Degree of bending of FRP-reinforced tubular X-joints in offshore jacket-type structures under in-plane bending moment

被引:3
作者
Rezadoost, Pooya [1 ]
Asgarian, Behrouz [1 ]
Nassiraei, Hossein [2 ]
机构
[1] KN Toosi Univ Technol, Fac Civil Engn, Tehran, Iran
[2] Univ Guilan, Fac Engn, Dept Civil Engn, Guilan, Iran
关键词
Degree of bending; Fiber-reinforced polymer; Tubular joint; In-plane bending; Parametric formula; GEOMETRICAL PARAMETERS; PREDICTION; BEHAVIOR; DOB;
D O I
10.1016/j.oceaneng.2024.118114
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
In offshore jacket structures, the stress within the chord thickness of tubular joints arises from both membrane and bending stresses. The Degree of Bending (DoB)-the ratio of bending stress to the total stress-is key to evaluating these joints' fatigue resistance. This study delves into the DoB in tubular X-joints reinforced with fiber-reinforced polymer (FRP) subjected to in-plane bending moment. It begins by validating finite element (FE) analysis accuracy through comparison with existing theoretical and experimental evidence. Following this, the analysis of 166 joints was conducted to examine how variations in FRP characteristics (such as type, layer count, and layout) and the joints' dimensionless geometric factors influence the DoB and its ratio in reinforced joints compared to their unreinforced counterparts. Findings indicate that FRP layers enhance fatigue resistance by lowering hot spot stresses on the chord's inner and outer surfaces and elevating the DoB value by up to 26.16%. Consequently, the study introduces a parametric formula for calculating the DoB in FRP-reinforced tubular Xjoints under an in-plane bending moment. This development is significant, as there was no existing parametric formula for determining DoB in FRP-reinforced joints. The proposed formula stands out for its high determination coefficient and minimal error, effectively addressing a notable gap in the field.
引用
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页数:13
相关论文
共 44 条
[1]   Effects of geometrical parameters on the degree of bending (DoB) in multi-planar tubular XT-joints of offshore structures subjected to axial loading [J].
Ahmadi H. ;
Chamani S. ;
Kouhi A. .
Applied Ocean Research, 2020, 104
[2]   Effects of geometrical parameters on the degree of bending in two-planar tubular DYT-joints of offshore jacket structures [J].
Ahmadi, Hamid ;
Ghorbani, Mahdi .
OCEAN SYSTEMS ENGINEERING-AN INTERNATIONAL JOURNAL, 2023, 13 (02) :97-121
[3]   Geometrical effects on the degree of bending (DoB) of multi-planar tubular KK-joints in jacket substructure of offshore wind turbines [J].
Ahmadi, Hamid ;
Atalo, Adel Alizadeh .
APPLIED OCEAN RESEARCH, 2021, 111
[4]   Degree of bending (DoB) in offshore tubular KT-joints under the axial, in-plane bending (IPB), and out-of-plane bending (OPB) loads [J].
Ahmadi, Hamid ;
Zavvar, Esmaeil .
APPLIED OCEAN RESEARCH, 2020, 95
[5]   Effects of geometrical parameters on the degree of bending (DoB) in two-planar tubular DT-joints of offshore jacket structures subjected to axial and bending loads [J].
Ahmadi, Hamid ;
Niaki, Masoud Amini .
MARINE STRUCTURES, 2019, 64 :229-245
[6]   Geometrical effects on the local joint flexibility of two-planar tubular DK-joints in jacket substructure of offshore wind turbines under OPB loading [J].
Ahmadi, Hamid ;
Nejad, Ali Ziaei .
THIN-WALLED STRUCTURES, 2017, 114 :122-133
[7]   Parametric study of geometrical effects on the degree of bending (DoB) in offshore tubular K-joints under out-of-plane bending loads [J].
Ahmadi, Hamid ;
Asoodeh, Shadi .
APPLIED OCEAN RESEARCH, 2016, 58 :1-10
[8]   Degree of bending (DoB) in tubular K-joints of offshore structures subjected to in-plane bending (IPB) loads: Study of geometrical effects and parametric formulation [J].
Ahmadi, Hamid ;
Lotfollahi-Yaghin, Mohammad Ali ;
Asoodeh, Shadi .
OCEAN ENGINEERING, 2015, 102 :105-116
[9]  
[Anonymous], 1983, Background Notes to the Fatigue Guidance of Offshore Tubular Connections
[10]  
[Anonymous], 2007, Recommended Practice for Planning, Designing and Constructing Fixed Offshore Plattforms - Working Stress Design