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Reconstructing structural changes in a dynamic system from experimentally identified state-space models

机译:根据实验确定的状态空间模型重建动态系统中的结构变化

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This paper presents an experimental investigation of a recently developed Kronecker Product (KP) method to determine the type, location, and intensity of structural change from an identified state-space model of the system. Although this inverse problem appears to be highly nonlinear, the system mass, stiffness, and damping matrices are identified through a series of transformations, and with the aid of the Kronecker product, only linear operations are involved in the process. Since a state-space model can be identified directly from input-output data, an initial finite element model and/or model updating is not required. The test structure is a two-degree-of-freedom torsional system in which mass and stiffness are arbitrarily adjustable to simulate various conditions of structural change or damage. This simple apparatus illustrates the potential applicability of the system identification technique for damage detection problems by not only identifying the location and the extent of the damage, but also differentiating the nature of the damage. The results are successfully confirmed by laboratory tests.
机译:本文介绍了对最近开发的Kronecker产品(KP)方法的实验研究,该方法可从已识别的系统状态空间模型确定结构变化的类型,位置和强度。尽管这个反问题似乎是高度非线性的,但系统质量,刚度和阻尼矩阵是通过一系列变换确定的,并且借助Kronecker产品,该过程仅涉及线性运算。由于可以直接从输入输出数据中识别状态空间模型,因此不需要初始有限元模型和/或模型更新。测试结构是一个两自由度扭转系统,其中质量和刚度可以任意调节以模拟各种结构变化或损坏的情况。这种简单的设备不仅通过识别损坏的位置和程度,还通过区分损坏的性质,说明了系统识别技术对损坏检测问题的潜在适用性。通过实验室测试成功证实了结果。

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