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터널출입구 시공에 따른 석회암 사면의 안정성 및 거동 분석

Analysis of the Stability and Behavior of a Calcareous Rock Slope During Construction of a Tunnel Entrance

  • 송영석 (한국지질자원연구원 지구환경연구본부) ;
  • 윤중만 (신안산대학교 건설정보시스템학과)
  • Song, Young-Suk (Geologic Environment Division, Korea Institute of Geoscience and Mineral Resources) ;
  • Yun, Jung-Mann (Dept. of Construction Information System, ShinAnsan University)
  • 투고 : 2013.08.26
  • 심사 : 2013.09.06
  • 발행 : 2013.09.30

초록

석회암 사면에서 터널 출입구를 시공하기 위하여 진입로를 개설하던 중 사면붕괴가 발생되었다. 사면의 붕괴원인을 조사하기 위하여 현장조사, 실내시험 및 수치해석을 수행하였다. 수치해석결과에 따르면 터널 출입구 진입로 개설이전 사면안전율은 1.0이하이며, 진입로 개설이후 사면안전율은 더 저하되는 것으로 나타났다. 그리고 진입로 개설이후 전단변형률 및 소성영역은 사면상부에서 하부로 전이되므로 사면활동영역이 증가되어 사면안정성을 저하시키는 것으로 해석되었다. 터널 출입구 시공을 위해서는 해당사면에 대한 안정성을 확보하여야 하므로, 대상현장의 조건을 고려하여 록볼트, 록앵커 및 FRP 그라우팅을 사면에 보강하는 것으로 결정하였다. 적용된 사면보강공법의 효과를 확인하기 위하여 현장계측을 수행하였다. 현장계측결과 사면지반의 수평변위는 매우 미소하며, 대부분 발생된 이후 다시 회복되는 탄성거동을 보였다. 그리고 록볼트 및 앵커축력은 터널굴착작업 및 장마기간에 의한 영향보다는 사면굴착작업시 영향을 가장 크게 받으며, 터널굴착작업이후 수렴하는 경향을 보이므로 대상사면은 안정한 상태임을 확인할 수 있다.

A calcareous rock slope failed during excavation of the slope for construction of a tunnel entrance. The slope is located at the construction site for widening highway in Yeongwol, Korea. Field surveys, laboratory tests, and numerical analyses were performed to determine the reason for the slope failure. The numerical analysis revealed that the safety factor of the slope before construction of the entrance was less than 1, and that this decreased after construction. After construction of the entrance, the sliding zone of the slope increased and slope stability decreased because the shear strain and plastic zone in the slope over the tunnel entrance showed an increase relative to the lower part of the slope. To enhance the stability of the slope for construction of the tunnel entrance, countermeasures such as rock bolts, rock anchors, and FRP (Fiber glass Reinforced Plastic) grouting were adopted in light of the field conditions. Serial field monitoring performed to confirm the reinforcing effects of the adopted countermeasures revealed a small amount of horizontal deformation of the slope soils, most of the elastic deformation that can regain its former value. In addition, the axial forces of the rock bolt and anchor were more strongly affected by slope excavation during construction of the tunnel entrance than by tunnel excavation or the rainy season, and the axial forces tended to converge after excavation of the tunnel. Therefore, we can confirm that the slope is currently safe.

키워드

참고문헌

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피인용 문헌

  1. 암반사면 안정 해석을 위한 강도정수 산정 사례연구 vol.30, pp.1, 2013, https://doi.org/10.9720/kseg.2020.1.085