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지반의 동적특성에 따른 다양한 형식의 철골구조물의 지진하중 평가 및 설계응답스펙트럼 개선안

Seismic Load Evaluation and Design Spectrum Enhancement for Steel Structures Considering Soil Dynamics

  • 김동관 (청주대학교 건축공학과) ;
  • 김동욱 (청주대학교 건축공학과)
  • Kim, Dong-Kwan (Dept. of Architectural Engineering, Cheongju University) ;
  • Kim, Dong-Wook (Dept. of Architectural Engineering, Cheongju University)
  • 투고 : 2024.06.18
  • 심사 : 2024.08.12
  • 발행 : 2024.09.30

초록

This study evaluates seismic loads on various steel structures, taking into account amplified ground motions due to different soil conditions. Seismic design codes define ground motions that induce inertial forces during earthquakes through the design response acceleration spectrum. The 1985 Mexico earthquake highlighted the significant impact of soft soil amplification on seismic loads, leading to severe damage in midand high-rise buildings and prompting the introduction of site amplification factors. However, the current Korean seismic design code (KDS 17 10 00: 2024) classifies ground without considering dynamic characteristics, resulting in discrepancies between actual and design response spectra. This research analyzes three soil conditions with different dynamic properties, conducting site response analyses to derive surface ground motions. Twelve steel structures of varying shapes (R-shaped, L-shaped, T-shaped) and heights (4, 8, 12, 16 stories) were examined. By comparing seismic loads from amplified ground motions with those from the design spectrum, the study suggests improvements to the seismic design spectrum. The findings indicated that the proposed spectra (PS-1, PS-2, PS-3), which account for dynamic site characteristics, more accurately predict structural responses than the current KDS-S4 spectrum. Seismic base shear varied by up to 55% depending on site conditions. The proposed spectra enhance design efficiency for structures on short-period (Site-1) and intermediate-period (Site-2) sites. For long-period sites (Site-3), the amplification between modes was less pronounced, underscoring the need for comprehensive ground response analyses to ensure safe designs. The study highlights the importance of revising the design response spectrum to reflect diverse ground conditions, improving structural safety and performance predictions.

키워드

참고문헌

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