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首页> 外文期刊>Metallurgical and Materials Transactions A >Fatigue Properties of Nitrided Ultrafine Ferrite-Cementite Steels under Rotating Bending Fatigue Testing
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Fatigue Properties of Nitrided Ultrafine Ferrite-Cementite Steels under Rotating Bending Fatigue Testing

机译:氮化超细铁素体渗碳钢在旋转弯曲疲劳试验下的疲劳性能

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摘要

Fatigue tests under rotating bending were conducted on nitrided ultrafine ferrite-cementite steels. The ultrafine ferrite-cementite steels included carbon-increased and phosphorus-added versions to investigate the effects of grain growth suppression during nitriding. In the carbon-increased versions, grain growth was successfully suppressed both in the nitrided layer and in the core region. On the other hand, the low-carbon versions showed grain growth in the core region, even in the phosphorus-added types, although grain growth was suppressed in the nitrided layer. In the fatigue tests, many of the nitrided specimens revealed fish-eye fractures originating from inclusions located in or beneath the nitrided layer. In spite of the occurrence of fish-eye fractures, the fatigue strength of the carbon-increased versions was markedly improved due to nitriding, whereas it was a little improved in the low-carbon versions. The fatigue strength of the nitrided specimens was closely related to hardness at the fracture origin, even when fish-eye fractures occurred. This was why nitriding markedly improved the fatigue strength of the carbon-increased versions in which grain growth was successfully suppressed and high hardness was maintained beneath the nitrided layer.
机译:对氮化超细铁素体-渗碳体钢进行了旋转弯曲下的疲劳试验。超细铁素体-渗碳体钢包括碳增加和磷添加的版本,以研究氮化过程中抑制晶粒长大的影响。在碳增加的版本中,在氮化层和核心区域中都成功地抑制了晶粒的生长。另一方面,尽管低碳形式在氮化层中抑制了晶粒生长,但是即使在添加磷的类型中,也显示了在核心区域中的晶粒生长。在疲劳测试中,许多渗氮样品都显示出鱼眼破裂,其原因是渗氮层中或渗氮层下方的夹杂物。尽管发生了鱼眼骨折,但由于渗氮,碳​​含量增加的版本的疲劳强度得到了显着改善,而低碳版本的疲劳强度得到了改善。即使发生鱼眼断裂,氮化试样的疲劳强度也与断裂起点的硬度密切相关。这就是为什么氮化显着改善了碳增加形式的疲劳强度的原因,在碳增加形式中,成功抑制了晶粒生长,并在氮化层下面保持了高硬度。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2008年第9期|2068-2076|共9页
  • 作者单位

    National Institute for Materials Science 1-2-1 Sengen Tsukuba Ibaraki 305-0047 Japan;

    National Institute for Materials Science 1-2-1 Sengen Tsukuba Ibaraki 305-0047 Japan;

    National Institute for Materials Science 1-2-1 Sengen Tsukuba Ibaraki 305-0047 Japan;

    National Institute for Materials Science 1-2-1 Sengen Tsukuba Ibaraki 305-0047 Japan;

    Research Institute for Applied Science Tanaka Ohicho Sakyo-ku Kyoto 606-8202 Japan;

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