首页> 外文期刊>Metallurgical and Materials Transactions A >Microstructural modification in full penetration and partial penetration electron beam welds in INCONEL-718 (IN-718) and its effect on fatigue crack initiation
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Microstructural modification in full penetration and partial penetration electron beam welds in INCONEL-718 (IN-718) and its effect on fatigue crack initiation

机译:INCONEL-718(IN-718)中的全熔透和部分熔透电子束焊缝的显微组织改性及其对疲劳裂纹萌生的影响

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摘要

Detailed microstructural analysis, as well as fatigue crack initiation evaluation, was carried out for electron beam (EB) welded IN-718. Fatigue test specimens were EB welded (full penetration) along their length, and a second weld pass, incorporating a slope-out from full to zero penetration along the gage length, was also applied. The specimens were fatigue tested at 523 °C and maximum stress (R=0) in the range 579 to 820 MPa. Early fatigue failure (<100,000 cycles at 0.25 Hz) was directly associated with the initiation at solidification porosity formed during “spiking” in the partial penetration weld metal at the start of the slope-out. The base metal, full penetration weld metal, and slope-out region were characterized using optical microscopy, scanning electron microscopy (SEM), and transmission electron microscopy (TEM), which indicated that the microstructures of the base metal and full penetration weld metal should give good fatigue resistance. The rapid solidification of the full penetration weld metal gave an interdendritic terminal solidification product consisting of γ+NbC+Laves phase instead of the usually reported eutectic γ+Laves phase. Microstructural and chemical heterogeneities in the full penetration weld metal, combined with the sharp perturbations in penetration and solidification conditions (spiking) in the partial penetration weld metal, resulted in locally embrittled regions and interdendritic regions containing large numbers of fine pores as well as a higher volume fraction of mixed, hard interdendritic phases. These features would be consistent with a lower resistance to fatigue crack propagation in the partial penetration weld metal.
机译:对电子束(EB)焊接IN-718进行了详细的微结构分析以及疲劳裂纹萌生评估。疲劳试样沿其长度进行EB焊接(全熔透),并且还应用了第二道焊缝,沿应变片长度从全熔透到零熔透形成了倾斜。样品在523°C下进行了疲劳测试,最大应力(R = 0)在579到820 MPa之间。早期疲劳失效(在0.25 Hz时<100,000个循环)与在倾斜开始时部分熔透焊缝金属中“尖刺”期间形成的凝固孔隙的产生直接相关。使用光学显微镜,扫描电子显微镜(SEM)和透射电子显微镜(TEM)对基础金属,全熔透焊缝金属和倾斜区域进行了表征,这表明基础金属和全熔透焊缝金属的微观结构应具有良好的抗疲劳性。全熔透焊缝金属的快速凝固产生了由γ+ NbC + Laves相而不是通常报道的共晶γ+ Laves相组成的枝晶间终产物。全熔透焊缝金属的微观结构和化学异质性,以及部分熔透焊缝金属在熔透和凝固条件(尖峰)中的剧烈扰动,导致局部脆化区域和枝晶间区域包含大量细孔以及更高的混合的硬树突间相的体积分数。这些特征将与在部分熔透焊接金属中对疲劳裂纹扩展的较低抵抗力相一致。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2005年第5期|1237-1247|共11页
  • 作者单位

    Industrial Engineering Department The Hashemite University 13115 Zarqa Jordan;

    the Department of Metallurgy and Materials The University of Birmingham B15 2TT Edgbaston Birmingham United Kingdom;

    the Department of Metallurgy and Materials The University of Birmingham B15 2TT Edgbaston Birmingham United Kingdom;

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