• Title/Summary/Keyword: FDS6

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A Study of Heat St Smoke Evacuation Characteristics by the Changing of Operational Method of Tunnel Fan Shaft Ventilation System for Fire on Subway Train Vehicle (지하철 화재시 본선터널 환기시스템에 따른 열 및 연기배출특성)

  • 이동호;유지오
    • Fire Science and Engineering
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    • v.17 no.2
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    • pp.62-69
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    • 2003
  • The smoke control system in subway platform is not only using for smoke exhaust facility but also using ventilation system. For this reason, smoke vent effectiveness is depending on its position, ventilating volume capacity and the vent method. In this study, the passenger's evacuation time was calculated for the case of fire on sloped subway train vehicle in subway platform. In order to recommend the mechanical smoke exhaust operation mode, SES (Subway Environmental Simulation) was used to predict the airflow of the inlet and outlet tunnel for the subway station. Fire dynamics Simulator(FDS) was used the SES's velocity boundary conditions to calculate the smoke density and temperature under the condition of fire on stopped subway train vehicle at the platform. We compared smoke density and temperature distributions for each 6 types of smoke exhaust systems to clarify the characteristics of smoke and hot air exhaust effectiveness from the result of fire simulation.

ANALYSIS OF TURBULENT BOUNDARY LAYER OF NATURAL CONVECTION CAUSED BY FIRE ALONG VERTICAL WALL (수직벽 화재 자연대류에 의한 난류 경계층 열유동 특성 해석)

  • Jang, Yong-Jun;Kim, Jin-Ho;Ryu, Ji-Min
    • Journal of computational fluids engineering
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    • v.21 no.4
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    • pp.1-10
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    • 2016
  • The analysis of characteristics of turbulent flow and thermal boundary layer for natural convection caused by fire along vertical wall is performed. The 4m-high vertical copper plate is heated and kept at a uniform surface temperature of $60^{\circ}C$ and the surrounding fluid (air) is kept at $16.5^{\circ}C$. The flow and temperature is solved by large eddy simulation(LES) of FDS code(Ver.6), in which the viscous-sublayer flow is calculated by Werner-Wengle wall function. The whole analyzed domain is assumed as turbulent region to apply wall function even through the laminar flow is transient to the turbulent flow between $10^9$<$Gr_z$<$10^{10}$ in experiments. The various grids from $7{\times}7{\times}128$ to $18{\times}18{\times}128$ are applied to investigate the sensitivity of wall function to $x^+$ value in LES simulation. The mean velocity and temperature profiles in the turbulent boundary layer are compared with experimental data by Tsuji & Nagano and the results from other LES simulation in which the viscous-sublayer flow is directly solved with many grids. The relationship between heat transfer rate($Nu_z$) and $Gr_zPr$ is investigated and calculated heat transfer rates are compared with theoretical equation and experimental data.

The Case Analysis through Fire Simulation FDS and Evacuation Simulation Pathfinder (화재 시뮬레이션 FDS와 피난시뮬레이션 Pathfinder 사례분석)

  • Kim, Jong Yoon;Jeon, Yong Han
    • Asia-Pacific Journal of Business Venturing and Entrepreneurship
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    • v.10 no.6
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    • pp.253-260
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    • 2015
  • In this study, using the FDS as the fire simulation and evacuation simulations of the Pathfinder, set the main control room of the building to the fire point fire safety assessment studies were carried out. At first the quantitative result such as distribution of visibility as time passing, distribution of temperature, distribution of CO density produced results using fire-simulation and evacuation-simulation was carried out based on the result that produced the final safety evaluation result as being calculated of evacuation time. As the risk increased with the distribution of visibility at the result of fire-simulation, evacuation-simulation was carried out using the result. Finally the result was made 127.9 sec that everyone could evacuate. The numerical results are analyzed in case of the places in the building required safe egress time for safety a as the analysis to be no more than available safe egress time was analyzed to be secured. The results of this safety evaluation represent that more smooth evacuation safety performance can be secured by linking the event of fire firefighting equipment as a result of simulating the worst conditions.

