Pipeline Systems in Floating Offshore Production Systems: Hydrodynamics, Corrosion, Design and Maintenance
Abstract
1. Introduction
- (1)
- Deformation or breakage of pipelines due to sea currents during laying.
- (2)
- In the process of transportation due to the influence of third-party external forces leading to damage.
- (3)
- For submarine pipelines, the occurrence of pipe spans is inevitable during operation. Submarine pipelines can develop hanging spans due to current scouring. The hanging pipe sections are subjected to alternating loads from water flow, leading to vortex-induced vibrations and fatigue fractures, ultimately resulting in pipeline fatigue damage [39,40,41,42].
- (4)
- Submarine pipelines are susceptible to corrosion due to the acidic composition of the ocean, inherent pipeline defects, and the presence of sand in the transmission substances, leading to perforation and fracture.
2. Literature Selection Methods
3. Wave and Current Impact
3.1. Morison Equation
3.2. Current Scour
3.3. The Vortex-Induced Vibration
- (1)
- Compared to the narrow-band single-frequency response in the CF (first harmonic) and IL (second harmonic) directions for the open-flow case, the presence of a larger semi-buried pipe increases the mean drag coefficient of the smaller flexible cylinders in the backed structure. Additionally, it exhibits a wider-band response when the gap-to-diameter ratio is small.
- (2)
- For small gap-to-diameter ratios, this leads to larger average IL displacements at the same rate of reduction.
- (3)
- At G/d = 1.0, a stronger third harmonic motion is observed in the CF direction. In the IL direction, the frequency response is much richer, exhibiting stronger first and fourth harmonic motions, detectable third harmonic motions, and larger second harmonic motions.
4. Corrosion
4.1. Corrosion Behavior in Seawater
- (1)
- The activation control stage:
- (2)
- The concentration control stage:
- (3)
- Oxygen diffusion control:
- (4)
- The growth control stage of SRB:
- (5)
- The stabilization control stage of SRB:
4.2. Corrosion Rate Prediction
5. Maintenance and Repair of Marine Pipelines
5.1. Buckling Protection
- (1)
- Compared to traditional solid and shell elements, the pipeline unit requires fewer elements to simulate a long pipeline and eliminates the need for distributed springs or solid elements to represent the surrounding soil in traditional finite element analysis. The pipeline unit can describe and synthesize nonlinear pipe-soil interaction (PSI), thermal expansion, temperature effects, and internal pressure effects. Consequently, using pipe cells is more effective for simulating the bulging and flexure of pipelines.
- (2)
- For pipes with small out-of-straightness (OOS), bulge-flexure behavior may occur when the temperature reaches a critical value. Therefore, when using the Newton-Raphson iterative method, the load increment needs to be reduced to accurately simulate the pipe’s bulge-flexure behavior.
5.2. Overhaul and Monitoring of Submarine Pipelines
6. Marine Pipeline Design
6.1. Risk Analysis of Marine Pipelines and Cables
6.2. Simulation and Analysis Methods
7. Marine Pipeline Materials
7.1. Materials Development
- (1)
- The substantial thickness of steel plates and pipes makes it challenging to achieve adequate low-temperature fracture toughness. Meeting the technical conditions [230] poses high demands, marking a significant milestone globally. Enhancing the low-temperature fracture toughness of thick-walled pipeline steel remains a key technical challenge in the development of pipeline steel worldwide.
- (2)
- Achieving high strength and high toughness in steel plates and pipes, while also ensuring excellent deformation resistance, presents a significant challenge. The precise matching of these properties is particularly difficult. The stability of performance requirements is extremely high, permitting only a small range of fluctuations. Maintaining consistent product quality on a large scale further complicates the process.
- (3)
- The wall thickness of the steel pipe is large, and the diameter-to-thickness ratio (D/t) is small, so it is difficult to make the pipe.
- (4)
- For safety reasons, the size, shape and surface quality of steel pipe are strictly required, and it is difficult to control the mass production. In industrial production, it is very difficult to meet the strict requirements of thick-walled submarine pipeline steel pipe and realize stable, mass production and control [231,232,233,234,235].
