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首页> 外文期刊>Journal of Constructional Steel Research >Experimental and numerical analysis of a bolted connection in steel transmission towers
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Experimental and numerical analysis of a bolted connection in steel transmission towers

机译:钢输电塔螺栓连接的实验与数值分析

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This paper presents an integrated numerical and experimental study on a bolted splice connection used in main legs of steel lattice transmission towers. At specific locations, where the number of angle sections in built-up cross section of main leg members changes, the complex geometry around the connection region results in eccentricities in the load path and indirect load transfer. Such complex configurations and uncertainties in the load path have led to overdesigned connections with increased number of bolts and redundant connection reinforcing members. The current study was conducted in an attempt to gain a better understanding of the load-flow mechanism at this specific location where the cross section of main leg members changes. The experimental part included tensile load testing of six specimens with different connection details. The main parameters used in the testing program were the number of bolts used in the connection as well as the presence of connection reinforcement angles and tie plate. For all connection configurations studied, the failure occurred due to net section fracture of upper main member angle near leading bolt holes. The calculated load capacity based on the measured material strength closely predicted the measured load capacity of specimens. The experimentally determined response of each connection configuration was better predicted by the FE model that incorporates bolt slip as compared to the model that assumes no slip. The experimental and numerical results also indicate that major differences among the investigated connection details do not cause any appreciable difference in behavior under tensile loading. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文介绍了用于钢格架输电塔主腿的螺栓连接的综合数值和实验研究。在特定位置,主支腿构件的横截面中的角度部分的数量会发生变化,连接区域周围的复杂几何形状会导致载荷路径中的偏心率和间接载荷传递。负载路径中的此类复杂配置和不确定性已导致过度设计的连接,其中螺栓的数量和冗余连接加强件的数量增加。进行当前研究的目的是为了更好地理解主要支腿横截面变化的特定位置处的潮流机制。实验部分包括对六个具有不同连接细节的样品的拉伸载荷测试。测试程序中使用的主要参数是连接中使用的螺栓数量以及连接加强角和连接板的存在。对于所研究的所有连接配置,故障都是由于上主体梁角在引导螺栓孔附近的净截面断裂所致。基于测得的材料强度计算出的负载能力可以紧密预测样品的测得负载能力。与假定无滑移的模型相比,结合螺栓滑移的FE模型可以更好地预测每种连接配置的实验确定响应。实验和数值结果还表明,研究的连接细节之间的主要差异不会在拉伸载荷下引起任何明显的性能差异。 (C)2016 Elsevier Ltd.保留所有权利。

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