Long-Term Duration of Composite Repair Systems for Pipeline Defects

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Abstract:

Composite repair systems of buried pipeline will be affected by moisture and other factors due to anti-corrosion and construction problems. These environmental factors will reduce the service life of the composite system. In this paper, the performance of composite and interface between composite and steel under the action of water were studied. It was found that the formation of micro-cracks on the surface of composite materials and the hydrolysis of epoxy resin were the important reasons for the Performance degradation. Moreover, the aging properties of composite materials and their interfaces under water immersion were analyzed by residual strength theory, and the life prediction equation of composite materials and interfaces were obtained, which can be useful to the field application of composite repair systems.

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Periodical:

Materials Science Forum (Volume 1035)

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870-877

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June 2021

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© 2021 Trans Tech Publications Ltd. All Rights Reserved

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[1] Ting W , Xin W , Zairong L I , et al. Comparison on failures of long-distance oil & gas pipelines at home and abroad[J]. Oil & Gas Storage and Transportation, (2017).

Google Scholar

[2] GB/T 7714 Rongguang L I. Performance Improving Experiment on Carbon Fiber Resin System for Pipeline Defects Repair Technique[J]. Oil & Gas Storage and Transportation, (2009).

Google Scholar

[3] Xiang Z , Yong L I , Xiaochun Z , et al. Applicability of CFRP for repairing the defects of steel pipe[J]. Oil & Gas Storage and Transportation, (2015).

Google Scholar

[4] Yan W U , Zong-Ming Y , Chang L , et al. Carbon Fiber Composite System Applied to Repair Pipeline[J]. Pipeline Technique and Equipment, (2011).

Google Scholar

[5] Haixiang Z , Tingxia M A , Nana X , et al. Simulation analysis for repairing defective pipelines with AFRP[J]. Oil & Gas Storage and Transportation, (2016).

Google Scholar

[6] Juhong W, Lizhi F. The Application of ClockSpring Apparatus in Defect Repair of Pipeline[J]. Oil & Gas Storage and Transportation, (2007).

Google Scholar

[7] Alexander C, Worth F. Development of Industry Standards for Composite Repair Systems[C]// International Pipeline Conference. (2010).

Google Scholar

[8] Yumei W, Yanshuang L. A General Review:Rehabilitation Technology of Oil and Gas Pipelines at Abroad[J]. (2005).

Google Scholar

[9] Wenying H , Jianzhuang N , Jiangfeng H U , et al. Influential factors for pipeline defects repairing with composite materials[J]. Oil & Gas Storage and Transportation, (2017).

Google Scholar

[10] Bao L R, Yee A F. Moisture diffusion and hygrothermal aging in bismaleimide matrix carbon fiber composites—part I: uni-weave composites[J]. Composites ence & Technology, 2002, 62(16):2099-2110.

DOI: 10.1016/s0266-3538(02)00161-6

Google Scholar

[11] Zhang Ting. The study on the corrosion resistance and aging of the composite material. Wuhan University of Technology, (2012).

Google Scholar

[12] Shu-Juan L I, Huan-Rong Z, Zhi L I, et al. A Review on Aging Mechanisms of Fiber and Fiber Reinforced Composites[J]. Synthetic Materials Aging and Application, (2013).

Google Scholar

[13] Mouzakis D E, Zoga H, Galiotis C. Accelerated environmental ageing study of polyester/glass fiber reinforced composites (GFRPCs)[J]. Composites Part B Engineering, 2008, 39(3):467-475.

DOI: 10.1016/j.compositesb.2006.10.004

Google Scholar

[14] Zhang Yingjun , Zhu Xi, Mei Zhiyuan, Li Huadong, Experimental study on natural aging of glass fiber reinforced plastic composites under marine environment, J.Huazhong Univ. of Sci.& Tech.(Natural Science Edition), 2011(3):14-17.

Google Scholar

[15] BulmanisVN, GunyaevGM, KrivonosVV. RISA SPAVLAM [M]. Moscow: USSR, (1991).

Google Scholar

[16] Yingjun Z, Xi Z, Zhiyuan M , et al. Equivalent Estimating Methods of Ageing on Polymer Matrix Composites Residual Strength[J]. Materials Review, (2012).

Google Scholar