Citation: | YU Qianqian, CHANG An, GU Xianglin, ZHANG Weiping, JIANG Chao. State-of-the-Art on Fatigue Properties of Corroded Steel Members Subjected to Marine Atmosphere[J]. INDUSTRIAL CONSTRUCTION, 2024, 54(1): 11-19. doi: 10.3724/j.gyjzG23120501 |
[1] |
岳清瑞. 钢结构与可持续发展[J]. 建筑, 2021, (13): 20-1, 3.
|
[2] |
B HOU, X LI, and X MA, et al.The cost of corrosion in China [J], npj Materials Degradation 1, 14(2017).
|
[3] |
S GUO, R SI, and Q DAI, et al.A critical review of corrosion development and rust removal techniques on the structural/environmental performance of corroded steel bridges [J], Journal of Cleaner Production 233, 126146(2019).
|
[4] |
ASCE. Committee on fatigue and fracture reliability of the committee on structural safety and reliability of the structural division. Fatigue reliability 1-4[J]. Journal of the Structural Divison, 1982, 108(ST1): 3-88.
|
[5] |
LI C Q, YANG W. Steel corrosion and degradation of its mechanical properties [M]. Boca Raton, USA: CRC Press, 2021.
|
[6] |
S CAINES, F KHAN, and J SHIROKOFF, Analysis of pitting corrosion on steel under insulation in marine environments [J], Journal of Loss Prevention in the Process Industries 26, 614661483(2013).
|
[7] |
Y MA, Y LI, and F WANG, Corrosion of low carbon steel in atmospheric environments of different chloride content [J], Corrosion Science 51, 59971006(2009).
|
[8] |
XIA D H, MA C, BEHNAMIAN Y, et al. Reliability of the estimation of uniform corrosion rate of Q235B steel under simulated marine atmospheric conditions by electrochemical noise (EN) analyses [J/OL]. Measurement, 2019, 148. [2023- 12-05]. https://doi.org/10.1016/j.measurement.2019.106946.
|
[9] |
郭明晓, 潘晨, 王振尧, 等. 碳钢在模拟海洋工业大气环境中初期腐蚀行为研究[J]. 金属学报, 2018, 54(1): 65-75.
|
[10] |
梁彩凤, 侯文泰. 碳钢、低合金钢16年大气暴露腐蚀研究[J]. 中国腐蚀与防护学报, 2005, 25(1): 2-7.
|
[11] |
S FELIU, M MORCILLO, and B CHICO, Effect of distance from sea on atmospheric corrosion rate [J], CORROSION 55, 9883891(1999).
|
[12] |
REVIE R W, UHLIG H H. Corrosion and corrosion control: an introduction to corrosion science and engineering [M]. Hoboken: John Wiley & Sons, 2008.
|
[13] |
WEISSENRIEDER J, LEYGRAF C. In situ studies of filiform corrosion of iron [J/OL]. Journal of The Electrochemical Society, 2004, 151(3). [2023-12-05]. https//iopscience.iop.org/article/10. 1149.
|
[14] |
S ESMAILZADEH, M ALIOFKHAZRAEI, and H SARLAK, Interpretation of cyclic potentiodynamic polarization test results for study of corrosion behavior of metals: a review [J], Protection of Metals and Physical Chemistry of Surfaces 54, 5976989(2018).
|
[15] |
刘新灵, 张峥, 陶春虎. 疲劳断口定量分析[M]. 北京: 国防工业出版社, 2010.
|
[16] |
E WYCISK, A SOLBACH, and S SIDDIQUE, et al.Effects of defects in laser additive manufactured Ti-6Al-4V on fatigue properties [J], Physics Procedia 56, 371378(2014).
|
[17] |
LIU X H, XIAO L F, CAI C S, et al. Fatigue properties investigation of corroded high-performance steel specimens [J/OL]. Journal of Materials in Civil Engineering, 2021, 33(1). [2023- 12-05]. https://doi.org/10.1061/(ASCE)MT.1943-5533.0003508.
|
[18] |
S I ROKHLIN, J Y KIM, and H NAGY, et al.Effect of pitting corrosion on fatigue crack initiation and fatigue life [J], Engineering Fracture Mechanics 62, 4-5425444(1999).
|
[19] |
卫星, 揭志羽, 廖晓璇, 等. 钢结构桥梁焊接节点腐蚀疲劳研究进展[J]. 钢结构, 2019, 34(1): 108-112.
|
[20] |
D H KANG, J K LEE, and T W KIM, Corrosion Fatigue Crack Propagation of High-strength Steel HSB800 in a seawater environment [J], Procedia Engineering 10, 11701175(2011).
