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Resistance Factors for Drilled Shafts Embedded in Weathered Rock

풍화암에 근입된 현장타설말뚝의 저항계수 산정

  • 윤홍준 (한국도로공사) ;
  • 정성준 (서울대학교 지구환경시스템공학부) ;
  • 김명모 (서울대학교 지구환경시스템공학부)
  • Published : 2007.08.31

Abstract

Load and Resistance Factor Design (LRFD) method is being used increasingly in geotechnical design practice worldwide, and is expected to completely replace the current Allowable Stress Design (ASD) method in the near future. LRFD has advantages over ASD in that it allows the design of superstructures and substructures at a consistent reliable level by quantification of failure probability based on reliability analysis. At present, resistance factors for cast-in-place piles embedded in rocks are determined by AASHTO only for the intact rock conditions. In Korea, however, most of the bedrocks in which piles are embedded are heavily weathered. Thus, this study will try to determine the resistance factors of heavily weathered rocks (so-called intermediate goo-materials). To this aim, reliability analysis was carried out to evaluate the resistance factors of cast-in-place piles embedded in intermediate geo-materials in Korea. Pile load test data of 21 cast-in-place piles of 4 construction sites were used for the analysis. Depending on the method which calculates the pile capacities, the resulting resistance factors ranged between 0.1 and 0.6.

하중저항계수설계법(LRFD)은 세계적으로 지반공학적 설계의 실무에서 사용이 증가하고 있으며 머지않아 현재의 허용응력설계법(ASD)을 완전히 대체할 것으로 예상된다. 하중저항계수설계법은 신뢰도해석(Reliability analysis)을 바탕으로 파괴확률을 정량화하여 상부구조물과 하부구조물을 일관된 신뢰도 수준으로 설계할 수 있게 하는 장점을 가지고 있다. 현재 암반에 근입된 현장타설말뚝의 저항계수는 단지 무결암 상태일 경우에 대하여 AASHTO에 의해 제시되어 있다. 그러나 국내의 경우, 말뚝이 근입되는 대부분의 기반암은 심하게 풍화되어 있다. 따라서 본 연구에서는 풍화암(흔히 IGM)에 대한 저항계수를 산정하고자 하였다. 이를 위해 국내 풍화암에 근입된 현장타설말뚝의 저항계수를 산정하기 위하여 신뢰도 해석을 수행하였다. 4개 현장에서 수행된 21본의 재하시험자료가 분석에 사용되었으며, 말뚝지지력을 계산하는 방법에 따라 저항계수는 $0.1{\sim}0.6$의 범위 내에서 산정되었다.

Keywords

References

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