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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Numerical study of the effect of the cavity depth on the leakage control in a cooled honeycomb-tip turbine cascade
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Numerical study of the effect of the cavity depth on the leakage control in a cooled honeycomb-tip turbine cascade

机译:腔深度对冷却蜂窝尖端汽轮机级联泄漏控制效应的数值研究

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The effect of the cavity depth on the leakage flow and tip cooling has been numerically investigated in a honeycomb-tip turbine cascade with cooling injection. Coolant is ejected through the center holes on the honeycomb cavity bottoms. Three dimensional flow fields were simulated using the Reynolds-averaged Navier-Stokes (BANS) method and the k-co turbulence model. Then the tip configurations are evaluated according to several performance parameters, such as leakage mass flow rate, total pressure loss and film cooling effectiveness, in the upper passage, the gap and the honeycomb cavities. Furthermore, the secondary velocity streamlines are plotted at the cascade exit to characterize the upper passage vortices. The isothermal surface and contours of dimensional temperature are presented to explore the mixing between the coolant and the cavity vortices. The numerical results show that the aerodynamic and thermodynamic performance differs significantly with the cavity depth.
机译:在具有冷却喷射的蜂窝尖端涡轮级联中,在蜂窝尖端涡轮级联中对泄漏流和尖端冷却的影响进行了数值研究。 冷却剂通过蜂窝腔底部的中心孔喷射。 使用雷诺平均的Navier-Stokes(BANS)方法和K-CO湍流模型进行模拟三维流场。 然后根据多个性能参数评估尖端配置,例如泄漏质量流量,总压力损失和膜冷却效果,在上通道,间隙和蜂窝腔中。 此外,在级联出口处绘制二次速度流线,以表征上通道涡流。 提出了等温表面和尺寸温度的轮廓以探讨冷却剂和腔涡流之间的混合。 数值结果表明,空气动力学和热力学性能随着空腔深度而显着不同。

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