Multiphysics coupling mechanical behavior and high-fidelity prediction modeling for large-diameter submarine pipeline during directional drilling pullback process

Shore-to-shore directional drilling is essential for efficient and safe pipeline installation. During long-distance pullback of large-diameter pipes, mechanical behavior exhibits strong nonlinearity, spatiotemporal variation, and multiphysics coupling. Conventional prediction models, based on static assumptions and uniform geology, often ignore rate effects, time-varying mud properties, and soil heterogeneity, reducing accuracy and increasing risk in complex projects. This study systematically examines multiphysics coupling impacts on pullback mechanics. A 3D numerical model integrates large-deformation pipe dynamics, unsteady mud flow, and nonlinear soil plasticity, incorporating rate-dependent friction, time-varying mud rheology, and random geological variability. A resulting high-fidelity pullback force model combines dynamic, geological, and time-dependent mud effects. Results show that compared with traditional methods, the proposed model reduces average prediction error from 18.3% to 4.8%. Geological heterogeneity is the main cause of pullback force fluctuations, reaching 20–40%, with soil cohesion as the most sensitive parameter. These findings provide a reliable tool and guide for precise prediction, proactive control, and risk mitigation in subsea pipeline construction.

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Publication Details

Journal
Ocean Engineering
Published
2026-10-05
DOI
https://doi.org/10.1016/j.oceaneng.2026.128598
Primary Topic
Offshore Engineering and Technologies
Type
article
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article

Multiphysics coupling mechanical behavior and high-fidelity prediction modeling for large-diameter submarine pipeline during directional drilling pullback process

Kehan Chen, Y. H. He, Bei Jiang, Rongsheng Lin et al.
Ocean Engineering
Offshore Engineering and Technologies
article

Multiphysics coupling mechanical behavior and high-fidelity prediction modeling for large-diameter submarine pipeline during directional drilling pullback process

Kehan Chen, Y. H. He, Bei Jiang, Rongsheng Lin, Yuqi Zhang, Minke Huang, Wei Lu, Ming Chen, Jian Wang
article en

Abstract

Shore-to-shore directional drilling is essential for efficient and safe pipeline installation. During long-distance pullback of large-diameter pipes, mechanical behavior exhibits strong nonlinearity, spatiotemporal variation, and multiphysics coupling. Conventional prediction models, based on static assumptions and uniform geology, often ignore rate effects, time-varying mud properties, and soil heterogeneity, reducing accuracy and increasing risk in complex projects. This study systematically examines multiphysics coupling impacts on pullback mechanics. A 3D numerical model integrates large-deformation pipe dynamics, unsteady mud flow, and nonlinear soil plasticity, incorporating rate-dependent friction, time-varying mud rheology, and random geological variability. A resulting high-fidelity pullback force model combines dynamic, geological, and time-dependent mud effects. Results show that compared with traditional methods, the proposed model reduces average prediction error from 18.3% to 4.8%. Geological heterogeneity is the main cause of pullback force fluctuations, reaching 20–40%, with soil cohesion as the most sensitive parameter. These findings provide a reliable tool and guide for precise prediction, proactive control, and risk mitigation in subsea pipeline construction.

Ocean EngineeringVol. 368
Shandong University (CN), Zhejiang Ocean University (CN), Energy International (United States) (US), Xinjiang New Energy Research Institute (China) (CN)
Openalex Percentile: Top 16%
Offshore Engineering and Technologies
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Multiphysics coupling mechanical behavior and high-fidelity prediction modeling for large-diameter submarine pipeline during directional drilling pullback process — Kehan Chen, Y. H. He, et al. · Ocean Engineering (2026) | TGRS Research Map | TGRS