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通过热影响区的热模拟试验对双相管线钢的微观组织和疲劳性能进行表征

Characterization of Microstructures and Fatigue Properties for Dual-Phase Pipeline Steels by Gleeble Simulation of Heat-Affected Zone.

作者信息

Zhao Zuopeng, Xu Pengfei, Cheng Hongxia, Miao Jili, Xiao Furen

机构信息

Jiangsu Key Laboratory of Coast Ocean Resources Development and Environment Security, Hohai University, Nanjing 210098, China.

Jiangnan Shipyard (Group) Co. LTD., Shanghai 201913, China.

出版信息

Materials (Basel). 2019 Jun 20;12(12):1989. doi: 10.3390/ma12121989.

Abstract

To increase transmission efficiency and reduce operation cost, dual-phase (DP) steels have been considered for pipeline applications. Welding has to be involved in such applications, which would cause a localized alteration of materials and cause many potential fatigue issues to arise under cyclic loading. In this work, the fatigue crack propagation and fatigue life of simulated heat-affected zone (HAZ) were examined. Results indicate that when the maximum stress is at the same magnitude, the fatigue life at a peak temperature of 1050 °C is very close to that of a peak temperature of 850 °C, and both of them are higher than that of a peak temperature of 1350 °C. The changes in with Δ for HAZ subregions are attributed to the variation of crack path and fracture mode during the crack propagation. The fatigue cracks may propagate along the bainite lath preferentially in coarse-grained HAZ (CGHAZ), and the prior austenite grain boundaries can change the crack growth direction. A considerable amount of highly misoriented grain boundaries in fine-grained HAZ (FGHAZ) and intercritical-grained HAZ (ICHAZ) increase the crack growth resistance. The difference of fatigue crack propagation behavior in HAZ subregions between actual and simulated welded joints was also discussed.

摘要

为了提高传输效率并降低运营成本,双相(DP)钢已被考虑用于管道应用。此类应用必须涉及焊接,这会导致材料的局部改变,并在循环载荷下引发许多潜在的疲劳问题。在这项工作中,对模拟热影响区(HAZ)的疲劳裂纹扩展和疲劳寿命进行了研究。结果表明,当最大应力大小相同时,1050℃峰值温度下的疲劳寿命与850℃峰值温度下的非常接近,且两者均高于1350℃峰值温度下的疲劳寿命。热影响区子区域的 随Δ的变化归因于裂纹扩展过程中裂纹路径和断裂模式的变化。疲劳裂纹可能在粗晶热影响区(CGHAZ)中优先沿贝氏体板条扩展,且原奥氏体晶界会改变裂纹扩展方向。细晶热影响区(FGHAZ)和临界晶热影响区(ICHAZ)中大量的高度取向差晶界增加了裂纹扩展阻力。还讨论了实际焊接接头与模拟焊接接头在热影响区子区域疲劳裂纹扩展行为的差异。

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