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Current State of the Dynamic Monitoring of the 'Chiaravalle Viaduct'

机译:“Chiaravalle高架桥”动态监测的现状

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This paper describes some notable aspects regarding the dynamic monitoring planned for the Chiaravalle viaduct, linking SS76 and airport of Ancona in Falconara, in Italy. The viaduct is 875 m long and consists of four r.c. kinematic chains separated by joints. The deck is constituted by three beams supported by column bent piers constituted by two circular r.c. columns founded on a continuous footing on six concrete piles. The first purpose of the dynamic monitoring is to determine the experimental natural frequencies and mode shapes of the viaduct before a scheduled seismic rehabilitation. Then, comparison of the first results with those obtained after the retrofit of foundation and piers and finally after the substitution of the deck bearing, will contribute to evaluate efficiency of the executed works. Two different inputs are used for the dynamic tests, ambient and traffic vibrations. An Operational Modal Analysis is carried out starting from the collected data, using the Enhanced Frequency Domain Decomposition technique. Different sensor configurations are used to evaluate the overall behaviour of the viaduct. The Pre Global Estimation Re-scaling method is adopted in order to merge the different parts of mode shapes relevant to each configuration. Results of dynamic tests are interpreted through a 3D Finite Element model of the viaduct. Firstly, a conventional fixed base model is considered, then a model including the Soil-Structure Interaction phenomena is developed in order to improve consistency between numerical and experimental results. The modal parameters obtained by the model including Soil-Structure Interaction are in good agreement with those estimated experimentally.
机译:本文介绍了关于Chiaravalle高架桥的动态监测的一些显着方面,在意大利在Falconara链接SS76和Ancona的机场。高架桥长875米,由四个R.C.运动链与关节分开。甲板由由两个圆形r.c的列弯曲桥墩支持的三个光束构成。柱上成立于六个混凝土桩上的连续脚。动态监测的第一个目的是在预定地震康复之前确定高架桥的实验自然频率和模式形状。然后,将第一个结果的比较与基础和码头的改造后获得的那些结果,最后在甲板轴承替代后,将有助于评估执行的作品的效率。两个不同的输入用于动态测试,环境和流量振动。使用增强的频域分解技术从收集的数据开始执行操作模态分析。不同的传感器配置用于评估高架桥的整体行为。采用预全局估计重新缩放方法,以合并与每个配置相关的模式形状的不同部分。动态测试的结果通过高架桥的3D有限元模型来解释。首先,考虑传统的固定基础模型,然后开发包括土结构相互作用现象的模型,以便改善数值和实验结果之间的一致性。由模型获得的模型参数包括土壤结构互动,与实验估计的人吻合良好。

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