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Evaluation of Structural Stability at High Temperatures for Beams Made of High Strength Structural Steels (SM 570) by Analytical Method

해석적 방법에 의한 고강도 강재(SM 570) 적용 보부재의 고온 시 내력 평가

  • Kwon, In-Kyu (Department of Fire Protection Engineering, Kangwon National University)
  • Received : 2014.04.07
  • Accepted : 2014.06.27
  • Published : 2014.06.30

Abstract

Beams play an important role to transfer an applied load on the floor into columns. However, if the beams affected by a fire the length will be changed longer or shorter and the structural stability decreased gradually and resulted in structural failure. Therefore, the fire regulation requires that structural beam has to satisfied with a constant fire resistance. The fire resistance conducted by a constant size and boundary condition in an horizontal furnace. But this is not enough to adopt a beam made of high structural steels having various lengths. In this study, in order to suggest structural behaviors of beams made of high structural steels at high temperature, mechanical properties at high temperature and heat stress analysis were used and the surface temperature, expansion, displacement and variance of maximum load according to lengths of the beam were compared with those of SM 400.

일정 스팬내의 하중을 기둥부재로 전달하는 보부재의 경우, 화재 발생 시 팽창과 수축 그리고 내력저하로 인하여 구조적 불균형을 유발한다. 따라서 일정 규모 이상의 강구조 건축물의 보부재도 내화성능 확보를 의무화하고 있으나, 보부재의 크기와 조건에 의한 시방적 방법으로 내화성능의 평가가 진행되고 있는 것이 현 실정이다. 고강도 강재가 적용된 보부재의 스팬 변화에 대한 고온 시 내력평가는 이루어지지 않고 있어 정확한 구조적 내력평가에 한계가 있다. 따라서 본 연구에서는 고강도 강재가 적용된 단순보를 대상으로 고온 시의 표면온도 변화, 팽창, 처짐 및 길이 변화에 따른 내력을 일반 강재와 비교함으로써 화재 시의 내력적 성능변화를 확인하고자 한다.

Keywords

References

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