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Numerical Modeling and Performance Assessment of FRP-Strengthened Full-Scale Circular-Hollow-Section Steel Columns Subjected to Vehicle Collisions

机译:车辆碰撞作用下FRP加固全尺寸圆空心截面钢柱的数值建模与性能评估

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摘要

Axial load-bearing structural members often experience significant damage or failure when subjected to moving-vehicle or vessel collisions. Hollow steel tubular columns are highly vulnerable under transverse impact loading. Thus, strengthening/retrofitting of existing steel tubular columns may be required if these members are not designed to withstand expected transverse impact from transport accidents. This paper investigates the performance of full-scale circular-hollow-section (CHS) tubular columns strengthened with fiber-reinforced polymer (FRP) and subjected to vehicular impact. Initially, finite-element (FE) models of bare and FRP-strengthened CHS medium-scale specimens were developed to conduct transverse impact analysis for the model validation purpose. The impact simulation results were compared with the drop-mass impact test results and good agreements were found between the FE and experimental tests. The validated FE models were extended to full-scale bare and FRP-wrapped CHS columns. The full-column vehicle collisions were simulated using a realistic vehicle model by considering varying axial static forces and vehicle impact velocities. The results showed that strengthening with carbon-fiber-reinforced polymer (CFRP) improved the impact resistance capacity of a bare CHS column by preventing plastic hinge formation due to excessive local buckling when subjected to accidental vehicular impact. Three-layer CFRP strengthening proved to be an effective strengthening system compared with two-layer CFRP strengthening system. The effect of load eccentricity was assessed further, and it was found that CFRP strengthening contributed significantly to preventing the failure of CHS columns with varying eccentricities when subjected to credible vehicular impact events.
机译:轴向承重结构构件在遭受移动车辆或船只碰撞时经常遭受重大损坏或故障。空心钢管柱在横向冲击载荷下极易损坏。因此,如果这些构件的设计不能够承受运输事故带来的预期横向冲击,则可能需要对现有的钢管柱进行加固/改造。本文研究了用纤维增强聚合物(FRP)增强并受到车辆冲击的全尺寸圆形空心截面(CHS)管柱的性能。最初,开发了裸露的和FRP加固的CHS中型标本的有限元(FE)模型,以进行横向冲击分析,以进行模型验证。将冲击模拟结果与跌落质量冲击测试结果进行了比较,并且在有限元分析和实验测试之间找到了良好的一致性。经过验证的有限元模型已扩展到全尺寸裸露和FRP包裹的CHS色谱柱。通过考虑变化的轴向静力和车辆撞击速度,使用逼真的车辆模型模拟了整列车辆的碰撞。结果表明,碳纤维增强聚合物(CFRP)的增强通过防止因意外车辆碰撞而导致的过度局部屈曲而形成塑料铰链,从而提高了裸露的CHS柱的抗冲击能力。与两层CFRP加固系统相比,三层CFRP加固被证明是有效的加固系统。进一步评估了负载偏心率的影响,发现在发生可靠的车辆碰撞事件时,CFRP的加强对防止偏心率不同的CHS立柱的破坏起到了重要作用。

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