DOI QR코드

DOI QR Code

Side Friction of Deep Foundation for Transmission Tower in Rock

암반에 설치된 송전철탑 심형기초의 주면마찰력 평가

  • 김대홍 (한국전력공사 전력연구원) ;
  • 이대수 (한국전력공사 전력연구원) ;
  • 천병식 (한양대학교 공과대학 토목공학과) ;
  • 김병홍 (한양대학교 공과대학 토목공학과)
  • Published : 2007.04.30

Abstract

Six prototype field tests (five 1/8 and one 1/2 scale tests) have been conducted in order to determine the uplift resistance of deep foundation for transmission line structures. Test sites, located in the city of Eumseng in Choongbuk province, are classified as gneiss. These test results reveal failures not along the foundation-rock interface but either along the damaged surrounding rock mass caused by excavation or along the pre-existing rock joint. Test results also show the uplift resistance which is 20 $\sim$ 30% higher than the current design strength of side friction. In addition to fold tests, four concrete core samples between the liner plate and the surrounding rock mass have been obtained from the existing transmission foundations to study the effect of the liner plate which is installed prior to placing concrete. The compressive strength of these concrete core samples shows 63 $\sim$ 72% of the strength at the time of foundation construction. Side frictional resistance based on such less compacted concrete reaches satisfying uplift design strength.

본 논문에서는 송전철탑 심형기초의 주면마찰력을 평가하고자 충북 음성지역의 편마암에 대해 총 6회(1/8규모 5회, 1/2규모 1회) 현장시험을 실시하였다. 시험결과 파괴형태는 기초체와 암반의 마찰파괴가 아닌 굴착으로 인한 손상된 주변암반 및 기존암반의 절리상태에 지배되는 것으로 나타났으며, 주면마찰력 평가결과 기존의 송전철탑 심형기초에 적용하고 있는 값보다 약 20$\sim$30% 증가되는 것을 확인할 수 있었다. 또한 기초타설시 사용되는 라이너플레이트의 영향을 살펴보고자 기존 철탑 기초에 대해 시추조사를 4회 실시하였다. 라이너플레이트 배면콘크리트의 압축강도는 타설시 설계강도의 63$\sim$72%였으며, 주면마찰력의 설계기준치를 만족하는 것으로 나타났다.

Keywords

References

  1. 김대홍, 홍성연, 김경열, 이대수 (2003), '송전철탑용 현장타설기초의 파괴형태에 관한 실험적 연구', 2003년도 대한토목학회 학술발표회 논문집, pp.3311-3317
  2. ASTM D1143-81, Standard Test Method for Pile Under Static Axial Compressive Load, Annual Book of ASTM Standards, Vol 04.08, pp.174-184
  3. ASTM D3689-90, Standard Test Method for Individual Piles Under Static Axial Tensile Load, Annual Book of ASTM Standards, Vol 04.08, pp.1-11
  4. Day, H. B. (1974), 'Rock Socketed Piles: MMBW Highways Division Practice', Symp. on Rock Socketed Piles, Aust. Geomech. Soc. Vic. Group
  5. Goder, H. Q. and Leonard, M. W. (1954), 'Some Tests on Bored Piles in London Clay', Geotechnique, Vol.4, pp.32-41 https://doi.org/10.1680/geot.1954.4.1.32
  6. Gupton, C. and Logan, T. (1980), 'Design Guidelines for Drilled Shafts in Weak Rock in South Florida', Annual Meeting of the Florida Branch, ASCE, Miami, FL
  7. O'Neill, M. W., Townsend F. C., Hanssan K. M., Buller A. and Chan P. S. (1995), Load Transfer for Drilled Shafts in Intermediate Geomatrials, U. S. Department of Trans- portation, FHWA-RD-95-0000, January
  8. Pells, P. J. N. and Turner, R. M. (1979), 'Elastic Solutions for the Design and Analysis of Rock Socketed Piles', Canadian Geotechnical Journal, 16, pp.481-487 https://doi.org/10.1139/t79-054
  9. Reese, L. C. and O'Neill, M. W. (1988), Drilled Shaft: Construction Procedures and Design Method, Publication FHWA-HI-88-042, Federal Highway Administration, Washington, D.C
  10. Reynols, R. T. and Kaderabech, T. J. (1980), 'Miami Limestone Foundation Design and Construction', Preprint No. 80-546, South Florida Convention, ASCE
  11. Rogenberg, P. and Jouneau, N. L. (1976), 'Friction and End Bearing Tests on Bedrock for High Capacity Socket Design', Canadian Geotechnical Journal, 13, pp.324-333 https://doi.org/10.1139/t76-033
  12. Rowe, R. K. and Armitage, H. H. (1984), The Design of Piles Socketed into Weak Rock, Report GEOT-11-84, University of Western Ontario, London, Ont
  13. Thome, C. P. (1977), The Allowable Loadings of Foundations on Shale and Sandstone in the Sydney Region, Part 3, Field Test Results, Paper Presented to Sydney Group of Aust. Geomechanics Soc., Inst. Engnrs. Aust
  14. Tomlinson, M. J. (1995), Foundation Design and Construction 6th edition, Harlow, England : Longman Scientific & Technical ; New York: Wiley
  15. Williams, A. F. (1980), The Side Resistance of Piles Socketed into Weak Rock, Ph. D. dissertation, Department of Civil Engineering, Monash University, Melbourne, Australia