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The Analysis of Fire-Driven Flow and Temperature in The Railway Tunnel with Ventilation (환기를 동반한 철도터널 화재 연기유속 및 온도장 해석)

  • Jang, Yong-Jun;Lee, Chang-Hyun;Kim, Hag-Beom;Lee, Woo-Dong
    • Proceedings of the KSR Conference
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    • 2008.06a
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    • pp.1794-1801
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    • 2008
  • Fire-driven flow and temperature distribution in a ventilated tunnel was analyzed by Large Eddy Simulation using FDS code. The simulated tunnel is 182m length, 5.4m wide and 2.4m height. A pool fire was located 112m from tunnel entrance and was taken as a heat source of $0.89m^2$. The heat is assumed to be released uniformly throughout the whole simulated time. The fire strength was 2.76MW and the fuel burnt was octane. The parallel computational method was employed to accelerate the computing time and manage the large grid points which is not possible to handle in the one CPU. The total grid points used were $2.4{\times}10^6$ and 7 CPUs were used to calculate the momentum and energy equations. The simulated results were well compared with the experiments.

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A study on safety evaluation by changing smoke ventilation mode in subway tunnels (지하철터널 환기변환모드에 따른 안전성 평가에 관한 연구)

  • Rie, Dong-Ho
    • Journal of Korean Tunnelling and Underground Space Association
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    • v.5 no.4
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    • pp.389-400
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    • 2003
  • In order to recommend the mechanical smoke exhaust operation mode, Subway Environmental Simulation (SES) is used to predict the airflow of the inlet and outlet tunnel for the subway station. Fire Dynamic Simulation (FDS) is used the SES's velocity boundary conditions to clarity the smoke exhaust effectiveness by the variations with mechnical ventilation system. We compared each 6 types of smoke exhaust systems for the result of smoke density and temperature distributions for 1.5m height from the subway station base in order to clarify the safety evaluation for the heat and smoke exhaust on subway fire.

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Quantitative Fire Risk Assesment for the Subway Platform Types (지하철 승강장 형식에 따른 정량적 화재 위험성 평가)

  • Rie, Dong-Ho;Kim, Ha-Young
    • Journal of the Korean Society of Safety
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    • v.21 no.6 s.78
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    • pp.1-6
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    • 2006
  • Subway platform is divided into Side-platform type and Center-platform type. In this study does quantitative fire risk assesment of subway platform types in numerical analysis by using CFD model. From the result of this study, 1) All exhaust mode was low-end result it seems most fire risk at Side-platform station. 2) All exhaust mode was low-end result it seems most fire risk at Center-Platform station. 3) When comparing same type exhaust mode of Side-platform and Center-platform that last thing was visible $9.1{\sim}72.34%$ low-end fire risk. Center-platform is more opera-tive than Side-platform that reduce fire risk when that was same dimension and external environment. Designer look upon a fire characteristic of subway platform types when he make smoke control air volume and platform area design.

A Study of Heat and Smoke Exhaust to Subway Tunnel Direction (지하철 터널부로의 열 및 연기배출에 관한 연구)

  • Rie, Dong-Ho
    • Journal of the Korean Society of Safety
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    • v.19 no.3 s.67
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    • pp.1-8
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    • 2004
  • This study aims to derive the operation method of a comprehensive ventilation system which is capable of providing passengers with safe exit paths from platforms in onboard fire situations. To accomplish this, the airflow distributions in subway platforms under 6 types of tunnel vent system were calculated in addition to having analyzed diffusion behaviors of smoke and heat exhaust in such states by performing 6 kinds of different ventilation scenarios in a 3-D Fire Dynamic Simulation (FDS) simulation model. In order to recommend the mechanical smoke exhaust operation mode, Subway Environmental Simulation(SES) is used to predict the airflow of the inlet and outlet tunnel for the subway station to clarify the safety evaluation fir the heat and smoke exhaust on subway fire events.

The development of parallel computation method for the fire-driven-flow in the subway station (도시철도역사에서 화재유동에 대한 병렬계산방법연구)

  • Jang, Yong-Jun;Lee, Chang-Hyun;Kim, Hag-Beom;Park, Won-Hee
    • Proceedings of the KSR Conference
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    • 2008.06a
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    • pp.1809-1815
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    • 2008
  • This experiment simulated the fire driven flow of an underground station through parallel processing method. Fire analysis program FDS(Fire Dynamics Simulation), using LES(Large Eddy Simulation), has been used and a 6-node parallel cluster, each node with 3.0Ghz_2set installed, has been used for parallel computation. Simulation model was based on the Kwangju-geumnan subway station. Underground station, and the total time for simulation was set at 600s. First, the whole underground passage was divided to 1-Mesh and 8-Mesh in order to compare the parallel computation of a single CPU and Multi-CPU. With matrix numbers($15{\times}10^6$) more than what a single CPU can handle, fire driven flow from the center of the platform and the subway itself was analyzed. As a result, there seemed to be almost no difference between the single CPU's result and the Multi-CPU's ones. $3{\times}10^6$ grid point one employed to test the computing time with 2CPU and 7CPU computation were computable two times and fire times faster than 1CPU respectively. In this study it was confirmed that CPU could be overcome by using parallel computation.

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충격파 불안정성을 제거한 Roe 수치기법 (A Shock Stable Roe Scheme)

  • Kim Sung-soo;Kim Chongam;Rho Oh-Hyun;Hong Seung Kyu
    • Journal of computational fluids engineering
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    • v.6 no.4
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    • pp.43-53
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    • 2001
  • 본 논문은 충격파 불안정성이 나타나지 않는 충격파 안정적인 수치기법의 개발을 목표로 하고 있다. Roe의 수치기법은 유동의 수치계산에 있어 높은 정확도를 보장하지만 carbuncle 현상과 같은 충격파 불안정성이 나타나는 것으로 알려져 있다. Roe의 수치기법과 HLLE 수치기법의 수치점성을 비교하여 충격파 불안정성의 원인을 살펴보았으며, Roe의 수치기법에 나타나는 반감쇠항에 마하수의 함수인 조절함수 f와 g를 도입하여 충격파 안정성을 획득하였다. 본 논문에서 제안된 수치기법을 다양한 유동문제에 적용하여 수치기법의 충격파 안정성과 정확성을 검증하였다

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Simulation analysis for evacuation safety countermeasure in underground facilities (지하공간시설에서의 피난안전대책을 위한 시뮬레이션 해석)

  • Kim, Bong-Chan;Kim, Se-Jong;Kim, Gyeong-Gu;Lee, Ju-Hee;Kwon, Young-Jin
    • Proceedings of the Korea Institute of Fire Science and Engineering Conference
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    • 2011.04a
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    • pp.100-105
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    • 2011
  • 본 연구에서는 재실자의 밀도가 높은 지하상가는 공간의 특성상 화재가 발생할 경우 다량의 유독가스의 발생 및 연기의 이동경로와 인간의 피난경로 일치로 인하여 피난안전에 큰 위험성이 있다고 사료된다. 이에 지하철 역사와 연결되어 있는 지하상가를 선정 후, 일본 피난안전성평가수법과 FDS(Fire Dynamic Simulator) 및 SIMULEX를 이용하여 비교 분석을 하였으며, 그 결과, 화재발생 후 6분이 경과 시 위험한 것으로 판단되었다. 그에 대한 대책으로 자연 배연구를 설치하여 시뮬레이션 수행을 한 결과 가시도확보 및 각 출구에서의 온도가 하강하는 것을 확인할 수 있었다.

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