Seismic Performance at Beam Ends of Unbonded Prestressed Precast Concrete Frames

Yuchen Jiang, Jian Wang, Jiabin Wen, Haoyang Shuai, Zhijun Cheng
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Abstract

 Numerical modelling was conducted to investigate the seismic performance at beam ends of unbonded prestressed precast concrete frames. The established finite element model was verified by the test results. Through numerical simulation, the influence of such factors as the presence or absence of energy-dissipating reinforcement, the length of the unbonded section of energy-dissipating bars, the amount of prestressed or non-prestressed reinforcement on the seismic performance at beam ends of unbonded prestressed precast concrete frames were further analyzed. The results show that all prestressed precast beam-end models have similar initial stiffness. The bearing capacity and energy-dissipating performance of beam-end models without energy-dissipating bars are the lowest. The length of the unbonded section of energy-dissipating bars has no significant effect on the bearing capacity and energy-dissipating capacity of beam-end models, though the yield displacement increases obviously with the increase of the length of the unbonded section, as the local stress of energy-dissipating bars is reduced by setting the unbonded section. The bearing capacity of beam-end models can be improved by increasing the amount of prestressed or non-prestressed reinforcement. In the case of the same amount of prestressed reinforcement, increasing the amount of energy-dissipating bars can significantly improve the energy-dissipating capacity.
无粘结预应力预制混凝土框架梁端的抗震性能
对无粘结预应力混凝土预制框架的梁端抗震性能进行了数值模拟研究。试验结果验证了所建立的有限元模型。通过数值模拟,进一步分析了有无消能钢筋、消能钢筋无粘结段长度、预应力或非预应力钢筋数量等因素对无粘结预应力混凝土框架梁端抗震性能的影响。结果表明,所有预应力预制梁端模型都具有相似的初始刚度。无消能钢筋梁端模型的承载力和消能性能最低。消能钢筋无粘结段的长度对梁端模型的承载力和消能性能没有明显影响,但随着无粘结段长度的增加,屈服位移明显增加,因为设置无粘结段会降低消能钢筋的局部应力。梁端模型的承载能力可以通过增加预应力或非预应力钢筋的数量来提高。在预应力钢筋数量相同的情况下,增加消能钢筋数量可显著提高消能能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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