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Performance and sensitivity analysis of UHPFRC-strengthened bridge columns subjected to vehicle collisions

机译:UHPFRC加固桥梁在车辆碰撞中的性能和灵敏度分析

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Bridge columns made of normal concrete are evidenced to be susceptible to vehicle collisions. Particularly in the United States, vehicle collision has become one of the primary causes of bridge failures. This is largely due to the low crashworthiness of a conventional reinforced concrete (RC) column. Ultra-high-performance fiber-reinforced concrete (UHPFRC) as one of advanced concrete materials has been experimentally demonstrated to possess excellent strength, durability, impact resistance and energy-absorbing capacity. Accordingly, one type of UHPFRC-strengthened columns was proposed in this study as an alternative to RC columns that may be at risk for vehicle collision incidents. High-resolution finite element (FE) models were developed to investigate the performance of UHPFRC-strengthened columns subjected to vehicle collisions. In the high-resolution FE model, a three-span simply-supported girder bridge (including girder, pier column, column cap, bearing, etc.) was adopted and modelled. Material models regarding normal concrete and UHPFRC as well as the vehicle model were carefully calibrated by experimental data. The influence of initial gravity loads on impact responses was found to be pronounced, and a damping-based method was proposed to efficiently exert permanent loads on pier columns prior to a collision. Three different simplified models, as published in current studies, were investigated to replace the whole bridge model. Two single-column models with different boundaries were shown to have low accuracy. The pier-bent model considering the superstructure gravity was demonstrated as capable of predicting collision-induced responses that are in good agreement with the high-resolution FE model. The impact resistances of both RC and UHPFRC-strengthened columns were extensively investigated using the appropriate simplified model. The crashworthiness of UHPFRC-strengthened column was found to be considerably superior to that of RC column. An extensive parametric study was performed using response surface methodology to explore the influences of reinforcement ratios, thickness of UHPFRC jacket, UHPFRC strength and initial impact speed. The impact-resistant performance is mostly sensitive to changes in the thickness of UHPFRC jacket when the impact speed is not very high. On the contrary, the residual capacity of the bridge column is hardly increased by thickening UHPFRC jacket. In addition, the developed response surface models provided easy estimation of impact-induced responses of an UHPFRC-strengthened column, which have potential use as the surrogates of time-consuming FE simulations to efficiently examine the reliability and optimization of bridge columns under impact loadings.
机译:普通混凝土制成的桥柱被证明容易发生车辆碰撞。特别是在美国,车辆碰撞已成为桥梁故障的主要原因之一。这在很大程度上是由于常规钢筋混凝土(RC)柱的耐撞性差。超高性能纤维增强混凝土(UHPFRC)作为先进的混凝土材料之一,已通过实验证明具有出色的强度,耐久性,抗冲击性和能量吸收能力。因此,在本研究中提出了一种用UHPFRC加固的圆柱作为RC圆柱的替代品,RC圆柱可能会发生车辆碰撞事故。开发了高分辨率有限元(FE)模型来研究承受车辆碰撞的UHPFRC加强柱的性能。在高分辨率有限元模型中,采用了三跨简支梁桥(包括梁,墩柱,柱帽,支座等)并进行了建模。通过实验数据仔细校准了有关普通混凝土和UHPFRC的材料模型以及车辆模型。发现初始重力载荷对冲击响应的影响是明显的,并提出了一种基于阻尼的方法,以在碰撞前有效地将永久载荷施加到墩柱上。对当前研究中发布的三种不同的简化模型进行了研究,以取代整个桥梁模型。结果表明,两个具有不同边界的单列模型的准确性较低。经证明,考虑到上部结构重力的墩柱弯曲模型能够预测与高分辨率有限元模型非常吻合的碰撞诱发响应。使用适当的简化模型对RC和UHPFRC增强柱的抗冲击性进行了广泛研究。发现UHPFRC增强柱的耐撞性明显优于RC柱。使用响应表面方法进行了广泛的参数研究,以探讨增强比,UHPFRC护套厚度,UHPFRC强度和初始冲击速度的影响。当冲击速度不是很高时,抗冲击性能对UHPFRC护套厚度的变化最敏感。相反,通过加厚UHPFRC夹套很难增加桥塔的剩余容量。此外,已开发的响应面模型可以轻松估算UHPFRC加固柱的碰撞引起的响应,这有可能用作费时的有限元模拟的替代品,以有效地检查桥梁在碰撞荷载下的可靠性和优化。

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