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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Numerical-Experimental Comparison in the Simulation of Rotor/Stator Interaction Through Blade-Tip/Abradable Coating Contact
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Numerical-Experimental Comparison in the Simulation of Rotor/Stator Interaction Through Blade-Tip/Abradable Coating Contact

机译:叶片-尖端/耐磨涂层接触的转子/定子相互作用仿真的数值实验比较

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摘要

Higher aircraft energy efficiency may be achieved by minimizing the clearance between the rotating blade tips and respective surrounding casing. A common technical solution consists in the implementation of an abradable liner which improves both the operational safety and the efficiency of modern turbomachines. However, unexpected abradable wear removal mechanisms were recently observed in experimental set-ups as well as during maintenance procedures. Based on a numerical strategy previously developed, the present study introduces a numerical-experimental comparison of such occurrence. Attention is first paid to the review and analysis of existing experimental results. Good agreement with numerical predictions is then illustrated in terms of critical stress levels within the blade as well as final wear profiles of the abradable liner. Numerical results suggest an alteration of the abradable mechanical properties in order to explain the outbreak of a divergent interaction. New blade designs are also explored in this respect and it is found that the interaction phenomenon is highly sensitive to (I) the blade geometry, (2) the abradable material properties, and (3) the distortion of the casing.
机译:通过使旋转的叶片尖端与相应的周围壳体之间的间隙最小化,可以实现更高的飞机能效。常见的技术解决方案包括实施耐磨衬套,以提高操作安全性和现代涡轮机的效率。但是,最近在实验装置以及维护程序中观察到了意外的耐磨磨损清除机制。基于先前开发的数值策略,本研究介绍了这种情况的数值实验比较。首先要注意对现有实验结果的审查和分析。然后根据叶片内的临界应力水平以及耐磨衬套的最终磨损曲线说明了与数值预测的良好一致性。数值结果表明耐磨性机械性能发生了变化,以解释发散性相互作用的爆发。在这方面还研究了新的叶片设计,并且发现相互作用现象对(I)叶片几何形状,(2)耐磨材料性能以及(3)外壳变形高度敏感。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2012年第8期|p.082504.1-082504.11|共11页
  • 作者单位

    Structural Dynamics and Vibration Laboratory, Department of Mechanical Engineering, McGill University, 817 Sherbrooke St. West, Montreal, Quebec, H3A 2K6, Canada;

    Structural Dynamics and Vibration Laboratory, Department of Mechanical Engineering, McGill University, 817 Sherbrooke St. West, Montreal, Quebec, H3A 2K6, Canada;

    Snecma, site de Villaroche, Moissy-Cramayel, 77550, France;

    Snecma, site de Villaroche, Moissy-Cramayel, 77550, France;

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