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Evaluation of Pressure Effects on Blast Valves for Facility Protection of Underground Computing Center

지하 전산센터의 시설보호를 위한 방폭밸브에 미치는 폭압 평가

  • Pang, Seung-Ki (Department of Architecture, Kyungmin University) ;
  • Shin, Jin-Won (Department of Architectural Engineering, Catholic Kwandong University) ;
  • Kim, Wae-deuk (Department of Architcture Design, Haenglim A&E)
  • Received : 2018.07.30
  • Accepted : 2018.08.29
  • Published : 2018.09.01

Abstract

This paper presents two-step simulations to calculate the influence of blast-induced pressures on explosion-protection valves installed at the boundary between a protection facility and a tunnel entering the facility. The first step is to calculate the respective overpressure on the entrance and exit of the tunnel when an explosion occurs near the tunnel entrance and exit to approach the protection facility. Secondly, the blast pressures on the explosion-protection valves mounted to walls located near the tunnel inside approaching the protection facility are analyzed with a 0.1 ms time variation using the results obtained from the first-step calculations. The following conclusions could be derived as a results: (1) The analysis of the entrance tunnel scenario, P1, leads to the maximum overpressure of 47 kPa, approximately a half of the ambient pressure, at the inner entrance due to the effect of blast barrier. For the scenario, P2, the case not blocked by the barrier, the maximum overpressure is 628 kPa, which is relatively high, namely, 5.2 times the ambient pressure. (2) It is observed that the pressure for the entrance tunnel is effectively mitigated because the initial blast pressures are partially offset from each other according to the geometry of the entrance and a portion of the pressures is discharged to the outside.

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References

  1. Department of the Army, Ammunition and Explosives Safety Standards, 2011.
  2. ANSYS. 2013. AUTODYN User's Manual Version 15.0. ANSYS, Inc., Canonsburg, PA.
  3. Needham, C. E. 2010. Blast Waves. Springer, NY.
  4. Dobratz, B. M. and Crawford, P. C. 1985. LLNL Explosive Handbook, Properties of chemical explosives and explosive simulants. Report UCRL-52997, Lawrence Livermore National Laboratory, Livermore, CA.
  5. Young-Jun Park, Jong-hyuk Baek, Ki-young Son, A Study on the Calculation of the Design Loads for Blast Doors of Underground Ammunition Facilities using M&S, 2016, Journal of the KIMST, Vol. 19, No. 3, pp. 302-310.
  6. Zhao Bei-lei, Cui Cun-yan, Chen Jing-peng, and Wang Yan, Numerical Simulation about the Effect of Tunnel Expansion Chamber on the Shock Wave Attenuation, 2015, 4Th International Conference on Computer, Mechatronics, Control and Electronic Engineering, pp. 589-594.