Marine Risers for Deepwater Oil and Gas Exploitation: Research Progress and Prospect

Xiao Wang, Wei Han, Ba Li, Yuqing Weng, Shujun Jia, Qingyou Liu, Ying Zhang, Xue Wang, Yuxi Cao

Strategic Study of CAE ›› 2025

PDF(1897 KB)
PDF(1897 KB)
Strategic Study of CAE ›› 2025 DOI: 10.15302/J-SSCAE-2024.10.050

Marine Risers for Deepwater Oil and Gas Exploitation: Research Progress and Prospect

Author information +
History +

Abstract

As key equipment connecting offshore platforms to subsea pipelines, marine risers are a critical component of the overall system for deepwater oil and gas exploitation and are crucial for the high-quality development of the marine oil industry. In the context of attaching more attention to the development of deepwater oil and gas resources, this study reviews the research and application of marine risers in deepwater oil and gas development and looks forward to future development, which has reference values for both theoretical research and engineering practices. In this paper, the strict requirements for service performances of marine risers are analyzed in terms of fatigue resistance and corrosion resistance. ​A review of the current status of three typical and widely used marine risers (i.‍e., drilling risers, steel catenary risers, and tension-leg platform tendon risers) is provided. Meanwhile, these marine rises in China and abroad are compared, and their development directions are prospected. Overall, marine risers are a type of oil drilling equipment that have high risks, extreme difficulty, and high added values. Owing to the complex manufacturing processes and high technical contents, the core materials and technologies of marine risers have been monopolized by large companies outside China. Riser materials of China have problems including large fluctuations in strength, low fracture toughness, and insufficient fatigue resistance, failing to meet the stringent and complex marine service conditions and thus restraining the development of China's offshore oil industry. Therefore, a systematic layout is urgently needed to guide upstream and downstream enterprises to jointly carry out basic and application research on related products with universities and research institutes, so as to realize collaborative innovation across the entire industrial chain of marine riser manufacturing.

Graphical abstract

Keywords

marine riser / drilling riser / steel catenary riser / tension-leg platform tendon riser / fatigue resistance / corrosion resistance

Cite this article

Download citation ▾
Xiao Wang, Wei Han, Ba Li, Yuqing Weng, Shujun Jia, Qingyou Liu, Ying Zhang, Xue Wang, Yuxi Cao. Marine Risers for Deepwater Oil and Gas Exploitation: Research Progress and Prospect. Strategic Study of CAE, 2025 https://doi.org/10.15302/J-SSCAE-2024.10.050

