Water Leakage Detection for Complex Pipe Systems Using Hybrid Learning Algorithm Based on ANFIS Method

Author:

Yalçın Barış Can1,Demir Cihan2,Gökçe Murat3,Koyun Ahmet1

Affiliation:

1. Mechatronics Engineering Department, Yıldız Technical University, Beşiktaş, İstanbul 34349, Turkey e-mail:

2. Mechanical Engineering Department, Yıldız Technical University, Beşiktaş, İstanbul 34349, Turkey e-mail:

3. İstanbul Water and Sewerage Administration, Kağıthane, İstanbul 34406, Turkey e-mail:

Abstract

In most city water distribution systems, a considerable amount of water is lost because of leaks occurring in pipes. Moreover, an unobservable fluid leakage fault that may occur in a hazardous industrial system, such as nuclear power plant cooling process or chemical waste disposal, can cause both environmental and economical disasters. This situation generates crucial interest for industry and academia due to the financial cost related with public health risks, environmental responsibility, and energy efficiency. In this paper, to find a reliable and economic solution for this problem, adaptive neuro fuzzy inference system (ANFIS) method which consists of backpropagation and least-squares learning algorithms is proposed for estimating leakage locations in a complex water distribution system. The hybrid algorithm is trained with acceleration, pressure, and flow rate data measured through the sensors located on some specific points of the complex water distribution system. The effectiveness of the proposed method is discussed comparing the results with the current methods popularly used in this area.

Funder

Istanbul Kalkinma Ajansi

Publisher

ASME International

Subject

Industrial and Manufacturing Engineering,Computer Graphics and Computer-Aided Design,Computer Science Applications,Software

Reference47 articles.

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4. Unsteady Flows in Lines With Distributed Leakage;ASCE J. Hydraulics Div.,1968

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