...
首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Experimental investigation of effusion and transpiration air cooling for single turbine blade
【24h】

Experimental investigation of effusion and transpiration air cooling for single turbine blade

机译:单涡轮机叶片积液和蒸腾空气冷却实验研究

获取原文
获取原文并翻译 | 示例

摘要

A great number of studies have been conducted on a film cooling for turbine blades, which is to prevent thermal damage on blades originated from high turbine inlet temperature. However, film cooling with several rows of cooling-holes results in lifting-off of coolant film and limited cooling on a restricted area due to flow reattachment. In this study, effusion and transpiration cooling were applied to the single C3X blade. A multiple hole-array with a diameter of 0.5 mm was fabricated by the electric discharging machining, and a porous structure with an equivalent pore diameter of 40 mu m was manufactured by the 3-D metal additive manufacturing. Experiments were performed in the high-temperature subsonic wind tunnel, which has a free-stream temperature of 100 degrees C and a velocity of 20 m/s. The surface temperature of blades was measured using infrared thermometry with a specially designed protocol to eliminate background radiation errors from the surroundings. Also, the outflow of coolant from blades was investigated with smoke-laser sheet visualization. The overall cooling effectiveness was quantitatively analyzed on the pressure-side, suction-side, and leading-edge of blades. Due to the enhancement of convective cooling through porous media, transpiration cooling achieves 34% and 25% higher cooling effectiveness than effusion and internal cooling each.
机译:为了防止涡轮进口温度过高对叶片造成热损伤,人们对涡轮叶片气膜冷却进行了大量研究。然而,有几排冷却孔的气膜冷却会导致冷却液膜脱落,并且由于流量重新附着,限制了受限区域的冷却。在本研究中,对单个C3X叶片进行了渗出和发汗冷却。通过电火花加工制备了直径为0.5mm的多孔阵列,并通过三维金属添加剂制造制备了等效孔径为40μm的多孔结构。实验是在高温亚音速风洞中进行的,该风洞的自由流温度为100摄氏度,速度为20米/秒。叶片的表面温度是使用红外测温法测量的,该方法采用了专门设计的协议,以消除环境中的背景辐射误差。此外,还利用烟雾激光片可视化技术研究了冷却液从叶片流出的情况。从叶片的压力侧、吸入侧和前缘定量分析了整体冷却效率。由于多孔介质中对流冷却的增强,发汗冷却的冷却效率比渗出冷却和内部冷却分别高34%和25%。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号