学报(中文)

管夯深层加固方法的软基现场工艺试验

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  • 河海大学 岩土力学与堤坝工程教育部重点实验室; 土木与交通学院, 南京 210098
唐建辉(1994-),男,河南省周口市人,硕士生,主要从事软土地基处理研究.

网络出版日期: 2019-08-02

基金资助

中央高校基本科研业务费(2018B13614),国家自然科学基金(51408187)资助项目

Field Technological Test on Soft Ground Improvement by the In-Tube Deep Dynamic Compaction Method

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  • Key Laboratory of Ministry of Education for Geomechanics and Embankment Engineering; College of Civil and Transportation Engineering, Hohai University, Nanjing 210098, China

Online published: 2019-08-02

摘要

为了克服传统强夯法加固软土地基的局限性,提出了一种管夯深层加固方法,并介绍了管夯深层加固方法所用机械设备、加固原理和施工工艺,同时,在福建省某软土地基处理项目中开展了管夯深层加固方法的现场工艺试验,分析了管夯填料用量和深层降水方式等影响因素.结果表明:所提出的管夯深层加固方法能够有效避免管内夯击过程中超静孔隙水压力的积累,且在夯后静置约1d即可消散超静孔隙水压力;采用管夯深层加固方法加固后,增加了淤泥质土中粗粒填料比例,使得地基土体的锥尖阻力和锥侧阻力均成倍增长,地基有效处理深度可达15m以上,从而克服了采用传统强夯法出现的超静孔隙水压力消散周期长、有效加固深度浅的缺陷.

本文引用格式

唐建辉,李平,王新浪,金奕潼 . 管夯深层加固方法的软基现场工艺试验[J]. 上海交通大学学报, 2019 , 53(7) : 812 -818 . DOI: 10.16183/j.cnki.jsjtu.2019.07.007

Abstract

To overcome the shortcomings of traditional dynamic compaction method, a new technique of intube deep dynamic compaction was proposed. The equipment, reinforcement mechanism and construction procedures of this new method were described. Based on the field test in Fujian, some factors such as filler content and deep dewatering were monitored during reinforcement. The test results show that the accumulation of excess pore water pressure during the tamping process can be effectively avoided by the intube deep dynamic compaction method, and the excess pore water pressure will dissipate completely after 1 day of dynamic consolidation. When the sand grains are added into the soil, the tip resistance and cone side resistance increased exponentially after the reinforcement, and the effective depth of foundation treatment can reach more than 15m in depth. The defects of the long period of dissipation of excess pore pressure and shallow depth of the effective reinforcement in conventional dynamic consolidation method are overcame.

