Experimental study on horizontal bearing behaviors of different types of full-scale piles under reciprocating horizontal loads

被引:0
|
作者
Zheng G. [1 ,2 ]
Liu C. [1 ,2 ]
Liu Y.-C. [3 ]
Hu Q.-B. [1 ]
Wang C.-B. [1 ]
Kang G.-Y. [1 ]
Liu Y.-P. [1 ]
机构
[1] School of Civil Engineering, Tianjin University, Tianjin
[2] Key Laboratory of Coast Civil Structure Safety Ministry of Education, Tianjin
[3] Tianjin Pile Foundation Technology Engineering Center, Tianjin
关键词
Bored cast-in-situ pile; Horizontal bearing behavior; Non-prestressed reinforcement; Prestressed pile; Pseudo-static test;
D O I
10.11779/CJGE201901003
中图分类号
学科分类号
摘要
The field pseudo-static tests on 38 prototype piles in in-situ soil conditions, which contain prestressed pipe piles, prestressed squared piles and bored cast-in-situ piles, are made in a typical soft soil site of Hangu, Tianjin. The bearing and seismic behaviors of all kinds of full-scale piles under the pile-soil interaction subjected to low-cycle reciprocating horizontal loads at the pile top are studied. The failure modes, load-displacement relationships and displacement ductility among the prestressed pipe piles, composite-reinforced piles with distributed non-prestressed reinforcements and bored cast-in-situ piles are compared. The results indicate that the regular prestressed pipe pile has poor ductility and is brittle during failure. The displacement ductility and energy dissipation capacity of the composite-reinforced piles are obviously improved by adding non-prestressed reinforcements in addition to prestressed steel bars. This consequently leads to the ductile failure mode. Therefore, adding conventional steel without prestress is an effective measure to improve the seismic performance of prestressed piles. The displacement ductility factor of all the bored cast-in-situ piles with different reinforcement ratios exceeds 4.5, which means that their ductility and energy dissipation capacity are good. The displacement ductility factors of both the composite-reinforced piles and bored cast-in-situ piles increase at first then decrease with the reinforcement ratio of the increasing non-prestressed reinforcements while there is an optimal reinforcement ratio of the displacement ductility. © 2019, Editorial Office of Chinese Journal of Geotechnical Engineering. All right reserved.
引用
收藏
页码:32 / 40
页数:8
相关论文
共 20 条
  • [1] Liu C.-Y., Zhang Z.-S., Mu H.-S., Seismic Performance and New Progress of Prestressed Concrete Pipe Pile, pp. 1-2, (2013)
  • [2] Davisson M.T., Salley J.R., Model study of laterally loaded piles, Journal of Soil Mechanics & Foundations Div, 96, 5, pp. 1605-1627, (1970)
  • [3] Mayne P.W., Kulhawy F.H., Laboratory loaded modeling of laterally loaded drilled shafts in clay, J Geotechnical Engineering, 121, 12, pp. 827-835, (1995)
  • [4] Dyson G.J., Randolph M.F., Monotonic laterally loading of piles in calcareous sand, Journal of Geoteehnieal and Geoenvironmental Engineering, 127, 4, pp. 346-352, (2001)
  • [5] Wang Y., Lin J., Chen J.-J., Et al., Field test for the behavior of pre-stressed pipe piles in soft subsoil under lateral load, Rock and Soil Mechanics, 26, pp. 39-42, (2005)
  • [6] Zhou W.-Q., Cai J., Lin Y.-X., Et al., Expermiental investigation into PHC pipe piles under lateral load in deep soft soil foundation, Journal of South China University of Technology (Natural Science Edition), 35, 7, pp. 131-136, (2007)
  • [7] Wang T.-C., Yang Z.-J., Zhao H.-L., Et al., Experimental study and numerical analysis on seismic behavior of prestressed high strength concrete pipe pile, Proceedings of the 16th National Conference on the Study of Concrete and Prestressed Concrete and the 12th Session of the Academic Conference of Prestress, pp. 45-53, (2013)
  • [8] Wang T.-C., Wang W.-J., Zhao H.-L., Et al., Seismic performance of different prestressed high strength concrete pipe piles, Industrial Construction, 44, 7, pp. 84-89, (2014)
  • [9] Li Y.-Y., Chen Y.-F., Liu K., Et al., Seismic performance of prestressed high-intensity concrete pile, Journal of Hebei University of Technology, 42, 5, pp. 99-103, (2013)
  • [10] Liu C.-U., Li G.-H., Li B., Numerical analysis of shaking table test for prestressed pipe piles, Rock and Soil Mechanics, 33, pp. 265-269, (2012)