• 제목/요약/키워드: Explosion safety

검색결과 820건 처리시간 0.028초

실내 가스 폭발시 폭발압력 방출에 관한 연구 (A Study on the Explosion Relief Venting in the Gas Explosion)

  • 오규형
    • 한국안전학회지
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    • 제20권3호
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    • pp.71-77
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    • 2005
  • This study aims to find the safe vent area to prevent a destruction of building by gas explosion in a building. Explosion vessel which used in this experiment is 1/5 scale down model of simple livingroom and its dimension is 100cm in length 60cm in width and 45cm in height. Liquified petroleum gas(LPG) was injected to the vessel to the concentration of 4.5vol%, and injection rate were varied in 1L/min or 4L/min. Gas mixture was ignited by the 10kV electric spark. For analysis the characteristics of vented explosion pressure according to the vent size and vent shape, its size and shape were varied. From the experiment, it was found that explosion pressure in the vented explosion :in affected by the gas injection rate, vent area and vent shape. And the vent area to volume ratio(S/V) to prevent the building destruction by explosion pressure, it is recommended that the design of vent area happened by the explosion should be above 1/500cm in S/V. And if the vent area has complicate structure in same area, vented explosion pressure will be higher than a single vent, and possibility of building destruction will increase. Therefore to effectively vent the explosion pressure for protect a building and residents from the gas explosion hazards, the same vent area should have a singular and constant shape in the cross-sectional area of the vessel.

소규모 LNG 저장시설의 안전거리 기준 연구 (A Study on Safety Distance for Small Scale LNG Storage facility)

  • 오신규;조영도
    • 대한안전경영과학회지
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    • 제16권4호
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    • pp.185-191
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    • 2014
  • In this study safety distance was investigated for small-scale LNG storage facilities in order to provide basic data for safety. The results are as follows; (1) For explosion pressure criteria, current criteria are reasonable, but water spray system should be recommended to LNG storage tank to ensure safety. (2) For criteria based on the results of the quantitative risk assessment, criteria applied to people are $5kW/m^2$ for radiation, LFL for dispersion, and 7kPa for explosion pressure. And criteria applied to facility are $37.5kW/m^2$ for radiation and 20 kPa for explosion pressure.

벤트 현상 및 크기에 따른 가스폭발 특성에 관한 실증적 연구 (A Experimental Study on the Characteristics of Gas Explosion due to Vent Shape and Size)

  • 채수현;정수일;이영순
    • 한국안전학회지
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    • 제21권3호
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    • pp.38-44
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    • 2006
  • The majority of both small and large-scale experiments on gas explosion have been carried out in the explosion instruments with cylindrical tubes of a high length/diameter ratio and vessels of a high height/length ratio, focusing on investigating the interaction between propagating flame and obstacles inside the tubes or vessels. The results revealed that there is a strong interaction between the propagating flame and turbulence formed after the flame passes the obstacle. However this paper focuses on analyzing the pressure impact or profile outside the vent in vented gas explosion in a partially confined chamber by performing gas explosion experiments in a reduced-scale experimental assembly properly constructed. This study has considered eight different cases in gas explosion based on variation of three kinds of parameters such as height of vessel, shape of the vent and vent size, and reveals that the large vessel with big size circle vent is more danger to the target than others because the overpressure is spread out faraway horizontally and vertically.

노말헥산의 연소특성치의 측정 및 고찰 (The Measurement and Investigation of Combustible Properties for n-Hexane)

  • 하동명
    • 한국안전학회지
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    • 제26권2호
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    • pp.36-41
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    • 2011
  • For the safe handling of n-hexane, the explosion limit at $25^{\circ}C$, the temperature dependence of the explosion limits and the lower flash point were investigated. And AITs(auto-ignition temperatures) by ignition delay time for n-hexane were experimented. By using the literatures data, the lower and upper explosion limits of n-hexane recommended 1.0 Vol% and 8.0 Vol%, respectively. In this study, the lower flash points of n-hexane recommended $-23^{\circ}C$. This study measured relationship between the AITs and the ignition delay times by using ASTM E659-78 apparatus for n-hexane, and the experimental AIT of n-hexane was $240^{\circ}C$. The new equations for predicting the temperature dependence of the explosion limits of n-hexane is proposed. The values calculated by the proposed equations were a good agreement with the literature data.

HCNG 혼합연료의 폭발 위험 특성 분석 (Analysis on the Explosion Risk Characteristic of Hydrogen blended Natural Gas)

  • 강승규;김영구;권정락
    • 에너지공학
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    • 제23권4호
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    • pp.223-229
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    • 2014
  • 본 연구는 시뮬레이션 툴을 이용해 HCNG 연료의 폭발 특성에 대하여 고찰하였다. 충전소의 대량 가스누출로 인한 증기운 폭발과 저장용기 폭발에 의한 피해 범위를 예측하였다. HCNG 충전소에서 증기운 폭발이 발생할 경우 충전소 내부에 50~200kPa의 폭발압력이 형성되었다. 저장용기가 폭발할 경우 수소의 경우 과압이 미치는 거리는 59m, 복사열이 미치는 거리는 75m로 측정되었다. CNG의 경우 과압이 미치는 거리는 89m, 복사열이 미치는 거리는 144m로 예측되었다. 수소와 CNG를 혼합한 30%HCNG의 경우 과압이 미치는 거리는 81m, 복사열이 미치는 거리는 130m로 예측되었다. 폭발과압 및 복사열이 미치는 피해거리는 CNG가 가장 높게 나타났으며 HCNG는 CNG와 수소의 사이에 위치하였다.