|
[21] |
吴开源, 王勇, 赵卫民. 金属结构的锈蚀与防护[M]. 青岛: 中国石油大学出版社, 2000.
|
[22] |
HOEPPNER D. Model for prediction of fatigue lives based upon a pitting corrosion fatigue process [M]//Fatigue Mechanisms. ASTM International, 1979.
|
[23] |
Y KONDO, Prediction of fatigue crack initiation life based on pit growth [J], CORROSION 45, 1711(1989).
|
[24] |
D G HARLOW, and R P WEI, Probability approach for prediction of corrosion and corrosion fatigue life [J], AIAA Journal 32, 1020732079(1994).
|
[25] |
ISHIHARA S, SAKA S, NAN Z, et al. Prediction of corrosion fatigue lives of aluminium alloy on the basis of corrosion pit growth law [J]. Fatigue & Fracture of Engineering Materials & Structures, 2006, 29(6): 472-480.
|
[26] |
R P WEI, Some aspects of environment-enhanced fatigue-crack growth [J], Engineering Fracture Mechanics 1, 4633651(1970).
|
[27] |
郭万林. 复杂环境下的三维疲劳断裂[J]. 航空学报, 2002, 23(3): 215-220.
|
[28] |
ISO. Corrosion of metals and alloys-corrosivity of atmospheres- classification, determination and estimation: ISO 9223: 2012[S]. Geneva, Switzerland: the International Organization for Standardization, 2012.
|
[29] |
中华人民共和国科学技术部. 国家材料环境腐蚀野外科学观测研究平台[EB/OL]. [2023-08-25]. https://most.gov.cn/ztzl/kjzykfgx/kjzygjjctjpt/kjzyptml/201407/t20140716_114280.html.
|
[30] |
R E MELCHERS, Probabilistic model for marine corrosion of steel for structural reliability assessment [J], Journal of Structural Engineering 129, 1114841493(2003).
|
[31] |
W ZHANG, X SONG, and X GU, et al.Tensile and fatigue behavior of corroded rebars [J], Construction and Building Materials 34, 409417(2012).
|
[32] |
W ZHANG, B ZHOU, and X GU, et al.Probability distribution model for cross-sectional area of corroded reinforcing steel bars [J], Journal of Materials in Civil Engineering 26, 5822832(2014).
|
[33] |
X GU, H GUO, and B ZHOU, et al.Corrosion non-uniformity of steel bars and reliability of corroded RC beams [J], Engineering Structures 167, 188202(2018).
|
[34] |
A VALOR, F CALEYO, and D RIVAS, et al.Stochastic approach to pitting-corrosion-extreme modelling in low-carbon steel [J], Corrosion Science 52, 3910915(2010).
|
[35] |
I T KIM, D K DAO, and Y S JEONG, et al.Effect of corrosion on the tension behavior of painted structural steel members [J], Journal of Constructional Steel Research 133, 256268(2017).
|
[36] |
S XU, and B QIU, Experimental study on fatigue behavior of corroded steel [J], Materials Science and Engineering: A 584, 163169(2013).
|
[37] |
 P TEIXEIRA, and C G SOARES, Ultimate strength of plates with random fields of corrosion [J], Structure and Infrastructure Engineering 4, 5363370(2008).
|
[38] |
K VAN DER WALDE, and B HILLBERRY, Characterization of pitting damage and prediction of remaining fatigue life [J], International Journal of Fatigue 30, 1106118(2008).
|
[39] |
J BHANDARI, F KHAN, and R ABBASSI, et al.Modelling of pitting corrosion in marine and offshore steel structures - A technical review [J], Journal of Loss Prevention in the Process Industries 37, 3962(2015).
|
[40] |
M CERIT, K GENEL, and S EKSI, Numerical investigation on stress concentration of corrosion pit [J], Engineering Failure Analysis 16, 724672472(2009).
|
[41] |
WANG Y M, XU S H, LI H, et al. Surface characteristics and stochastic model of corroded structural steel under general atmospheric environment [J]. Acta Metall Sinica, 2019, 56(2): 148-160.
|
[42] |
E N CODARO, R Z NAKAZATO, and A L HOROVISTIZ, et al.An image processing method for morphology characterization and pitting corrosion evaluation [J], Materials Science and Engineering: A 334, 1-2298306(2002).
|
[43] |
J L DE LA CRUZ, R LINDELAUF, and L KOENE, et al.Stochastic approach to the spatial analysis of pitting corrosion and pit interaction [J], Electrochemistry Communications 9, 2325330(2007).
|
[44] |
J L DE LA CRUZ, and M GUTIéRREZ, Spatial statistics of pitting corrosion patterning: Quadrat counts and the non-homogeneous Poisson process [J], Corrosion Science 50, 514411448(2008).
