Influencing Factors on Internal-Pressure Capacity, Collapse Resistance, and Fatigue Life of Coiled Tubing During Field Operations

Coiled tubing is subjected to internal-to-external pressure differentials and repeated bending during field operations, while ovalization and cumulative fatigue damage progressively compromise structural integrity. To address inconsistencies among pressure-capacity and fatigue models and the simplified treatment of ovality, three complementary calculations are performed. The nominal first-yield pressure of a circular tube is obtained using the von Mises criterion. The ovality-corrected collapse estimate is determined from cross-sectional area conservation and principal-axis equilibrium, while complete tripping cycles are predicted using an empirical equivalent-stress formulation and Miner’s rule. The methodological contribution is a coordinated engineering assessment in which nominal first yield, ovality-corrected collapse, and complete tripping-cycle life are distinguished and evaluated using consistent geometric, loading, and output definitions. Within the investigated parameter range, increasing yield strength from 483 to 758 MPa raised the calculated internal-pressure yield limit from 116.88 to 183.42 MPa. Increasing ovality from 0 to 0.02 reduced the calculated ovality-corrected collapse estimate from 122.44 to 77.03 MPa, while increasing internal pressure from 0 to 20 MPa reduced the predicted number of complete tripping cycles from 190 to 41. The results clarify the effects of material strength, geometry, pressure, and bending conditions and support model-based tubing selection, pressure management during bending, and segment-specific life assessment. Field operating limits should nevertheless be established using applicable standards, measured material properties, and full-scale tests on coiled tubing of the same specification.

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Publication Details

Journal
Processes
Published
2026-09-15
DOI
https://doi.org/10.3390/pr14182937
Primary Topic
Drilling and Well Engineering
Type
article
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article

Influencing Factors on Internal-Pressure Capacity, Collapse Resistance, and Fatigue Life of Coiled Tubing During Field Operations

Lin Zhang, Jianian Xu, Dajiang Zhu, Zheng Li et al.
Processes
Drilling and Well Engineering
article

Influencing Factors on Internal-Pressure Capacity, Collapse Resistance, and Fatigue Life of Coiled Tubing During Field Operations

Lin Zhang, Jianian Xu, Dajiang Zhu, Zheng Li, Yu Sang, Huajian Zhang, Huancai Fan, Shuai Wang
article en

Abstract

Coiled tubing is subjected to internal-to-external pressure differentials and repeated bending during field operations, while ovalization and cumulative fatigue damage progressively compromise structural integrity. To address inconsistencies among pressure-capacity and fatigue models and the simplified treatment of ovality, three complementary calculations are performed. The nominal first-yield pressure of a circular tube is obtained using the von Mises criterion. The ovality-corrected collapse estimate is determined from cross-sectional area conservation and principal-axis equilibrium, while complete tripping cycles are predicted using an empirical equivalent-stress formulation and Miner’s rule. The methodological contribution is a coordinated engineering assessment in which nominal first yield, ovality-corrected collapse, and complete tripping-cycle life are distinguished and evaluated using consistent geometric, loading, and output definitions. Within the investigated parameter range, increasing yield strength from 483 to 758 MPa raised the calculated internal-pressure yield limit from 116.88 to 183.42 MPa. Increasing ovality from 0 to 0.02 reduced the calculated ovality-corrected collapse estimate from 122.44 to 77.03 MPa, while increasing internal pressure from 0 to 20 MPa reduced the predicted number of complete tripping cycles from 190 to 41. The results clarify the effects of material strength, geometry, pressure, and bending conditions and support model-based tubing selection, pressure management during bending, and segment-specific life assessment. Field operating limits should nevertheless be established using applicable standards, measured material properties, and full-scale tests on coiled tubing of the same specification.

ProcessesVol. 14(18)
Chongqing University of Science and Technology (CN), Gas Technology Institute (US)
Responsible consumption and production
Openalex Percentile: Top 15%
Drilling and Well Engineering
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