Please wait a minute...
浙江大学学报(工学版)  2026, Vol. 60 Issue (6): 1176-1184    DOI: 10.3785/j.issn.1008-973X.2026.06.004
土木工程、交通工程     
泥皮和泥浆渗透层对灌注桩竖向承载力的影响
王正振1(),杨泽龙1,戴国亮2,马天忠1,*(),杲斐3,邓友生4
1. 兰州理工大学 土木与水利工程学院,甘肃 兰州 730050
2. 东南大学 土木工程学院,江苏 南京 210096
3. 中铁二十一局集团有限公司,甘肃 兰州 730050
4. 西安科技大学 建筑与土木工程学院,陕西 西安 710054
Influence of mud cake and mud penetration layer on vertical bearing capacity of bored pile
Zhengzhen WANG1(),Zelong YANG1,Guoliang DAI2,Tianzhong MA1,*(),Fei GAO3,Yousheng DENG4
1. School of Civil and Hydraulic Engineering, Lanzhou University of Technology, Lanzhou 730050, China
2. School of Civil Engineering, Southeast University, Nanjing 210096, China
3. China Railway 21st Bureau Group Limited Company, Lanzhou 730050, China
4. School of Architecture and Civil Engineering, Xi’an University of Science and Technology, Xi’an 710054, China
 全文: PDF(6779 KB)   HTML
摘要:

为了研究泥皮和泥浆渗透层对灌注桩竖向承载特性的影响,通过室内模型试验,分析泥浆循环时间对灌注桩竖向承载特性的影响. 基于剪切位移法原理,推导考虑泥皮及泥浆渗透层的单桩沉降计算公式,通过模型试验和数值模拟验证了理论的正确性. 探讨泥浆渗透灌注桩的影响因素. 结果表明,桩周土的水质量分数随着泥浆循环时间的增大而增大. 随着泥浆循环时间的增大,且在桩顶荷载相同的前提下,试桩的桩顶沉降、桩身轴力和桩端阻力会逐渐变大,但桩身侧摩阻力会逐渐减小. 理论计算结果与模型试验和数值模拟的结果比较吻合,说明了理论公式的正确性. 桩顶沉降和承载力与泥皮和泥浆渗透层的塑性切变模量呈负相关关系.

关键词: 灌注桩泥浆循环时间泥皮泥浆渗透层承载特性    
Abstract:

The laboratory model test was conducted to analyze the influence of mud circulation time on the vertical bearing characteristic of bored pile in order to analyze the impact of mud cake and mud penetration layer on the vertical bearing characteristic of bored pile. A calculation formula for single pile settlement considering the mud cake and mud penetration layer was derived based on the principle of the shear displacement method, and the validity of the theory was verified through model test and numerical simulation. The influencing factor of mud penetration on bored pile was discussed. Results showed that the water mass fraction of the soil around the pile increased with the extension of mud circulation time. The pile top settlement, pile shaft axial force and pile end resistance of the test pile gradually increased as the mud circulation time increased under the premise of the same pile top load, while the pile shaft side friction resistance gradually decreased. The results of theoretical calculation accorded well with those of model test and numerical simulation, which confirmed the correctness of the theoretical formula. The pile top settlement and bearing capacity are negatively correlated with the plastic shear modulus of the mud cake and the mud penetration layer.

Key words: bored pile    mud circulation time    mud cake    mud penetration layer    bearing characteristic
收稿日期: 2025-06-27 出版日期: 2026-05-06
CLC:  TU 473  
基金资助: 国家自然科学基金资助项目(52068048);甘肃省联合科研基金资助项目(24JRRA871);兰州理工大学红柳优秀青年人才支持计划资助项目.
通讯作者: 马天忠     E-mail: wangzz@lut.edu.cn;matz0914@163.com
作者简介: 王正振(1989—),男,副教授,从事支挡结构、基础工程研究. orcid.org/0000-0001-8470-1258. E-mail:wangzz@lut.edu.cn
服务  
把本文推荐给朋友
加入引用管理器
E-mail Alert
作者相关文章  
王正振
杨泽龙
戴国亮
马天忠
杲斐
邓友生

引用本文:

王正振,杨泽龙,戴国亮,马天忠,杲斐,邓友生. 泥皮和泥浆渗透层对灌注桩竖向承载力的影响[J]. 浙江大学学报(工学版), 2026, 60(6): 1176-1184.

Zhengzhen WANG,Zelong YANG,Guoliang DAI,Tianzhong MA,Fei GAO,Yousheng DENG. Influence of mud cake and mud penetration layer on vertical bearing capacity of bored pile. Journal of ZheJiang University (Engineering Science), 2026, 60(6): 1176-1184.