카본제조 부생가스 배출 안전성에 관한 연구 (A Study on the Safety of Carbon Manufacturing By-product Gas Emissions)

  • 주종율;정필훈;김상길;이성은
    • 대한안전경영과학회지
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    • 제26권1호
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    • pp.99-106
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    • 2024
  • In the event of an emergency such as facility shutdown during process operation, the by-product gas must be urgently discharged to the vent stack to prevent leakage, fire, and explosion. At this time, the explosion drop value of the released by-product gas is calculated using ISO 10156 formula, which is 27.7 vol%. Therefore, it does not correspond to flammable gas because it is less than 13% of the explosion drop value, which is the standard for flammable gas defined by the Occupational Safety and Health Act, and since the explosion drop value is high, it can be seen that the risk of fire explosion is low even if it is discharged urgently with the vent stock. As a result of calculating the range of explosion hazard sites for hydrogen gas discharged to the Bent Stack according to KS C IEC 60079-10-1, 23 meters were calculated. Since hydrogen is lighter than air, electromechanical devices should not be installed within 23 meters of the upper portion of the Bent Stack, and if it is not possible, an explosion-proof electromechanical device suitable for type 1 of dangerous place should be installed. In addition, the height of the stack should be at least 5 meters so that the diffusion of by-product gas is facilitated in case of emergency discharge, and it should be installed so that there are no obstacles around it.

LPG충전소에서 증기운폭발이 주변건물에 미치는 영향의 정량적 해석 및 평가에 관한 연구 (A Study on the Quantitative Analysis and Estimation for Surround Building caused by Vapor Cloud Explosion(VCE) in LPG Filling Station)

  • 임사환;허용정
    • 한국안전학회지
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    • 제25권1호
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    • pp.44-49
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    • 2010
  • This paper is estimation of structure damage caused by Explosion in LPG(Liquefied Petroleum Gas) filling station. As we estimate the influence of damage which occur at gas storage tank in filling station. We can utilize the elementary data of safety distance. In this study, the influence of over-pressure caused by VCE(Vapor Cloud Explosion) in filling station was calculated by using the Hopkinson's scaling law and the accident damage was estimated by applying the influence on the adjacent structure into the probit model. As a result of the damage estimation conducted by using the probit model, both the damage possibility of explosion overpressure to structures of max 265 meters away and to glass bursting of 1150 meters away was nearly zero in open space explosion.

Setaflash 장치를 이용한 노말 알코올류의 상부인화점 측정에 의한 폭발상한계의 예측 (Prediction of Upper Explosion Limits(UEL) by Measurement of Upper Flash Point Using Setaflash Apparatus for n-Alcohols)

  • 하동명
    • 한국안전학회지
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    • 제25권2호
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    • pp.35-40
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    • 2010
  • Explosion limit and flash point are the major combustion properties used to determine the fire and explosion hazards of the flammable substances. In this study, in order to predict upper explosion limits(UEL), the upper flash point of n-alcohols were measured under the VLE(vapor-liquid equilibrium) state by using Setaflash closed cup tester(ASTM D3278). The UELs calculated by Antoine equation using the experimental upper flash point are usually lower than the several reported UELs. From the given results, using the proposed experimental and predicted method, it is possible to research the upper explosion limits of the other flammable substances.

노말알칸류와 방향족탄화수소류의 상부인화점 측정에 의한 폭발상한계의 예측 (Prediction of Upper Explosion Limits(UEL) by Measurement of Upper Flash Points for n-Alkanes and Aromatic Compounds)

  • 하동명
    • 한국안전학회지
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    • 제26권4호
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    • pp.59-64
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    • 2011
  • Explosion limit and flash point are the major combustion properties used to determine the fire and explosion hazards of the flammable substances. In this study, in order to predict upper explosion limits(UELs), the upper flash point of n-alkanes and aromatic compounds were measured under the VLE(vapor-liquid equilibrium) state by using Setaflash closed cup tester(ASTM D3278). The UELs calculated by Antoine equation and chemical stoichiometric coefficient tusing the experimental upper flash point were compared with the several reported UELs. From the given results, using the proposed experimental and predicted method, it is possible to research the upper explosion limits of the other flammable substances.

반밀폐공간에서 발생되는 차량용 수소연료탱크 폭발 실험 (An Experimental Study on the Explosion of Hydrogen Tank for Fuel-Cell Electric Vehicle in Semi-Closed Space)

  • 박진욱;유용호;김휘성
    • 자동차안전학회지
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    • 제13권4호
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    • pp.73-80
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    • 2021
  • Recently, Korea has established a plan for the supply of hydrogen vehicles and is promoting the expansion of the supply. Risk factors for hydrogen vehicles are hydrogen leakage, jet fire, and explosion. Therefore Safety measures are necessary for this hazard. In addition, risks in semi-closed spaces such as tunnels, underground roads, and underground parking lots should be analyzed. In this study, an explosion experiment was conducted on a hydrogen tank used in a hydrogen vehicle to analyze the risk of a hydrogen vehicle explosion accident that may occur in a semi-closed space. As results, the effect on the structure and the human body was analyzed using the overpressure and impulse values for each distance generated during the explosion.