• Title/Summary/Keyword: 순간 과압

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Development of the Safety Cabinet for Respiratory High-Pressure cylinder according to Consequence Analysis of Physical Explosion Damage (호흡용 고압용기 파열 피해영향 분석에 따른 안전충전함 개발)

  • Jang, Kap Man;Kim, Jeong Hwan;Jang, Yu Ri;Lee, Jin Han;Jo, Young Do
    • Journal of the Korean Institute of Gas
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    • v.20 no.6
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    • pp.80-88
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    • 2016
  • A fire station and scuba have operated filling facilities for respiratory high-pressure cylinder without getting authority or reporting according to High-Pressure Gas Safety Control Act. They need facility improvement and special management to make provision for the time of accident during filling process. The Government have strived to correct illegal operations and suggested an alternative, establishing and operating the safety cabinet. It insures a safety being distance from danger caused by overpressure and a safety provoked by the protective wall equals or superiors. The safety cabinet is required to have an internal structure that smoothly distribute overpressure at the time of rupture. Plus, it needs to minimize fragments. It is also equipped with the performance of protective wall that makes overpressure to outside vent on the place where there is no person (top or bottom). This study calculated the consequence of physical explosion damage and built a prototype of safety cabinet. In addition, through the gas burst test, it derives for the ways to mitigate the physical explosion damage.

Effect of Ignition Location on a Vented Deflagration of Hydrogen-air Mixtures in Semi-confined Space (반밀폐공간 내 점화원의 위치가 수소-공기 혼합물 벤트폭연에 미치는 영향)

  • UNGGI YOON;BYOUNGJIK PARK;INJU HWANG;WOOKYUNG KIM;YANGKYUNG KIM
    • Journal of Hydrogen and New Energy
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    • v.35 no.4
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    • pp.415-427
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    • 2024
  • Explosion experiments were conducted using a rectangular concrete structure filled with hydrogen-air mixture (29.0%). In addition, the effect of ignition location on explosion was investigated. The impact on overpressure and flame was increased with the increasing distance of the ignition source from the vent. Importantly, depending on the ignition location the incident pressure was up to 24.4 times higher, while the reflected pressure was 8.7 times higher. Additionally, a maximum external overpressure of 30.01 kPa was measured at a distance of 2.4 m from the vent, predicting damage to humans at the injury level (1% fatality probability). Whereas, no significant damage would occur at a distance of 7.4 m or more from the vent.

Pressure Differentials in the Elevator Lobby Depending on the Evacuation Scenarios (피난 시나리오에 따른 승강장 부속실 차압 특성 연구)

  • Park, Yong-Hwan
    • Fire Science and Engineering
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    • v.21 no.4
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    • pp.38-43
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    • 2007
  • The aim of this paper is to investigate the change of pressure differential and smoke propagation characteristics in the elevator lobby with the resident's evacuation scenarios using fire modelling technique. The results showed absolute pressures in the fire room and elevator lobby can significantly increase to cause fire door to the stairway unclosed once it is open. This is due to constant pressure differentials, the increasing reference pressure of fire lobby and pressure leak from elevator lobby to fire lobby. Smoke exhaust mechanism was needed to prevent the continuous pressure rise in the living room. Over 200 Pa was expected upon closing the door during pressurization, which provide difficulties in opening the door for next refugee. Opening both fire door and entrance door may induce smoke flow from fire room to elevator lobby and stairway.