|本期目录/Table of Contents|

[1]刘齐建,苏耀辉,黄奕彬,等.地面超载下摩擦单桩负摩阻力的连续介质力学解[J].建筑科学与工程学报,2024,41(02):173-180.[doi:10.19815/j.jace.2022.04018]
 LIU Qijian,SU Yaohui,HUANG Yibin,et al.Continuum mechanical solution for negative frictional resistance of single floating pile under ground overload[J].Journal of Architecture and Civil Engineering,2024,41(02):173-180.[doi:10.19815/j.jace.2022.04018]
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地面超载下摩擦单桩负摩阻力的连续介质力学解(PDF)
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《建筑科学与工程学报》[ISSN:1673-2049/CN:61-1442/TU]

卷:
41卷
期数:
2024年02期
页码:
173-180
栏目:
岩土工程
出版日期:
2024-03-30

文章信息/Info

Title:
Continuum mechanical solution for negative frictional resistance of single floating pile under ground overload
文章编号:
1673-2049(2024)02-0173-08
作者:
刘齐建1,2,苏耀辉1,黄奕彬3,邓 涛4
(1. 湖南大学 土木工程学院,湖南 长沙 410082; 2. 湖南大学 建筑安全与节能教育部重点实验室,湖南 长沙 410082; 3. 华东勘测设计院(福建)有限公司,福建 福州 350003; 4. 福州大学 土木工程学院,福建 福州 350116)
Author(s):
LIU Qijian1,2, SU Yaohui1, HUANG Yibin3, DENG Tao4
(1. College of Civil Engineering, Hunan University, Changsha 410082, Hunan, China; 2. Key Laboratory of Building Safety and Energy Efficiency of Ministry of Education, Hunan University, Changsha 410082, Hunan, China; 3. Huadong Engineering Corporation Limited(Fujian Province), Fuzhou 350003, Fujian, China; 4. College of Civil Engineering, Fuzhou University, Fuzhou 350116, Fujian, China)
关键词:
地面超载 摩擦桩 变分法 中性面 下拉力
Keywords:
ground overload floating pile variational calculus neutral plane down-drag force
分类号:
TU470
DOI:
10.19815/j.jace.2022.04018
文献标志码:
A
摘要:
针对地面超载引起的摩擦单桩负摩阻力,提出了一种基于桩土相互作用和连续介质力学的竖向位移模型来模拟桩土系统位移,模型中包含了桩土轴线位移函数和沿径向的衰减函数; 采用变分法得到了桩土系统的总势能,从而得到了位移模型中桩土位移和衰减函数的耦合控制方程; 利用迭代法求解了这两个耦合函数,得到了桩身轴力、中性面、负摩阻力、下拉力和土弹簧等效刚度等关键参数的数学表达式; 通过和原位试验及已有理论结果的对比,验证了所提方法的正确性。结果表明:桩土模量比对桩的负摩阻力和下拉力有显著影响,中性面位置与长细比密切相关,而与桩土模量比关系不大; 随着桩土模量比增大和桩长细比减小,桩身同一位置处轴力增长明显,但增长速率变缓; 地面超载作用下桩周土体位移最大沉降出现在地表处,且地表以下0.3倍桩长范围内为位移强烈影响区; 桩长细比和桩土模量比的增加均会使桩周土体位移场影响范围增大。
Abstract:
A vertical displacement model based on pile-soil interaction and continuum mechanics was proposed to simulate the displacement of the pile-soil system in response to the negative friction force of a single pile caused by ground overload. The model included the displacement function of the pile-soil axis and the attenuation function along the radial direction. The total potential energy of the pile-soil system was obtained by using the variational calculus, and the coupled control equations for the pile-soil displacement and attenuation function in the displacement model were obtained. The iterative method was used to solve these two coupling functions, and mathematical expressions for key parameters such as pile axial force, neutral plane, negative frictional resistance, down-drag force, and equivalent stiffness of soil spring were obtained. The correctness of the proposed method were verified through comparison with in-situ experiments and existing theoretical results. The results show that the ratio of pile-soil modulus has a significant impact on the negative friction resistance and down-drag force of piles, and the position of the neutral plane is closely related to the slenderness ratio, while it is not closely related to the ratio of pile-soil modulus. As the pile-soil modulus ratio increases and the pile slenderness ratio decreases, the axial force at the same position of the pile increases significantly, but the growth rate slows down. The maximum settlement of soil displacement around piles under ground overload occurs at the surface, and the range of 0.3 times the pile length below the surface is a strongly affected area of displacement. The increase in pile slenderness ratio and pile-soil modulus ratio will both increase the range of influence on the displacement field of the soil around the pile.

