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Hydrogen-induced delayed cracking in TRIP-aided lean-alloyed ferritic-austenitic stainless steels

机译:TRIP辅助贫合金铁素体-奥氏体不锈钢的氢诱导延迟开裂

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摘要

Susceptibility of three lean-alloyed ferritic-austenitic stainless steels to hydrogen-induced delayed cracking was examined, concentrating on internal hydrogen contained in the materials after production operations. The aim was to study the role of strain-induced austenite to martensite transformation in the delayed cracking susceptibility. According to the conducted deep drawing tests and constant load tensile testing, the studied materials seem not to be particularly susceptible to delayed cracking. Delayed cracks were only occasionally initiated in two of the materials at high local stress levels. However, if a delayed crack initiated in a highly stressed location, strain-induced martensite transformation decreased the crack arrest tendency of the austenite phase in a duplex microstructure. According to electron microscopy examination and electron backscattering diffraction analysis, the fracture mode was predominantly cleavage, and cracks propagated along the body-centered cubic (BCC) phases ferrite and α'-martensite. The BCC crystal structure enables fast diffusion of hydrogen to the crack tip area. No delayed cracking was observed in the stainless steel that had high austenite stability. Thus, it can be concluded that the presence of α'-martensite increases the hydrogen-induced cracking susceptibility.
机译:研究了三种贫合金铁素体-奥氏体不锈钢对氢引起的延迟开裂的敏感性,集中于生产操作后材料中的内部氢。目的是研究应变诱发奥氏体向马氏体转变在延迟开裂敏感性中的作用。根据进行的深拉试验和恒定载荷拉伸试验,所研究的材料似乎对延迟开裂特别不敏感。延迟裂纹仅在两种材料中局部应力水平较高时才引发。但是,如果在高应力位置开始出现延迟裂纹,应变诱发的马氏体相变会降低双相组织中奥氏体相的裂纹阻止趋势。根据电子显微镜检查和电子反向散射衍射分析,断裂模式主要是劈裂,裂纹沿着体心立方(BCC)相铁素体和α'-马氏体传播。 BCC晶体结构使氢快速扩散到裂纹尖端区域。在具有高奥氏体稳定性的不锈钢中未观察到延迟裂纹。因此,可以得出结论,α'-马氏体的存在增加了氢诱导的开裂敏感性。

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