采用钻石型 Tpms 结构的新型燃气轮机叶片后缘冷却通道的旋转流和传热特性

K. Yeranee, Chao Xu, Yu Rao, Jianian Chen, Yueliang Zhang
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引用次数: 0

摘要

本研究设计了一种金刚石型三重周期性最小表面(TPMS)结构,该结构在燃气轮机叶片后缘表现出优异的热机械特性,可提高热性能并改善传热均匀性。由于旋转后缘通道中的速度和温度分布会发生变化,因此在雷诺数为 10,000 和旋转数为 0.0-0.28 的条件下,对基线针鳍和金刚石 TPMS 模型的流动和传热特性进行了数值研究。与基线模型相比,Diamond TPMS 网络大大减少了内壁的再循环流动,改善了传热效果,尤其是在顶端和出口区域。虽然 Diamond TPMS 模型会产生 191% 至 234% 的大量压力损失,但它的整体传热效果却比针形鳍片高出 179%。因此,热性能提高了 93.4%。在 Diamond TPMS 结构中,旋转效应导致的流量波动很小,从而大大缩小了前壁和后壁之间的传热差异。在所研究的旋转数范围内,基线模型和金刚石 TPMS 模型的润湿面积平均努塞尔特数的差异分别为 8.5-14.4% 和 9-8.3%。此外,与针形散热片相比,金刚石 TPMS 结构可将出口处根部和顶端区域之间的传热差异减少多达 80%。这种改进有助于保护后缘免受热故障的影响,从而有可能延长燃气轮机叶片的使用寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rotating Flow and Heat Transfer Characteristics of a Novel Cooling Channel for Gas Turbine Blade Trailing Edge with Diamond-Type Tpms Structures
This work designs a Diamond-type triply periodic minimal surface (TPMS) structure that exhibits excellent thermomechanical properties in a gas turbine blade trailing edge to enhance thermal performance and improve heat transfer uniformity. Since the velocity and temperature distributions are altered in the rotating trailing edge channel, the flow and heat transfer characteristics of the baseline pin fin and Diamond TPMS models are numerically investigated at the Reynolds number of 10,000 and the rotation numbers of 0.0-0.28. Compared to the baseline model, the Diamond TPMS network significantly decreases recirculation flow at the inner wall, improving heat transfer, especially at the tip and outlet regions. Although the Diamond TPMS model incurs substantial pressure losses from 191% to 234%, it yields significantly higher overall heat transfer than the pin fins by 179%. Consequently, the thermal performance is increased by 93.4%. The flow fluctuations due to the rotating effects are minor in the Diamond TPMS architecture, considerably reducing the differences in heat transfer between the leading and trailing walls. The differences in the wetted-area averaged Nusselt number of the baseline and Diamond TPMS models within the studied rotation numbers are 8.5-14.4% and 9-8.3%, respectively. Moreover, the Diamond TPMS structure reduces the differences in heat transfer between the root and tip regions at the outlet by up to 80% compared to the pin fins. This improvement helps protect the trailing edge from thermal failure, thereby potentially prolonging the gas turbine blade's lifetime.
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