参考文献/References:

[1] TOMLINSON M J.Pile design and construction practice[M].London:Cement and Concrete Association,1987.
[2]曹文昭,杨志银,蔡巧灵,等.软土地基超长桩静载试验中桩侧堆载影响分析[J].建筑科学与工程学报,2021,38(6):1-10.
CAO Wenzhao,YANG Zhiyin,CAI Qiaoling,et al.Effect of surrounding load on static load test of super-long pile in soft soil foundation[J].Journal of Architecture and Civil Engineering,2021,38(6):1-10.
[3]建筑桩基技术规范:JGJ 94—2008[S].北京:中国建筑工业出版社,2008.
Technical code for building pile foundations:JGJ 94—2008[S].Beijing:China Architecture & Building Press,2008.
[4]TERZAGHI K,PECK R B.Soil mechanics in engineering practice[M].2rd ed.New York:Wiley,1967.
[5]FELLENIUS B H.Down-drag on piles in clay due to negative skin friction[J].Canadian Geotechnical Journal,1972,9(4):323-337.
[6]CAO W P,CHEN Y M,WOLFE W E.New load transfer hyperbolic model for pile-soil interface and negative skin friction on single piles embedded in soft soils[J].International Journal of Geomechanics,2014,14(1):92-100.
[7]FELLENIUS B H,SIEGEL T C.Pile drag load and downdrag in a liquefaction event[J].Journal of Geotechnical and Geoenvironmental Engineering,2008,134(9):1412-1416.
[8]王广兵,卢红前,张 源,等.嵌岩灌注桩单桩竖向静载试验研究[J].武汉大学学报:工学版,2021,54(增2):247-251.
WANG Guangbing,LU Hongqian,ZHANG Yuan,et al.Research on the vertical static load test of single pile of the rock-socketed cast-in-place pile[J].Engineering Journal of Wuhan University,2021,54(S2):247-251.
[9]梁善斋.水泥土复合管桩竖向承载特性现场试验[J].岩土工程学报,2021,43(增2):280-283.
LIANG Shanzhai.Field tests on vertical bearing capacity of pipe piles in cement-improved soil[J].Chinese Journal of Geotechnical Engineering,2021,43(S2):280-283.
[10]冯忠居,胡海波,董芸秀,等.削减桩基负摩阻力的室内模拟试验[J].岩土工程学报,2019,41(增2):45-48.
FENG Zhongju,HU Haibo,DONG Yunxiu,et al.Indoor simulation tests on reducing negative skin friction of pile foundation[J].Chinese Journal of Geotechnical Engineering,2019,41(S2):45-48.
[11]RUSSO G,DI GIROLAMO L,MARONE G.BEM and FEM approaches to the analysis of negative skin friction on piles[J].Geotechnical Engineering Journal of the SEAGS & AGSSEA,2020,51(2):103-110.
[12]YAO W J,LIU Y M,CHEN J.Characteristics of negative skin friction for superlong piles under surcharge loading[J].International Journal of Geomechanics,2012,12(2):90-97.
[13]WONG K S,TEH C I.Negative skin friction on piles in layered soil deposits[J].Journal of Geotechnical Engineering,1995,121(6):457-465.
[14]TEH C I,WONG K S.Analysis of downdrag on pile groups[J].Geotechnique,1995,45(2):191-207.
[15]SHEN W Y,TEH C I.A variational solution for downdrag force analysis of pile groups[J].International Journal of Geomechanics,2002,2(1):75-91.
[16]KIM H J,MISSION J L C.Development of negative skin friction on single piles:uncoupled analysis based on nonlinear consolidation theory with finite strain and the load-transfer method[J].Canadian Geotechnical Journal,2011,48(6):905-914.
[17]RANDOLPH M F,WROTH C P.Analysis of deformation of vertically loaded piles[J].Journal of the Geotechnical Engineering Division,1978,104(12):1465-1488.
[18]POULOS H G,MATTES N S.The analysis of downdrag in end-bearing piles[C]//Sociedad Mexicana de Mecanica de Suelos.Proceeding of the 7th International Conference on Soil Mechanics and Foundation Engineering.Mexico City:Sociedad Mexicana de Mecanica de Suelos,1969:203-208.
[19]POULOS H G,DAVIS E H.Prediction of downdrag forces in end-bearing piles[J].Journal of the Geotechnical Engineering Division,1975,101(2):189-204.
