Abstract

The conventional fixed acoustic sensors leak detection methods have been demonstrated to be very practical for locating leakages in water distribution pipelines. However, these methods demand proper installation of sensors, and therefore cannot be implemented on buried long water distribution pipelines for condition assessment, early leak detection, and the estimation of leak size effect. Due to these limitations, a free-swimming device is developed. The free-swimming device with the potential of high acoustic sensitivity is capable of detecting the small underwater leakages in the plastic water-filled pipes. Despite the fact that a number of factors influence the underwater acoustic signals, such as water flow noise. Therefore, the interpretation of the leakage and influence of leakage size is considerably challenging from the underwater measured signals. The new method is proposed for reliable leakage detection by tuning the wavelet transform to underwater water acoustic signals. In this method, firstly, Short-Time Fourier Transforms (STFT) of underwater acoustic signals over a relatively long time-interval is monitored to capture the leakage-signals signature. The captured signals efficiently lead in the selection of mother wavelet (tuned wavelet) for the excellent signal localization in the time-frequency domain. Finally, the acoustic signals are analyzed in the tuned wavelet transform to detect the events. In this paper, the practical application of the proposed method, the controlled experiments are designed, and acoustic signals are collected from an experimental setup by launching the free-swimming device. The measured acoustic signals are used to identify the leakage-signals signature from unwanted interfering signals (instantaneous pipe vibrations, water flow noise, pipe's natural frequencies, and background noise). The evaluation of results validated that the free-swimming device and the tuned wavelet transform together can efficiently lead to reliable underwater leakage detection, as well as the influence of the leakage size in plastic water-filled pipes.

Highlights

  • There is a number of leading causes of leakages in the water distribution pipeline system, such as hazardous materials, the lifespan of pipe materials, severe environmental changes, and so forth

  • Conventional fixed acoustic methods are focused on longitudinal deployment, and due to the availability of various types of water pipe materials with extensive properties, these methods demand a proper placement of sensors regarding the type of material

  • 2-Leakage signal: The single small leak size of 6mm is regulated by a flat metal plate

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Summary

Introduction

There is a number of leading causes of leakages in the water distribution pipeline system, such as hazardous materials, the lifespan of pipe materials, severe environmental changes, and so forth. It is reported that globally four billion people in 97 countries are facing severe water scarcity problem at least one month/year and nearly half of the population (two billion) belong to China, India, and Pakistan [1] This analysis specifies the increasing gap between demand and supply of potable water that can hamper the urban development and includes the financial losses and possible risk to peoples’ health. It is authenticated that correlation-based methods are more reliable for the identification of leakage rather than the other methods [8,9] Since these permanent leak detection techniques are based on continuous monitoring acoustic sensors, operational change is not possible [10]. 2-Leakage signal: The single small leak size of 6mm is regulated by a flat metal plate. The device is launched to examine the the influence of the external internal pipeline’s unwanted environmental signals (instantaneous influence of the external and internal pipeline’s unwanted environmental signals (instantaneous pipe pipe vibrations, water flow noise, pipe’s natural frequencies, and background pump noise) in the vibrations, water flowsignal.

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