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Investigation on Response Modification Factor of RC Structural Walls in Apartment Buildings

아파트 건물의 구조 벽체에 대한 반응수정계수

  • Published : 2001.12.01

Abstract

Korea is classified into low and moderate seismic zone from the view-point of seismic hazard level. Korean seismic provisions has been developed based on UBC and ATC 3-06. Thus, in calculation of design base shear according to Korean provisions response modification factor (R) is included in the formula of design base shear. The major role of this factor is to reduce the elastic design base shear whereby structures can behave in inelastic range during design level earthquake ground motions(mean return period of 475 yrs.). R factor is assigned according to material and structural systems. In this study, R factor for bearing wall system is considered. Most of the walls of apartment buildings in Korea resist gravity and seismic loads simultaneously so that this wall system can be classified into bearing wall system. Structural details of these walls are different from those used in Japan and U.S.. They are all rectangular in sectional shape rather than barbell in shape, and also have special lateral reinforcement details at the boundaries of a wall. In Korean seismic design provisions(1988), two different values(3.0 and 3.5) of R factor are assigned to the bearing wall systems according to the wall details. However, in updated seismic provisions(2000), only one value is assigned to R factor(3.0) irrespective of wall details. In this study, the design base shear values in Korean seismic design provisions(1988, 2000), ATC 3-06, UBC are compared. Also experimental study was carried out to evaluate the seismic performance of structural walls. For this purpose, five test specimens were made which have special details used in apartment bearing wall systems in Korea. Based on the results of this study, response modification factor for bearing wall system is discussed.

우리나라의 지진위험도는 중 .약진 지역으로 분류될 수 있으며, 최근 자주 발생하지는 않지만 큰 지진(예를들면 판내부 지진)에 대하여 구조물이 저항성능을 가져야 한다는 것을 고려한다면 벽체의 성능평가는 중요하다고 할 수 있다. 본 논문의 내용은 내력벽 시스템 아파트 건물의 벽체에 대한 반응수정계수의 평가에 관한 것이다. 이를 위하여 반응수정계수에 관련한 기존 연구를 조사하여 반응수정계수의 구성요소를 분석하였다. 또한, 국내 내진기준에서 반응수정계수, 동적계수 산정의 문제점을 ATC와 UBC 기준들의 밑면전단력의 크기와 비교하여 나타내었다. 그리고, 아파트 벽체 및 전단벽에 대한 기존의 국내 .외 실험연구를 활용하여 그 구조성능을 평가하였으며, 이러한 연구내용의 결과를 기초로 허용응력도 설계용 지진하중을 규정하는 국내 내진규정의 내력벽 시스템에 대한 반응수정계수를 제안한다.

Keywords

References

  1. Recommended Lateral Force Requirements and Tentative Commentary SEAOC
  2. Applied Technology Council Report ATC 3-06 Tentative Provisions for the Development of Seismic Regulations for Buildings ATC
  3. International Conference on Building Officials Uniform Buildng Code ICBO
  4. NEHRP Recommended Provisions for the Development of Seismic Regulation for New Buildings BSSC
  5. EERC;UCB/EERC Report-86/10 Earth-quake Simulation Tests and Associated Studies of a 0.3 Scale Model of a Six Story Concentrically Braced Steel Structure Uang C.M.;Bertero V.V.
  6. EERC;UCB/EERC Report-87/02 Earthquake Simulation Tests and Associated Studies of a 0.3 Scale Model of a Six Story Eccentrically Braced Steel Structure Whittaker(et al.)
  7. Journal of Structural Engineering;ASCE v.113 no.11 Seismic Testing of Full Scale Steel Building-Part I Foutch D.A.(et al.)
  8. Blume Earthquake Eng. Center;Report No.90 Strength and Ductility Considerations in Seismic Design Osteraas J.D.;Krawinkler H.
  9. ATC Report;ATC-19 Structural Response Modification Factors ATC
  10. ATC Report-34 A Critical Review of Current Approaches to Earthquake-Resistant Design ATC
  11. Structural Research;Dept. of Civil Eng. Statistical Analysis of the Response of Nonlinear Systems Subjected to Earthquakes Riddell R.;Newmark N.M.
  12. Earthquake Spectra;EERI v.10 no.2 Evaluation of Strength Reduction Factors for Earth-quake Resistant Design Miranda E.;Bertero V.V.
  13. Journal of Structural Engineering;ASCE v.123 no.3 Methods of Reliability Based Seismic Design - I. Equivalent Nonlinear Systems Han S.W.;Wen Y.K.
  14. Journal of Structural Engineering;ASCE v.3 no.123 Methods of Reliability-Based Seismic Design - Ⅱ. Calibration of Code Parameters Han S. W.;Wen Y. K.
  15. Load Provisions for Building Structures Architectural Institute of Korea
  16. ACI 318-95 & 99 Building Code and Commentary American Concrete Institute
  17. PCA Research and Development Bulletin Strength of High-Rise Shear Walls-Rectangular Cross Section Cardenas A. E.;Magura D. D.
  18. ACI SP 72-4 Structural Walls Corley W.G.;Fiorato A.E.;Oesterle R.G.
  19. Journal of the Structural Engineering;ASCE v.118 no.6 Ductility and Detailing Requirements of Bearing Wall Building Wallace J.W.;Moehle J.P.
  20. Advances in Structural Engineering and Mechanics (ASEM'99) Investigation on he Structural Performance of the Slender Structural Walls with Different Details Han S. W.;Oh Y. H.;Lee L. H.
  21. 한양대 박사학위논문 벽식구조 아파트 건물의 전단벽에 대한 반응수 정계수 평가 오영훈
  22. PCA Report;construction Technology Division U.S.-Japan Quasi Static Test of Isolated Wall Planar Reinforced Concrete Structure Morgan B.J.(et al.)
  23. PCA Report;Construction Technology Division Earthquake Resistant Structural Walls-Tests of Isolated Walls Oesterle R.G.(et al.)
  24. PCA Report;Construction Technology Division Earthquake Resistant Structural Walls-Phase Ⅱ Oesterle R.G.(et al.)
  25. D. Thesis Inelastic Analysis for In-plane Strength of Reinforced Concrete Shear Walls Oesterle R.G.
  26. UCB/EERC-79/20 Hysteretic Behavior of reinforced Concrete Structural Walls Vallenas J. M.;Bertero V. V.;Popov E. P.