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Experimental algorithm for detecting damage applied to the I-40 bridgeover the Rio Grande,

机译:实验性算法,用于检测在里约格朗德(Rio Grande)的I-40桥梁上的损坏

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Abstract: An algorithm originally used to locate errors in finite element models is applied to a full scale bridge damage detection experiment. The method requires experimental frequency response function data measured at discrete locations along the major bridge load paths. In the bridge damage application the algorithm is most effective when applied to static flexibility shapes estimated with a truncated set of six mode shapes rather than individual mode shapes. The algorithm compares `before damage' and `after damage' data to locate physical areas where significant stiffness changes have occurred. A damage indicator shows whether damage is detectable. Damage is correctly located in the two most significant damage cases using the driving point static flexibility estimates. Limitations of the technique are addressed. The damage detection experiment was performed on a three span steel girder bridge that was 425 feet long. This bridge was part of Interstate 40 across the Rio Grande. The New Mexico State University Department of Civil Engineering organized the experiment. The frequency response functions were collected by Los Alamos National Laboratories personnel. The bridge excitation was provided by Sandia National Laboratories. !6
机译:摘要:一种最初用于定位有限元模型中的错误的算法被应用于全尺寸桥梁损伤检测实验。该方法需要在沿主要桥梁荷载路径的不连续位置处测量的实验频率响应函数数据。在桥梁损伤应用中,当算法应用于以六种模式形状而不是单个模式形状截短的集合估计的静态柔韧性形状时,该算法最为有效。该算法将“损坏前”和“损坏后”数据进行比较,以找到刚度发生明显变化的物理区域。损坏指示器显示是否可以检测到损坏。使用驱动点静态柔韧性估算,可以将损坏正确地定位在两个最重要的损坏案例中。解决了该技术的局限性。损坏检测实验是在425英尺长的三跨钢梁桥上进行的。这座桥是横跨里奥格兰德州(Rio Grande)的40号州际公路的一部分。新墨西哥州立大学土木工程系组织了该实验。频率响应函数由洛斯阿拉莫斯国家实验室人员收集。桥梁激励由桑迪亚国家实验室提供。 !6

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