[20]POULOS H G.Approximate computer analysis of pile groups subjected to loads and ground movements[J].International Journal for Numerical and Analytical Methods in Geomechanics,1999,23(10):1021-1041.
[21]陈仁朋,周万欢,曹卫平,等.改进的桩土界面荷载传递双曲线模型及其在单桩负摩阻力时间效应研究中的应用[J].岩土工程学报,2007,29(6):824-830.
CHEN Renpeng,ZHOU Wanhuan,CAO Weiping,et al.Improved hyperbolic model of load-transfer for pile-soil interface and its application in study of negative friction of single piles considering time effect[J].Chinese Journal of Geotechnical Engineering,2007,29(6):824-830.
[22]KUWABARA F,POULOS H G.Downdrag forces in group of piles[J].Journal of Geotechnical Engineering,1989,115(6):806-818.
[23]JEONG S,LEE J,JU LEE C.Slip effect at the pile-soil interface on dragload[J].Computers and Geotechnics,2004,31(2):115-126.
[24]JEONG S,KIM S,BRIAUD J L.Analysis of downdrag on pile groups by the finite element method[J].Computers and Geotechnics,1997,21(2):143-161.
[25]HANNA A M,SHARIF A.Drag force on single piles in clay subjected to surcharge loading[J].International Journal of Geomechanics,2006,6(2):89-96.
[26]COMODROMOS E M,BAREKA S V.Evaluation of negative skin friction effects in pile foundations using 3D nonlinear analysis[J].Computers and Geotechnics,2005,32(3):210-221.
[27]WU W B,WANG Z Q,ZHANG Y P,et al.Semi-analytical solution for negative skin friction development on deep foundations in coastal reclamation areas[J].International Journal of Mechanical Sciences,2023,241:107981.
[28]CHOW Y K,CHIN J T,LEE S L.Negative skin friction on pile groups[J].International Journal for Numerical and Analytical Methods in Geomechanics,1990,14(2):75-91.
[29]吴爽爽,胡新丽,章 涵,等.嵌岩桩负摩阻力现场试验与计算方法研究[J].岩土力学,2019,40(9):3610-3617.
WU Shuangshuang,HU Xinli,ZHANG Han,et al.Field test and calculation method of negative skin friction of rock-socketed piles[J].Rock and Soil Mechanics,2019,40(9):3610-3617.
[30]王 涛,褚 卓,刘金砺,等.基桩桩端平面下竖向均化附加应力研究及应用[J].土木工程学报,2021,54(9):96-104.
WANG Tao,CHU Zhuo,LIU Jinli,et al.Research and application of vertical homogenized additional stress under pile tip plane[J].China Civil Engineering Journal,2021,54(9):96-104.
[31]VALLABHAN C V G,MUSTAFA G.A new model for the analysis of settlement of drilled piers[J].International Journal for Numerical and Analytical Methods in Geomechanics,1996,20(2):143-152.
[32]FELLENIUS B H.Results from long-term measurement in piles of drag load and downdrag[J].Canadian Geotechnical Journal,2006,43(4):409-430.
[33]LEE C J,NG C W W.Development of downdrag on piles and pile groups in consolidating soil[J].Journal of Geotechnical and Geoenvironmental Engineering,2004,130(9):905-914.
[34]GIRIJA VALLABHAN C V,DAS Y C.A refined model for beams on elastic foundations[J].International Journal of Solids and Structures,1991,27(5):629-637.
[35]LIU Q J,DENG F J,HE Y B.Kinematic response of single piles to vertically incident P-waves[J].Earthquake Engineering & Structural Dynamics,2014,43(6):871-887.
[36]邓会元,戴国亮,龚维明,等.不同平衡堆载条件下桩基承载特性的原位试验研究[J].岩土力学,2015,36(11):3063-3070.
DENG Huiyuan,DAI Guoliang,GONG Weiming,et al.In situ experimental study of bearing characteristics of pile foundation under different balanced surcharges[J].Rock and Soil Mechanics,2015,36(11):3063-3070.

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备注/Memo

备注/Memo:
收稿日期:2023-03-21
基金项目:国家自然科学基金项目(51878265,52178331)
作者简介:刘齐建(1973-),男,工学博士,教授,博士生导师,E-mail:Q.Liu@hnu.edu.cn。
更新日期/Last Update: 2024-03-25