[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