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Static structural health monitoring and automated data analysis procedures applied to the diagnosis of a complex medieval masonry monastery

机译:静态结构健康监测和自动数据分析程序可用于诊断复杂的中世纪石工修道院

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Static structural health monitoring (SHM). aimed at the continuous measurement of slow-varying parameters over a long period, has been proved to be a powerful tool to support the diagnosis of masonry heritage structures. In such applications, the initial interpretation task involves the identification of evolutionary conditions from recorded data. However, this can be difficult since monitored features are influenced by environmental changes. In addition, many masonry heritage structures are characterised by a complex structural behaviour stemming from the interaction among different elements, making the task of interpreting SHM data for diagnosis very challenging. One such structure is the church of the monastery of Sant Cugat close to Barcelona, built mostly between the 12th and 15th centuries. Certain key structural parameters of the church have been monitored since 2017 with the aim of understanding the cause of visible pathologies and identifying any active deterioration mechanisms that could pose a threat to the structural integrity of the church in the future. This paper presents the application of an automated data analysis methodology to this problem. The method uses dynamic regression models to filter out components related to reversible seasonal fluctuations from measurements and automatically classifies monitored parameters into evolutionary states based on predicted evolution rates and dispersion metrics from the filtering procedure. A tool is presented which allows analysis results to be updated as new data is received. Finally, results from the proposed methodology are used for the diagnosis of the structure and their usefulness in a broader decision-making framework is discussed.
机译:静态结构健康监测(SHM)。旨在长期连续测量缓慢变化的参数,已被证明是支持砌体遗产结构诊断的有力工具。在此类应用中,初始解释任务涉及从记录的数据中识别进化条件。但是,这可能很困难,因为受监视的功能会受到环境变化的影响。此外,许多砖石建筑结构的特征是由于不同要素之间的相互作用而产生的复杂结构行为,使得解释SHM数据进行诊断的任务非常具有挑战性。这样的结构之一是靠近巴塞罗那的Sant Cugat修道院教堂,该教堂大部分建于12至15世纪之间。自2017年以来,对教会的某些关键结构参数进行了监测,目的是了解可见病理的原因并确定可能对未来教会结构完整性构成威胁的任何主动恶化机制。本文介绍了自动数据分析方法在此问题上的应用。该方法使用动态回归模型从测量结果中滤除与可逆的季节性波动相关的成分,并根据预测的进化速率和过滤过程中的离散度指标,将监视的参数自动分类为进化状态。介绍了一种工具,该工具允许在接收到新数据时更新分析结果。最后,将所提出的方法学的结果用于结构的诊断,并讨论了它们在更广泛的决策框架中的有用性。

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