The Prediction and Enhancement of UOE-DSAW Collapse Resistance for Deepwater Linepipe

Author:

Fryer Mark1,Tait Peter1,Kyriakides Stelios2,Timms Chris3,DeGeer Duane3

Affiliation:

1. Corus Tubes Energy, Hartlepool, UK

2. University of Texas at Austin, Austin, TX

3. C-FER Technologies, Edmonton, AB, Canada

Abstract

With the increasing development of oil and gas reserves in water depths greater than 1500 m, linepipe used for deepwater and ultra-deepwater applications will require enhanced resistance to hydrostatic collapse. To support this need, Corus Tubes has been investigating methods by which increases in UOE linepipe collapse strength can be achieved. In particular, it has been theorised that modifications to the UOE manufacturing process can provide the necessary collapse strength enhancements. Pipe production trials were conducted focusing on the effect of processing parameters during UOE linepipe production, and in addition low temperature heat treatment was used to assess its effect. Full-scale collapse tests were then performed on the resulting linepipe specimens to validate the increase in collapse strength. The results of this work have demonstrated the beneficial effect of a modified UOE manufacturing approach on linepipe collapse resistance. This paper summarizes the work performed, quantifies the increase in collapse strength, and compares the test results to collapse equations found in offshore pipeline standards. It is also demonstrated that the UOE fabrication factor of 0.85 in the DNV offshore pipeline code (DNV OS-F101) may be considered to be over conservative, when linepipe is manufactured using the modified approach summarized herein.

Publisher

ASMEDC

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A numerical method for predicting O-forming gap in UOE pipe manufacturing;International Journal of Mechanical Sciences;2015-07

2. Large-Diameter Line Pipe Expanding Process;Applied Mechanics and Materials;2012-07

3. Effects of the UOE/UOC pipe manufacturing processes on pipe collapse pressure;International Journal of Mechanical Sciences;2007-05

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