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首页> 外文期刊>Materials Science and Engineering >Pt-Al bond coat dependence on the creep stress distribution, deformation and fracture behaviour in a second generation Ni-based single crystal superalloy
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Pt-Al bond coat dependence on the creep stress distribution, deformation and fracture behaviour in a second generation Ni-based single crystal superalloy

机译:PT-Al键涂层依赖于第二代Ni的单晶超合金中的蠕变应力分布,变形和断裂行为

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摘要

An evaluation was conducted on the impact of a Pt-Al bond coat on the creep behaviours of a second-generation Ni-based single crystal superalloy at 750 °C/820 MPa, 850 °C/630 MPa, 1038 °C/137 MPa and 1100 °C/112 MPa, respectively. As revealed by the creep results, the creep behaviours of the coated superalloy were inferior to those of the bare superalloy to some extent under all testing conditions. The maximum deterioration in the strain-to-fracture and time-to-rupture was observed at 1100 °C/112 MPa (7.3%) and 750 °C/820 MPa (74.7 h), respectively. Following the creep test, deconvolution calculations were performed, which indicated that the creep stress for all core superalloys was as low as approximately 1.7-1.9% of the applied stress while the bond coat stress was 4.0-10.4% that at the minimum creep rate. Moreover, TEM analyses revealed that within the superalloy substrate adjacent to the bond coat, there were fewer stacking faults and an abundance of dislocation debris observed within γ′-Ni_3Al at 750 "C/820 MPa. The misfit of the γ/γ′ phase was insignificant and the dislocation networks became irregular at 1100 °C/112 MPa. With an increase in temperature from 750 °C to 1100°C, the fracture mechanism of both the substrate and bond-coat was found to shift from quasi-cleavage to micro-void coalescence. The quasi-cleavage cracks occurring within the bond coat increased the number of connections with creep cracks to cause spreading from the interior of the samples, thus resulting in premature failure at 750 °C/820 MPa and 850 °C/630 MPa. However, the degradation at 1038 °C/137 MPa and 1100 °C/ 112 MPa was ascribed to the increasing thickness of the inter-diffusion zone, as well as the volume of the blocky γ′-Ni_3Al phase inside the bond coat and topologically close-packed phases in the superalloy near the bond coat.
机译:在750℃/ 820MPa,850℃/ 630MPa,1038°C / 137MPa,对PT-Al键涂层对第二代Ni基单晶超合金合金的蠕变行为的影响进行了评价分别为1100°C / 112MPa。如蠕变结果所揭示的,涂覆的超合金的蠕变行为在一定程度下在所有测试条件下差不等。在1100℃/ 112MPa(7.3%)和750℃/ 820MPa(74.7小时)分别观察到应变与断裂和断裂时间的最大劣化。在蠕变试验之后,进行了去卷积计算,这表明所有核心超合金的蠕变应力低至施加应力的约1.7-1.9%,而粘合涂层应力为4.0-10.4%,处于最小蠕变率。此外,TEM分析显示,在与粘合涂层相邻的超合金基板内,在750“C / 820 MPa的γ-Ni_3Al内观察到较少的堆叠故障和较丰的位错碎片。γ/γ'相的错位脱位网络在1100°C / 112MPa的脱位网络处于不规则。在750℃至1100℃的温度下增加,发现基材和粘合涂层的裂缝机制从准切割转变为微空隙聚结。在粘合涂层内发生的准切割裂缝增加了与蠕变裂缝的连接次数,以引起从样品的内部扩散,从而在750℃/ 820MPa和850°C / 850°C / 630MPa。然而,1038℃/ 137MPa和1100℃/ 112MPa的降解归因于扩散区的较大厚度,以及粘合内部的块状γ-Ni_3Al相的体积外套和拓扑上封闭阶段在sup中厄尔大厦在邦德涂层附近。

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  • 来源
    《Materials Science and Engineering》 |2021年第23期|140575.1-140575.13|共13页
  • 作者单位

    Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China School of Materials Science and Engineering University of Science and Technology of China Shenyang 110016 China;

    Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China;

    Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China;

    Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China School of Materials Science and Engineering University of Science and Technology of China Shenyang 110016 China;

    Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China;

    Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China;

    Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China;

    Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China;

    Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China;

    Institute of Metal Research Chinese Academy of Sciences Shenyang 110016 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Creep stress distribution; Deformation mechanism; Fracture behaviour; Single crystal superalloy; Pt-Al bond Coat;

    机译:蠕变应力分布;变形机制;骨折行为;单晶高温合金;PT-Al Bond Coat;

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