Simplified Technique for Predicting Offshore Pipeline Expansion
J. H. Seo , D. K. Kim , H. S. Choi , S. Y. Yu , K. S. Park
Journal of Marine Science and Application ›› 2018, Vol. 17 ›› Issue (1) : 68 -78.
Simplified Technique for Predicting Offshore Pipeline Expansion
In this study, we propose a method for estimating the amount of expansion that occurs in subsea pipelines, which could be applied in the design of robust structures that transport oil and gas from offshore wells. We begin with a literature review and general discussion of existing estimation methods and terminologies with respect to subsea pipelines. Due to the effects of high pressure and high temperature, the production of fluid from offshore wells is typically caused by physical deformation of subsea structures, e.g., expansion and contraction during the transportation process. In severe cases, vertical and lateral buckling occurs, which causes a significant negative impact on structural safety, and which is related to on-bottom stability, free-span, structural collapse, and many other factors. In addition, these factors may affect the production rate with respect to flow assurance, wax, and hydration, to name a few. In this study, we developed a simple and efficient method for generating a reliable pipe expansion design in the early stage, which can lead to savings in both cost and computation time. As such, in this paper, we propose an applicable diagram, which we call the standard dimensionless ratio (SDR) versus virtual anchor length (L A) diagram, that utilizes an efficient procedure for estimating subsea pipeline expansion based on applied reliable scenarios. With this user guideline, offshore pipeline structural designers can reliably determine the amount of subsea pipeline expansion and the obtained results will also be useful for the installation, design, and maintenance of the subsea pipeline.
Pipe expansion / HP/HT / Thermal expansion / Subsea pipeline
| [1] |
AGA Pipeline riser system design and application guide. AGA project number 178–622, 1987, Brown and Root: Washington |
| [2] |
API Design, construction, operation, and maintenance of offshore hydrocarbon pipelines: API RP 1111, 2015, Washington: American Petroleum Institute |
| [3] |
|
| [4] |
Choi HS (1995) Expansion analysis of offshore pipelines close to restraints. The 5th International Offshore and Polar Engineering Conference (ISOPE 1995), Hague, The Netherlands |
| [5] |
|
| [6] |
|
| [7] |
DNV On-bottom stability design of submarine pipelines: recommended practice F109, 2011, Oslo: Det Norske Veritas |
| [8] |
DNV Submarine pipeline systems: offshore standard F101, 2013, Oslo: Det Norske Veritas |
| [9] |
Harrison GE, Kershenbaum NY, Choi HS (1997) Expansion analysis of subsea pipe-in-pipe flowline. The 7th International Offshore and Polar Engineering Conference (ISOPE 1997), Honolulu, Hawaii, USA |
| [10] |
Hobbs RE, Liang F (1989) Thermal buckling of pipe-lines close to restraints. The 8th International Conference on Offshore Mechanics and Arctic Engineering (OMAE 1989), Hague, The Netherlands |
| [11] |
Kershenbaum NY, Harison GE, Choi HS (1996) Subsea pipeline lateral deviation due to high temperature product. The 6th International Offshore and Polar Engineering Conference (ISOPE 1996), Los Angeles, USA |
| [12] |
|
| [13] |
|
| [14] |
|
| [15] |
|
| [16] |
|
| [17] |
Nes H, Saevik S, Levold E, Johannsen A (1996) Expansion control design of large diameter pipelines. The 15th International Conference, Offshore Mechanics and Arctic Engineering (OMAE 1995), Florence, Italy |
| [18] |
|
| [19] |
|
| [20] |
|
| [21] |
Palmer A, Ling MTS (1981) Movement of submarine pipelines close to platforms. The 13th Offshore Technology Conference (OTC 1981), 4-7 May, Houston, TX, USA (OTC4067) |
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