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함수비에 따른 불포화 도로성토의 동적 안정성 평가

Dynamic-stability Evaluation of Unsaturated Road Embankments with Different Water Contents

  • 이충원 (강원대학교 석재복합건설신소재연구소) ;
  • 히고 요스케 (일본 Kyoto대학 공학연구과 도시사회공학전공) ;
  • 오카 후사오 (일본 Kyoto대학 공학연구과 사회기반공학전공)
  • Lee, Chung-Won (Institute for Advanced Construction Materials, Kangwon Nat'l Univ.) ;
  • Higo, Yosuke (Dept. of Urban Management, Kyoto Univ.) ;
  • Oka, Fusao (Dept. of Civil and Earth Resources Engrg., Kyoto Univ.)
  • 투고 : 2014.03.04
  • 심사 : 2014.06.09
  • 발행 : 2014.06.30

초록

지진시 불포화 도로성토의 붕괴는 지하수 및 강우의 침투에 기인한 함수비의 증가가 그 원인이 됨이 지적되어 왔다. 따라서, 이와 같은 지반재해의 방지를 위한 합리적 보강방안 및 적절한 설계기준의 정립을 위해 불포화 도로성토의 동적안정성 및 변형모드에 대한 함수비의 영향을 연구할 필요가 있다. 본 연구에서는 불포화 도로성토의 변형 및 파괴거동에 대한 함수비의 영향을 연구하기 위해 상이한 함수비를 갖는 도로성토 모형에 대하여 동적 원심모형실험을 진행하였다. 본 실험에서는 도로성토 모형에 대한 동적하중 부가시의 변위, 간극수압 및 가속도의 계측을 통해 최적함수비 부근 및 최적함수비보다 높은 함수비를 갖는 불포화 도로성토에 대한 동적 거동을 고찰하였다. 이와 함께, 화상해석에 의한 변위 및 변형율 분포의 분석을 통하여 최적함수비보다 높은 함수비를 갖는 불포화 도로성토의 변형모드를 구명하였다. 이로부터 사면 천단부의 침하는 천단부 아래에서의 체적압축에 기인하며, 구속압력이 작은 사면 선단부 및 사면 표면부 부근에서는 체적팽창을 동반한 큰 전단변형이 발생함을 확인하였다.

It has been pointed out that the collapses of unsaturated road embankments caused by earthquake are attributed to high water content caused by the seepage of the underground water and/or the rainfall infiltration. Hence, it is important to study influences of water content on the dynamic stability and deformation mode of unsaturated road embankments for development of a proper design scheme including an effective reinforcement to prevent severe damage. This study demonstrates dynamic centrifugal model tests with different water contents to investigate the effect of water content on deformation and failure behaviors of unsaturated road embankments. Based on the measurement of displacement, the pore water pressure and the acceleration during dynamic loading, dynamic behavior of the unsaturated road embankments with about optimum water content and the higher water content than the optimum one have been examined. In addition, an image analysis has revealed the displacement field and the distributions of strains in the road embankment, by which deformation mode of the road embankment with higher water content has been clarified. It has been confirmed that in the case of higher water content the settlement of the crown is large mainly owing to the volume compression underneath the crown, while the small confining pressure at the toe and near the slope surface induces large shear deformation with volume expansion.

키워드

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