7.2. Material Applications
8. Digital Twin and Real-Time Monitoring Technologies
9. Conclusions and Prospects
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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| Steel | C | Si | P | S | Mn + Cr + Ni + Mo | Nb + V | Ti + Ai | Mg |
|---|---|---|---|---|---|---|---|---|
| Mg0 | 0.044 | 0.26 | ≤0.05 | ≤0.003 | ≤1.80 | ≤0.10 | ≤0.03 | 0 |
| Mg3 | 0.041 | 0.25 | ≤0.05 | ≤0.003 | ≤1.80 | ≤0.10 | ≤0.03 | 0.003 |
| Mg5 | 0.043 | 0.25 | ≤0.05 | ≤0.003 | ≤1.80 | ≤0.10 | ≤0.03 | 0.005 |
| Line Name | Laying Depth/m | Grade of Steel | Pipe Diameter/mm | Wall Thickness/mm |
|---|---|---|---|---|
| The Gulf of Mexico ITP Pipeline | 2412 | X65 | 610 | 24.1~34.3 |
| The Mediterranean Medgaz Pipeline | 2160 | X65 | 640 | - |
| Ichthys Gas Pipeline | 2160 | X65 | 1067 | 29.6~40.1 |
| The North Sea Lang Grad Pipeline | 1000 | X70 | 1016 | 34 |
| Hazard | Key Mechanism | Typical Model | Normative Standard | Monitoring and Mitigation Strategy |
|---|---|---|---|---|
| Vortex-Induced Vibration (VIV) | Periodic vortex shedding causing resonance and fatigue damage in free spans or risers. | Wake oscillator models; Morison Equation | DNV-RP-F105 [263] | Accelerometers, strain gauges, Digital Twin prediction, Helical strakes, fairings, span rectification |
| Local Scour and Free Spans | Sediment transport due to wave interaction removing seabed support. | Potential flow theory; Empirical scour depth formulas | DNV-RP-F105 [263], DNV-RP-F109 [264] | Side-scan sonar, multi-beam echo sounder, Rock dumping, concrete mattresses, sediment stabilization. |
| Corrosion | Electrochemical oxidation; Microbiologically Influenced Corrosion in anaerobic mud. | Melchers’ Multi-phase Model; Bayesian Network | DNV-RP-B401 [265] | Linear Polarization Resistance (LPR), Electrical Resistance (ER), Cathodic protection (sacrificial anodes), anti-corrosion coatings |
| Buckling | Thermal expansion under High-Pressure High-Temperature (HPHT) conditions constrained by pipe-soil friction. | Hobbs’ analytical method; Euler-Bernoulli beam theory. | DNV-RP-F110 [266] | Distributed Temperature/Strain Sensing, Snake-lay installation, intermittent rock dumping |
| Fatigue Failure | Cyclic loading from waves/currents or accidental loads | S-N Curve analysis; Palmgren-Miner rule. | DNV-RP-C203 [267] | Intelligent PIGs for crack detection, Stress relief joints, fatigue-resistant welding procedures. |
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Yan, J.; Zhang, Y.; Chen, Z.; Li, P.; Li, Y.; Cao, Z.; Wu, J.; Yang, K.; Zhang, D. Pipeline Systems in Floating Offshore Production Systems: Hydrodynamics, Corrosion, Design and Maintenance. J. Mar. Sci. Eng. 2026, 14, 176. https://doi.org/10.3390/jmse14020176
Yan J, Zhang Y, Chen Z, Li P, Li Y, Cao Z, Wu J, Yang K, Zhang D. Pipeline Systems in Floating Offshore Production Systems: Hydrodynamics, Corrosion, Design and Maintenance. Journal of Marine Science and Engineering. 2026; 14(2):176. https://doi.org/10.3390/jmse14020176
Chicago/Turabian StyleYan, Jin, Yining Zhang, Zehan Chen, Pengji Li, Yuting Li, Zeyu Cao, Jiaming Wu, Kefan Yang, and Dapeng Zhang. 2026. "Pipeline Systems in Floating Offshore Production Systems: Hydrodynamics, Corrosion, Design and Maintenance" Journal of Marine Science and Engineering 14, no. 2: 176. https://doi.org/10.3390/jmse14020176
APA StyleYan, J., Zhang, Y., Chen, Z., Li, P., Li, Y., Cao, Z., Wu, J., Yang, K., & Zhang, D. (2026). Pipeline Systems in Floating Offshore Production Systems: Hydrodynamics, Corrosion, Design and Maintenance. Journal of Marine Science and Engineering, 14(2), 176. https://doi.org/10.3390/jmse14020176

