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Experimental and numerical study of the axial stiffness of bolted joints in steel lattice transmission tower legs

机译:钢格架输电塔腿螺栓连接轴向刚度的试验和数值研究

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Steel lattice transmission towers are constructed through the bolted assembly of various sizes of angle steel members and joint slip is inevitable; ignorance of this slip, which is the prevailing practice in transmission tower design engineering, can lead to an overestimation of the axial stiffness of bolted joints. This study investigates the impact of joint slip effects under tensile loading through a series of 30 tensile tests of 10 typical bolted joint configurations (3 specimens for each tested configuration) used in classic 500 kV lattice steel transmission line towers in China. Finite element analyses were also conducted as a complement and validation of concepts. Particular focus was placed on the load-deformation/slip curves of the tensile tests. The experimental results show that the joint slip was realized through a complicated process consisting of elastic deformation caused by the frictional load transfer and the asynchronous joint slip. Meanwhile, when subjected to an incremental axial tension, the axial stiffness of the bolted joints was highly nonlinear with regard to the elastic deformation. A simplified multi-linear strain-stress model was created using the experimental data to represent this nonlinearity in finite element analysis. The results from finite element analysis of the 30 tensile tests using this multi-linear strain-stress model show that the model can well predict the failure load level and positions of rupture of the angle members. The actual average axial stiffness of the tested bolted joints during the elastic deformation process of load transfer by bolt bearing is approximately 30% of the theoretical value. Finally, a general nodal element is proposed to describe the joint slippage effects and introduce this important factor in the structural analysis of lattice transmission towers in view of safer and more reliable design.
机译:钢格架输电塔是通过各种尺寸的角钢构件的螺栓连接来构造的,因此不可避免地产生接缝滑移。对这种滑移的忽视(这是输电塔设计工程中的普遍做法)可能会导致高估螺栓连接的轴向刚度。本研究通过对中国500 kV格构钢输电线路铁塔中使用的10种典型螺栓连接构型(每种测试构型分别有3个样本)进行了30次拉伸试验,研究了连接滑动效应对拉伸载荷的影响。还进行了有限元分析,以补充和验证概念。特别关注拉伸试验的载荷-变形/滑移曲线。实验结果表明,关节滑移是由摩擦载荷传递引起的弹性变形和异步关节滑移组成的复杂过程实现的。同时,当承受增加的轴向张力时,螺栓接头的轴向刚度在弹性变形方面是高度非线性的。使用实验数据创建了简化的多线性应变应力模型,以表示这种非线性的有限元分析。使用该多线性应变-应力模型对30个拉伸试验进行有限元分析的结果表明,该模型可以很好地预测破坏载荷水平和角钢构件的断裂位置。在通过螺栓轴承进行载荷传递的弹性变形过程中,被测螺栓连接的实际平均轴向刚度约为理论值的30%。最后,提出了一种通用节点单元来描述节理滑移效应,并考虑到更安全,更可靠的设计,将该重要因素引入晶格传输塔的结构分析中。

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