paper, COBRA, and EOSS as seal devices. Unlike facilities that comply with safety measures requirements, such as domestic nuclear facilities, facilities subject to denuclearization are likely to have various risk environments that make it difficult to apply safety measures, and there is a high possibility that continuity of knowledge (COK) such as damage, malfunction, and power loss will not be maintained. This study aims to develop a real-time active seal device that can be applied in such special situations to enable immediate response in the event of a similar situation. To this end, the main functions of the real-time seal device were derived and applied, and a commercialized seal device and operation software. The real-time seal technology developed through this study can be applied to all nuclear facilities in South Korea, especially used as storage equipment for dry cask storage facilities of heavy water reactor's after fuel, and it is believed that unnecessary radiation exposure by inspectors can be minimized.

Keywords

Acknowledgement

This work was supported by the Nuclear Safety Research Program through the Korea Foundation Of Nuclear Safety (KoFONS) using the financial resource granted by the Nuclear Safety and Security Commission (NSSC) of the Republic of Korea (No. 2004024).

References

  1. IAEA. 2011. "Safeguards Techniques and Equidment: 2011 Edition", International Nuclear Verification Deries No. 1.
  2. Hymel R. 2014 "Material Sealing and Monitoring", SAND204-18140PE.
  3. Christophe A, Irene G, Jean-Paul G, and Georges J. 2022. Global Positioning System (GPS) location accuracy improvement due to Selective Availability removal. Comptes Rendus Biologies 325(2):165-170. https://doi.org/10.1016/S1631-0691(02)01414-2.
  4. Aloys A, Jiazi Y, Thomas C, and Wiliam MT. 2016. A Study of LoRa: Long Range & Low Power Networks for the Internet of Things. Sensors 16(9):1466-1484. https://doi.org/10.3390/s16091466.
  5. Bondurant D. 1990. Ferroelectronic RAM memory family for critical data storage. Ferroelectrics 112(1):273-282.
  6. NIST. 2001. "Announcing the ADVANCED ENCRYPTION STANDARD (AES)", Federal Information Processing Standards Publication 197.