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Load Transfer Mechanism of Hybrid Pylon Joint with Cells and Bearing Plates

机译:带有单元格和支承板的混合动力塔接头的载荷传递机理

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摘要

To investigate the load transfer mechanism of the steel-concrete hybrid pylon joint with cells and bearing plates, a theoretical model based on the continuous elastic interlayer method was established. Both the slip effect at the steel-concrete interface and the local compression effect of the bearing plate were considered in the proposed theoretical model. A segment model test with a 1:3 scale was carried out to obtain the strain distribution of the hybrid joint and the relative slip between steel and concrete components. Finite element analysis was implemented on the tested segment model, and the structural performance of the tested hybrid joint was compared with the FEA results. The test and analysis results show that the stress of steel and concrete components is at a lower level, and the relative slip between steel and concrete components is extremely limited. The bearing plates and shear connectors are the two load-transferring components and could transfer 40% and 60% of the vertical force into the lower concrete pylon, respectively. The vertical force of shear connectors is at a much lower magnitude within 0.6 times the length of the hybrid joint from the bearing plate and will increase gradually within 0.6 to 1.0 times the length of the hybrid joint. The FEA results are in good agreement with the model test results, and the maximum shear force difference between the theoretical analysis results and the FEA results is less than 10%, proving that the proposed theoretical model can reasonably predict the shear force distribution at the steel-concrete interface of the hybrid joint. In addition, the stiffness of shear connectors has limited effect on the shear force distribution at the steel-concrete interface.
机译:为了研究带孔单元和承压板的钢-混凝土混合动力塔的载荷传递机理,建立了基于连续弹性夹层法的理论模型。在理论模型中,考虑了钢-混凝土界面的滑移效应和承压板的局部压缩效应。进行了比例为1:3的线段模型测试,以获取混合接头的应变分布以及钢和混凝土构件之间的相对滑动。在测试的分段模型上进行了有限元分析,并将测试的混合接头的结构性能与有限元分析结果进行了比较。测试和分析结果表明,钢和混凝土构件的应力处于较低水平,并且钢和混凝土构件之间的相对滑动非常有限。承压板和剪力连接器是两个载荷传递部件,可以分别将垂直力的40%和60%传递到下部混凝土塔架中。剪切连接器的垂直力在距轴承板的混合接头长度的0.6倍之内的幅度要小得多,并且会在混合接头长度的0.6-1.0倍范围内逐渐增加。有限元分析结果与模型试验结果吻合良好,理论分析结果与有限元分析结果之间的最大剪力差小于10%,证明所提出的理论模型可以合理地预测钢的剪力分布。混合关节的混凝土界面。另外,剪切连接器的刚度对钢-混凝土界面处的剪切力分布影响有限。

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  • 来源
    《Advances in civil engineering》 |2018年第12期|6289721.1-6289721.12|共12页
  • 作者单位

    Shanghai Municipal Engn Design Inst Grp Co Ltd Shanghai 200092 Peoples R China;

    Tongji Univ Dept Bridge Engn Shanghai 200092 Peoples R China;

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  • 正文语种 eng
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