节点文献

氢对铁素体/贝氏体双相X70管线钢拉伸及疲劳性能的影响

Effect of hydrogen on tensile and fatigue properties of ferritic/bainite dual-phase X70 pipeline steel

  • 推荐 CAJ下载
  • PDF下载
  • 不支持迅雷等下载工具,请取消加速工具后下载。

【作者】 吴英铜乔桂英徐凯肖福仁

【Author】 WU Ying-tong;QIAO Gui-ying;XU Kai;XIAO Fu-ren;Key Laboratory of Deep Remediation of Heavy Metals in Water and Resource Utilization of Hebei Province, School of Environment and Chemical Engineering, Yanshan University;Key Laboratory of Metastable Materials Science & Technology and Hebei Key Laboratory for Optimizing metal Product Technology and Performance, College of Materials Science & Engineering, Yanshan University;

【通讯作者】 乔桂英;

【机构】 燕山大学环境与化学工程学院河北省水体重金属深度修复与资源利用重点实验室燕山大学材料科学与工程学院亚稳材料科学与制备技术国家重点实验室河北省金属产品工艺与性能优化重点实验室

【摘要】 采用电化学充氢方法研究了氢对铁素体/贝氏体双相X70管线钢拉伸和疲劳性能的影响;采用扫描电镜(SEM)和电子背散射(EBSD)技术观察了拉伸和疲劳断口的形貌及疲劳断口处的组织。结果表明:氢对双相X70管线钢的强度影响不大,但显著降低钢的塑性,特别是断后伸长率;充氢后拉伸断口由塑性的韧窝断裂转变为脆性准解理断裂;氢显著加速钢疲劳裂纹萌生和裂纹扩展速率,降低疲劳寿命;氢加速位错等缺陷在晶界及铁素体/贝氏体界面处的聚集,导致断裂模式发生变化,从而降低钢的塑性和疲劳寿命。

【Abstract】 Effect of hydrogen on tensile and fatigue properties of ferrite/bainite dual-phase X70 pipeline steel was studied by electrochemical hydrogen charging method. The morphology of tensile and fatigue fracture surfaces and microstructure near the fatigue fracture surface were observed by means of scanning electron microscopy(SEM) and electron backscatter diffraction(EBSD) technique. The results show that the hydrogen has little effect on the strength of the dual-phase X70 pipeline steel, but significantly reduces its plasticity, especially the elongation. After hydrogen charging, the tensile fracture changes from plastic dimple fracture to brittle quasi-cleavage fracture. Hydrogen significantly accelerates the initiation and propagation rate of fatigue cracks in the steel, reducing fatigue life. Hydrogen accelerates the aggregation of dislocations and other defects at grain boundaries and ferrite/bainite interfaces, which leads to the change of fracture mode, thus reducing the plastic and fatigue life of the steel.

【关键词】 管线钢氢脆疲劳塑性
【Key words】 pipeline steelhydrogen embrittlementfatigueplasticity
【基金】 河北省自然科学基金-先进钢铁联合基金(E2021203069);河北省自然科学基金-青年科学基金(E2022203174);河北省重点研发计划项目(22314601D);河北省创新能力提升计划项目(22567609H)
  • 【文献出处】 材料热处理学报 ,Transactions of Materials and Heat Treatment , 编辑部邮箱 ,2023年09期
  • 【分类号】TG142.1
  • 【下载频次】50
节点文献中: