The objectives of this study is to classify evacuation types, derive the characteristics of 4 types, develop and discover evacuation routes within the performance hall space, and present the statistical classification results of the evacuation classification model by classification type. To achieve this purpose, the characteristics of each evacuation type's four types are applied through a network reliability analysis method and utilized for institutional improvement and policy. This study applies for the building law, evacuation and relief safety standards when establishing a performance hall safety management plan, and reflects it in safety-related laws, safety standards, and policy systems. Statistical data by evacuation type were analyzed, and measurement characteristics were compared and analyzed by evacuation types. Evaluate the morphological similarity and reliability of evacuation types according to door width and passage length and propose the install position of evacuation guidance sign boards. The results of this study are expected to be used as basic data to provide operation strategies for safety facility evacuation information sign boards according to evacuation route classification types when taking a safety management plan. The operation strategy for the evacuation sign boards installation that integrates employee guidance and safety training is applied to the performance hall safety management plan. It will contribute to establishing an operational strategy for performance space safety when constructing performance facilities in the future.
The purpose of this study is to propose measures to increase evacuation safety by calculating the habitable time using a fire and evacuation simulation program for the Room-escape cafe currently in operation, and comparing and analyzing it with the evacuation required time. Assuming a fire due to overheating of electric heaters in use in front of the warehouse, the habitable time was calculated through fire simulation, and the occupant's evacuation time calculated through evacuation simulation according installation of safety facilities, etc. was compared and analyzed with the habitable time. In the case of escape room cafes with safety facilities installed, evacuation safety was satisfied, but in escape room cafes without safety facilities, the evacuation safety was not secure. As a result of analyzing evacuation safety for each scenario based on the ASET analyzed in the fire simulation, it was found that in scenario 1, evacuation safety was secured and everyone successfully evacuated, while in scenario 2, no one succeeded in evacuation. These results can be said to confirm that the installation of safety facilities is very important in business establishments such as escape room cafes, which become enclosed structures when games are started.
Human and material damage can be reduced if the risk is evaluated by engineering analysis of fire combustion products, smoke concentration, and smoke movement speed in the event of a fire in apartment houses and officetels. In this study, a lot of research on related safety evaluation in the basement needs to be studied and reflected in design, so experimental research was conducted to analyze the flow of smoke through computer simulation and provide analysis data through evacuation safety evaluation. First of all, the five-story underground parking lot subject to simulation has a large floor area, which is advantageous for improving evacuation safety performance, but it uses temperature detectors to increase detection time and fire spread speed. Second, it was analyzed that the evacuation time at all evacuation ports did not exceed the evacuation time, and as the time from the start of evacuation to the evacuation time was 216.9% compared to the travel time, it was evaluated that the safety performance of the evacuation was secured. Third, the above simulation results are a comprehensive safety evaluation based on the non-operation of fire extinguishing facilities in the fire room to increase safety, which means that smoother evacuation safety performance can be secured by linking fire extinguishing facilities.
This study analyzed the appropriate placement method by floor for evacuating all occupants during the nighttime through evacuation simulation. The analysis results are as follows. First, when non-self evacuating patients were placed on the first floor, 266 patients and 6 workers were found to be evacuated after 460 seconds. This result shows that it is meaningful to place non-self evacuating patients on the lower floor with a time that is faster than 540 seconds, which is an evaluation criterion set using life Safety standards for human. This result is a time faster than the evaluation criteria of 540 seconds, which is set using the life safety standards, and it can be confirmed that it is meaningful to place non-self evacuating patients on the lower floor. Next, as a result of placing non-self evacuating patients from the first floor to the fourth floor, it was found that evacuation of all occupants required 460 seconds for the first floor, 834 seconds for the second floor, 1,508 seconds for the third floor, and 1,915 seconds for the fourth floor. These results indicate that the placement of non-self evacuating patients on the rest of the floors, except for the first floor, can lead to dangerous results in excess of 540 seconds, which is a flashover time. As a result, it is necessary to place non-self evacuating patients on a lower floor for safe evacuation. The study has limitations except for comparative analysis of changes in evacuation time due to changes in the number of workers at eldery care hospitals and situations in which fire-fighting facilities such as sprinkler facilities operated. It is necessary to study the evacuation time linked to the operation of the fire-fighting facilities and the evacuation time according to the change in the number of workers in the future.
