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Microstructurally-Informed Life Prediction Modeling of Combined High-Cycle Fatigue and Creep in a Ni-base Superalloy

机译:高温合金结合高循环疲劳和蠕变的微观通知的寿命预测模型

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摘要

The capability to accurately predict creep and high-cycle fatigue (HCF) lifetime is crucial to the successful design of an industrial gas turbine. In particular, turbine blades are subjected to extreme environments, where elevated temperatures and an array of mechanical and dynamic loads are present. Increased temperatures and aggressive designs are needed to meet next-generation efficiency and power output targets, further intensifying blade loading conditions and enabling new life-limiting concerns, such as the interaction of HCF and creep. The interaction of HCF and creep has not been fully investigated, and is not adequately captured in existing life prediction models. This lifing capability is needed to maintain current reliability standards in next-generation industrial gas turbine blades. The life-limiting interaction of creep and HCF is explored in this study using standard and pre-crept test specimens of a conventionally cast Alloy 247 LC material subjected to high temperature, high frequency loading until failure. The experimental data are obtained for two temperatures, three stress ratios, and a range of pre- creep strains, providing a comprehensive survey of synchronous and stepwise interactions. A microstructurally-informed life prediction model is created by leveraging existing principles with the experimental results and the findings of from a thorough post-test failure analysis.
机译:准确地预测蠕变和高循环疲劳(HCF)寿命的能力对于工业燃气轮机的成功设计至关重要。特别地,涡轮叶片经受极端环境,其中存在升高的温度和机械和动态载荷阵列。需要增加的温度和侵蚀性设计以满足下一代效率和功率输出目标,进一步强化刀片装载条件并实现新的寿命界限,例如HCF和蠕变的相互作用。 HCF和蠕变的相互作用尚未完全研究,并且在现有的生命预测模型中没有充分捕获。需要这种提升能力来维持下一代工业燃气轮机叶片中的电流可靠性标准。蠕变和HCF的寿命限制相互作用在该研究中使用了经过高温,高频负载的常规铸造合金247 LC材料的标准和预培养的测试标本,直至发生故障。获得两个温度,三个应力比和一系列预蠕变菌株的实验数据,提供了对同步和逐步相互作用的综合调查。通过利用实验结果和彻底后试验失败分析的研究结果来创建微观通知的寿命预测模型。

著录项

  • 来源
    《International Journal of Fatigue》 |2021年第11期|106444.1-106444.10|共10页
  • 作者单位

    Siemens Energy Inc. Orlando FL United States of America University of Central Florida Orlando FL United States of America;

    Siemens Energy Inc. Orlando FL United States of America;

    University of Central Florida Orlando FL United States of America;

    Siemens Energy Inc. Orlando FL United States of America;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    High-Cycle Fatigue; Creep; Interaction; HCF+Creep; CM 247 LC;

    机译:高循环疲劳;蠕动;相互作用;HCF +蠕变;CM 247 LC.;

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