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Performance of pullout resistance of anchored earth system by field pullout test

机译:通过现场拉拔试验研究锚固系统的抗拉拔性能

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摘要

Anchored Earth System had been developed from combination of the techniques used in reinforced earth and soil anchoring. Instead of using steel strip as a reinforcement, Anchored Earth System consist of round steel bar (tendon) with precast concrete block attached at the free end of each of the reinforcing steel bars, and it is backfilled with granular material or suitable earth fill. This research project can be considered a case study of anchored reinforced soil wall which investigates the performance of Anchored Earth System due to its pullout capacity. In this study, pullout resistance which contributed by friction between the backfill material and the shaft surface of reinforcing tendon, and the passive earth pressure against the concrete anchor block, can be evaluated through pullout tests. The main problems to be studied in this project are the results obtained from field pullout test are different from the calculated theoretical values and there is a non-zero intercept at relationship of pullout force against overburden pressure. The field pullout tests were carried out in three conditions: i) with reinforcing tendon only; ii) with anchor block only; and iii) with both reinforcing tendon and anchor block together in order to determine the sharing of resistance in the system. The pullout test was also done under soaked condition. The average interaction coefficient a’ = 1.99 and bearing factor ß = 6.32 were determined by back analysis. It was found that the sharing of load between the tendon and the anchor block in anchored earth system is not equal, but most of the resistance is contributed by the bearing passive of anchor block where approximately 30 % of resistance contributed by residual frictional resistance and 70 % contributed by peak bearing passive resistance. The pullout resistance in soaked condition observed to be lower than in unsoaked condition due to the increase in pore water pressure that reduced the shear resistance.
机译:锚固土体系统是通过结合用于加筋土体和土壤锚固的技术而开发的。锚固土系统不使用钢带作为加强件,而是由圆形钢筋(筋)组成,在每个钢筋的自由端均附有预制混凝土块,并用颗粒状材料或适当的土填料回填。该研究项目可以看作是锚固加筋土墙的案例研究,其研究了锚土系统的抗拔能力。在这项研究中,可通过拉拔试验评估由回填材料与钢筋束轴面之间的摩擦以及对混凝土锚固块的被动土压力引起的拉拔阻力。该项目要研究的主要问题是,现场拉拔试验的结果与理论计算值不同,并且拉拔力与上覆压力之间存在非零截距。现场拉拔试验是在三种条件下进行的:i)仅使用加强筋; ii)仅带有锚块; iii)将钢筋束和锚固块放在一起,以确定系统中的阻力分担。浸出测试也在浸泡条件下进行。通过反分析确定了平均相互作用系数a'= 1.99和承载因子ß= 6.32。发现在锚固土体系统中,腱和锚固块之间的载荷分担不相等,但是大部分阻力是由锚固块的被动轴承贡献的,其中约30%的阻力由残余摩擦阻力和70 %由峰值轴承被动电阻贡献。由于孔隙水压力的增加降低了剪切阻力,因此在浸泡条件下的抗拉强度要低于未浸泡条件。

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    Loh Wee Loon;

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  • 年度 2010
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  • 正文语种 {"code":"en","name":"English","id":9}
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