链接本文:

https://www.zjujournals.com/eng/CN/10.3785/j.issn.1008-973X.2026.06.004        https://www.zjujournals.com/eng/CN/Y2026/V60/I6/1176

图 1  模型桩及模型试验设备的布置图
图 2  钢筋笼及应变片的布置
参数数值参数数值
膨润土质量/g160黏度/s20.91
水体积/mL1000砂的质量分数/%2
CMC质量/g1胶体体积分数/%98
密度/(g·cm?3)1.14酸碱度8
表 1  泥浆的性能参数
图 3  泥浆性能试验及模型试验设备
桩号r0/mml/mmt/h
Z1407500
Z2407501
Z3407502
表 2  模型桩的设计参数
图 4  桩周土水质量分数的变化曲线
图 5  试桩的P-S曲线
图 6  试桩桩身平均侧摩阻力的分布曲线
图 7  桩周土的剪切变形图
图 8  桩的受力分析图
介质E/MPaλφ/(°)n
10000.202 400
土体43.520.3023.731164
渗透层22.50.3912.82880
泥皮6.50.4510.5480
表 3  数值模拟的材料参数
图 9  数值模拟各部件的网格划分
图 10  泥浆护壁灌注桩P-S曲线的计算结果对比图
图 11  泥皮塑性切变模量变化对桩顶沉降的影响
图 12  泥浆渗透层塑性切变模量变化对桩顶沉降的影响
1 朱彦鹏, 杨奎斌, 王海明, 等 微浸水对桩基负摩阻力影响的试验初探[J]. 岩土工程学报, 2018, 40 (Suppl.1): 1- 7
ZHU Yanpeng, YANG Kuibin, WANG Haiming, et al Preliminary exploration of tests on effect of micro-immersion on negative skin friction of pile foundation[J]. Chinese Journal of Geotechnical Engineering, 2018, 40 (Suppl.1): 1- 7
doi: 10.11779/CJGE2018S1001
2 CHEN C, LENG W M, YANG Q, et al Effect of a filter cake on shear behavior of sand-concrete pile interface[J]. Journal of Central South University, 2022, 29 (6): 2019- 2032
doi: 10.1007/s11771-022-5080-z
3 GUO H, ZHANG Y A research on road and bridge detection based on test detection technology[J]. Journal of World Architecture, 2022, 6 (4): 34- 43
doi: 10.26689/jwa.v6i4.4116
4 LAM C, JEFFERIS S A, MARTIN C M Effects of polymer and bentonite support fluids on concrete–sand interface shear strength[J]. Géotechnique, 2014, 64 (1): 28- 39
doi: 10.1680/geot.13.p.012
5 闵凡路, 魏代伟, 姜腾, 等 泥浆在地层中的渗透特性试验研究[J]. 岩土力学, 2014, 35 (10): 2801- 2806
MIN Fanlu, WEI Daiwei, JIANG Teng, et al Experimental study of law of slurry infiltration in strata[J]. Rock and Soil Mechanics, 2014, 35 (10): 2801- 2806
doi: 10.16285/j.rsm.2014.10.006
6 BALAKRISHNAN E G, BALASUBRAMANIAM A S, PHIEN-WEJ N Load deformation analysis of bored piles in residual weathered formation[J]. Journal of Geotechnical and Geoenvironmental Engineering, 1999, 125 (2): 122- 131
doi: 10.1061/(ASCE)1090-0241(1999)125:2(122)
7 赵春风, 刘丰铭, 杨砚宗, 等 砂土中泥浆循环时间对单桩竖向承载特性的影响研究[J]. 岩石力学与工程学报, 2016, 35 (Suppl.1): 3323- 3330
ZHAO Chunfeng, LIU Fengming, YANG Yanzong, et al Study on the influence of slurry circulation time on the vertical bearing characteristics of single piles in sandy soil[J]. Chinese Journal of Rock Mechanics and Engineering, 2016, 35 (Suppl.1): 3323- 3330
doi: 10.13722/j.cnki.jrme.2015.0721
8 YU J. Effects of construction on axial load transfer along bored piles in residual soils [D]. Singapore: Nanyang Technological University, 2000.
9 王端端, 周志军, 吕彦达, 等 湿陷性黄土中成孔方式对桩基承载力影响试验研究[J]. 岩土力学, 2015, 36 (10): 2927- 2933
WANG Duanduan, ZHOU Zhijun, LV Yanda, et al An experimental study of influence of drilling method on the bearing capacity of pile foundation in collapsible loess area[J]. Rock and Soil Mechanics, 2015, 36 (10): 2927- 2933
doi: 10.16285/j.rsm.2015.10.024
