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Quantitative Definition of Seismic Performance Levels for Precast Bridge Piers with Continuous Reinforcement

机译:持续加固预制桥墩抗震性能水平的定量定义

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摘要

For construction sites within cities, which require fast construction because of restrictions in road occupation time, or for other occasions where construction period is an important factor because of similar reasons, application of a modular construction method using precast members is efficient in terms of shortening the construction period. The substructures of bridges are normally constructed using cast-in-place, which has been a major cause of delays in construction. Application of a modular construction method could decrease the occupation time in the sites. A prime example is the Accelerated Bridge Construction (ABC) by the Texas Department of Transportation (TDOT) and Federal Highway Administration (FHWA). Precast members are the key components of ABC. The main purpose of this paper is to provide clear seismic performance standards for precast bridge piers. Current seismic design codes require force-based design checks and provide qualitative evaluation of the overall structure. They do not provide specific qualitative criteria for individual structures with particular types. Previous research has been focused on reinforced-concrete bridge piers, while lacking on research towards prefabricated bridge piers with continuous reinforcements. In order to quantitatively evaluate the seismic performance level of prefabricated bridge piers, the seismic performance was quantitatively suggested in accordance with the classification of four which are operational, immediate occupancy, life safety, and collapse prevention. These criteria are cracking of cover concrete, crushing of cover concrete, yielding of axial steels, and fracture of axial steels. Based on the given seismic performance evaluation criteria, evaluation and verification were conducted on four prefabricated bridge piers with continuous reinforcement that have undergone quasistatic cyclic experiments. The moment-curvature analysis model was constructed for the parametric study and verified through experimental results. Based on the developed M-Phi model, prefabricated bridge piers with continuous reinforcement, which were designed force-based using response correction factor, were evaluated. In addition, parametric study was also conducted focusing on concrete strength, magnitude of prestress, and transverse reinforcement. Depending on the level of individual performance produced by ranges of these variables within possible runs on actual piers, the impact of 3 variables was analyzed. Furthermore, in response to changes in each variable, the impact on the relevant seismic performance level was verified through response spectrum analysis.
机译:对于城市内的建筑工地,这是由于道路占用时间限制,或者对于施工期间的其他场合是由于类似原因的重要因素,使用预防成员的模块化构造方法的应用是缩短的施工期。桥梁的子结构通常使用就地构建,这是施工延迟的主要原因。模块化施工方法的应用可以降低站点的占用时间。主要例子是德克萨斯州运输部(TDOT)和联邦公路管理部(FHWA)的加速桥梁建设(ABC)。预制成员是ABC的关键组件。本文的主要目的是为预制桥墩提供清晰的地震性能标准。目前的地震设计代码需要基于力的设计检查,并提供对整体结构的定性评估。它们没有为特定类型的个体结构提供特定的定性标准。以前的研究一直专注于钢筋混凝土桥墩,同时缺乏往预制桥墩的研究,连续增强。为了定量评估预制桥墩的地震性能水平,根据四个占用,即时占用,生命安全和防塌方的分类,定量建议地震性能。这些标准是覆盖混凝土,覆盖混凝土,轴向钢的屈服和轴向钢的骨折的裂缝。根据给定的抗震性能评估标准,评估和验证对已经历准静态循环实验与连续配筋4个预制桥墩进行的。为参数化研究构建了片段曲率分析模型,并通过实验结果进行了验证。基于开发的M-PHI模型,评估了具有连续增强的预制桥墩,使用响应校正因子设计力为基础。此外,参数研究还考虑着混凝土强度,预应力幅度和横向增强。根据可能在实际码头上可能运行的这些变量的范围内所产生的单个性能的水平,分析了3个变量的影响。此外,响应每个变量的变化,通过响应谱分析验证对相关地震性能水平的影响。

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