Reconstructing Extended Irregular Anomalies in Pipelines Using Layer-Peeling with OptimizationSource: Journal of Hydraulic Engineering:;2023:;Volume ( 149 ):;issue: 001::page 04022035-1Author:Wei Zeng
,
Jinzhe Gong
,
Aaron C. Zecchin
,
Martin F. Lambert
,
Benjamin S. Cazzolato
,
Angus R. Simpson
DOI: 10.1061/JHEND8.HYENG-13106Publisher: American Society of Civil Engineers
Abstract: Pipe wall condition assessment is critical for targeted maintenance and failure prevention in water distribution systems. This paper proposes a spatially distributed pipeline condition assessment technique using persistent hydraulic transient waves of a small magnitude (microtransient waves), with a focus on the detection and reconstruction of extended and irregular pipe wall anomalies (e.g., nonuniform blockages and internal or external corrosion that is distributed along a short extent of the pipe). For an extended and irregular anomaly, a pipe’s response to any incident waves will be complex and impose challenges in interpretation. To identify the complex response patterns, an optimization technique has been developed using a differential evolution algorithm to separate the directional impulse response functions (IRFs) and then to differentiate the anomaly-induced response in a directional IRF from noise. A layer-peeling method is then applied to the directional IRF to reconstruct the pipe impedances, which are related to the localized wave speed and pipe wall thickness. Numerical verifications have been conducted on a pipe with a deteriorated section that is assumed to have a constant internal diameter but varying wave speeds along its length (simulating a section with nonuniform external corrosion and wall thinning). The results show that the nonuniformly deteriorated section can be successfully detected and accurately reconstructed using the techniques proposed in this paper.
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| contributor author | Wei Zeng | |
| contributor author | Jinzhe Gong | |
| contributor author | Aaron C. Zecchin | |
| contributor author | Martin F. Lambert | |
| contributor author | Benjamin S. Cazzolato | |
| contributor author | Angus R. Simpson | |
| date accessioned | 2023-08-16T19:05:46Z | |
| date available | 2023-08-16T19:05:46Z | |
| date issued | 2023/01/01 | |
| identifier other | JHEND8.HYENG-13106.pdf | |
| identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4292744 | |
| description abstract | Pipe wall condition assessment is critical for targeted maintenance and failure prevention in water distribution systems. This paper proposes a spatially distributed pipeline condition assessment technique using persistent hydraulic transient waves of a small magnitude (microtransient waves), with a focus on the detection and reconstruction of extended and irregular pipe wall anomalies (e.g., nonuniform blockages and internal or external corrosion that is distributed along a short extent of the pipe). For an extended and irregular anomaly, a pipe’s response to any incident waves will be complex and impose challenges in interpretation. To identify the complex response patterns, an optimization technique has been developed using a differential evolution algorithm to separate the directional impulse response functions (IRFs) and then to differentiate the anomaly-induced response in a directional IRF from noise. A layer-peeling method is then applied to the directional IRF to reconstruct the pipe impedances, which are related to the localized wave speed and pipe wall thickness. Numerical verifications have been conducted on a pipe with a deteriorated section that is assumed to have a constant internal diameter but varying wave speeds along its length (simulating a section with nonuniform external corrosion and wall thinning). The results show that the nonuniformly deteriorated section can be successfully detected and accurately reconstructed using the techniques proposed in this paper. | |
| publisher | American Society of Civil Engineers | |
| title | Reconstructing Extended Irregular Anomalies in Pipelines Using Layer-Peeling with Optimization | |
| type | Journal Article | |
| journal volume | 149 | |
| journal issue | 1 | |
| journal title | Journal of Hydraulic Engineering | |
| identifier doi | 10.1061/JHEND8.HYENG-13106 | |
| journal fristpage | 04022035-1 | |
| journal lastpage | 04022035-14 | |
| page | 14 | |
| tree | Journal of Hydraulic Engineering:;2023:;Volume ( 149 ):;issue: 001 | |
| contenttype | Fulltext |