首页> 外文会议>ASME Pressure Vessels amp;amp;amp; Piping Conference >CHANGE OF CRACK INITIATION AND PROPAGATION MODES IN HYDROGEN-RELATED FAILURE OF A PRECIPITATION-STRENGTHENED NI-BASED SUPERALLOY 718 UNDER INTERNAL AND EXTERNAL HYDROGEN CONDITIONS
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CHANGE OF CRACK INITIATION AND PROPAGATION MODES IN HYDROGEN-RELATED FAILURE OF A PRECIPITATION-STRENGTHENED NI-BASED SUPERALLOY 718 UNDER INTERNAL AND EXTERNAL HYDROGEN CONDITIONS

机译:内外氢气条件下沉淀加强的Ni基超合金718氢相关损失裂纹引发和繁殖模式的变化

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The influences of internal and external hydrogen on the tensile ductility loss and fracture behaviors of a precipitation-hardened Ni-based superalloy 718 were investigated via slow strain rate tensile (SSRT) testing under hydrogen pre-charged conditions (internal hydrogen) or in gaseous hydrogen environments (external hydrogen). Severe degradation of tensile ductility was confirmed both in internal and external hydrogen conditions, and the degree of such degradation became more significant with increasing hydrogen content or hydrogen gas pressures. Moreover, the loss of tensile ductility was more pronounced in internal hydrogen conditions than external hydrogen environments. In association with such degradation of macroscopic tensile ductility, hydrogen also altered fracture mode from ductile microvoid coalescence to some brittle appearances. Whereas typical intergranular fracture combined with a decent fraction of quasi-cleavage fracture appeared on the fracture surface formed in external hydrogen environments, several types of unique faceted characteristics were found on the fracture surfaces in internal hydrogen conditions. The detailed observation of the mid-sectioned lateral surfaces of post-mortem samples successfully revealed that the observed distinctions consisted of the fracture along grain boundaries and {111} crystallographic planes including annealing twin boundaries, besides the frequency of the cracking along twin boundaries evidently increased at higher hydrogen concentration. On the basis of the series of experimental results, the initiation and propagation mechanisms of those hydrogen-induced cracks are discussed in terms of hydrogen distribution, intrinsic deformation character of the material itself as well as the alteration of plastic deformation mode caused by dissolved hydrogen.
机译:通过在氢气预热条件(内氢)或气态氢气下,通过慢菌株速率拉伸(SSRT)测试研究内外氢对沉淀硬化的Ni基超合金718的拉伸延展性损失和断裂行为的影响。环境(外部氢气)。在内部和外部氢气条件下证实了拉伸延展性的严重降解,并且这种降解程度随着氢气含量或氢气压力而变得更显着。此外,在内部氢气条件下,拉伸延展性的丧失比外部氢气环境更加明显。与宏观拉伸延展性的这种降解结合,氢也改变了从延性微脂糖聚结的裂缝模式改变为一些脆性外观。然而,典型的晶间骨折与等裂缝骨折的体面部分相结合出现在外部氢气环境中形成的裂缝表面上,在内部氢气条件下的裂缝表面上发现了几种独特的刻面特性。后验验后样品的中段横向表面的详细观察结果显示,观察到的区别由沿晶界和{111}结晶平面的裂缝组成,包括退火双界,除了沿双界的裂缝的频率显然增加了在较高的氢浓度下。在该系列的实验结果的基础上,就氢气分布而讨论了那些氢诱导裂缝的启动和传播机制,材料本身的内在变形特征以及溶解氢引起的塑性变形模式的改变。

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