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碳含量和組織類型對低合金鋼耐蝕性的影響

Effect of carbon content and microstructure on the corrosion resistance of low alloy steels

  • 摘要: 研究了不同碳含量和顯微組織的低合金鋼的耐腐蝕性能和腐蝕行為,并與商業耐候鋼09CuPCrNi進行了相應的比較.通過金相顯微鏡、掃描電鏡觀察,軋后水冷鋼的主體組織為板條狀貝氏體,軋后空冷鋼為針狀鐵素體、粒狀貝氏體、M/A小島和少量滲碳體(珠光體)的混合物.用干濕循環加速腐蝕實驗對耐蝕性測定結果表明:低碳鋼(0.03%C)和軋后水冷的較高碳含量鋼(0.1%C)的耐蝕性均明顯優于09CuPCrNi;低碳含量鋼的組織類型對其耐蝕性影響不大;較高碳含量情況下,單相貝氏體鋼的耐蝕性優于由鐵素體、滲碳體(珠光體)等構成的復相組織鋼;軋后水冷時,不同碳含量的鋼耐蝕性差別不大;軋后空冷時,低碳含量鋼的耐蝕性優于較高碳含量鋼.用掃描電鏡對銹層進行觀察,可以看出耐蝕性較好的樣品在腐蝕后期形成了致密的內銹層.

     

    Abstract: The corrosion resistance and corrosion behavior of low alloy steels with different carbon contents and different microstructures were investigated and compared with a commercial weathering steel 09CuPCrNi. Optical microscopy and SEM were employed to examine the microstructures of these steels. It was revealed that the dominant microstructure in the steel cooled in water after rolling is lath-like bainite while the microstructure in the steel cooled in air after rolling is the mixture of acicular ferrite, granular bainite, M/A islands and little cementite (pearlite). Cyclic wet-dry test was carried out to evaluate the corrosion resistance of these steels. The results indicate that the corrosion resistance of the low carbon steel with 0.03 96 C or 0.196 C, which was cooled in water after rolling, excels that of 09CuPCrNi steel. Provided with low carbon content, the influence of on the corrosion resistance of the tested steel is not obvious. With a higher carbon content, the bainitic steel with single phase exhibits a higher corrosion resistance than multi-phase steel constituted by ferrite and cementite (pearlite). No marked distinction can be detected in the corro-sion resistance of the steels with different carbon contents when they were cooled in water after rolling. When cooled in air after rolling, the steel with low carbon content exhibits a higher corrosion resistance than the steel with a higher carbon content. Through observations on rust layers with SEM, it can be found that a compact inner rust layer forms in the specimen with excellent corrosion resistance after long corrosion.

     

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