Failure Analysis of Topside Facilities on Oil/Gas Platforms in the Bohai Sea
Abstract
:1. Introduction
2. Failure Mechanism Analysis of the Upper Substructure of the Platform
2.1. Failure Analysis of Pipeline Fracture
- The fractured surface, which was a typical fatigue fracture, had an obvious fatigue source zone, a fatigue crack propagation zone, and a fatigue fracture zone.
- The fracture was perpendicular to the axis, which meant that the fatigue fracture was caused by a bending load.
- The fracture surface was uneven, with no obvious fatigue curve, and the distance between fatigue striations was large, illustrating low-cycle fatigue fracturing under high stress.
2.2. Failure Analysis of Flange Looseness
3. Ice-Induced Steady-State Vibration Mechanism Analysis
4. Evaluation of Ice-Resistant Modification
5. Conclusions
- Although the frequency of ice-induced, self-excited vibrations is not high, it is the main cause of ice-induced damage of marine structures, and must be paid more attention.
- Due to small leg diameter and low rigidity, the oil and gas platforms in Bohai are more likely to cause synchronous ice-crushing and ice-induced steady-state vibration in a range of ice speeds.
- The inertial forces generated by the ice-induced steady-state vibration may lead to fatigue and functional failure of weak topside facilities.
- The addition of ice-resistant cones results in a significant decrease of the average peak values of the vibration on the platform.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Zhang, D.Y.; Yue, Q.J. Major challenges of offshore platforms design for shallow water oil and gas field in moderate ice conditions. Ocean Eng. 2011, 38, 1220–1224. [Google Scholar] [CrossRef]
- Zhang, D.Y.; Xu, N.; Yue, Q.J.; Liu, D. Sea Ice Problems in Bohai Bay Oil and Gas Exploitation. J. Coast. Res. 2015, 73, 676–680. [Google Scholar] [CrossRef]
- Wang, S.Y.; Yue, Q.J.; Wang, S.Y.; Yue, Q.J. Vibration Reduction of Bucket Foundation Platform with Fixed Ice-Breaking Cone in the Bohai Sea. J. Cold Reg. Eng. 2012, 26, 160–168. [Google Scholar] [CrossRef]
- Goodier, J.N. Loosening by Vibration of Threaded Fastening. Mech. Eng. 1945, 67, 798–802. [Google Scholar]
- Junker, G.H. Criteria for self loosening of fasteners under vibration. Aircr. Eng. Aerosp. Technol. 1972, 44, 14–16. [Google Scholar] [CrossRef]
- Pai, N.G.; Hess, D.P. Three-dimensional finite element analysis of threaded fastener loosening due to dynamic shear load. Eng. Fail. Anal. 2002, 9, 383–402. [Google Scholar] [CrossRef]
- Jiang, Y.Y.; Zhang, M.; Lee, C.H. A Study of Early Stage Self-Loosening of Bolted Joints. J. Mech. Des. 2003, 125, 518–526. [Google Scholar] [CrossRef]
- Jiang, Y.Y.; Zhang, M.; Park, T.W.; Lee, C.H. An Experimental Study of Self-Loosening of Bolted Joints. J. Mech. Des. 2004, 126, 925–931. [Google Scholar] [CrossRef]
- Nassar, S.A.; Housari, B.A. Study of the Effect of Hole Clearance and Thread Fit on the Self-Loosening of Threaded Fasteners. J. Mech. Des. 2006, 129, 1053–1062. [Google Scholar]
- Blenkarn, K. Measurement and Analysis of Ice Forces on Cook Inlet structures. In Proceedings of the Conference on American Society of Civil Engineers, Houston, TX, USA, 22–24 April 1970; pp. 21–34. [Google Scholar]
