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首页> 外文期刊>Journal of Heat Transfer >Numerical Prediction of Turbulent Flow and Heat Transfer Enhancement in a Square Passage With Various Truncated Ribs on One Wall
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Numerical Prediction of Turbulent Flow and Heat Transfer Enhancement in a Square Passage With Various Truncated Ribs on One Wall

机译:一面壁上有多个截肋的方形通道中湍流和传热增强的数值预测

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摘要

Repeated ribs are often employed in the midsection of internal cooling passages of turbine blades to augment the heat transfer by air flowing through the internal ribbed passages. Though the research of flow structure and augmented heat transfer inside various ribbed passages has been well conducted, previous works mostly paid much attention to the influence of rib topology (height-to-pitch, blockage ratio, skew angle, rib shape). The possible problem involved in the usage of ribs (especially with larger blockage ratios) is pressure loss penalty. Thus, in this case, the design of truncated ribs whose length is less than the passage width might fit the specific cooling requirements when pressure loss is critically considered. A numerical study of truncated ribs on turbulent flow and heat transfer inside a passage of a gas turbine blade is performed when the inlet Reynolds number ranges from 8000 to 24,000. Different truncation ratio (truncated-length to passage-width) rib geometries are designed and then the effect of truncation ratio on the pressure drop and heat transfer enhancement is observed under the condition of constant total length. The overall performance characteristics of various truncated rib passages are also compared. It is found that the heated face with a rib that is truncated 12% in length in the center (case A) has the highest heat transfer coefficient, while the heated face with a rib that is truncated 4% at three locations over its length, in the center and two sides (case D), has a reduced pressure loss compared with passages of other designs and provides the lowest friction factors. Although case A shows larger heat transfer augmentation, case D can be promisingly used to augment side-wall heat transfer when the pressure loss is considered and the Reynolds number is relatively large.
机译:涡轮机叶片内部冷却通道的中部经常采用重复肋,以增加流经内部肋通道的空气的传热。尽管已经很好地研究了各种肋状通道内部的流动结构和增强的热传递,但先前的工作主要是关注肋状拓扑的影响(高度-间距,阻塞比,偏斜角,肋状)。肋的使用可能涉及的问题(尤其是较大的堵塞率)是压力损失的损失。因此,在这种情况下,当严格考虑压力损失时,长度小于通道宽度的截肋的设计可能符合特定的冷却要求。当入口雷诺数在8000到24,000之间时,对燃气轮机叶片通道内的湍流和热传递中的截肋进行了数值研究。设计了不同的截断比(截断长度与通道宽度)的肋几何形状,然后在总长度恒定的情况下,观察到截断比对压降和传热增强的影响。还比较了各种截肋通道的整体性能特征。我们发现,在中心(情况A)中,肋被截短长度为12%的受热面具有最高的传热系数,而在其长度的三个位置上被肋截去了4%的受热面,在中心和两侧(情况D),与其他设计的通道相比,压力损失减小,摩擦系数最低。尽管情况A显示了更大的传热增加,但当考虑压力损失且雷诺数较大时,情况D有望用于增加侧壁传热。

著录项

  • 来源
    《Journal of Heat Transfer》 |2014年第1期|011902.1-011902.11|共11页
  • 作者单位

    Engineering Simulation and Aerospace Computing (ESAC), Northwestern Polytechnical University, P.O. Box 552, Xi'an, Shaanxi 710072, China;

    Engineering Simulation and Aerospace Computing (ESAC), Northwestern Polytechnical University, P.O. Box 552, Xi'an, Shaanxi 710072, China;

    Engineering Simulation and Aerospace Computing (ESAC), Northwestern Polytechnical University, P.O. Box 552, Xi'an, Shaanxi 710072, China;

    Department of Industrial Engineering, University of Parma, Parco Area delle Scienze, 181/A, Parma 43124, Italy;

    Department of Industrial Engineering, University of Bologna, Viale Risorgimento 2, Bologna 40136, Italy;

  • 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

    turbulent heat transfer; truncated rib; truncation ratio; re-attachement;

    机译:湍流传热肋骨被截断截断率重新连接;

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