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Assessing the response and fragility of concrete bridges under multi-hazard effect of vessel impact and corrosion

机译:在血管冲击和腐蚀的多危害效果下评估混凝土桥梁的响应和脆弱性

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摘要

Bridges crossing navigable waterways have a high risk for vessel collision hazard, and are meanwhile experiencing significant 'aging' hazard due to the surrounding aggressive environments. These bridges must be designed to be resilient to both episodic (vessel collision) and chronic (structural deterioration) hazards. To achieve this goal, this paper will develop a novel fragility assessment framework for reinforced concrete (RC) bridges under vessel collision with the corrosion-induced structural deterioration being considered. The cornerstone of this fragility assessment framework is the computational model with the capability of accurately predicting vessel impact response and corrosion-induced deterioration measures. In doing so, detailed finite element (FE) modeling approaches, including reinforcement bond-slip effects, are firstly developed and validated by the experimental results. The effects of corrosion are characterized by a series of deterioration measures that can be implemented into FE models. These FE modeling approaches were utilized to model the baseline bridge. Three different exposure periods (i.e., 0, 50, and 100 years) and two types of vessel (barge and ship) are considered. Driven by the response data generated by the FE model, a surrogate model is developed to feature both accurate vessel-impact response estimates and negligible computation cost. This surrogate model is then employed to create fragility curves using Monte Carlo methods. Fragility analysis results have indicated the significant role played by corrosion in increasing the vulnerability of RC bridges under vessel collision throughout the lifetime of the baseline bridge. The probability of bridge collapse rises by almost 100% near the end of the bridge's life. Significant differences were found for the damage evolution of the deteriorated bridge under barge impacts and ship impacts. Particular critical impact speeds were observed in the barge-impact response, but not during ship collisions.
机译:桥接通航水道的桥梁对船舶碰撞危害的风险很高,同时由于周围的攻击性环境而经历了显着的“老龄化”危险。这些桥梁必须设计成适应弹性(血管碰撞)和慢性(结构恶化)危险。为实现这一目标,本文将开发一种新的脆弱混凝土(RC)桥梁的脆弱性评估框架,血管碰撞与腐蚀引起的腐蚀引起的结构劣化。这种脆弱性评估框架的基石是计算模型,具有精确预测血管冲击响应和腐蚀引起的劣化措施的能力。在这样做,首先通过实验结果开发和验证包括强化粘合效果的详细有限元(FE)建模方法。腐蚀的影响是通过一系列可实现成Fe模型的一系列劣化措施的特征。这些FE建模方法用于模拟基线桥梁。考虑三个不同的暴露时段(即,0,50和100岁)和两种类型的船只(驳船和船舶)。由FE模型产生的响应数据驱动,开发了一种代理模型,以具有精确的船舶影响响应估计和可忽略的计算成本。然后采用该代理模型使用Monte Carlo方法创建脆弱曲线。脆弱性分析结果表明,在基线桥梁的整个寿命中增加了船舶碰撞下RC桥的脆弱性,腐蚀发挥的显着作用。桥梁崩溃的概率在桥梁寿命结束时近100%升高。发现驳船撞击和船舶影响下劣化桥梁的损伤演变发现了显着差异。在驳船冲击响应中观察到特定的临界冲击速度,但在船舶碰撞期间没有。

著录项

  • 来源
    《Engineering Structures》 |2020年第15期|111279.1-111279.18|共18页
  • 作者单位

    Hunan Univ Key Lab Wind & Bridge Engn Hunan Prov Coll Civil Engn Changsha 410082 Peoples R China;

    Hunan Univ Key Lab Wind & Bridge Engn Hunan Prov Coll Civil Engn Changsha 410082 Peoples R China;

    McMaster Univ Dept Civil Engn Hamilton ON L8S 4L7 Canada;

    Hunan Univ Key Lab Wind & Bridge Engn Hunan Prov Coll Civil Engn Changsha 410082 Peoples R China;

    Hunan Univ Key Lab Wind & Bridge Engn Hunan Prov Coll Civil Engn Changsha 410082 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Vessel impact; Fragility analysis; Corrosion deterioration; simplified FE modeling; Surrogate model;

    机译:船舶影响;脆弱性分析;腐蚀恶化;简化的FE造型;代理模型;

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