Browse > Article
http://dx.doi.org/10.12989/gae.2018.15.1.695

Incremental filling ratio of pipe pile groups in sandy soil  

Fattah, Mohammed Y. (Building and Construction Engineering Department, University of Technology)
Salim, Nahla M. (Building and Construction Engineering Department, University of Technology)
Al-Gharrawi, Asaad M.B. (Civil Engineering Department, University of Kufa)
Publication Information
Geomechanics and Engineering / v.15, no.1, 2018 , pp. 695-710 More about this Journal
Abstract
Formation of a soil plug in an open-ended pile is a very important factor in determining the pile behavior both during driving and during static loading. The degree of soil plugging can be represented by the incremental filling ratio (IFR) which is defined as the change in the plug length to the change of the pile embedment length. The experimental tests carried out in this research contain 138 tests that are divided as follows: 36 tests for single pile, 36 tests for pile group ($2{\times}1$), 36 tests for pile group ($2{\times}2$) and 30 pile group ($2{\times}3$). All tubular piles were tested using the poorly graded sand from the city of Karbala in Iraq. The sand was prepared at three different densities using a raining technique. Different parameters are considered such as method of installation, relative density, removal of soil plug with respect to length of plug and pile length to diameter ratio. The soil plug is removed using a new device which is manufactured to remove the soil column inside open pipe piles group installed using driving and pressing device. The principle of soil plug removal depends on suction of sand inside the pile. It was concluded that the incremental filling ratio (IFR) is changed with the changing of soil state and method of installation. For driven pipe pile group, the average IFR for piles in loose is 18% and 19.5% for L/D=12 and 15, respectively, while the average of IFR for driven piles in dense sand is 30% and 20% for L/D=12 and L/D=15 respectively. For pressed method of pile installation, the average IFR for group is zero for loose and medium sand and about 5% for dense sand. The group capacity increases with the increase of IFR. For driven pile with length of 450 mm, the average IFR % is about 30.3% in dense sand, 14% in medium and 18.3% for loose sand while when the length of pile is 300 mm, the percentage equals to 20%, 17% and 19.5%, respectively.
Keywords
pipe pile; group; incremental filling ratio; sand; pressed;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 ASTM D854 (2005), Standard Test Method for Specific Gravity of Soil Solids by Water Pycnometer, American Society for Testing and Materials, West Conshohocken, Pennsylvania, U.S.A.
2 ASTM D3080 (1998), Standard Test Method for Direct Shear Test of Soils under Consolidated Drained Conditions, American Society for Testing and Materials, West Conshohocken, Pennsylvania, U.S.A.
3 ASTM D1143/D1143M, 07 (2013), Standard Test Method for Piles under Static Axial Compressive Load, American Society of Testing and Materials, West Conshohocken, Pennsylvania, U.S.A.
4 Brucy, F., Meunier, J., and Nauroy, J.F. (1991), "Behavior of pile plug in sandy soils during and after driving", Proceedings of the 23rd Annual Offshore Technology Conference, Houston, Texas, U.S.A., May.
5 De Nicola, A. and Randolph, M.F. (1997), "Plugging behavior of driven and jacked piles in sand", Geotechnique, 47(4), 841-856.   DOI
6 Fattah, M.Y. and Al-Soudani, W.H.S. (2016a), "Bearing capacity of open-ended pipe piles with restricted soil plug", Ships Offshore Struct., 11(5), 501-516.   DOI
7 Fattah, M.Y. and Al-Soudani, W.H.S. (2016b), "Bearing capacity of closed and open ended pipe piles installed in loose sand with emphasis on soil plug", Ind. J. Geo-Mar. Sci., 45(5), 703-724.
8 Gavin, K.G. and Lehane, B.M., (2003), "End bearing of small pipe piles in dense sand", Proceedings of the BGA International Conference on Foundations: Innovations, Observations, Design and Practice, Dundee, Scotland, September.
9 Iskander, M. (2010), Behavior of Pipe Piles in Sand Plugging and Pore-Water Pressure Generation During Installation and Loading, Springer Science & Business Media.
10 Klos, J. and Tejchman, A. (1981), "Bearing capacity calculation for pipe piles", Proceedings of the 10th International Conference on Soil Mechanics and Foundation Engineering, Stockholm, Sweden, June.
11 Lu, S.S. (1985), "Pile driving practice in China", Proceedings of the International Symposium on Penetrability and Drivability of Piles, San-Francisco, California, U.S.A., August.
