ESCARPMENT CROSSING DESIGN AND ANALYSES OF LARGE DIAMETER OFFSHORE PIPELINES

被引:0
|
作者
Qi, Xinhai [1 ]
Kvist, Orjan [1 ]
Chen, Jian [2 ]
Duan, Gang [2 ]
Ren, Lan [3 ]
Wang, Howard [3 ]
Lan, Jundong [3 ]
机构
[1] Genesis, Houston, TX 77074 USA
[2] Golden Shield Technol, Houston, TX USA
[3] ExxonMobil, Houston, TX USA
关键词
Pipeline; Strain-Based Design; Subsea; Escarpment Crossing Mitigation; Finite Element Analysis; Numerical Simulation;
D O I
暂无
中图分类号
P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Subsea pipeline design for escarpment crossings proves complicated and time-consuming, primarily attributable to the excessive plastic strains encountered at the overbend and the extraordinary fatigue damage over long spans, exacerbated by the steep seabed conditions. Due to substantial uncertainties, the design approach for pipeline escarpment crossings leans towards conservatism by limiting pipeline bending moment/strain and span length. Consequently, the implementation of mitigation measures becomes a common necessity. In pursuit of a straightforward and cost-effective crossing design, this paper offers a comprehensive insight into the in-place behavior of large diameter pipeline crossing over escarpments. This study investigates a 24-in gas export pipeline in an African field from a water depth of 25m to 250m. The pipeline strength assessment employs the displacement-controlled condition (DCC) at the escarpment top and load-controlled condition (LCC) for the remaining pipeline, aligning with DNV offshore pipeline design standards. The numerical model, utilizing Abaqus elbow elements, simulates the S-lay, pre-commissioning, and operating processes. The mitigations of the strain and DCC utilization are then examined. This involves optimizing pipeline route, wall thickness, lay tension, and crossing protection.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Liquid holdup in large-diameter horizontal multiphase pipelines
    Maley, LC
    Jepson, WP
    JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 1998, 120 (03): : 185 - 191
  • [32] Oil-water distributions in large diameter horizontal pipelines
    Shi, H
    Cai, JY
    Jepson, WP
    MULTIPHASE FLOW AND HEAT TRANSFER, 1999, : 73 - 80
  • [33] Recoating large diameter gas transmission pipelines in Western Canada
    Leahy, TD
    Prior, MR
    Taylor, SA
    AGEING PIPELINES: OPTIMIZING THE MANAGEMENT AND OPERATION: LOW-PRESSURE - HIGH-PRESSURE, 1999, 1999 (08): : 225 - 234
  • [34] An Updated Guide for Construction Inspection of Large Diameter Water Pipelines
    Gibson, Russell
    Erwin, Charles
    Weaver, Edward
    PIPELINES 2018: CONDITION ASSESSMENT, CONSTRUCTION, AND REHABILITATION, 2018, : 593 - 607
  • [35] LARGE DIAMETER MAIN PIPELINES WELDED AT LOW-TEMPERATURES
    ZAITSEV, KI
    MAZEL, AG
    AUTOMATIC WELDING USSR, 1972, 25 (12): : 47 - 53
  • [36] USE OF LARGE DIAMETER POLYTHENE PIPELINES BY BRITISH GAS.
    Greig, J.M.
    Pipes and Pipelines International, 1977, 22 (01): : 16 - 24
  • [37] Lessons Learned-Relining Large Diameter Water Pipelines
    Miller, Tamara
    Foster, Jason
    PIPELINES 2024: CONSTRUCTION AND REHABILITATION, 2024, : 292 - 300
  • [38] Design guide developed for buried pipelines crossing active faults
    Liu, JX
    OIL & GAS JOURNAL, 2004, 102 (26) : 58 - +
  • [39] Seismic design issues of water pipelines at the Hayward Fault Crossing
    Cheng, L
    Nuguid, LD
    PIPELINE CROSSINGS 1996: PROCEEDINGS OF THE SPECIALTY CONFERENCE, 1996, : 147 - 154
  • [40] Geomorphic approach vital to design of pipelines crossing mountain stream
    Jakob, M
    Porter, M
    Savigny, KW
    Yaremko, E
    OIL & GAS JOURNAL, 2004, 102 (45) : 63 - +