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Seismic fragility and uncertainty mitigation of cable restrainer retrofit for isolated highway bridges incorporated with deteriorated elastomeric bearings

机译:隔离式高速公路桥梁电缆抑制器改造的地震脆弱性及不确定性减缓

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Overcoming the deterioration of aging infrastructure has aroused increasing concern in recent years, particularly, problem of deteriorated elastomeric bearings has emerged as one of the greatest challenges in maintenance and reliability strategies for isolated highway bridges. Though the abundant applications of cable restrainers to provide alternative measure against bearing deterioration and reduce the risk of bridge collapse due to deck unseating, the performance of cable restrainer retrofit is not well understood because of the complicated and nonuniform deterioration process of elastomeric bearings. This paper presents an in-depth seismic fragility and variation analysis to evaluate cable restrainer retrofit for isolated highway bridges, with a special emphasis on the introduction and mitigation of structural response uncertainty caused by the deteriorated lead rubber bearings (LRBs) and cable restrainer retrofit. Firstly, the mechanical properties of deteriorated LRBs and cable restrainers including the associated parameter uncertainty were modeled based on the consideration of past relevant researches. Subsequently, seismic response of a simplified model of a typical continuous girder isolated highway bridge subjected to various scaled earthquake ground motions was computed to statistically evaluate the effect of typical uncertainties of the mechanical behavior of deteriorated LRBs and cable restrainers upon the risk of global seismic failure of the bridge. Finally, the contribution of cable restrainer retrofit in mitigating the vulnerability and response uncertainty of structural components is quantitatively assessed by comparing the cases with and without the application of cable restrainers. The statistical assessments not only reveal the effect of restrainer cable retrofit at the earthquake levels for design standards, but also consider the levels of seismic events greater than consideration in the design, incorporating the seismic performance uncertainty introduced and enlarged by the aging deterioration of LRBs.
机译:克服了近年来越来越多的衰老基础设施的恶化,特别是劣化的弹性轴承的问题被出现为隔离公路桥梁维护和可靠性策略的最大挑战之一。虽然电缆抑制器的丰富应用提供替代轴承劣化的替代措施,但由于甲板未排销而降低桥梁坍塌风险,但由于弹性体轴承的复杂和不均匀的劣化过程,电缆抑制器改造的性能并不顺利。本文提出了深入的地震脆弱性和变化分析,以评估隔离的公路桥梁的电缆抑制器改装,特别强调了由劣化的铅橡胶轴承(LRB)和电缆抑制器改装引起的结构响应不确定性的引入和缓解。首先,基于对过去的相关研究的考虑,建模了包括相关参数不确定性的劣化LRB和电缆抑制器的机械性能。随后,计算经过各种缩放地震地面运动的典型连续梁隔离的公路桥的简化模型的地震反应被计算为统计评价劣化的LRB和电缆抑制器力学行为的典型不确定性对全球地震失败的风险的影响桥。最后,通过比较具有和不应用电缆抑制剂的情况,定量评估电缆抑制器改造在减轻结构部件的脆弱性和响应不确定度的贡献。统计评估不仅揭示了抑制器电缆改造在设计标准的地震水平上的影响,而且考虑了抗震事件的水平,而不是设计中的考虑因素,包括引入和扩大LRB的衰老引入和扩大的地震性能不确定性。

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