This study analyzed the evacuation time in indoor stadiums when exits that automatically open/close when the fire sensor is triggered are installed as a means to improve the problem of closing certain exits. Firstly, when spectators on the 2nd floor stands exit through the 1st floor exits, the RSET of all inhabitants was 529.8 seconds when the automatic opening/closing exits are broken and employees are not present. Secondly, when spectators on the 2nd floor stands exit through the 1st floor exits, the RSET of all inhabitants was 445 seconds when the automatic opening/closing exits with 750mm width are working but employees are not present. Lastly, when spectators on the 2nd floor stands exit through the 1st floor exits, the RSET of all spectators was 337 seconds when the automatic opening/closing exits with 1,500mm width are working and employees are present. As a result, it was revealed that the evacuation time is shortened when the automatic opening/closing exits are working. Additional comparative studies with actual simulations of people evacuating an indoor stadium and firefighting simulations considering smoke flow are necessary.
In this study, fire and evacuation safety of environmental energy facilities using fire and evacuation simulation was examined as part of performance-oriented design. The worst-case fire scenarios in which fire-fighting facilities such as sprinkler fire extinguishing and smoke control systems are not working, and the FDS analyzes the visibility, temperature distribution, and carbon monoxide concentration distribution through FDS. The safety was examined. As a result, it was proved that evacuation could limit the visibility, temperature, and carbon monoxide concentration in a smooth range, based on the safety standards set by relevant laws. In other words, it was possible to verify the safety of fire and evacuation for environmental energy facilities where a large amount of combustibles and fires coexist.
In this paper, we analyzed the safety on static and dynamic characteristics of a top-down evacuation instrument fixed on the exterior walls of a building using finite element analysis. For this purpose, the stress distribution characteristics of the H-beam structure were analyzed and the equivalent stress distribution, deflection displacement and natural frequency characteristics of the overall structure of the evacuation instrument were analyzed. The structures were applied with the materials of SS440 and SUS304. The static analysis results showed the elastic behavior with safety coefficients from 2.4 to 2.9, by confirming the structural safety. In addition, the analysis of the natural frequency characteristics confirmed that the vibration characteristics were higher than the external conditions of 20Hz.
본 연구는 선박에서 발생할 수 있는 화재연기의 위험성을 인식시키고 비상대응능력을 향상시키기 위해 선내에 안전교육을 위 한 환경을 구축하고 시나리오를 개발 운영하면서 획득한 실습생의 상황별 이동특성을 측정분석한 것으로, 그 결과를 정리하면 다음과 같다. 연기가 없는 조건에서는 익숙한 이동경로에 장애가 발생한 경우와 그렇지 않은 경우의 각 피난이동 상대속도 사이에 차이가 없지만, 실내에 연기가 충진되어 가시도가 매우 낮은 조건에서는 시야불량에 따른 이동능력 저하로 인해 그렇지 않은 경우에 비해 평균상당속도 가 62.5% 감속되었다. 시나리오에 관계없이 단순이동경로에 비해 복잡이동경로의 평균 상당속도가 빠르고 표준편차도 작게 나타났다. 연기가 충진된 경우에 대한 단순 데이터 평가에서는 전체이동경로와 복잡이동경로의 상대속도 확률분포가 매우 유사하였지만, 전체이동경 로의 상대속도에 대한 복잡이동경로의 상대속도비율의 개인간 변동폭은 매우 컸다. 한편, 상당속도는 가시거리의 로그함수로 표현할 수 있었다. 또한 실습생의 긴장감이 증가하면서 모든 경로에서 상대속도가 빨라졌다.
