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首页> 外文期刊>Mechanical systems and signal processing >Identification of multiple cracks in noisy conditions using scale- correlation-based multiscale product of SWPT with laser vibration measurement
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Identification of multiple cracks in noisy conditions using scale- correlation-based multiscale product of SWPT with laser vibration measurement

机译:使用激光振动测量的SWPT的基于比例相关的多尺度产品识别嘈杂的条件中的多裂缝

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摘要

Simultaneous identification of multiple cracks is an unresolved issue in the structural health monitoring field. To address this issue, a new method is proposed for identifying multiple structural cracks using the scale-correlation-based multiscale product of the stationary wavelet packet transform (SWPT) of high-order (greater than 6) mode shapes, with particular emphasis on the ability of the method to distinguish damage in noisy conditions. With the method, the SWPT is firstly utilized to decompose a noisy high order mode shape into a set of uniform-frequency sub-bands. In each sub-band the SWPT coefficients have the property of shift invariance. Secondly, a scale correlation is introduced to screen out valid SWPT sub-bands containing an informative crack feature. On these sub-bands, manipulation of scale-correlation-based multiscale products is implemented to yield a multiscale product curve by multiplying sub-band coefficients across scales at every temporal step. In the curve, abrupt peaks form damage indicators that can pinpoint the locations of multiple cracks. In the damage indicator, the function of scale correlation in distinguishing effective sub-bands endows the scale-correlation-based multiscale product with strong ability to reveal damage while suppressing noise. The method is numerically verified using high-order mode shapes of beam-type structures with multiple cracks and experimentally validated on high-order mode shapes acquired using a scanning laser vibrometer, both demonstrating high accuracy and strong robustness against noise in the identification of multiple cracks. The proposed scale-correlation-based multiscale product forms a sophisticated mechanism for identifying multiple damage in noisy conditions, with promise for developing damage identification methods for a wide spectrum of structures.
机译:同时识别多个裂缝是结构健康监测领域的未解决问题。为了解决这个问题,提出了一种使用高阶(大于6)模式形状的静止小波包变换(SWPT)的比例相关的多尺度产品来识别多个结构裂缝的新方法,特别强调方法能够区分噪声条件的损害。利用该方法,首先利用SWPT来将嘈杂的高阶模式形状分解为一组均匀频率子带。在每个子频带中,SWPT系数具有换档不变性的属性。其次,引入了缩放相关性以筛选包含信息裂缝特征的有效SWPT子带。在这些子频带上,实现了基于比例相关的多尺度产品的操作,以通过在每个时间步骤中乘以尺寸的尺度系数来产生多尺度产品曲线。在曲线中,突然峰形成损伤指示器,可以针对多个裂缝的位置。在损伤指示器中,区分有效子带中的比例相关功能赋予基于比例相关的多尺度产品,具有强大的能力,在抑制噪声的同时露出损坏。该方法使用具有多个裂缝的光束型结构的高阶模式形状来进行数值验证,并在使用扫描激光振动计获取的高阶模式形状上实验验证,两者都在识别识别多个裂缝中的噪声的高精度和强大的鲁棒性。所提出的基于比例相关的多尺度产品,可以形成一种复杂的机制,用于识别嘈杂的条件中的多种损坏,并承诺为广谱结构开发损伤识别方法。

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