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| Study on energy dissipation characteristics of micro steel tube pile-soil composite anti slide structure |
| GAO Yongtao1,2,XU Qiang1,2,ZHAO Qihua1,2,WANG Gang1,2,WANG Qiongmei1,2 |
| (1.State Key Laboratory of Geohazard Prevention and Geoenvironment Protection,Chengdu University of Technology,Chengdu,Sichuan,610059,China;2. College of Environment and Civil Engineering,Chengdu University of Technology,Chengdu,Sichuan,610059,China) |
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Abstract In order to study the energy dissipation characteristics of micro steel tube pile-soil composite anti slide structure (hereinafter referred to as pile-soil composite structure) under earthquake action,a quasi-static direct shear test device for the soil-pile composite structure is designed,and three models of pile-soil composite structure with the same pile spacing and different pile diameters are tested under cyclic loading. The bearing capacity,hysteretic performance,stiffness degradation,ductility and energy dissipation capacity of the test models are compared and analyzed. The results show that the pile-soil composite structure can work together under low cyclic reciprocating load. When the distance between piles is about 10 times of the pile diameter,the pile-soil composite structure has better energy dissipation capacity. However,the energy dissipation capacity of the pile-soil composite structure decreases obviously when the ratio of the pile spacing to the pile diameter is less than 5.9. The model with a smaller pile diameter is closer in bearing capacity,hysteretic performance and energy dissipation capacity,and the hysteretic curve is fuller. When the pile diameter is large,the bearing capacity,hysteretic performance and energy dissipation capacity of the model decrease obviously.
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[1]许 强,董秀军,李为乐. 基于天–空–地一体化的重大地质灾害隐患早期识别与监测预警[J]. 武汉大学学报:信息科学版,2019,44(7):957–966.(XU Qiang,DONG Xiujun,LI Weile. Integrated space-air-ground early detection,monitoring and warning system for potential catastrophic geohazards[J]. Geomatics and Information science of Wuhan University,2019,44(7):957–966.(in Chinese))
[2]郑颖人,叶海林,黄润秋,等.边坡地震稳定性分析探讨[J]. 地震工程与工程振动,2010,30(2):173–180.(ZHENG Yingren,YE Hailin,HUANG Runqiu,et al. Study on the seismic stability analysis of a slope[J]. Journal of Earthquake Engineering and Engineering Vibration,2010,30(2):173–180.(in Chinese))
[3]陈再谦,郭 果,郭维祥,等. 微型钢管抗滑桩的受力特点及其应用[J]. 兰州大学学报:自然科学版,2017,53(1):43–47.(CHEN Zaiqian,GUO Guo,GUO Weixiang,et al. Stress characteristics and application of micro steel anti-slide piles[J]. Journal of Lanzhou University:Natural Science,2017,53(1):43–47.(in Chinese))
[4]BRUCE D A,DIMILLIO A F,JURAN I. A primer on micro-piles[J]. Civil Engineering,1995,65(12):51–54.
[5]BRUCE D A,CADDEN A W,SABATINI P J. Practical advice for foundation design micro-piles for structural support[C]// GSP 131 Contemporary Issues in Foundation Engineering,ASCE.[s. l. ]:[s. n.],2005:1–25.
[6]邹越强,李 彬. 树根桩防治滑坡的研究[J]. 合肥工业大学学报:自然科学版,1994,14(1):120–124. (ZOU Yueqiang,LI Bin. The study on controlling landslides with root piles[J]. Journal of Hefei University of Technology,1994,14(1):120–124.(in Chinese))
[7]丁光文,王 新. 微型桩复合结构在滑坡整治中的应用[J]. 岩土工程技术,2004,18(1):47–50.(DING Guangwen,WANG Xin. Application of micropiling compound structure in a landslide treatment engineering[J]. Geotechnical Engineering Technique,2004,18(1):47–50.(in Chinese))
[8]姜春林,吴顺川,吴承霞,等. 复活古滑坡治理及微型抗滑桩承载力机制[J]. 北京科技大学学报,2007,29(10):975–979.(JIANG Chunlin,WU Shunchuan,WU Chengxia,et al. Reinforcement of a revivatory ancient landslide and mechanism of mini-type anti-sliding piles[J]. Journal of University of Science and Technology Beijing,2007,29(10):975–979.(in Chinese))
[9]刘 凯,刘小丽,苏媛媛. 微型抗滑桩的应用发展研究现状[J]. 岩土力学,2008,29(增):675–679.(LIU Kai,LIU Xiaoli,SU Yuanyuan. Research on application development of anti-slide micro piles[J]. Rock and Soil Mechanics,2008,29(Supp.):675–679.(in Chinese))
[10]苏媛媛,张占民,刘小丽.微型抗滑桩设计计算方法综述与探讨[J]. 岩土工程学报,2010,32(增1):224–228.(SU Yuanyuan,ZHANG Zhanmin,LIU Xiaoli. Computation methods of anti-sliding micro piles:an overview[J]. Chinese Journal of Geotechnical Engineering,2010,32(Supp.1):224–228.(in Chinese))
