微观结构对TA15钛合金疲劳分散性影响研究
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1.重庆大学航空航天学院;2.北京空天技术研究所

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基础科研项目资助(2024204A005)


The Influence of Microstructure on Fatigue Scatter in TA15 Titanium Alloy
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1.College of Aerospace Engineering,Chongqing University;2.Beijing Aerospace Technology Institute

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Supported by the Basic Scientific Research Project(2024204A005)

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    摘要:

    为研究微观结构差异导致的TA15钛合金疲劳分散性问题。基于微观结构表征数据生成统计体积单元,搭建考虑位错滑移机制的热激活晶体塑性本构模型,引入应变能耗散作为疲劳指示因子FIPw,对FIPw极大值样本进行广义极值分析,系统研究不同载荷和晶粒特征下的疲劳分散性。结果表明:在靠近疲劳极限载荷时,FIPw最大值服从重尾分布;载荷升高后,其分布转为Gumbel型,寿命降低且分散性减小。晶粒尺寸增大会显著提高FIPw极值和疲劳分散性;与等轴晶相比,细长晶组织具有更低的FIPw和疲劳分散性;特定晶体织构能有效降低FIPw极值与分散性。通过与疲劳实验结果和相关研究的对比,验证了该方法在捕捉疲劳分散性载荷和微观结构敏感性方面的有效性,为TA15钛合金的微观组织设计与性能优化提供了理论依据。

    Abstract:

    To investigate the fatigue scatter in TA15 titanium alloy caused by microstructural variations, statistical volume elements? were generated based on microstructural characterization data. A thermally-activated crystal plasticity constitutive model considering dislocation slip mechanisms was established, and strain energy dissipation was introduced as the fatigue indicator parameter (FIPw). Generalized extreme value analysis was performed on the maximum FIPw samples to systematically study fatigue scatter under different loading conditions and grain characteristics. The results reveal that near the fatigue limit load, the maximum FIPw follows a heavy-tailed distribution, while at higher loads, the distribution shifts to the Gumbel type, accompanied by reduced fatigue life and decreased scatter. Increasing grain size significantly raises the extreme FIPw values and exacerbates fatigue scatter. Compared with equiaxed grains, elongated grain structures exhibit lower FIPw and reduced fatigue scatter. Specific crystallographic textures effectively lower both the extreme FIPw values and the associated scatter. Comparisons with experimental fatigue data and related studies validate the effectiveness of the proposed method in capturing the sensitivity of fatigue scatter to both loading and microstructure. This work provides a theoretical basis for the microstructural design and performance optimization of TA15 titanium alloy.

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  • 收稿日期:2026-01-20
  • 最后修改日期:2026-03-20
  • 录用日期:2026-03-23
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