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A novel manifold–manifold distance index applied to looseness state assessment of viscoelastic sandwich structures

机译:一种新颖的流形-歧管距离指数,用于粘弹性夹层结构的松弛状态评估

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Viscoelastic sandwich structures (VSS) are widely used in mechanical equipment; their state assessment is necessary to detect structural states and to keep equipment running with high reliability. This paper proposes a novel manifold–manifold distance-based assessment (M~2DBA) method for assessing the looseness state in VSSs. In the M~2DBA method, a manifold–manifold distance is viewed as a health index. To design the index, response signals from the structure are firstly acquired by condition monitoring technology and a Hankel matrix is constructed by using the response signals to describe state patterns of the VSS. Thereafter, a subspace analysis method, that is, principal component analysis (PCA), is performed to extract the condition subspace hidden in the Hankel matrix. From the subspace, pattern changes in dynamic structural properties are characterized. Further, a Grassmann manifold (GM) is formed by organizing a set of subspaces. The manifold is mapped to a reproducing kernel Hilbert space (RKHS), where support vector data description (SVDD) is used to model the manifold as a hypersphere. Finally, a health index is defined as the cosine of the angle between the hypersphere centers corresponding to the structural baseline state and the looseness state. The defined health index contains similarity information existing in the two structural states, so structural looseness states can be effectively identified. Moreover, the health index is derived by analysis of the global properties of subspace sets, which is different from traditional subspace analysis methods. The effectiveness of the health index for state assessment is validated by test data collected from a VSS subjected to different degrees of looseness. The results show that the health index is a very effective metric for detecting the occurrence and extension of structural looseness. Comparison results indicate that the defined index outperforms some existing state-of-the-art ones.
机译:粘弹性夹层结构(VSS)广泛用于机械设备中。他们的状态评估对于检测结构状态和保持设备高可靠性运行是必要的。本文提出了一种新的基于流形-歧管距离的评估(M〜2DBA)方法,用于评估VSS中的松动状态。在M〜2DBA方法中,流形-歧管距离被视为健康指标。为了设计指标,首先通过状态监测技术从结构中获取响应信号,并使用响应信号描述VSS的状态模式来构建汉克矩阵。此后,执行子空间分析方法,即主成分分析(PCA),以提取隐藏在汉克尔矩阵中的条件子空间。从子空间,表征动态结构特性中的模式变化。此外,通过组织一组子空间来形成格拉斯曼流形(GM)。流形被映射到再现内核希尔伯特空间(RKHS),其中支持向量数据描述(SVDD)用于将流形建模为超球体。最后,健康指数定义为与结构基线状态和松散状态相对应的超球面中心之间的角度的余弦值。定义的健康指数包含两个结构状态中存在的相似性信息,因此可以有效地识别结构松动状态。此外,健康指数是通过对子空间集的全局属性进行分析得出的,这与传统的子空间分析方法不同。通过从经受了不同程度的松动的VSS收集的测试数据验证了状态评估的健康指数的有效性。结果表明,健康指数是检测结构松动的发生和扩展的非常有效的指标。比较结果表明,定义的索引优于某些现有的最新索引。

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