References

[1]
蒋德鑫, 张厚和, 李春荣, 等‍‍. 全球深水 – 超深水油气勘探历程与发展趋势 [J]‍. 海洋地质前沿, 2022, 38(10): 1‒12‍.
Jiang D X, Zhang H H, Li C R, et al‍. Global deep-and ultra-deep-water oil and gas exploration: Review and outlook [J]‍. Marine Geology Frontiers, 2022, 38(10): 1‒12‍.
[2]
IHS Markit‍. EDIN datebase [DB/OL]‍. [2022-01-10]‍. https://edin‍.ihsenergy‍.com/portal/home‍.
[3]
周国平‍. 南海之深水海洋工程装备技术特征剖析 [J]‍. 海洋工程装备与技术, 2014, 1(2): 95‒102‍.
Zhou G P‍. Technical features analysis for deepwater ocean engineering equipment used in the South China Sea [J]‍. Ocean Engineering Equipment and Technology, 2014, 1(2): 95‒102‍.
[4]
崔青‍. 海洋平台发展现状及前景 [J]‍. 石化技术, 2018, 25(6): 213‍.
Cui Q‍. Development status and prospect of offshore platforms [J]‍. Petrochemical Industry Technology, 2018, 25(6): 213‍.
[5]
Amaechi C V, Chesterton C, Butler H O, et al‍. Review of composite marine risers for deep-water applications: Design, development and mechanics [J]‍. Journal of Composites Science, 2022, 6(3): 96‍.
[6]
Drumond G P, Pasqualino I P, Pinheiro B C, et al‍. Pipelines, risers and umbilicals failures: A literature review [J]‍. Ocean Engineering, 2018, 148: 412‒425‍.
[7]
张杰‍. 深海立管参激 – 涡激联合振动与疲劳特性研究 [D]‍. 天津: 天津大学(博士学位论文), 2014‍.
Zhang J‍. Study on combined vibration and fatigue characteristics of deep-sea riser under parametric excitation and vortex excitation [D]‍. Tianjin: Tianjin University (Doctoral dissertation), 2014‍.
[8]
段金龙‍. 含内流深海立管涡激振动特性研究 [D]‍. 上海: 上海交通大学(博士学位论文), 2018‍.
Duan J L‍. Study on vortex-induced vibration characteristics of deep-sea riser with internal flow [D]‍. Shanghai: Shanghai Jiao Tong University (Doctoral dissertation), 2018‍.
[9]
王远岑‍. 海洋立管多模态涡激振动分岔研究 [D]‍. 天津: 天津大学(博士学位论文), 2019‍.
Wang Y C. Research on multi-modal vortex-induced vibration bifurcation of marine riser [D]‍. Tianjin: Tianjin University (Doctoral dissertation), 2019‍.
[10]
Srinil N‍. Multi-mode interactions in vortex-induced vibrations of flexible curved/straight structures with geometric nonlinearities [J]‍. Journal of Fluids and Structures, 2010, 26(7/8): 1098‒1122‍.
[11]
Yang Y B, Qin Z H, Zhang Y H‍. Random response analysis of hydraulic pipeline systems under fluid fluctuation and base motion [J]‍. Mechanical Systems and Signal Processing, 2023, 186: 109905‍.
[12]
Sun L, Liu C F, Zong Z, et al‍. Fatigue damage analysis of the deepwater riser from VIV using pseudo-excitation method [J]‍. Marine Structures, 2014, 37: 86‒110‍.
[13]
范佰明, 嵇春艳, 张强, 等‍. 波流联合作用下深海立管疲劳寿命计算方法研究 [J]‍. 船海工程, 2008, 37(2): 91‒94‍.
Fan B M, Ji C Y, Zhang Q, et al‍. Study on calculation method of deep-sea riser's fatigue life under wave and current combined operations [J]‍. Ship & Ocean Engineering, 2008, 37(2): 91‒94‍.
[14]
吴剑国, 陈育, 阮伟东, 等‍. 波频和慢漂组合作用下钢悬链线立管疲劳损伤研究 [J]‍. 海洋工程, 2019, 37(6): 1‒11‍.
