Dealing with stochastic signals and physical phenomena impacting pipeline leak localization accuracy

Georgios-Panagiotis Kousiopoulos, N. Karagiorgos, D. Kampelopoulos, V. Konstantakos, S. Nikolaidis
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引用次数: 1

Abstract

Leak localization in pipelines is a subject frequent in the literature, with most studies focusing either on the errors in the acquisition process, e.g. what types of sensors to use, or on the weak points of the signal processing methods utilized for this matter, how to deal with these vulnerabilities and improve the accuracy of those methods etc. However, another important factor that needs to be considered is the presence of several physical phenomena that take place in a pipeline and affect the creation and propagation of acoustic waves. Such phenomena like the acoustic dispersion, the frequency dependent attenuation and the resonances are studied in this paper, based on synthesized signals, and their influence on the leak localization accuracy is discussed. Furthermore, a leak localization method combining the cross-correlation technique with temporal and spectral segmentation of the acoustic signals is proposed. This method is applied to measured (stochastic) leak signals from a pipeline in a laboratory setup. Experimental results show that the proposed method can efficiently determine the position of a leak in a pipeline, since the localization error in most cases is below 3%.
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处理影响管道泄漏定位精度的随机信号和物理现象
管道泄漏定位是文献中经常出现的一个主题,大多数研究要么集中在采集过程中的错误,例如使用哪种类型的传感器,要么集中在用于此问题的信号处理方法的弱点,如何处理这些漏洞并提高这些方法的准确性等。然而,需要考虑的另一个重要因素是管道中发生的几种影响声波产生和传播的物理现象的存在。本文在合成信号的基础上研究了声色散、频率相关衰减和共振等现象,并讨论了它们对泄漏定位精度的影响。在此基础上,提出了一种将互相关技术与声信号的时间和频谱分割相结合的泄漏定位方法。该方法应用于实验室装置中管道的测量(随机)泄漏信号。实验结果表明,该方法在大多数情况下定位误差在3%以下,可以有效地确定管道泄漏的位置。
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