10 王忠福, 刘汉东, 贾金禄, 等 大直径深长钻孔灌注桩竖向承载力特性试验研究[J]. 岩土力学, 2012, 33 (9): 2663- 2670
WANG Zhongfu, LIU Handong, JIA Jinlu, et al Experimental study of vertical bearing capacity behavior of large-diameter bored cast-in-situ long pile[J]. Rock and Soil Mechanics, 2012, 33 (9): 2663- 2670
doi: 10.16285/j.rsm.2012.09.036
11 COOKE R W, PRICE G, TARR K Jacked piles in London Clay: a study of load transfer and settlement under working conditions[J]. Géotechnique, 1979, 29 (2): 113- 147
12 张瑞坤, 石名磊, 倪富健, 等 黏性土中大直径超长钻孔灌注桩承载性状及单桩沉降分析[J]. 岩石力学与工程学报, 2013, (Suppl.2): 4190- 4198
ZHANG Ruikun, SHI Minglei, NI Fujian, et al Analysis of bearing properties of large-diameter and super-long bored pile in cohesive soil and single pile settlement[J]. Chinese Journal of Rock Mechanics and Engineering, 2013, (Suppl.2): 4190- 4198
13 赵春风, 鲁嘉, 孙其超, 等 大直径深长钻孔灌注桩分层荷载传递特性试验研究[J]. 岩石力学与工程学报, 2009, 28 (5): 1020- 1026
ZHAO Chunfeng, LU Jia, SUN Qichao, et al Experimental study of load transmission property of large-diameter bored cast-in-situ deep and long pile in different soil layers[J]. Chinese Journal of Rock Mechanics and Engineering, 2009, 28 (5): 1020- 1026
14 叶帅华, 辛亮亮 基于桩-土界面剪切特性的单桩沉降和承载问题研究[J]. 岩土力学, 2024, 45 (5): 1457- 1471
YE Shuaihua, XIN Liangliang Settlement and bearing capacity of single pile based on shear characteristics of pile-soil interface[J]. Rock and Soil Mechanics, 2024, 45 (5): 1457- 1471
doi: 10.16285/j.rsm.2023.0947
15 中华人民共和国建设部. 建筑桩基技术规范: JGJ 94—2008 [S]. 北京: 中国建筑工业出版社, 2008.
16 赵春风, 李俊, 邱志雄, 等 广东地区大直径超长钻孔灌注桩荷载传递特性试验研究[J]. 岩石力学与工程学报, 2015, 34 (4): 849- 855
ZHAO Chunfeng, LI Jun, QIU Zhixiong, et al Experimental research on load transfer of large-diameter and super-long bored pile in Guangdong area[J]. Chinese Journal of Rock Mechanics and Engineering, 2015, 34 (4): 849- 855
doi: 10.13722/j.cnki.jrme.2015.04.023
17 王卫东, 杨昱, 吴江斌, 等 软土地区预制桩搅拌植桩承载变形特性现场试验研究[J]. 岩土工程学报, 2025, 47 (10): 2136- 2144
WANG Weidong, YANG Yu, WU Jiangbin, et al Full-scale experimental study on load-deformation characteristics of prebored grouted planted piles in soft ground[J]. Chinese Journal of Geotechnical Engineering, 2025, 47 (10): 2136- 2144
18 ZHANG M, ZHU X, YU G, et al Permeability of muddy clay and settlement simulation[J]. Ocean Engineering, 2015, 104: 521- 529
doi: 10.1016/j.oceaneng.2015.05.031
19 张忠苗. 桩基工程 [M]. 北京: 中国建筑工业出版社, 2007.
20 董和平, 董建华, 吴晓磊 基于ABAQUS的咬合桩支护深基坑数值分析[J]. 兰州理工大学学报, 2024, 50 (4): 121- 128
DONG Heping, DONG Jianhua, WU Xiaolei Numerical analysis of secant pile supporting deep foundation pit based on ABAQUS[J]. Journal of Lanzhou University of Technology, 2024, 50 (4): 121- 128
doi: 10.3969/j.issn.1673-5196.2024.04.018
[1] 李宇杰,冯忠居,何静斌,张聪,王思琦. 陡坡段穿越溶洞桩基竖向承载特性离心试验[J]. 浙江大学学报(工学版), 2024, 58(11): 2384-2392.
[2] 张聪,冯忠居,王富春,关云辉,张福强. 基于离心模型试验的近断层单桩水平承载特性研究[J]. 浙江大学学报(工学版), 2023, 57(3): 542-551.
[3] 刘念武, 龚晓南, 俞峰. 大直径钻孔灌注桩的竖向承载性能[J]. 浙江大学学报(工学版), 2015, 49(4): 763-768.
[4] 朱奎 徐日庆 郭印. 刚-柔性桩复合地基中承载性状原位试验研究[J]. J4, 2008, 42(1): 72-76.