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首页> 外文期刊>International Journal of Fracture >A new mechanism in hydrogen-enhanced fatigue crack growth behavior of a 1900-MPa-class high-strength steel
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A new mechanism in hydrogen-enhanced fatigue crack growth behavior of a 1900-MPa-class high-strength steel

机译:1900 MPa级高强度钢的氢增强疲劳裂纹扩展行为的新机制

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This paper presents a new mechanism controlling the acceleration of fatigue crack growth of a hydrogen-charged high-strength steel (bearing steel SAE52100, σ ult 1, 900MPa, HV = 569). Three- dimensionally complicated shape of a primary crack and secondary cracks were observed in hydrogen- charged specimens. Marked acceleration of fatigue crack growth in the presence of hydrogen was observed particularly at low test frequency, and was attributed to the initiation and successive coalescence of secondary cracks formed ahead of primary crack. These secondary cracks were produced along prior-austenite grain boundaries and carbide boundaries, or by direct cracking of carbides. Surprisingly, secondary cracks were observed outside the ordinary plastic zone ahead of the crack tip. TEM observation elucidated that the secondary cracks outside the crack tip plastic zone were produced by hydrogen-induced deformation twins impinging on grain boundaries and carbides. These results suggest a new mechanism of the acceleration of fatigue crack growth rates in high-strength steels caused by hydrogen-induced deformation twins, rather than due to hydrogen- enhanced localized plasticity. The phenomena associated with time dependent fatigue crack growth are presumed to be correlated with the initiation and coalescence of secondary cracks in the presence of hydrogen.
机译:本文提出了一种控制加氢高强度钢(轴承钢SAE52100,σult> 1,900MPa,HV = 569)的疲劳裂纹扩展加速的新机制。在充氢试样中观察到了三维复杂形状的一次裂纹和二次裂纹。特别是在低测试频率下,观察到了在氢存在下疲劳裂纹扩展的明显加速,这归因于在初级裂纹之前形成的次级裂纹的引发和连续合并。这些二次裂纹是沿原奥氏体晶界和碳化物边界,或通过碳化物的直接裂纹产生的。出乎意料的是,在裂纹尖端之前的普通塑料区域之外观察到了二次裂纹。 TEM观察表明,裂纹尖端塑性区外部的二次裂纹是由氢致孪晶撞击在晶界和碳化物上产生的。这些结果表明,由氢引起的变形孪晶而不是由于氢增强的局部可塑性引起的高强度钢中疲劳裂纹扩展速率加速的新机理。据推测,与时间相关的疲劳裂纹扩展相关的现象与氢存在下二次裂纹的萌生和聚结有关。

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