首页> 外文会议>American Society of Mechanical Engineers(ASME) Turbo Expo vol.5 pt.B; 20040614-17; Vienna(AT) >PERFORMANCE DEGRADATION DUE TO BLADE SURFACE ROUGHNESS IN A SINGLE-STAGE AXIAL TURBINE
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PERFORMANCE DEGRADATION DUE TO BLADE SURFACE ROUGHNESS IN A SINGLE-STAGE AXIAL TURBINE

机译:单级轴流涡轮叶片表面粗糙度引起的性能下降

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Turbine blades experience significant surface degradation with service. Previous studies indicate that an order of magnitude or greater increase in roughness height is typical, and these elevated levels of surface roughness significantly influence turbine efficiency and heat transfer. This paper presents measurement and a mean line analysis of turbine efficiency reduction due to blade surface roughness. Performance tests have been conducted in a low speed, single-stage, axial flow turbine with roughened blades. Sheets of sandpaper with equivalent sandgrain roughnesses of 106 and 400 μm have been used to roughen the blades. The roughness heights correspond to foreign deposits on real turbine blades measured by Bons et al. In the transitionally rough regime (106 μm), normalized efficiency decreases by approximately 4 percent with either roughened stator or roughened rotor and 8 percent with roughness on both the stator and rotor blades. In the fully rough regime (400 μm), normalized efficiency decreases by 2 percent with roughness on the pressure side and by 6 percent with roughness on the suction side. Also, the normalized efficiency decreases by 11 percent with roughness only on stator vanes; 8 percent with roughness only on rotor blades; arid 19 percent with roughness on both the stator and rotor blades.
机译:涡轮叶片在使用过程中会经历明显的表面退化。先前的研究表明,粗糙度高度的增加通常是一个数量级或更大,并且这些增加的表面粗糙度水平会显着影响涡轮效率和热传递。本文介绍了由于叶片表面粗糙度而导致的涡轮效率降低的测量和均线分析。性能测试已在带有粗糙叶​​片的低速单级轴流式涡轮机中进行。已使用等效沙粒粗糙度分别为106和400μm的砂纸片来使刀片变粗糙。粗糙度高度对应于Bons等人测量的真实涡轮叶片上的异物沉积。在过渡粗糙状态(106μm)中,定子或转子变粗糙时,归一化效率降低约4%,而定子和转子叶片上的粗糙度均使标准化效率降低8%。在完全粗糙的状态下(400μm),归一化效率在压力侧粗糙度降低了2%,在吸力侧粗糙度降低了6%。同样,仅在定子叶片上,归一化效率降低了11%。 8%,仅在转子叶片上具有粗糙度;定子和转子叶片上的粗糙度都高出约19%。

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