12 Lee, J., Salgado, R. and Paik, K. (2003), "Estimation of load capacity of pipe piles in sand based on cone penetration test results", J. Geotech. Geoenviron. Eng., 129(5), 391-403.   DOI
13 Lehane, B.M. and Randolph, M.F. (2002), "Evaluation of a minimum base resistance for driven pipe piles in siliceous sand", J. Geotech. Geoenviron. Eng., 128(3), 198-205.   DOI
14 Lehane, B.M., Schneider, J.A. and Xu, X. (2007), "Development of the UWA-05 design method for open and closed ended driven piles in siliceous sand", Proceedings of the GeoDenver 2007: New Peaks in Geotechnics Conference, Denver, Colorado, U.S.A., February.
15 Liu, J.W., Zhang, Z.M., Yu, F., and Xie, Z.Z. (2012), "Case history of installing instrumented jacked open-ended piles", J. Geotech. Geoenviron. Eng., 138(7), 810-820.   DOI
16 Luking, J. and Kempfert, H. (2013), "Plugging effect of openended displacement piles", Proceedings of the 18th International Conference on Soil Mechanics and Geotechnical Engineering, Paris, France,September.
17 McCammon, N.R. and Golder, H.Q. (1970), "Some loading tests on long pipe pile", Geotechnique, 20(2), 171-184.   DOI
18 Murff, J.D., Raines, R.D. and Randolph, M.F. (1990), "Soil plug behavior of piles in sand", Proceedings of the 22nd Offshore Technology Conference, Houston, Texas, U.S.A., May.
19 Paik, K.H. and Lee, S.R. (1993), "Behavior of soil plugs in openended model piles driven into sands", Mar. Georesour. Geotechnol., 11(4), 353-373.   DOI
20 Paik, K. and Salgado, R. (2003), "Determination of bearing capacity of open-ended piles in sand", J. Geotech. Geoenviron. Eng., 129(1), 46-57.   DOI
21 Paik, K., Salgado, R., Lee, J. and Kim, B. (2003), "Behavior of Open-and Closed-Ended Piles Driven into Sands", J. Geotech. Geoenviron. Eng., 129(4), 296-306.   DOI
22 Paikowski, S.G., Whitman, R.V. and Baligh, M.M. (1989), "A new look at the phenomenon of offshore pile plugging", Mar. Georesour. Geotechnol., 8(3), 213-230.   DOI
23 Smith, I.M., To, P. and Willson, S.M. (1986), "Plugging of pipe piles", Proceedings of the 3rd International Conference on Numerical Methods in Offshore Piling, Nantes, France, May.
24 Paikowski, S.G. and Whitman, R.V. (1990), "The effects of plugging on pile performance and design", Can. Geotech. J., 27(4), 429-440.   DOI
25 Raines, R.D., Ugaz, O.F. and O'Neill, M.W. (1992), "Driving characteristics of open-toe piles in dense sand", J. Geotech. Eng., 118(1), 72-88.   DOI
26 Sheghait, W.H. (2013), "Effect of plugging on the load carrying capacity of closed and open ended pipe piles", M.Sc. Dissertation, University of Baghdad, Baghadd, Iraq.
27 Szechy, C.H. (1959), "Tests with tubular piles", Acta Technica, 24(1-2), 181-181.
28 Szechy, C.H. (1961), "The effect of vibration and driving upon the voids in granular soil surrounding a pile", Proceedings of the 5th International Conference on Soil Mechanics and Foundation Engineering, Paris, France, July
29 Wang, C., Zhou, S., Wang, B., Guo, P. and Su, H. (2016), "Settlement behavior and controlling effectiveness of two types of rigid pile structure embankments in high-speed railways", Geomech. Eng., 11(6), 847-865.   DOI
30 Zhang, B., Mei, C., Huang, B., Fu, X., Luo, G. and Lv, B. (2017), "Model test on bearing capacity and accumulated settlement of single pile subjected to axial cyclic loading", Chin. J. Geotech. Eng., 31(2), 186-193.
31 ASTM D4254 (2007), Standard Test Method for Minimum Index Density and Unit Weight of Soils and Calculation of Relative Density, American Society for Testing and Materials, West Conshohocken, Pennsylvania, U.S.A.
32 ASTM D4253 (2007), Standard Test Method for Maximum Index Density and Unit Weight of Soils Using a Vibratory Table, American Society for Testing and Materials, West Conshohocken, Pennsylvania, U.S.A.