- Määttänen, M. Stability of self-excited ice-induced structural vibration. In Proceedings of the Fourth International Conference on Port and Ocean Engineering Under Arctic Conditions, Memorial University of Newfoundland, St. John’s, NL, Canada, 26–30 September 1977; pp. 684–694. [Google Scholar]
- Määttänen, M. The effect of structural properties on ice-induced self-excited vibrations. In Proceedings of the IAHR Symposium on Ice, Hamburg, Germany, 27–31 August 1984; Volume 2, pp. 11–20. [Google Scholar]
- Määttänen, M. Ice-induced Vibrations in Structures—Self-Excitation. In Proceedings of the IAHR Symposium on Ice, Sapporo, Japan, 23–27 August 1988; Volume 2, pp. 658–665. [Google Scholar]
- Engelbrektson, A. Dynamic ice loads on lighthouse structures. In Proceedings of the Fourth International Conference on Port and Ocean Engineering Under Arctic Conditions, Memorial University of Newfoundland, St. John’s, NL, Canada, 26–30 September 1977; Volume 2, pp. 654–864. [Google Scholar]
- Engelbrektson, A. An ice-structure interaction model based on observations in the gulf of bothnia. POAC 1989, 89, 504–517. [Google Scholar]
- Yue, Q.J.; Guo, F.W.; Kärnä, T. Dynamic ice forces of slender vertical structures due to ice crushing. Cold Reg. Sci. Technol. 2009, 56, 77–83. [Google Scholar] [CrossRef]
- Guo, F.W.; Yue, Q.J. Physical mechanism and process of ice induced steady state vibration. In Proceedings of the 20th International Conference on Port and Offshore Engineering under Arctic Conditions, Luleå, Sweden, 9–12 June 2009; Volume 34. [Google Scholar]
Initial Pretightening Force | Vibration Frequency | Amplitude | Acceleration | Time | Structure States | Final Pretightening Force |
---|---|---|---|---|---|---|
18 KN | 2 Hz | 4 mm | 1.0 m/s2 | 7 h | No | 17.5 KN |
18 KN | 6 Hz | 4 mm | 2.0 m/s2 | 8 h | Yes | 190 N |
36 KN | 6 Hz | 4 mm | 2.0 m/s2 | 7 h | No | 35.4 KN |
49 KN | 6 Hz | 4 mm | 2.0 m/s2 | 17 h | No | 47.6 KN |
Vertical Structure | Conical Structure | ||
---|---|---|---|
Sample Starting Time | Average Maximum (mm) | Sample Starting Time | Average Maximum (mm) |
Jan 28—22:57 | 8.38 | Jan 15—01:28 | 6.05 |
Jan 28—23:07 | 5.64 | Jan 11—09:20 | 2.07 |
Jan 29—00:27 | 12.2 | Jan 14—09:58 | 4.18 |
Jan 29—00:37 | 13.9 | Jan 16—16:58 | 1.42 |
Jan 17—07:51 | 1.88 | Jan 18—15:45 | 4.58 |
Jan 24—04:42 | 4.32 | Jan 19—04:15 | 2.27 |
Jan 27—08:48 | 4.78 | Jan 21—08:05 | 4.27 |
Mean value | 7.3 | Mean value | 3.548 |
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Yu, S.; Zhang, D.; Yue, Q. Failure Analysis of Topside Facilities on Oil/Gas Platforms in the Bohai Sea. J. Mar. Sci. Eng. 2019, 7, 86. https://doi.org/10.3390/jmse7040086
Yu S, Zhang D, Yue Q. Failure Analysis of Topside Facilities on Oil/Gas Platforms in the Bohai Sea. Journal of Marine Science and Engineering. 2019; 7(4):86. https://doi.org/10.3390/jmse7040086
Chicago/Turabian StyleYu, Songsong, Dayong Zhang, and Qianjin Yue. 2019. "Failure Analysis of Topside Facilities on Oil/Gas Platforms in the Bohai Sea" Journal of Marine Science and Engineering 7, no. 4: 86. https://doi.org/10.3390/jmse7040086
APA StyleYu, S., Zhang, D., & Yue, Q. (2019). Failure Analysis of Topside Facilities on Oil/Gas Platforms in the Bohai Sea. Journal of Marine Science and Engineering, 7(4), 86. https://doi.org/10.3390/jmse7040086