Wu J G, Chen Y, Ruan W D, et al‍. Study on the fatigue damage of SCR with vessel wave frequency and slow drift combined motions [J]‍. The Ocean Engineering, 2019, 37(6): 1‒11‍.
[15]
Wang J G, Fu S X, Baarholm R, et al‍. Fatigue damage of a steel catenary riser from vortex-induced vibration caused by vessel motions [J]‍. Marine Structures, 2014, 39: 131‒156‍.
[16]
李传凯‍. 钢悬链线立管静力及波激疲劳分析 [D]‍. 大连: 大连理工大学(硕士学位论文), 2008‍.
Li C K‍. Static and wave-induced fatigue analysis of steel catenary riser [D]‍. Dalian: Dalian University of Technology (Master's thesis), 2008‍.
[17]
万子诚‍. 钢悬链线立管疲劳损伤及疲劳可靠性研究 [D]‍. 镇江: 江苏科技大学(硕士学位论文), 2018‍.
Wan Z C‍. Study on fatigue damage and fatigue reliability of steel catenary riser [D]‍. Zhenjiang: Jiangsu University of Science and Technology (Master's thesis), 2018‍.
[18]
高云‍. 钢悬链式立管疲劳损伤分析 [D]‍. 大连: 大连理工大学(博士学位论文), 2011‍.
Gao Y‍. Fatigue damage analysis of steel catenary riser [D]‍.Dalian: Dalian University of Technology (Doctoral dissertation), 2011‍.
[19]
Pan Y, Zheng L X, Yang S C, et al‍. A review of fatigue analysis of marine flexible risers [J]‍. Geoenergy Science and Engineering, 2025, 246: 213555‍.
[20]
Bolanos R B, Rivera J E, Campos D‍. Fatigue analysis of risers [C]‍. Calgary: The 4th International Pipeline Conference, Parts A and B, 2002‍.
[21]
Souza G, Gonçalves E‍. Fatigue performance of deep water rigid marine risers [C]‍. Honolulu: The Seventh International Offshore and Polar Engineering Conference, 1997‍.
[22]
王红红, 刘国恒‍. 中国海油海底管道事故统计及分析 [J]‍. 中国海上油气, 2017, 29(5): 157‒160‍.
Wang H H, Liu G H‍. Statistics and analysis of subsea pipeline accidents of CNOOC [J]‍. China Offshore Oil and Gas, 2017, 29(5): 157‒160‍.
[23]
王伟, 孙有辉, 栾陈杰, 等‍. Reel铺设弯曲过程对X65海管焊接接头耐H2S应力腐蚀性能的影响 [J]‍. 焊接技术, 2018, 47(12): 18‒21‍.
Wang W, Sun Y H, Luan C J, et al‍. Effect of reel laying and bending process on resistance to H2S stress corrosion of X65 sea pipe welded joints [J]‍. Welding Technology, 2018, 47(12): 18‒21‍.
[24]
郎东旭, 王立秋, 李勇‍. 石油平台海管立管腐蚀修复 [J]‍. 涂料工业, 2019, 49(4): 75‒79‍.
Lang D X, Wang L Q, Li Y‍. Corrosion repairing of offshore platform riser [J]‍. Paint & Coatings Industry, 2019, 49(4): 75‒79‍.
[25]
李虎‍. 某平台海管立管腐蚀现状及防护措施 [J]‍. 涂层与防护, 2020, 41(8): 11‒13, 22‍.
Li H‍. Corrosion and protection of pipe riser of offshore platform [J]‍. Coating and Protection, 2020, 41(8): 11‒13, 22‍.
[26]
张金龙‍. 南海某混输海管腐蚀机理分析 [J]‍. 河南科技, 2020, 39(31): 40‒42‍.
Zhang J L‍. Analysis of corrosion mechanism of a mixed transportation submarine pipeline in South China Sea [J]‍. Henan Science and Technology, 2020, 39(31): 40‒42‍.
[27]
韩一峰, 朱烨森, 陈皖滨, 等‍. 海管焊接接头腐蚀特性及监测方法研究进展 [J]‍. 装备环境工程, 2023, 20(7): 98‒108‍.
Han Y F, Zhu Y S, Chen W B, et al‍. Research progress on corrosion characteristics and monitoring methods of submarine pipeline weldment [J]‍. Equipment Environmental Engineering, 2023, 20(7): 98‒108‍.
