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http://dx.doi.org/10.14346/JKOSOS.2015.30.6.94

Numerical Simulation for Prediction of Existing Cavity Location on Explosion-Induced Building Collapse  

Jung, Jahe (Geotechnical Engineering Research Institute, KICT)
Park, Hoon (Korea Kacoh CO., LTD.)
Kim, Kwang Yeom (Geotechnical Engineering Research Institute, KICT)
Shin, Hyu-Soung (Geotechnical Engineering Research Institute, KICT)
Publication Information
Journal of the Korean Society of Safety / v.30, no.6, 2015 , pp. 94-101 More about this Journal
Abstract
When a severe disaster such as a building collapse occurs, a first priority for rapid rescue is to find a location where people are highly expected to be buried but alive. It is, however, very difficult to correctly designate the location of such cavities by conventional geophysical survey due to a pile of debris of building members. In this study, location of possible lifeguard cavities were evaluated through a series of simulations of building collapse by explosion depending on the height of the building, a structure of basement floor and a location of explosion. Three types of building structure: five-story, ten-story and fifteen-story were prepared as a model for the simulation. As a results, in the case of low building, only basement floor partially collapsed. On the other hand, in the case of high building, a collapsed range on the inside of the building increased and lifeguard spaces were formed only in the lateral side or corner of the building. In addition, when a wall exists in the basement floor, the possibility that cavities could be formed increased compared to the cases without wall. However, for the fifteen-story building case, no possible lifeguard cavity was found. It is noted that for a high rise building, the height of building more affect forming of safeguard cavity than the structure of the basement floor.
Keywords
rapid rescue; existing cavity; collapse simulation; explosion;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
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