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Strengthening Mechanisms in Polycrystalline Multimodal Nickel-Base Superalloys

机译:多晶多峰镍基高温合金的强化机理

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摘要

Polycrystalline γ-γ′ superalloys with varying grain sizes and unimodal, bimodal, or trimodal distributions of precipitates have been studied. To assess the contributions of specific features of the microstructure to the overall strength of the material, a model that considers solid-solution strengthening, Hall–Petch effects, precipitate shearing in the strong and weak pair-coupled modes, and dislocation bowing between precipitates has been developed and assessed. Cross-slip-induced hardening of the Ni3Al phase and precipitate size distributions in multimodal microstructures are also considered. New experimental observations on the contribution of precipitate shearing to the peak in flow stress at elevated temperatures are presented. Various alloys having comparable yield strengths were investigated and were found to derive their strength from different combinations of microconstituents (mechanisms). In all variants of the microstructure, there is a strong effect of antiphase boundary (APB) energy on strength. Materials subjected to heat treatments below the γ′ solvus temperature benefit from a strong Hall–Petch contribution, while supersolvus heat-treated materials gain the majority of their strength from their resistance to precipitate shearing.
机译:研究了具有不同晶粒尺寸和沉淀物的单峰,双峰或三峰分布的多晶γ-γ'高温合金。为了评估微结构的特定特征对材料整体强度的贡献,考虑固溶强化,霍尔-Petch效应,强和弱对耦合模式下的析出物剪切以及析出物之间的位错弯曲的模型被开发和评估。还考虑了交叉滑移引起的Ni3 Al相的硬化和多峰微观结构中的沉淀物尺寸分布。提出了关于在高温下析出物剪切对流变应力峰值贡献的新实验观察。研究了具有相当屈服强度的各种合金,并发现它们是由不同的微成分(机理)组合得出的。在微观结构的所有变体中,反相边界(APB)能量对强度都有很强的影响。在γ'固溶线以下进行热处理的材料受益于强大的Hall-Petch贡献,而超固溶热处理的材料则通过抵抗沉淀物剪切而获得了大部分强度。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2009年第7期|1588-1603|共16页
  • 作者单位

    Department of Materials Science and Engineering University of Michigan 2300 Hayward St Ann Arbor MI 48109 USA;

    Department of Materials Science and Engineering University of Michigan 2300 Hayward St Ann Arbor MI 48109 USA;

    Department of Materials Science and Engineering Michigan Technological University 504 Admin Bldg MTU Houghton MI 49931 USA;

    Aircraft Group Pratt ampamp Whitney 400 Main St East Hartford CT 06108 USA;

    Materials and Processes Engineering Pratt ampamp Whitney 400 Main St East Hartford CT 06108 USA;

    Department of Materials Science and Engineering University of Michigan 2300 Hayward St Ann Arbor MI 48109 USA;

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