Performance and behaviour of prebored and precast pile with floating pile tip based on A full-scale field static axial load test

被引:0
|
作者
Beyruni, Abdi Pasya Reihan [1 ,2 ]
Irsyam, Masyhur [1 ]
Sahadewa, Andhika [1 ,3 ]
Rismantojo, Erza [1 ]
Hakim, Abi Maulana [4 ,5 ]
机构
[1] Bandung Inst Technol, Civil Engn, Bandung, West Java, Indonesia
[2] PT Wijaya Karya Beton Tbk, Jakarta, Indonesia
[3] Indonesian Geotech Inztitute, Yogyakarta, Diy, Indonesia
[4] Univ Teknol Malaysia, Razak Fac Technol & Informat, Kuala Lumpur, Malaysia
[5] Inst Teknol Indonesia, Civil Engn, South Tangerang, Banten, Indonesia
关键词
Prebored and precast pile; Hyper straight method; Static load test; Full-scale; Soil cement mixing pile; Stiffened deep cement mixing pile; BEARING CAPACITY;
D O I
10.1016/j.trgeo.2024.101364
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This study investigates the load transfer mechanism of a Prebored and Precast pile (PP pile), constructed installed in accordance with the rules applicable to the Hyper-Straight pile method (HS pile), in clay soils. While the HS pile method, developed in Japan, typically results in high bearing capacity piles in various soil types, its performance in clay soils remains understudied. Our research focuses on a unique configuration where the pile tip "floats" within a soil-cement mixing (SCM) column near the bottom of the borehole, a condition that significantly influences the system's performance. We conducted a full-scale axial static load test on a 500 mm diameter and 140 mm thickness straight shaft precast prestressed concrete spun pile. The pile was instrumented with vibrating wire strain gauges (VWSG) and displacement measuring devices (tell-tales), embedded 15 m deep in a 750 mm diameter SCM column (15.75 m long). The pile tip was positioned 75 cm above the bottom of the borehole, creating a floating condition within the SCM material. Both the pile and the surrounding SCM were instrumented to provide comprehensive data on the system's behavior. The test involved two loading-unloading cycles. The 1stCycle reached a maximum load of 3627 kN, resulting in a 75.52 mm pile head settlement. The 2nd Cycle achieved a maximum load of 4181 kN, leading to a 118.04 mm pile head settlement. In the 1st Cycle, we observed upward movement of the SCM material around the shaft after the pile skin friction reached its maximum capacity. Stress at the pile tip exceeded the unconfined compressive strength of the SCM material, indicating potential local shear failure. Contrary to expectations based on HS pile performance in other soil types, the ultimate bearing capacity of our pile was determined to be 2000 kN, comprising 545 kN from skin friction and 1455 kN from end bearing. This result aligns more closely with the behavior of conventional bored pile rather than the "hyper" capacity typically associated with HS pile. Consequently, we classify our pile as a "prebored and precast pile," like systems used in China and Korea. Our study concludes that the strength of the SCM material and the pile tip location significantly influence the pile's bearing capacity in clay soils. These findings highlight the critical impact of soil type on the performance of piles constructed using the HS method. The observed behavior suggests that current design methods for HS pile may overestimate capacity in clay conditions, emphasizing the importance of soil-specific analysis and testing. This research contributes to the understanding of PP pile behavior in clay soils, providing valuable insights for geotechnical engineers. It underscores the need for refined prediction models and design methods specific to these soil conditions, paving the way for more accurate and reliable foundation designs in regions with predominant clay soils.
引用
收藏
页数:24
相关论文
共 50 条
  • [1] Static and dynamic lateral load behavior of pile groups based on full-scale testing
    Rollins, KM
    Johnson, SR
    Petersen, KT
    Weaver, TJ
    PROCEEDINGS OF THE THIRTEENTH (2003) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL 2, 2003, : 506 - 513
  • [2] Dynamic load test of full-scale pile for the construction and rehabilitation of bridges
    Noor, S. T.
    Islam, M. S.
    Mumtarin, M.
    Chakraborty, N.
    10TH ASIA PACIFIC STRUCTURAL ENGINEERING AND CONSTRUCTION CONFERENCE 2018, 2019, 513
  • [3] FULL-SCALE LATERAL LOAD TESTS OF PILE GROUPS
    KIM, JB
    BRUNGRABER, RJ
    JOURNAL OF THE GEOTECHNICAL ENGINEERING DIVISION-ASCE, 1977, 103 (10): : 1187 - 1190
  • [4] Load tests on full-scale bored pile groups
    Dai, Guoliang
    Salgado, Rodrigo
    Gong, Weiming
    Zhang, Yanbei
    CANADIAN GEOTECHNICAL JOURNAL, 2012, 49 (11) : 1293 - 1308
  • [5] FULL-SCALE LATERAL LOAD TESTS OF PILE GROUPS
    SAUL, WE
    JOURNAL OF THE GEOTECHNICAL ENGINEERING DIVISION-ASCE, 1977, 103 (02): : 147 - 148
  • [6] Full-Scale Loading Test on Pre-bored Precast Pile with Enlarged Base in Shanghai
    Ling, Zao
    Wang, Wei-dong
    Wu, Jiang-bin
    Yuan, Ju-yun
    PROCEEDINGS OF GEOSHANGHAI 2018 INTERNATIONAL CONFERENCE: ADVANCES IN SOIL DYNAMICS AND FOUNDATION ENGINEERING, 2018, : 637 - 645
  • [7] Full-scale model test on load transfer mechanism for jet grouting soil-cement-pile strengthened pile
    Liu Han-long
    Ren Lian-wei
    Zheng Hao
    Xiao Yao-zu
    ROCK AND SOIL MECHANICS, 2010, 31 (05) : 1395 - 1401
  • [8] Discussion of "Load tests on full-scale bored pile groups"
    Fellenius, Bengt H.
    CANADIAN GEOTECHNICAL JOURNAL, 2013, 50 (04) : 451 - 453
  • [9] Lateral load behavior of full-scale pile group in clay
    Rollins, KM
    Peterson, KT
    Weaver, TJ
    JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 1998, 124 (06) : 468 - 478
  • [10] The Horizontal Mode Natural Frequency of a Floating Pile in Layered Soil: Full-Scale Field Test Vs Mathematical Models
    Varghese, Ramon
    Nigesh, S. R. Varun
    Banerjee, Subhadeep
    Boominathan, A.
    INDIAN GEOTECHNICAL JOURNAL, 2023, 53 (04) : 717 - 731