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Approximate Analysis for Shear Force Amplification Effect in Ordinary RC Shear Walls

철근콘크리트 보통전단벽의 전단력 증폭효과 근사해석

  • Jeon, Seong-Ha (Industry-Academic Cooperation Foundation, Incheon National University) ;
  • Park, Ji-Hun (Division of Architecture and Urban Design, Incheon National University)
  • Received : 2020.03.06
  • Accepted : 2020.04.08
  • Published : 2020.05.01

Abstract

An approximate analysis method is proposed to predict the dynamic amplification of shear forces in ordinary reinforced concrete shear walls as a preliminary study. First, a seismic design for three groups of ordinary reinforced concrete shear walls higher than 60 m was created on the basis of nonlinear dynamic analysis. Causes for the dynamic amplification effect of shear forces were investigated through a detailed evaluation of the nonlinear dynamic analysis result. A new modal combination rule was proposed on the basis of that observation, in which fundamental mode response and combined higher mode response were summed directly. The fundamental mode response was approximated by nonlinear static analysis result, while higher mode response was computed using response spectrum analysis for equivalent linear structural models with the effective stiffness based on the nonlinear dynamic analysis result. The proposed approximate analysis generally predicted vertical distribution of story shear and shear forces of individual walls from the nonlinear dynamic analysis with comparable accuracy.

Keywords

References

  1. KDS 41 17 00. Seismic Building Design Code. Korea Construction Standards Center. c2019.
  2. NZS. NZS 3101: Part1, Concrete Structures Standard; Part 2. Commentary on the Design of Concrete Structures. Wellington: New Zealand Standards. c2006.
  3. CEN. Eurocode 8-Earthquake Resistant Design of Structures. Pt. 1,3 General Rules-specific Rules for Various Materials and Elements. Brussels, Belgium. c2004.
  4. Blakeley RWG, Cooney RC, Megget LM. Seismic Shear Loading at Flexural Capacity in Cantilever Wall Structures. Bulletin of the New Zealand National Society for Earthquake Engineering. 1975;8(4):278-290. https://doi.org/10.5459/bnzsee.8.4.278-290
  5. Kim SH, Hwang HJ, Park HG. Shear Force Amplification Effect Addressing Nonlinear Dynamic Response in Slender RC Walls. Journal of the Korea Concrete Institute. 2018;30(2):135-146. https://doi.org/10.4334/JKCI.2018.30.2.135
  6. Rutenberg A, Nsieri E. The Seismic Shear Demands in Ductile Cantilever Wall Systems and the EC8 Provisions. Bull Earthq. Eng. 2006;4:1-21 https://doi.org/10.1007/s10518-005-5407-9
  7. Architectural Institute of Korea. Guidelines for Performance-Based Seismic Design of Residential Buildings. Korea Building Code Center. c2017.
  8. PEER. Tall Buildings Initiative. Guidelines for Performance-Based Seismic Design of Tall Buildings. Pacific Earthquake Engineering Research Center. College of Engineering, University of California: Berkeley. c2017.
  9. Jeon SH, Park JH. Seismic Fragility Assessment of Ordinary RC Shear Walls Designed with a Nonlinear Dynamic Analysis. Journal of the Earthquake Engineering Society of Korea. 2019;23(3):169-181. https://doi.org/10.5000/EESK.2019.23.3.169
  10. PEER. Pacific Earthquake Engineering Research Center, University of California Berkeley. 2006. Available from: https://ngawest2.berkeley.edu/site
  11. Han SW, Ha SJ, Cho SW. A Method for Selecting Ground Motions Considering Target Response Spectrum Mean. Variance and Correlation - I Algorithm. Journal of Structural Engineering. 2016;20(1):55-62.
  12. Chopra AK. Dynamics of Structures: Theory and Applications to Earthquake Engineering. Prentice-Hall:Englewood Cliffs. NJ. c1995.
  13. Priestley MJN, Calvi GM, Kowalsky MJ, Powell GH. Displacement Based Seismic Design of Structures. Earthquake Spectra. 2008;24(2).
  14. Wiebe L, Christopoulos C. Mitigation of Higher Mode Effects in Base-rocking Systems by Using Multiple Rocking Sections. J. Earthq. Eng. 2009;13(1):83-108. https://doi.org/10.1080/13632460902813315
  15. Gupta AK, Cordero K. Combination of Modal Responses. In Structural Mechanics in Reactor Technology. c1981.
  16. Gupta AK, Chen DC. Comparison of Modal Combination Methods. Nuclear Engineering and Design. 1984;78(1):53-68. https://doi.org/10.1016/0029-5493(84)90072-4
  17. Guide R 1.92. Combining Modal Responses and Spatial Components in Seismic Response Analysis. Revision 2. USNRC. c2006.
  18. ACI Committee. Building Code Requirements for Structural Concrete (ACI 318-08) and Commentary. American Concrete Institute. c2008.