This study investigated the smoke blocking and control systems for the safety of residents evacuation and for the prevention of smoke spread through the central corridor in the event of central corridor type of intelligent building fire. We offered additional ways of utilizing smoke ventilators and intake ventilation equipment and utilized CFD-based fire simulation program(FDS Ver.5.5.3) in order to analyze the effect. As a result, many differences in the smoke block effect, depending on the application of smoke ventilator and location of installation, was found. In addition, the result was found that larger effect was showed not in the case of application of smoke ventilator in central corridor only but application in fire room. The reason is that the smoke leakage is blocked primarily as air is flowed in the fire room through open door by operation of intake smoke ventilator in the public corridor and secondarily, the smoke leakage to the public corridor could be blocked as fire and smoke were released to the opened smoke ventilator continuously. Especially, the effect was maximized through complex interactions by applying smoke ventilator and intake ventilation equipment in corridor together rather than applying smoke ventilator and intake ventilation equipment independently. The proposed measure through this study shall be considered from architectural plan as one of ways for blocking from smoke spread to the central corridor in the central corridor type of intelligent building. In addition, flaws on regulation shall be established and supplemented.
선박화재는 육상화재와 달리 숙련된 인원과 다양한 장비에 의한 소화활동이 곤란하므로 거의 자체적으로 소화되어야 하므로 소화가 쉽지 않다. 화재발생시 온도 상승에 의한 사망보다 연기에 의해 질식사의 경우가 더 많다. 그 이유는 화재현장에서 충분한 가시거리를 확보하지 못하여 신속하게 피난하지 못하기 때문이다. 이 연구에서는 피난에 필요한 시간을 좀 더 확보하기 위해 선박 거주구역의 높이를 기존의 2.0m에서 공동주택(아파트)의 높이에 해당하는 2.3m로 상향하여 연기거동을 상호 비교하였다. 비교 방법은 기존의 실습선 한바다호의 도면을 바탕으로 30cm 상향조정된 도면을 추가 제작하여 미국의 NIST에서 제작 운용중인 FDS를 이용하여 시뮬레이션을 실시하고 결과를 예측하였다. 온도에 의한 피난 안전시간을 예측한 시뮬레이션 결과, 화재구역에서 10m 떨어진 지점에서 피난 안전시간은 55.8초 증가하였다. 가시거리에 의한 피난 안전시간을 예측한 시뮬레이션 결과, (1) 화재구역에서 10m 떨어진 지점에서 피난 안전시간은 27.1초 증가하였고, (2) 화재구역에서 20m 지점에서는 피난 안전시간이 109.2초 증가하였으며, (3) 화재구역에서 30m지점에서는 피난 안전시간이 73.3초 증가하였다. 즉, 선박의 거주구역 높이를 육상건축물과 동일하게 할 경우 승무원의 피난안전성이 증가하는 것으로 예측되었다.
본 연구에서는 공연문화시설에서의 고령 인구의 특성을 고려한 피난계획을 수립 및 평가하였다. 현재 우리 사회는 2014년 10월을 기준으로 65세 이상 고령 인구의 수가 총 인구수의 약 12.7%를 차지하고 있다. 서울시 노인 욕구 만족 결과를 살펴보면, 고령 인구의 여가시간 활용 분석 중 가장 높은 비율을 차지한 항목은 문화 및 영화 관람이다. 그러나 실제 국내 공연문화시설에서의 피난계획은 일반적인 건축법과 소방법에서의 피난성능만을 고려한 설계이며, 고령 인구의 인지능력과 행동특성을 고려한 피난계획은 이루어지지 않았다. 이에 서울지역의 영화관을 선정하여 공연문화시설에서의 고령 인구의 인지능력을 측정하여 비교하고, 인지특성을 설문을 통해 살펴보았다. 또한, 일본건축센터에서 사용하고 있는 건축방재지침에 의한 수리계산으로 고령 인구의 행동능력을 고려하여 화재 시나리오를 구성하여 피난 안전성 평가를 진행하였다. 그리고 고령 인구의 인지특성과 신체적 특성을 고려하여 비상 시 피난을 원활하게 할 수 있는 개선안을 제안하였다.
앞으로 공연문화시설을 이용하는 고령 인구의 인지능력과 행동 특성을 고려하여 비상 시 안전하게 피난할 수 있는 시스템이 갖추어져야 한다.