The impact of hydraulic model calibration on model-based leak localization accuracy

Conclusions drawn from a real-world case study

Conference Paper (2019)
Authors

Jakim P. Lippacher (Graz University of Technology)

David Steffelbauer (TU Delft - Water Resources)

Georg Arbesser-Rastburg (Graz University of Technology)

Daniela Fuchs-Hanusch (Graz University of Technology)

Research Group
Water Resources
To reference this document use:
https://doi.org/10.1061/9780784482353.049
More Info
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Publication Year
2019
Language
English
Research Group
Water Resources
Pages (from-to)
520-527
ISBN (electronic)
9780784482353
DOI:
https://doi.org/10.1061/9780784482353.049

Abstract

This study examines the influence of the quality of hydraulic model calibration on the accuracy of model-based leak localization. It is based on a real-world case study where pressures were measured at 12 positions for more than 4 months. Fire flow tests were performed to obtain calibration data—artificially generated leaks with different sizes between 0.25 l/s to 1 l/s at 4 different positions served as dataset for model-based leak localization. Three different calibration approaches were applied on an uncalibrated model generated from GIS data: (i) height adjustments of measurement positions through detailed analysis of long term pressure signals in the leak-free system; as well as (ii) manual trial and error calibration; and (iii) automatic calibration with fire flow test data. The height-adjusted model lead to increased leak localization accuracy compared to the uncalibrated GIS model. However, the most significant improvement was achieved through fire flow test based calibration—revealing a partially closed valve in the system. The auto-calibrated model, which simultaneously calibrated roughness and minor loss coefficients, provided the highest leak localization accuracy.

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