Effect of Impellers on the Cooling Performance of a Radial Pre-Swirl System in Gas Turbine Engines

Wenjie Shen, Suofang Wang, Xiaodi Liang
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Abstract

Impellers are utilized to increase pressure to ensure that a radial pre-swirl system can provide sufficient cooling airflow to the turbine blades. In the open literature, the pressurization mechanism of the impellers was investigated. However, the effect of impellers on the cooling performance of the radial pre-swirl system was not clear. To solve the aforementioned problem, tests were carried out to assess the temperature drop in a radial pre-swirl system with various impeller configurations (impeller lengths l/b ranging from 0 to 0.333). Furthermore, numerical simulations were used to investigate the flow and heat transfer characteristics of the radial pre-swirl system at high rotating Reynolds numbers. Theoretical and experimental investigations revealed that the pre-swirl jet and output power generate a significant temperature drop, but the impellers have no obvious effect on the system temperature drop. By increasing the swirl ratio, the impellers reduce the field synergy angle and thus improve convective heat transfer on the turbine disk. In addition, increasing the impeller length can reduce the volume-averaged field synergy angle and improve heat transfer, but the improvement effectiveness decreases as the impeller length increases. Thus, the study concluded that impellers could improve the cooling performance of the radial pre-swirl system by enhancing disk cooling.
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叶轮对燃气涡轮发动机径向预漩涡系统冷却性能的影响
叶轮用于增加压力,以确保径向预漩涡系统能够为涡轮叶片提供足够的冷却气流。公开文献对叶轮的增压机制进行了研究。然而,叶轮对径向预漩涡系统冷却性能的影响并不明确。为了解决上述问题,我们进行了试验,以评估具有不同叶轮配置(叶轮长度 l/b 从 0 到 0.333 不等)的径向预漩涡系统的温降。此外,还利用数值模拟研究了高旋转雷诺数下径向预漩涡系统的流动和传热特性。理论和实验研究表明,预漩涡射流和输出功率会产生显著的温降,但叶轮对系统温降的影响并不明显。通过增加漩涡比,叶轮可减小场协同角,从而改善涡轮盘上的对流传热。此外,增加叶轮长度可以减小容积平均场协同角,改善传热,但改善效果随着叶轮长度的增加而降低。因此,研究认为,叶轮可以通过增强盘冷却来改善径向预漩涡系统的冷却性能。
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