参考文献

[1]MENARD L, BROISE Y. Theoretical and practical aspect of dynamic consolidation[J]. Gotechnique, 1975, 25(1): 3-18. [2]高政国, 杜雨龙, 黄晓波, 等. 碎石填筑场地强夯加固机制及施工工艺[J]. 岩石力学与工程学报, 2013, 32(2): 377-384. GAO Zhengguo, DU Yulong, HUANG Xiaobo, et al. Reinforcement mechanism and construction technology of broken stone fills by dynamic consolidation[J]. Chinese Journal of Rock Mechanics and Engineering, 2013, 32(2): 377-384. [3]张建辉, 张静堃, 孟黎, 等. 强夯加固风成砂地基的土层沉降研究[J]. 工程力学, 2014, 31(增): 145-148. ZHANG Jianhui, ZHANG Jingkun, MENG Li, et al. Soil layer settlement of compacted aeolian sand foundations[J]. Engineering Mechanics, 2014, 31(S): 145-148. [4]FENG S J, DU F L, SHI Z M, et al. Field study on the reinforcement of collapsible loess using dynamic compaction[J]. Engineering Geology, 2015, 185: 105-115. [5]陈忠清, 徐超, 叶观宝, 等. 强夯加固粉土地基试验研究[J]. 工业建筑, 2013, 43(4): 106-110. CHEN Zhongqing, XU Chao, YE Guanbao, et al. Fild evaluation of dynamic compaction on silt foundation[J]. Industrial Construction, 2013, 43(4): 106-110. [6]江荣丰. 动力固结法加固饱和土地基的适用条件研究[J]. 岩石力学与工程学报, 2012, 31(增1): 3197-3202. JIANG Rongfeng. Applicable conditions of dynamic consolidation method in saturated soil foundation[J]. Chinese Journal of Rock Mechanics and Engineering, 2012, 31(S1): 3197-3202. [7]白冰, 徐华轩, 刘海波, 等. 强夯法加固铁路松软土地基现场试验研究[J]. 中国铁道科学, 2010, 31(4): 1-6. BAI Bing, XU Huaxuan, LIU Haibo, et al. Field test study on the reinforcement for the saturated soft soil foundation of railway using the dynamic consolidation[J]. China Railway Science, 2010, 31(4): 1-6. [8]文思强, 李云鹏, 马康. 强夯能量利用率反演及加固影响范围研究[J]. 岩土力学, 2015, 36(增2): 185-192. WEN Siqiang, LI Yunpeng, MA Kang. Research on inversion of energy efficiency and compacted and affected scope of dynamic compaction[J]. Rock and Soil Mechanics, 2015, 36(S2): 185-192. [9]袁海平, 韩治勇, 石贤增, 等. 强夯法在皖江软土路基处理中的应用[J]. 施工技术, 2016, 45(11): 50-54. YUAN Haiping, HAN Zhiyong, SHI Xianzeng, et al. Application of dynamic compaction method in soft soil subgrade treatment in Wanjiang region [J]. Construction Technology, 2016, 45(11): 50-54. [10]刘洋, 张铎, 闫鸿翔. 吹填土强夯加排水地基处理的数值分析与应用[J]. 岩土力学, 2013, 34(5): 1478-1486. LIU Yang, ZHANG Duo, YAN Hongxiang. Nume-rical simulation and application of dynamic compaction with drainage for hydraulic fill deposits[J]. Rock and Soil Mechanics, 2013, 34(5): 1478-1486. [11]郑凌逶, 周风华. 强夯置换软土中碎石墩形成过程的试验研究[J]. 岩土力学, 2014, 35(1): 90-97. ZHENG Lingwei, ZHOU Fenghua. Experimental study of forming process of replacement pier in soft soil using dynamic replacement method[J]. Rock and Soil Mechanics, 2014, 35(1): 90-97. [12]符洪涛, 王军, 蔡袁强, 等. 低能量强夯-电渗法联合加固软黏土地基试验研究[J]. 岩石力学与工程学报, 2015, 34(3): 612-620. FU Hongtao, WANG Jun, CAI Yuanqiang, et al. Experimental study of combined application of electro-osmosis and low-energy dynamic compaction in soft ground reinforcement [J]. Chinese Journal of Rock Mechanics and Engineering, 2015, 34(3): 612-620. [13]刘红军, 吴腾, 马江, 等. 基于孔压监测的强夯置换和砂井-强夯处理饱和软土地基试验研究[J]. 中国海洋大学学报, 2015, 45(2): 109-114. LIU Hongjun, WU Teng, MA Jiang, et al. An experimental study on saturated soft ground improvement with dynamic compaction replacement and DCM combined with sand-drain based on monitoring of pore water pressure[J]. Periodical of Ocean University of China, 2015, 45(2): 109-114. [14]马健, 姜爽, 刘丽. 高能级强夯置换处理软土地基孔隙水压力研究[J]. 施工技术, 2017, 46(8): 12-15. MA Jian, JIANG Shuang, LIU Li. Research on pore water pressure for treatment of soft soil foundation by high energy dynamic compaction replacement method[J]. Construction Technology, 2017, 46(8): 12-15. [15]孙田磊, 刘叔灼, 王永平, 等. 高能级强夯加固软基现场试验研究[J]. 武汉大学学报, 2014, 47(6): 789-793. SUN Tianlei, LIU Shuzhuo, WANG Yongping, et al. In-situ experimental research on high energy dynamic compaction on soft foundation[J]. Engineering Journal of Wuhan University, 2014, 47(6): 789-793.
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