[28]
任鹏炜, 唐兴颖, 覃祖安, 等‍. 深海环境因素对管线钢腐蚀行为影响研究进展 [J]‍. 油气储运, 2023, 42(5): 492‒508‍.
Ren P W, Tang X Y, Qin Z A, et al‍. Research progress of the influence of deep-sea environment factors on corrosion behavior of pipeline steel [J]‍. Oil & Gas Storage and Transportation, 2023, 42(5): 492‒508‍.
[29]
梁云‍. 海管内检测与海管防腐蚀策略探讨 [J]‍. 石油和化工设备, 2024, 27(3): 164‒167‍.
Liang Y‍. Discussion on in-sea pipeline inspection and pipeline corrosion prevention strategy [J]‍. Petro & Chemical Equipment, 2024, 27(3): 164‒167‍.
[30]
Rincon H, Shadley J, Rybicki E, et al‍. Erosion-corrosion of carbon steel in CO2 saturated multiphase flows containing sand [C]‍. San Diego: CORROSION 2006, 2006‍.
[31]
曹学文, 王凯, 尹鹏博, 等‍. 多相流管线内腐蚀直接评价方法在国内的现场应用 [J]‍. 表面技术, 2018, 47(12): 1‒7‍.
Cao X W, Wang K, Yin P B, et al‍. Application of multiphase flow internal corrosion direct assessment methodology for pipelines in China [J]‍. Surface Technology, 2018, 47(12): 1‒7‍.
[32]
Silva C A, Varela L B, Kolawole F O, et al‍. Multiphase-flow-induced corrosion and cavitation-erosion damages of API 5L X80 and API 5DP grade S steels [J]‍. Wear, 2020, 452: 203282‍.
[33]
Amaechi C, Reda A, Ja'e I, et al‍. Guidelines on composite flexible risers: Monitoring techniques and design approaches [J]‍. Energies, 2022, 15(14): 4982‍.
[34]
Zhang Y L, Chai S H, An C, et al‍. A new method for optimal sensor placement considering multiple factors and its application to deepwater riser monitoring systems [J]‍. Ocean Engineering, 2022, 244: 110403‍.
[35]
金学义, 董海涛, 何轲, 等‍. 中国深水钻井隔水管监测技术研究进展 [J]‍. 中国海上油气, 2021, 33(5): 136‒147‍.
Jin X Y, Dong H T, He K, et al‍. Research progress of China's deep water drilling riser monitoring technology [J]‍. China Offshore Oil and Gas, 2021, 33(5): 136‒147‍.
[36]
畅元江, 陈国明, 鞠少栋‍. 国外深水钻井隔水管系统产品技术现状与进展 [J]‍. 石油机械, 2008, 36(9): 205‒209‍.
Chang Y J, Chen G M, Ju S D‍. Present situation and progress of deepwater drilling riser system products abroad [J]‍. China Petroleum Machinery, 2008, 36(9): 205‒209‍.
[37]
王进全, 王定亚‍. 国外海洋钻井隔水管与国产化研究建议 [J]‍. 石油机械, 2009, 37(9): 147‒150‍.
Wang J Q, Wang D Y‍. Suggestions on overseas offshore drilling riser and domestic research [J]‍. China Petroleum Machinery, 2009, 37(9): 147‒150‍.
[38]
姜继帅‍. 深水钻井隔水管系统力学特性研究 [D]‍. 大庆: 东北石油大学(硕士学位论文), 2023‍.
Jiang J S‍. Study on mechanical characteristics of deepwater drilling riser system [D]‍. Daqing: Northeast Petroleum University (Master's thesis), 2023‍.
[39]
牛爱军, 毕宗岳, 牛辉, 等‍. 国外深水钻井隔水管发展现状及主管性能分析 [J]‍. 焊管, 2015, 38(9): 6‒11‍.
Niu A J, Bi Z Y, Niu H, et al‍. Development status of overseas deepwater drilling riser and main pipe performance analysis [J]‍. Welded Pipe and Tube, 2015, 38(9): 6‒11‍.
[40]
