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干燥过程中膨胀土抗拉强度特性研究 被引量:36

LABORATORIAL INVESTIGATION ON TENSILE STRENGTH OF EXPANSIVE SOIL DURING DRYING
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摘要 膨胀土在干燥过程中由于失水收缩容易产生龟裂,裂隙产生后会极大削弱土体的工程性质。了解膨胀土在干燥过程中的抗拉强度特性,对从力学上进一步认识龟裂的形成和发展过程有重要意义。在室内配制了若干组初始饱和的膨胀土泥浆试样,当试样干燥到不同含水率时,利用改装的超微型贯入仪对试样开展了一系列抗拉试验,获得了膨胀土在干燥过程中抗拉强度与含水率的关系。此外,运用蒸汽平衡法对试样干燥过程中的吸力进行控制,研究了抗拉强度受吸力的影响。结果表明:在干燥过程中,试样的抗拉强度随含水率的减小呈指数形式增加。在含水率小于塑限(40%)之前,抗拉强度较小,增幅不明显;当含水率达到塑限之后,抗拉强度随着含水率的减小增加较快。在控制吸力条件小,试样含水率随吸力的增加呈指数减小,抗拉强度与吸力呈线性正相关关系。通过分析发现,土中水的存在形式、水-土相互作用、颗粒间接触状态以及土体结构的变化是导致土体抗拉强度在干燥过程中增加的主要原因。 Upon drying,desiccation cracks would occur in expansive soils due to evaporation and volume shrinkage.The presence of cracks may significantly weaken soil engineering properties.Better understanding the characteristics of tensile strength during drying is very helpful to study the essential mechanisms of desiccation crack initiation and propagation.In this investigation,Romainville expansive soil was used and several groups of initially saturated slurry specimens were prepared.The specimens were then dried in room condition to different water content.Direct tensile test was performed on these specimens by employing the modified super mini-penetrometer(SMP-1).The evolution of tensile strength with water content was quantitatively characterized.In addition,vapor equilibrium technique was applied to control the soil suction during drying,and the effect of suction on tensile strength was also studied.The results indicate that,during drying,the specimen tensile strength generally increases exponentially with decreasing water content.Before the water content is lower than plastic limit(40%),the tensile strength and the increase rate is very low;after the water content reaches the plastic limit,a slight decrease of water content can lead to significant increase of the tensile strength.With increasing suction,the specimen water content decreases exponentially as expected,and the tensile strength increases linearly.It is found that the evolution behaviour of soil tensile strength during drying is mainly connected with pore water properties,water-soil interactions,contact behviour between soil particles and soil structure.
出处 《工程地质学报》 CSCD 北大核心 2011年第4期620-625,共6页 Journal of Engineering Geology
基金 国家自然科学基金项目(41072211) 高等学校博士学科点专项科研基金(新教师基金课题)(20090091120037)
关键词 抗拉强度 膨胀土 龟裂 含水率 吸力 土结构 Tensile strength Expansive soil Desiccation crack Water content Suction Soil structure
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参考文献26

  • 1Nelson J D, Miller DJ. Expansive Soils: Problems and Practice in Foundation and Pavement Engineering. New York : John Wiley, 1992. 被引量:1
  • 2Lloyd-Hughes B. The long-range Predictability of European drought [ D]. Thesis of University of London, 2002. 被引量:1
  • 3Morris P H, Graham J, Wiliams DJ. Cracking in drying soils. Canadian Geotechnical Journal, 1992,29 : 263 - 267. 被引量:1
  • 4Boyntjon S S,Daniel DE. Hydraulic conductivity tests on compac- ted clay. ASCE J. Geotech. Engrg. ,1985,114(4) : 465 -478. 被引量:1
  • 5Albrecht B A. Benson CH. Effect of desiccation on compacted natural clays. ASCE, J. of Geotech. and Geoenvir. Engrg., 2001,1271, 67 -75. 被引量:1
  • 6Abu-Hejleh A N, Znidarcic D. Desiccation theory for soft cohesive soils. ASCE Journal of Geotechnical Engineering, 1995,121 (6 ): 493 - 502. 被引量:1
  • 7Konrad J M,Ayad R. An idealized framework for the analysis of cohesive soils undergoing desiccation. Canadian C, eotechnical Jour- nal, 1997,34:477-488. 被引量:1
  • 8唐朝生,施斌,刘春,王宝军,高玮.黏性土在不同温度下干缩裂缝的发展规律及形态学定量分析[J].岩土工程学报,2007,29(5):743-749. 被引量:86
  • 9Tang C S, Shi B, Liu C, et al. Influencing factors of geometrical structure of surface shrinkage cracks in clayey soils. Engineering Geology, 2008,101(3 -4): 204-217. 被引量:1
  • 10Tang C S, Cui Y J, Tang A M, Shi B. Experiment evidence on the temperature dependence of desiccation craekiug behavior of clayey soils. Engineering Geology, 2010,114:261 -266. 被引量:1

二级参考文献26

  • 1赵瑜,李晓红,卢义玉,靳晓光.块裂结构岩质边坡水力学模型及数值模拟[J].岩土力学,2005,26(6):995-999. 被引量:6
  • 2郭飞,何昌荣,朱安龙,刘菀茹,王伟.黏性土抗拉强度的轴向压裂法试验研究[J].水电站设计,2005,21(2):66-68. 被引量:14
  • 3施斌,李生林,M.Tolkachev.粘性土微观结构SEM图象的定量研究[J].中国科学(A辑),1995,25(6):666-672. 被引量:70
  • 4党进谦,李靖.含水量对非饱和黄土强度的影响[J].西北农业大学学报,1996,24(1):56-60. 被引量:42
  • 5Horn R, Baumgartl T, Kayser R, Baasch S. Effect of aggregate strength on strength and stress distribution in structured soils[A]. Soil Structure: Its Development and Function, Advances in Soil Science[M]. Hartge KH,Stewart BA, eds. Boca Raton FL: CRC Press, 1995.31-52. 被引量:1
  • 6Becher H H. Strength distributions in soil aggregates[A].Soil Structure: Its Development and Function, Advances in Soil Science[M]. Hartge KH, Stewart BA, eds. Boca Raton FL: CRC Press, 1995.53-91. 被引量:1
  • 7Tovey N K, Krinsley D H. Mapping of the orientation of fine-grained minerals in soils and sediments[J]. Bulletin of the International Association of Engineering Geology, 1992.46-93. 被引量:1
  • 8Shi Bin, Murakami Y, Wu Z, Chen J, Inyang H.Monitoring of internal failure evolution in soils using computerization X-ray tomography (CT)[J]. Engineering Geology, 1999, 54: 321-328. 被引量:1
  • 9Fukue M, Minato T, Horibe H, Taya N. The microstructures of clay given by resistivity measurements[J]. Engineering Geology, 1999, (54): 43-53. 被引量:1
  • 10周鸿逵.三轴拉伸试验中试样的断裂机理.岩土工程学报,1984,6(3). 被引量:6

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