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2023 Vol.16, Issue 1 Preview Page

Original Article

31 March 2023. pp. 61-70
Abstract
References
1
Baek, Ju-Hong, Hyang-Jig Lee, and Chang Bong Jang. (2016). Comparison of H2, LNG, and LPG Explosion Characteristics in a Limited Space Using CFD Simulation. Journal of the Korean Institute of Gas. 20(3): 12-21. 10.7842/kigas.2016.20.3.12
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Baker, W. E., P. A. Cox, P. S. Westine, J. J. Kulesz, and R. A. Strehlow. (1983). Explosion Hazards and Evaluation. Elsevier Scientific Publishing Company.
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Department of Defense. (2008). Unified Facilities Criteria (UFC): Structures to Resist the Effects of Accidental Explosions (UFC 3-340-02). Departments of the Army, Navy, and Air Force. Washington, DC: DoD.
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Lee, Ho-Hyung, Hyo-Gyu Kim, Ji-Oh Yoo, Hu-Yeong Lee, and Oh-Seung Kwon. (2021). A Basic Study for Explosion Pressure Prediction of Hydrogen Fuel Vehicle Hydrogen Tanks in Underground Parking Lot. Journal of Korean Tunnelling and Underground Space Association. 23(6): 605-612.
5
Lee, Hyunwoo, Donghyun Oh, and Youngjin Seo. (2020). Prediction of Changes in Filling Time and Temperature of Hydrogen Tank according to SOC of Hydrogen. Transactions of Korean Hydrogen and New Energy Society. 31(4): 345-350. 10.7316/KHNES.2020.31.4.345
6
Molkov, V. and W. Dery. (2020). The Blast Wave Decay Correlation for Hydrogen Tank Rupture in a Tunnel Fire. International Journal of Hydrogen Energy. 45: 31289-31302. 10.1016/j.ijhydene.2020.08.062
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Molkov, V. and S. Kashkarov. (2015). Blast Wave from a High-Pressure Gas Tank Rupture in a Fire: Stand-Alone and Under-Vehicle Hydrogen Tanks. International Journal of Hydrogen Energy. 40: 12581-12603. 10.1016/j.ijhydene.2015.07.001
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Oh, Kyu-hyung and Kwang-won Rhie. (2004). A Study on the Explosion Characteristics of Hydrogen. Transactions of the Korean Hydrogen and New Energy Society. 15(3): 228-234.
9
Park, Byoungjik, Yangkyun Kim, and In Ju Hwang. (2021a). Hydrogen Fire ‧ Explosion Risk Assessment. Proceedings of the 2021 Spring Conference of the Korean Society of Mechanical Engineers. 72-73.
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Park, Jinouk, Yongho Yoo, and Hwiseong Kim. (2021b). An Experimental Study on the Explosion of Hydrogen Tank for Fuel-Cell Electric Vehicle in Semi-Closed Space. Journal of Auto-Vehicle Safety Association. 13(4): 73-80.
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Pyo, Don-Young and Ock-Taeck Lim. (2019). A Study on Explosive Hazardous Areas in Hydrogen Handling Facility. Transactions of Korean Hydrogen and New Energy Society. 30(1): 29-34.
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Shin, J., A. S. Whittaker, and D. Cormie. (2015). Incident and Normally Reflected Overpressure and Impulse for Detonations of Spherical High Explosives in Free Air. Journal of Structural Engineering. 141(12): 04015057. 10.1061/(ASCE)ST.1943-541X.0001305
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Yoon, Yong-Kyun. (2018). Evaluation of Blast Pressure Generated by an Explosion of Explosive Material. Explosives & Blasting (Journal of Korean Society of Explosives & Blasting Engineering). 36(4): 26-34.

Korean References Translated from the English

1
박병직, 김양균, 황인주 (2021a). 수소 화재 ‧ 폭발 위험도 평가. 2021년도 대한기계학회 플랜트부문 춘계학술강연회 논문집. 72-73.
2
박진욱, 유용호, 김휘성 (2021b). 반밀폐공간에서 발생되는 차량용 수소연료탱크 폭발 실험. 한국자동차안전학회 논문집. 13(4): 73-80.
3
백주홍, 이향직, 장창봉 (2016). CFD 시뮬레이션을 이용한 제한된 공간에서의 수소, LNG, LPG 폭발특성 비교. 한국가스학회논문집. 20(3): 12-21. 10.7842/kigas.2016.20.3.12
4
오규형, 이광원 (2004). 수소의 폭발 특성에 관한 연구. 한국수소및신에너지학회 논문집. 15(3): 228-234.
5
윤용균 (2018). 폭발성 물질의 폭발에 따른 폭발압력 평가. 화약 ‧ 발파(대한화약발파공학회지). 36(4): 26-34.
6
이현우, 오동현, 서영진 (2020). 수소 잔존 용량에 따른 수소 탱크 충전 시간 및 온도 변화 예측. 한국수소및신에너지학회 논문집. 31(4): 345-350. 10.7316/KHNES.2020.31.4.345
7
이호형, 김효규, 유지오, 이후영, 권오승 (2021). 지하주차장 수소연료차 수소탱크 폭발 압력 예측을 위한 기초 연구. 한국터널지하공간학회 논문집. 23(6): 605-612.
8
표돈영, 임옥택 (2019). 수소 취급설비의 폭발위험장소에 관한 연구. 한국수소및신에너지학회 논문집. 30(1): 29-34.
Information
  • Publisher :Korean Society of Disaster and Security
  • Publisher(Ko) :한국방재안전학회
  • Journal Title :Journal of Korean Society of Disaster and Security
  • Journal Title(Ko) :한국방재안전학회 논문집
  • Volume : 16
  • No :1
  • Pages :61-70
  • Received Date : 2023-02-22
  • Revised Date : 2023-03-08
  • Accepted Date : 2023-03-09