Albino J C R, Almeida C A, Menezes I F M, et al‍. Dynamic response of deep-water catenary risers made of functionally graded materials [J]‍. Mechanics Research Communications, 2021, 111: 103660‍.
[41]
陈锟‍. 深水钻井隔水管力学特性与疲劳分析 [D]‍. 荆州: 长江大学(硕士学位论文), 2022‍.
Cheng K‍. Analysis on mechanical characteristics and fatigue of deepwater drilling riser [D]‍. Jingzhou: Yangtze University (Master's thesis), 2022‍.
[42]
王冬石‍. 深水钻井隔水管系统关键技术研究与发展建议 [J]‍. 石油机械, 2018, 46(7): 39‒44‍.
Wang D S‍. Key technology advances and development suggestion for deepwater drilling riser system [J]‍. China Petroleum Machinery, 2018, 46(7): 39‒44‍.
[43]
Burke B G‍. An analysis of marine risers for deep water [J]‍. Journal of Petroleum Technology, 1974, 26(4): 455‒465‍.
[44]
Patel M H, Sarohia S, Ng K F‍. Finite-element analysis of the marine riser [J]‍. Engineering Structures, 1984, 6(3): 175‒184‍.
[45]
Klaycham K, Athisakul C, Chucheepsakul S‍. Nonlinear response of marine riser with large displacement excited by top-end vessel motion using penalty method [J]‍. International Journal of Structural Stability and Dynamics, 2020, 20(4): 2050052‍.
[46]
贾星兰, 方华灿‍. 海洋钻井隔水管的动力响应 [J]‍. 石油机械, 1995, 23(8): 18‒23‍.
Jia X L, Fang H C‍. Dynamic response of marine drilling riser [J]‍. China Petroleum Machinery, 1995, 23(8): 18‒23‍.
[47]
李旭‍. 深水钻井隔水管与井口耦合力学分析 [D]‍. 荆州: 长江大学(硕士学位论文), 2024‍.
Li X‍. Coupling mechanics analysis of riser and wellhead in deep water drilling [D]‍. Jingzhou: Yangtze University (Master's thesis), 2024‍.
[48]
田鹏勇‍. 隔水管横向振动特性的仿真研究 [D]‍. 秦皇岛: 燕山大学(硕士学位论文), 2014‍.
Tian P Y‍. The simulation research of riser transverse vibration characteristics [D]‍. Qinhuangdao: Yanshan University (Master's thesis), 2014‍.
[49]
孟彦鑫, 付世晓, 任浩杰, 等‍. 计及海底井口影响的隔水管涡激振动响应特性试验 [J]‍. 船舶工程, 2020, 42(3): 128‒134‍.
Meng Y X, Fu S X, Ren H J, et al‍. VIV response characteristics experiment of riser influenced by deep-water wellhead [J]‍. Ship Engineering, 2020, 42(3): 128‒134‍.
[50]
张帅, 任毅, 王爽, 等‍. 海洋深水钻井隔水管用钢试验研究 [J]‍. 上海金属, 2016, 38(5): 1‒5‍.
Zhang S, Ren Y, Wang S, et al‍. Experimental investigation of deep water drilling riser steel [J]‍. Shanghai Metals, 2016, 38(5): 1‒5‍.
[51]
牛爱军, 户志国, 牛辉, 等‍. 高尺寸精度深水钻井隔水管用直缝埋弧焊管性能研究 [J]‍. 焊管, 2017, 40(7): 1‒5‍.
Niu A J, Hu Z G, Niu H, et al‍. Performance research on longitudinal submerged arc welded pipe with high dimensional accuracy used for deepwater drilling riser [J]‍. Welded Pipe and Tube, 2017, 40(7): 1‒5‍.
[52]
黄维平, 孙传栋, 唐世振, 等‍. 深水顶张式生产立管的浪致疲劳研究 [J]‍. 中国海洋平台, 2009, 24(3): 26‒30‍.
Huang W P, Sun C D, Tang S Z, et al‍. Study on wave-induced fatigue of deep water production ttr [J]‍. China Offshore Platform, 2009, 24(3): 26‒30‍.
[53]
黄维平, 白兴兰, 李华军‍. 国外深水钢悬链线立管研究发展现状 [J]‍. 中国海洋大学学报(自然科学版), 2009, 39(2): 290‒294‍.