[11]傅 强,孙飞飞,唐承铁,等. 双排微型抗滑桩的抗滑效果[J]. 中南大学学报:自然科学版,2013,44(4):1 596–1 602.(FU Qiang,SUN Feifei,TANG Chengtie,et al. Effect of double-row anti-slide micro piles[J]. Journal of Central South University:Science and Technology,2013,44(4):1 596–1 602.(in Chinese))
[12]孙书伟,张 奎,朱本珍. 微型桩加固土质边坡极限抗力分析方法[J]. 中国公路学报,2018,31(2):115–123.(SUN Shuwei,ZHANG Kui,ZHU Benzhen. Method for analysis of micro pile ultimate resistance in soil slope stabilization[J]. China Journal of Highway and Transport,2018,31(2):115–123.(in Chinese))
[13]颜天佑,蔡耀军,熊润林,等. 膨胀土挖方渠道预支护多排微型抗滑桩设计[J]. 人民长江,2014,45(7):41–43.(YAN Tianyou,CAI Yaojun,XIONG Runlin,et al. Design of pre-supported micro anti-sliding piles with multi-rows for excavated expansive soil canal[J]. Yangtze River,2014,45(7):41–43.(in Chinese))
[14]王树丰,殷跃平,门玉明. 黄土滑坡微型桩抗滑作用现场试验与数值模拟[J]. 水文地质工程地质,2010,37(6):22–26.(WANG Shufeng,YIN Yueping,MEN Yuming. In-situ test and numerical analysis of skid resistance for micropile to loess landslide[J]. Hydrogeology and Engineering Geology,2010,37(6):22–26.(in Chinese))
[15]胡毅夫,王庭勇,唐承铁. 微型抗滑桩组合结构模型试验与结构影响分析[J]. 铁道科学与工程学报,2012,9(5):54–58.(HU Yifu,WANG Tingyong,TANG Chengtie. Model test of micro-pile composite structure and the impact of composite structure[J]. Journal of Railway Science and Engineering,2012,9(5):54–58.(in Chinese))
[16]辛建平,唐晓松,郑颖人. 单排与三排微型抗滑桩大型模型试验研究[J]. 岩土力学,2015,36(4):1 050–1 056.(XIN Jianping,TANG Xiaosong,ZHENG Yingren. Large-scale model tests of single-row and triple-row anti-slide micro piles[J]. Rock and Soil Mechanics,2015,36(4):1 050–1 056.(in Chinese))
[17]辛建平,郑颖人,唐晓松. 基于弹塑性模型的微型抗滑桩破坏机制研究[J]. 铁道科学与工程学报,2014,33(增2):4 113–4 121.(XIN Jianping,ZHENG Yingren,TANG Xiaosong. Research on failure mechanism of anti-sliding micropiles based on elastoplastic model[J]. Chinese Journal of Rock Mechanics and Engineering,2014,33(Supp.2):4 113–4 121.(in Chinese))
[18]晏洪刚. 微型钢管抗滑桩的抗滑机制研究[硕士学位论文][D]. 成都:成都理工大学,2015:57–76.(YAN Honggang. Study on the sliding resistance mechanism of micro steel tube slide-resistant pile[M. S. Thesis][D]. Chengdu:Chengdu University of Technology,2015:57–76.(in Chinese))
[19]仇成威. 微型钢管抗滑桩(群)-土复合结构的抗震性能试验研究[硕士学位论文][D]. 成都:成都理工大学,2015.(QIU Chengwei. Experimental study on seismic performance of the micro steel pipe-soil composite structure[M. S Thesis][D]. Chengdu:Chengdu University of Technology,2015.(in Chinese))
[20]肖世国,鲜 飞,王唤龙. 一种微型桩组合抗滑结构内力分析方法[J]. 岩石力学,2010,31(8):2 553–2 564.(XIAO Shiguo,XIAN Fei,WANG Huanlong. Analytical method of internal forces of a combining micro piles structure[J]. Rock and Soil Mechanics,2010,31(8):2 553–2 564.(in Chinese))
[21]王成华,陈永波,林立相. 抗滑桩间土拱力学特性与最大桩间距分析[J]. 山地学报,2001,19(6):556–559.(WANG Chenghua,CHEN Yongbo,LIN Lixiang. Soil arch mechanical character and suitable space between one another anti-sliding pile[J]. Journal of Mountain Science,2001,19(6):556–559.(in Chinese))
[22]周德培,肖世国,夏 雄. 边坡工程中抗滑桩合理桩间距的探讨[J]. 岩土工程学报,2004,2(1):132–135.(ZHOU Depei,XIAO Shiguo,XIA Xiong. Discussion on rational spacing between adjacent anti-slide piles in some cutting slope projects[J]. Chinese Journal of Geotechnical Engineering,2004,2(1):132–135.(in Chinese))
[23]胡修文,唐辉明,刘佑荣. 三峡库区赵树岭滑坡稳定性物理模拟试验研究[J]. 岩石力学与工程学报,2005,24(12):2 089–2 095.(HU Xiuwen,Tanghuiming,LIU Yourong. Physical model studies on stability of Zhaoshuling landslide in area of three gorges reservoir[J]. Chinese Journal of Rock Mechanics and Engineering,2005,24(12):2 089–2 095.(in Chinese))
[24]THOMPSON M. J. Experimental load transfer of piles subject to lateral soil movement[C]// Transportation Scholars Conference. Iowa:Iowa State University,2004:2–25.
[25]中华人民共和国国家标准. GB/T50152—2012.混凝土结构试验方法标准[S]. 北京:中国建筑工业出版社,2012.(National Standards of the People's Republic of China. GB/T50152—2012.Standard for test method of concrete structures[S]. Beijing:China Architecture and Building Press,2012.(in Chinese))
[26]韩建强,李 莉,王一功,等. C80高强混凝土钢板剪力墙抗震延性关键技术试验研究[J]. 土木工程学报,2014,47(12):27–37. (HAN Jianqiang,LI Li,WANG Yigong,et al. Experimental study on seismic ductility of C80 high strength concrete-steel composite shear walls[J]. China Civil Engineering Journal,2014,47(12):27–37.(in Chinese)) |
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