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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
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

State-of-the-Art on Fatigue Properties of Corroded Steel Members Subjected to Marine Atmosphere

doi: 10.3724/j.gyjzG23120501
  • Received Date: 2023-12-05
    Available Online: 2024-02-27
  • Fatigue failure is one of the main causes of metal structure damage, and if corrosion is considered, the problem becomes more complex. Domestic and foreign scholars have conducted systematic and comprehensive research on the fatigue properties of corroded steel components. The paper critically reviewed and analyzed the state-of-the-art on fatigue properties of corroded steel elements subjected to marine atmosphere in terms of electrochemical corrosion process, corrosion characterization, fatigue properties of corroded steel components. It was found that the electrochemical process of steel corrosion, the general laws of fatigue properties of corroded steels, the characterization of corroded steel surfaces based on a single index have been clearly understood. However, the accurate evaluation of the evolution of fatigue properties of corroded steel structures still faces significant challenges. It is suggested to further identify the spatiotemporal distribution and random models of morphological characteristics of corroded steels, the similarity of steel corrosion mechanisms between natural and artificial environmental conditions, the random evolution mechanism of fatigue properties of corroded steel structures in marine atmospheric environment, as well as the control and improvement of the fatigue properties of corroded steel structures.
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    Created with Highcharts 5.0.7Chart context menuAccess Area Distribution其他: 16.0 %其他: 16.0 %其他: 0.3 %其他: 0.3 %Central District: 1.0 %Central District: 1.0 %上海: 6.8 %上海: 6.8 %临汾: 1.0 %临汾: 1.0 %保定: 0.7 %保定: 0.7 %兰州: 0.3 %兰州: 0.3 %北京: 7.5 %北京: 7.5 %十堰: 0.3 %十堰: 0.3 %南京: 4.8 %南京: 4.8 %南宁: 0.3 %南宁: 0.3 %南昌: 0.3 %南昌: 0.3 %南通: 0.3 %南通: 0.3 %厦门: 0.7 %厦门: 0.7 %合肥: 0.3 %合肥: 0.3 %哈尔滨: 0.3 %哈尔滨: 0.3 %大庆: 0.3 %大庆: 0.3 %大连: 0.3 %大连: 0.3 %天津: 1.7 %天津: 1.7 %太原: 0.3 %太原: 0.3 %宣城: 0.3 %宣城: 0.3 %常德: 2.7 %常德: 2.7 %广州: 2.0 %广州: 2.0 %廊坊: 0.3 %廊坊: 0.3 %开封: 0.7 %开封: 0.7 %张家口: 1.4 %张家口: 1.4 %徐州: 0.3 %徐州: 0.3 %成都: 1.4 %成都: 1.4 %扬州: 1.4 %扬州: 1.4 %昆明: 2.4 %昆明: 2.4 %朝阳: 1.0 %朝阳: 1.0 %杭州: 0.7 %杭州: 0.7 %武汉: 0.7 %武汉: 0.7 %汕头: 0.3 %汕头: 0.3 %泰安: 0.3 %泰安: 0.3 %济南: 0.7 %济南: 0.7 %温州: 0.3 %温州: 0.3 %湘潭: 0.3 %湘潭: 0.3 %漯河: 1.0 %漯河: 1.0 %烟台: 0.3 %烟台: 0.3 %牛津: 0.7 %牛津: 0.7 %珠海: 1.0 %珠海: 1.0 %石家庄: 0.7 %石家庄: 0.7 %福州: 5.1 %福州: 5.1 %绍兴: 0.3 %绍兴: 0.3 %芒廷维尤: 11.6 %芒廷维尤: 11.6 %芜湖: 0.3 %芜湖: 0.3 %芝加哥: 0.3 %芝加哥: 0.3 %苏州: 0.3 %苏州: 0.3 %衡水: 0.3 %衡水: 0.3 %衡阳: 0.7 %衡阳: 0.7 %西宁: 6.8 %西宁: 6.8 %西安: 0.7 %西安: 0.7 %赣州: 0.3 %赣州: 0.3 %运城: 2.0 %运城: 2.0 %郑州: 1.0 %郑州: 1.0 %重庆: 2.0 %重庆: 2.0 %长沙: 1.0 %长沙: 1.0 %青岛: 1.7 %青岛: 1.7 %黄石: 0.3 %黄石: 0.3 %其他其他Central District上海临汾保定兰州北京十堰南京南宁南昌南通厦门合肥哈尔滨大庆大连天津太原宣城常德广州廊坊开封张家口徐州成都扬州昆明朝阳杭州武汉汕头泰安济南温州湘潭漯河烟台牛津珠海石家庄福州绍兴芒廷维尤芜湖芝加哥苏州衡水衡阳西宁西安赣州运城郑州重庆长沙青岛黄石

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