Huang W P, Bai X L, Li H J‍. State of the art of research and development of overseas deepwater steel catenary risers [J]‍. Periodical of Ocean University of China, 2009, 39(2): 290‒294‍.
[54]
Martins C D A, Higashi E, Silva R‍. A parametric analysis of steel catenary risers: Fatigue behavior near the top [C]‍. Seattle: The Tenth International Offshore and Polar Engineering Conference, 2000‍.
[55]
Hatton S A, Willis N‍. Steel catenary risers for deepwater environments [C]‍. Houston: Offshore Technology Conference, 1998‍.
[56]
黄维平, 李华军‍. 深水开发的新型立管系统——钢悬链线立管(SCR) [J]‍. 中国海洋大学学报(自然科学版), 2006, 36(5): 775‒780‍.
Huang W P, Li H J‍. A new type of deepwater riser in offshore oil & gas production: The steel catenary riser, SCR [J]‍. Periodical of Ocean University of China, 2006, 36(5): 775‒780‍.
[57]
侯静, 黄兆力, 胡平, 等‍. 深水钢悬链立管的开发 [J]‍. 宝钢技术, 2021 (6): 61‒67‍.
Hou J, Huang Z L, Hu P, et al‍. Development of deep-water steel catenary riser [J]‍. Baosteel Technology, 2021 (6): 61‒67‍.
[58]
王安庆‍. 钢质悬链线立管力学特性与疲劳损伤分析 [D]‍. 上海: 上海交通大学(硕士学位论文), 2011‍.
Wang A Q‍. Analysis of mechanical characteristies and fatigue damage of SCR [D]‍. Shanghai: Shanghai Jiao Tong University (Master's thesis), 2011‍.
[59]
张学辉, 徐爱进, 程永明, 等‍. 中国南海半潜式平台钢悬链线立管的强度研究 [J]‍. 海洋工程装备与技术, 2018, 5(4): 266‒273‍.
Zhang X H, Xu A J, Cheng Y M, et al‍. SCR strength study for the application of SCR to semi-submersible platform in the South China Sea [J]‍. Ocean Engineering Equipment and Technology, 2018, 5(4): 266‒273‍.
[60]
王会峰, 何宁, 李旭, 等‍. 钢悬链线立管全尺寸疲劳试验方法研究 [J]‍. 中国造船, 2022, 63(4): 192‒198‍.
Wang H F, He N, Li X, et al‍. Study on full scale fatigue test of steel catenary riser [J]‍. Shipbuilding of China, 2022, 63(4): 192‒198‍.
[61]
Ikeda T, Ohnishi K, Yamamoto A, et al‍. UOE-formed tendon pipes for deep water oil & gas exploration in the Gulf of Mexico [C]‍. Honolulu: The Seventh International Offshore and Polar Engineering Conference, 1997‍.
[62]
闫功伟‍. 新型深吃水多柱延伸式张力腿平台的概念设计与耦合运动响应分析 [D]‍. 哈尔滨: 哈尔滨工业大学(博士学位论文), 2013‍.
Yan G W‍. Conceptual design and coupled motion response analysis of a new type of deep draft multi-column extension tension leg platform [D]‍. Harbin: Harbin Institute of Technology (Doctoral dissertation), 2013‍.
[63]
孙昊天‍. 极端海况下张力腿平台筋腱振动特性数值预报研究 [D]‍. 哈尔滨: 哈尔滨工程大学(硕士学位论文), 2023‍.
Sun H T‍. Research on numerical prediction of vibration characteristics of TLP tendons under extreme sea conditions [D]‍. Harbin: Harbin Institute of Technology (Master's thesis), 2023‍.
[64]
苗文举, 肖丽娜, 许靖‍. 张力腿平台筋腱设计及强度校核 [J]‍. 船舶标准化与质量, 2018 (1): 45‒48‍.
Miao W J, Xiao L N, Xu J‍. Design and strength check of tension leg platform (TLP) tendons [J]‍. Shipbuilding Standardization & Quality, 2018 (1): 45‒48‍.
[65]
于洪旭‍. 深水顶张紧式立管壁厚与材料选择研究 [J]‍. 石油和化工设备, 2016, 19(1): 26‒29‍.