|
[45] |
K TARANTSEVA, Models and methods of forecasting pitting corrosion [J], Protection of Metals and Physical Chemistry of Surfaces 46, 1139147(2010).
|
[46] |
S M GRAVANO, and J R GALVELE, Transport processes in passivity breakdown—III. Full hydrolysis plus ion migration plus buffers [J], Corrosion Science 24, 6517534(1984).
|
[47] |
J GALVELE, Transport processes in passivity breakdown—II. Full hydrolysis of the metal ions [J], Corrosion Science 21, 8551579(1981).
|
[48] |
KOMP M. Atmospheric corrosion ratings of weethering steels: calculation and significance [J]. Materials Performance, 1987, 26(7): 42-44.
|
[49] |
S QIN, and W CUI, Effect of corrosion models on the time-dependent reliability of steel plated elements [J], Marine Structures 16, 11534(2003).
|
[50] |
R E MELCHERS, Modeling of marine immersion corrosion for mild and Low-Alloy steels: part 1: phenomenological model [J], CORROSION 59, 4319334(2003).
|
[51] |
R E MELCHERS, Effect on marine immersion corrosion of carbon content of low alloy steels [J], Corrosion Science 45, 1126092625(2003).
|
[52] |
D E KLINESMITH, R H MCCUEN, and P ALBRECHT, Effect of environmental conditions on corrosion rates [J], Journal of Materials in Civil Engineering 19, 2121129(2007).
|
[53] |
S V LISHCHUK, R AKID, and K WORDEN, et al.A cellular automaton model for predicting intergranular corrosion [J], Corrosion Science 53, 825182526(2011).
|
[54] |
B MALKI, and B BAROUX, Computer simulation of the corrosion pit growth [J], Corrosion Science 47, 1171182(2005).
|
[55] |
C A APOSTOLOPOULOS, and M P PAPADOPOULOS, Tensile and low cycle fatigue behavior of corroded reinforcing steel bars S400[J], Construction and Building Materials 21, 4855864(2007).
|
[56] |
S KAINUMA, Y S JEONG, and J H AHN, Investigation on the stress concentration effect at the corroded surface achieved by atmospheric exposure test [J], Materials Science and Engineering: A 602, 8997(2014).
|
[57] |
NIE B, XU S, YU J, et al. Experimental investigation of mechanical properties of corroded cold-formed steels [J/OL]. Journal of Constructional Steel Research, 2019, 162. [2023- 12-05]. https://doi.org/10.1016/j.jcsr.2019.105706.
|
[58] |
L LI, C Q LI, and M MAHMOODIAN, et al.Corrosion induced degradation of fatigue strength of steel in service for 128 years [J], Structures 23, 415424(2020).
|
[59] |
T NAKAI, H MATSUSHITA, and N YAMAMOTO, Effect of pitting corrosion on strength of web plates subjected to patch loading [J], Thin-Walled Structures 44, 11019(2006).
|
[60] |
ISO. Corrosion tests in artificial atmospheres-salt spray tests: ISO 9227: 2017[S]. Geneva, Switzerland: the International Organization for Standardization, 2017.
|
[61] |
S GKATZOGIANNIS, J WEINERT, and I ENGELHARDT, et al.Correlation of laboratory and real marine corrosion for the investigation of corrosion fatigue behaviour of steel components [J], International Journal of Fatigue 126, 90102(2019).
|
[62] |
R RAHGOZAR, and Y SHARIFI, Remaining fatigue life of corroded steel structural members [J], Advances in Structural Engineering 14, 5881890(2011).
|
[63] |
S XU, and Y WANG, Estimating the effects of corrosion pits on the fatigue life of steel plate based on the 3D profile [J], International Journal of Fatigue 72, 2741(2015).
|
[64] |
K K SANKARAN, R PEREZ, and K V JATA, Effects of pitting corrosion on the fatigue behavior of aluminum alloy 7075-T6: modeling and experimental studies [J], Materials Science and Engineering: A 297, 1-2223229(2001).
|
[65] |
I S RAJU, and J C NEWMAN JR., Stress-intensity factors for a wide range of semi-elliptical surface cracks in finite-thickness plates [J], Engineering Fracture Mechanics 11, 4817829(1979).
|
[66] |
Y MURAKAMI, Analysis of stress intensity factors of modes I, II and III for inclined surface cracks of arbitrary shape [J], Engineering Fracture Mechanics 22, 1101114(1985).
|
[67] |
M SURARATCHAI, J LIMIDO, and C MABRU, et al.Modelling the influence of machined surface roughness on the fatigue life of aluminium alloy [J], International Journal of Fatigue 30, 1221192126(2008).
|
[68] |
LIU X G, ZHANG W P, GU X L, et al. Probability distribution model of stress impact factor for corrosion pits of high-strength prestressing wires [J/OL]. Engineering Structures, 2021, 230. [2023- 12-05]. https://doi.org/10.1016/j.engstruct.2020.111686.
|
[69] |
J SHENG, and J XIA, Effect of simulated pitting corrosion on the tensile properties of steel [J], Construction and Building Materials 131, 90100(2017).
|
[70] |
C CUI, R MA, and A CHEN, et al.Experimental study and 3D cellular automata simulation of corrosion pits on Q345 steel surface under salt-spray environment [J], Corrosion Science 154, 8089(2019).
|
[71] |
T CHEN, L HU, and N ZHANG, et al.Boundary element analysis of fatigue behavior for CFRP-strengthened steel plates with center inclined cracks [J], Thin-Walled Structures 125, 164171(2018).
|
[72] |
T CHEN, Q Q YU, and X L GU, et al.Stress intensity factors (KI) of cracked non-load-carrying cruciform welded joints repaired with CFRP materials [J], Composites Part B: Engineering 45, 116291635(2013).
|
[73] |
T CHEN, Q Q YU, and X L GU, et al.Study on fatigue behavior of strengthened non-load-carrying cruciform welded joints using carbon fiber sheets [J], International Journal of Structural Stability and Dynamics 12, 1179194(2012).
|
[74] |
YU Q Q, CHEN T, GU X L, et al. Fatigue behaviour of CFRP strengthened out-of-plane gusset welded joints with double cracks [J]. Polymers, 2015, 2015, 7(9): 1617-1637.
|
[75] |
Q Q YU, T CHEN, and X L GU, et al.Fatigue behaviour of CFRP strengthened steel plates with different degrees of damage [J], Thin-Walled Structures 69, 1017(2013).
|
[76] |
YU Q Q, WU Y F. Fatigue strengthening of cracked steel beams with different configurations and materials [J/OL]. Journal of Composites for Construction, 2017, 21(2). [2023-12-05]. https://doi.org/10.1061/(ASCE)CC.1943-5614.0000750.
|
[77] |
CHEN Z Y, GU X L, ZHAO X L, et al. Fatigue tests on Fe-SMA strengthened steel plates considering thermal effects [J/OL]. Journal of Structural Engineering, 2023, 149(3). [2023-12-05]. https://doi.org/10.1061/JSENDH.STENG-1169.
|
[78] |
CHEN Z Y, GU X L, VOLLMER M, et al. Recovery stress behavior of Fe-SMA under fatigue and thermal loading [J/OL]. Thin-Walled Structures, 2023, 188. [2023-12-05]. https://doi.org/10.1016/j.tws.2023.110799.
|
[79] |
GU X L, CHEN Z Y, YU Q Q, et al. Stress recovery behavior of an Fe-Mn-Si shape memory alloy [J/OL]. Engineering Structures, 2021, 243. [2023-12-05]. https://doi.org/10.1016/j.engstruct.2021.112710.
|
[80] |
陈振宇, 余倩倩, 顾祥林. 形状记忆合金补强损伤钢板疲劳性能研究[J]. 建筑结构学报, 2021, 42(增刊1): 411-417.
|
[81] |
Q Q YU, T CHEN, and X L GU, et al.Boundary element analysis of edge cracked steel plates strengthened by CFRP laminates [J], Thin-Walled Structures 100, 147157(2016).
|
[82] |
YU Q Q, CHEN T, GU X L, et al. Boundary element analysis of fatigue crack growth for CFRP-strengthened steel plates with longitudinal weld attachments [J/OL]. Journal of Composites for Construction, 2015, 19(2). [2023-12-05]. https://ascelibrary.org/doi/10.1061/%28ASCE%29CC.1943-5614.0000505.
|
[83] |
Q Q YU, X L ZHAO, and T CHEN, et al.Crack propagation prediction of CFRP retrofitted steel plates with different degrees of damage using BEM [J], Thin-Walled Structures 82, 145158(2014).
|
[84] |
YU Q Q, ZHAO X L, XIAO Z G, et al. Evaluation of stress intensity factor for CFRP bonded steel plates [J]. Advances in Structural Engineering, 2016, 17(12): 1729-1746.
|
1. | 程江洲,谢卓然,李欣,张志强,邓海峰,郑皓文. 海洋大气环境下输电塔线体系强风响应模拟分析. 装备环境工程. 2025(02): 52-61 . ![]() | |
2. | 吴正江,王博,杨飞,陈文锐,李冬冬. HDR钢在海洋环境中的腐蚀行为. 腐蚀与防护. 2024(10): 77-81 . ![]() |