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Effects of alloy composition and strain hardening on tensile fracture of hydrogen-precharged type 316 stainless steels

机译:合金组成和应变硬化对预充氢316不锈钢的拉伸断裂的影响

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The use of type 316 stainless steels in gaseous hydrogen infrastructure motivated this work on hydrogen-assisted fracture. The tensile ductility of type 316 stainless steel is reduced by internal hydrogen contents of 136 wppm that have been generated by thermal precharging in hydrogen gas, although these reductions of ductility tend to be modest for both annealed and strain-hardened microstructures. Consistent with the relatively high ductility of both hydrogen-precharged and non-charged specimens, the tensile fracture modes involve plasticity mechanisms. However, internal hydrogen enhances void nucleation by lowering the interface strength at particles and/or by promoting slip localization. High nickel content in type 316 stainless steels appears to offer greater resistance to hydrogen-assisted fracture; in particular, nickel plays an important role in deformation processes that affect hydrogen-assisted fracture. Carbon was found to have no measurable effect on hydrogen-assisted fracture, although it is expected to contribute to stabilizing type 316 stainless steel with respect to the formation of strain-induced martensite.
机译:在气态氢基础设施中使用316型不锈钢激励了这项工作在氢辅助断裂上。氢气热预充已产生136 wppm的内部氢含量,从而降低了316型不锈钢的拉伸延展性,尽管这些延展性的降低对于退火和应变硬化的显微组织而言都是适度的。与预充氢和不充氢样品的相对较高的延展性相一致,拉伸断裂模式涉及塑性机制。然而,内部氢通过降低颗粒处的界面强度和/或通过促进滑移局部化而增强了空核。 316型不锈钢中的高镍含量似乎对氢辅助断裂具有更大的抵抗力。特别是,镍在影响氢辅助断裂的变形过程中起着重要作用。发现碳对氢辅助断裂没有可测量的影响,尽管预期它有助于在应变诱发马氏体形成方面稳定316型不锈钢。

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