Yu H X‍. Study on wall thickness and material selection of deep water top tension riser [J]‍. Petro & Chemical Equipment, 2016, 19(1): 26‒29‍.
[66]
Schwinn V, Schuetz W, Fluess P, et al‍. Prospects and state of the art of TMCP steel plates for structural and linepipe applications [J]‍. Materials Science Forum, 2007, 539‒543: 4726‒4731‍.
[67]
Takeuchi I, Nishimoto K, Nagase, M, et al‍. Development, pre-qualification, and production history of 60 ksi UOE steel tendon pipe for AUGER tension leg platform [C]‍. Copenhagen: International Conference on Offshore Mechanics and Arctic Engineering, 1995‍.
[68]
鲍莹斌, 李润培, 顾永宁‍. 张力腿平台研究领域和发展趋势 [J]‍. 海洋工程, 1998, 16(4): 17‒26‍.
Bao Y B, Li R P, Gu Y N‍. Research field and development trend of tension leg platform [J]‍. The Ocean Engineering, 1998, 16(4): 17‒26‍.‍
[69]
李牧‍. 南海张力腿平台优化选型研究 [D]‍. 天津: 天津大学(硕士学位论文), 2010‍.
Li M‍. Study on optimal selection of tension leg platform in South China Sea [D]‍. Tianjin: Tianjin University (Master's thesis), 2010‍.
[70]
Kim M H, Zhang Z‍. Transient effects of tendon disconnection on the survivability of a TLP in moderate-strength hurricane conditions [J]‍. International Journal of Naval Architecture and Ocean Engineering, 2009, 1(1): 13‒19‍.
[71]
李森, 李泽邦, 张宁, 等‍. 张力腿筋腱焊接接头的断裂韧性 [J]‍. 工程与试验, 2023, 63(3): 51‒53‍.
Li S, Li Z B, Zhang N, et al‍. Fracture toughness of welded joint of tension leg tendon [J]‍. Engineering & Test, 2023, 63(3): 51‒53‍.
[72]
贺龙威, 韩涛, 宋立新, 等‍. 深水钻井隔水管焊接接头组织与硬度分析 [J]‍. 焊接技术, 2019, 48(2): 18‒20‍.
He L W, Han T, Song L X, et al‍. Microstructure and hardness analysis of welded joints for deep water drilling risers [J]‍. Welding Technology, 2019, 48(2): 18‒20‍.
[73]
余钊辉, 党恩, 朱安达, 等‍. 海洋隔水管对接环焊缝接头高周疲劳性能研究 [J]‍. 焊管, 2013, 36(10): 11‒15‍.
Yu Z H, Dang E, Zhu A D, et al‍. Research on high cycle fatigue property for butt circumferential weld of marine riser [J]‍. Welded Pipe and Tube, 2013, 36(10): 11‒15‍.
[74]
宋凤明, 杜林秀‍. 浆体输送用磨蚀钢的研究进展 [J]‍. 钢铁研究学报, 2014, 26(2): 1‒6‍.
Song F M, Du L X‍. Development of corrosive-abrasion resistant steel used for slurry transportation [J]‍. Journal of Iron and Steel Research, 2014, 26(2): 1‒6‍.
[75]
宋凤明, 杜林秀, 孙国胜, 等‍. 海水浆体中钢的磨蚀行为 [J]‍. 钢铁研究学报, 2018, 30(3): 244‒250‍.
Song F M, Du L X, Sun G S, et al‍. Erosion-corrosion behaviour of steel in sea water slurry [J]‍. Journal of Iron and Steel Research, 2018, 30(3): 244‒250‍.
[76]
Reepmeyer O, Schuetz W, Liessem A, et al‍. Very heavy wall X70 DSAW pipes for tension leg application [C]‍. Honolulu: The Thirteenth International Offshore and Polar Engineering Conference, 2003‍.‍
Funding
Funding project: Chinese Academy of Engineering project "Research on Innovative Development Strategy of Key Materials for Marine Equipment"(2023-HY-18)
AI Summary AI Mindmap
PDF(1897 KB)

Accesses

Citations

Detail

Sections
Recommended

/