编码激励非线性啁啾T(0,1)型超声导波对埋地管道多缺陷的表征

IF 3 2区 工程技术 Q2 ENGINEERING, MECHANICAL
Xulei Zang, Zhao-Dong Xu, Haoyan Peng, Zhiheng Xia, Hongfang Lu
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引用次数: 0

摘要

超声导波在地面管道无损检测中有着广泛的应用。然而,严重的土致衰减严重阻碍了它们在埋地管道检测中的应用。提出了一种利用正交互补戈莱码对编码的非线性啁啾信号检测埋地管道缺陷的方法。通过调整激励信号中低频和高频分量的比例,有效地降低了埋地管道中导波的衰减。同时,编码序列的使用增加了激励信号的能量,宽带信号良好的自相关特性提高了缺陷回波的时域分辨率。首先介绍了基于非线性啁啾信号和脉冲压缩方法的编码激励的基本原理。然后利用MATLAB仿真验证了该方法在不同条件和信噪比(SNR)下表征缺陷回波的有效性。随后对埋地管道进行有限元模拟对比分析,结果表明低频成分比例较高的非线性啁啾信号具有更好的抗衰减能力。通过对啁啾参数进行微调,可以获得比传统的声爆发更高的缺陷反射率。有限元仿真进一步证明了该方法在激励信号幅度、缺陷回波反射率和缺陷定位精度方面优于突音。最后,对多缺陷埋地管道进行缺陷检测实验,证实了精心选择参数后的非线性啁啾信号衰减率较低。在相同的测试环境下,编码的非线性啁啾信号通过提供更高的激励幅度,更高的缺陷回波反射率(增加高达81.45%)和增强的时域分辨率而优于音突发。该方法有效地降低了埋地管道中超声导波的衰减,提高了缺陷回波反射率,扩大了有效探测范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of multi defects in buried pipelines using coded excitation nonlinear chirp T (0,1) mode ultrasonic guided waves
Ultrasonic guided waves are widely used in the nondestructive testing (NDT) of aboveground pipelines. However, their application in buried pipeline inspection is significantly hindered by severe soil-induced attenuation. This study proposes a method for detecting defects in buried pipelines using nonlinear chirp signals encoded with orthogonal complementary Golay code pairs. By adjusting the proportion of low-frequency and high-frequency components in the excitation signal, the attenuation of guided waves in buried pipelines is effectively reduced. Meanwhile, the use of coded sequences increases the energy of the excitation signal, and the excellent autocorrelation properties of broadband signals enhance the time-domain resolution of defect echoes. The fundamental principles of coded excitation based on nonlinear chirp signals and pulse compression methods are first introduced. MATLAB simulations are then employed to verify the approach's effectiveness in the characterization of defect echoes under various conditions and signal-to-noise ratios (SNR). A subsequent comparative analysis, using finite element (FE) simulations for buried pipelines, demonstrates that nonlinear chirp signals with a higher proportion of low-frequency components exhibit better resistance to attenuation. By fine-tuning the chirp parameters, higher defect reflectivity can be achieved than with conventional tone bursts for various defect types in buried pipelines. FE simulations further illustrate the superiority of the proposed method over tone bursts in terms of excitation signal amplitude, defect echo reflectivity, and defect location accuracy. Finally, defect detection experiments on buried pipelines with multiple defects confirm that the nonlinear chirp signals with carefully selected parameters exhibit lower attenuation rates. In the same testing environment, the coded nonlinear chirp signals outperform tone bursts by providing higher excitation amplitudes, greater defect echo reflectivity with an increase of up to 81.45 percent, and enhanced time-domain resolution. The proposed method effectively reduces ultrasonic guided wave attenuation in buried pipelines while increasing defect echo reflectivity and extending the effective detection range.
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来源期刊
CiteScore
5.30
自引率
13.30%
发文量
208
审稿时长
17 months
期刊介绍: Pressure vessel engineering technology is of importance in many branches of industry. This journal publishes the latest research results and related information on all its associated aspects, with particular emphasis on the structural integrity assessment, maintenance and life extension of pressurised process engineering plants. The anticipated coverage of the International Journal of Pressure Vessels and Piping ranges from simple mass-produced pressure vessels to large custom-built vessels and tanks. Pressure vessels technology is a developing field, and contributions on the following topics will therefore be welcome: • Pressure vessel engineering • Structural integrity assessment • Design methods • Codes and standards • Fabrication and welding • Materials properties requirements • Inspection and quality management • Maintenance and life extension • Ageing and environmental effects • Life management Of particular importance are papers covering aspects of significant practical application which could lead to major improvements in economy, reliability and useful life. While most accepted papers represent the results of original applied research, critical reviews of topical interest by world-leading experts will also appear from time to time. International Journal of Pressure Vessels and Piping is indispensable reading for engineering professionals involved in the energy, petrochemicals, process plant, transport, aerospace and related industries; for manufacturers of pressure vessels and ancillary equipment; and for academics pursuing research in these areas.
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