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On Improving Full-Coverage Effusion Cooling Efficiency by Varying Cooling Arrangements and Wall Thickness in Double Wall Cooling Application

机译:通过在双壁冷却应用中改变冷却方式和壁厚来提高全覆盖散流冷却效率

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摘要

Overall cooling effectiveness was determined for a full-coverage effusion cooled surface which simulated a portion of a double wall cooling gas turbine blade. The overall cooling effectiveness was measured with high thermal-conductivity artificial marble using infrared thermography. The Biot number of artificial marble was matched to real gas turbine blade conditions. Blowing ratio ranged from 0.5 to 2.5 with the density ratio of DR = 1.5. A variation of cooling arrangements, including impingement-only, film cooling-only, film cooling with impingement, and film cooling with impingement and pins, as well as forward/backward film injection, was employed to provide a systematic understanding on their contribution to improve cooling efficiency. Also investigated was the effect of reducing wall thickness. Local, laterally averaged, and area-averaged overall cooling effectiveness were shown to illustrate the effects of cooling arrangements and wall thickness. Results showed that adding impingement and pins to film cooling, and decreasing wall thickness increase the cooling efficiency significantly. Also observed was that adopting backward injection for thin full-coverage effusion plate improves the cooling efficiency.
机译:确定了全覆盖的喷射冷却表面的总体冷却效率,该表面模拟了双壁冷却燃气涡轮叶片的一部分。使用红外热像仪,使用高导热率人造大理石测量整体冷却效果。人造大理石的比奥数与真实的燃气轮机叶片条件相匹配。吹塑比为0.5〜2.5,密度比为DR = 1.5。采用了多种冷却方式,包括仅冲击,仅膜冷却,带冲击的膜冷却,带冲击和销钉的膜冷却以及向前/向后的膜注入,以系统地了解其对改进的贡献冷却效率。还研究了减小壁厚的效果。显示了局部,横向平均和面积平均的整体冷却效率,以说明冷却布置和壁厚的影响。结果表明,在薄膜冷却过程中增加撞击和销钉,并减小壁厚可显着提高冷却效率。还观察到,采用薄壁全覆盖积水板采用反向注入可提高冷却效率。

著录项

  • 来源
    《Journal of Heat Transfer》 |2019年第4期|042201.1-042201.10|共10页
  • 作者单位

    Institute of Gas Turbine Department of Energy and Power Engineering Tsinghua University|Systems Power & Energy Research Division School of Engineering University of Glasgow;

    Institute of Gas Turbine Department of Energy and Power Engineering Tsinghua University;

  • 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

    Cooling; Wall thickness;

    机译:冷却;室壁厚度;
  • 入库时间 2022-08-18 04:33:24

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