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Digital Damage Fingerprints (DDF) and its application in quantitative damage identification

机译:数字损伤指纹(DDF)及其在定量损伤识别中的应用

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One challenge for structural damage identification using active sensor network is how to appropriately define and extract feature components from raw signals, so as to faithfully describe the damage to be identified. Motivated by this, a signal processing and interpretation technique based on a novel concept, Digital Damage Fingerprints (DDF), was developed in this study, particularly for the purpose of quantitative identification of structural damage. Such an approach is able to efficiently identify and digitise characteristics in signals acquired from active sensor network, and consequently quantify a complicated structure using concise yet essential information. For validation, the technique was then applied to the development of Damage Parameters Databases (DPDs) and online quantitative identification of through-hole and delamination damage in CF/EP (T650/F584) composite structures, under assistance of an artificial neural algorithm. The results exhibit excellent performance of DDF technique in system pattern recognition.
机译:使用主动传感器网络进行结构损伤识别的挑战之一是如何从原始信号中正确定义和提取特征分量,以忠实地描述要识别的损伤。因此,本研究开发了一种基于新颖概念“数字损伤指纹”(DDF)的信号处理和解释技术,尤其是为了定量识别结构损伤。这种方法能够有效地识别和数字化从主动传感器网络获取的信号中的特征,并因此使用简洁但必不可少的信息来量化复杂的结构。为了进行验证,该技术随后在人工神经算法的帮助下,用于损伤参数数据库(DPD)的开发以及CF / EP(T650 / F584)复合结构中的通孔和分层损伤在线定量识别。结果表明DDF技术在系统模式识别中具有出色的性能。

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