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Article

Comprehensive Methodology for Quality Assurance Following Installation and Backfilling of Polymer-Coated Steel Pipelines

by
Gregory R. Neizvestny
1,2,
Samuel Kenig
3 and
Konstantin Kovler
2,*
1
Mekorot–Israel National Water Co., Tel-Aviv 6713402, Israel
2
Faculty of Civil and Environmental Engineering, Technion–Israel Institute of Technology, Haifa 3200003, Israel
3
The Department of Polymer Materials Engineering, Shenkar College of Engineering and Design, Ramat Gan 5252626, Israel
*
Author to whom correspondence should be addressed.
Corros. Mater. Degrad. 2026, 7(2), 35; https://doi.org/10.3390/cmd7020035
Submission received: 16 March 2026 / Revised: 28 May 2026 / Accepted: 28 May 2026 / Published: 9 June 2026

Abstract

The article deals with non-destructive methodologies for assessing and preventing corrosion of polymer-coated underground pipelines, advanced corrosion-barrier coating systems based on extruded three-layer high-density polyethylene (3LPE), corrosion control strategies for buried oil, gas, and water transmission infrastructures, and mechanisms and engineering approaches for corrosion prevention and mitigation. The quality assurance of newly polymer-coated underground pipelines, following construction (installation and backfilling), is vital for evaluating the polymer coating quality state and the efficiency of passive anti-corrosion protection, aimed at reducing corrosion risks and prolonging the pipeline’s service life. The evaluation relies on the coating average specific electrical resistance and the presence of coating defects (number, total area, and distribution) of inspected pipeline sections. In this study, based on extensive real data obtained from testing of newly installed underground water and oil/gas pipeline networks (60 projects with a total pipeline length of 260 km) with various technical characteristics, Drainage Test and DCVG (Direct Current Voltage Gradient) complementary non-destructive indirect methods have been investigated to determine the quality level and identify the location and severity of defects in polyolefin (polyethylene) coatings. The novel concepts and criteria were defined: the quantitative criteria for average specific electrical resistance are established; in addition, a new parameter related to the specific coating defects ratio is introduced, which has been shown to correlate with the criteria for the average specific electrical resistance of the polymer coating and consumed electrical current; finally, following DCVG measurements of the 3LPE coating system, a novel degree of relative defect sizes (%IR) for repairs has been suggested. The innovative and comprehensive approach can support the efforts of regulatory quality assurance, design, maintenance, safety, and research communities to ensure the long-term integrity and sustainability of underground polymer-coated steel pipelines.
Keywords: underground steel pipeline; coating average specific electrical resistance; soil corrosion; 3-layer extruded high-density polyethylene (HDPE) external coating system; Drainage Test; cathodic polarization; DCVG (Direct Current Voltage Gradient) underground steel pipeline; coating average specific electrical resistance; soil corrosion; 3-layer extruded high-density polyethylene (HDPE) external coating system; Drainage Test; cathodic polarization; DCVG (Direct Current Voltage Gradient)

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MDPI and ACS Style

Neizvestny, G.R.; Kenig, S.; Kovler, K. Comprehensive Methodology for Quality Assurance Following Installation and Backfilling of Polymer-Coated Steel Pipelines. Corros. Mater. Degrad. 2026, 7, 35. https://doi.org/10.3390/cmd7020035

AMA Style

Neizvestny GR, Kenig S, Kovler K. Comprehensive Methodology for Quality Assurance Following Installation and Backfilling of Polymer-Coated Steel Pipelines. Corrosion and Materials Degradation. 2026; 7(2):35. https://doi.org/10.3390/cmd7020035

Chicago/Turabian Style

Neizvestny, Gregory R., Samuel Kenig, and Konstantin Kovler. 2026. "Comprehensive Methodology for Quality Assurance Following Installation and Backfilling of Polymer-Coated Steel Pipelines" Corrosion and Materials Degradation 7, no. 2: 35. https://doi.org/10.3390/cmd7020035

APA Style

Neizvestny, G. R., Kenig, S., & Kovler, K. (2026). Comprehensive Methodology for Quality Assurance Following Installation and Backfilling of Polymer-Coated Steel Pipelines. Corrosion and Materials Degradation, 7(2), 35. https://doi.org/10.3390/cmd7020035

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