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TURBINE BLADE SURFACE DETERIORATION BY EROSION

机译:涡轮叶片表面腐蚀腐蚀

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摘要

This paper presents the results of a combined experimental and computational research program to investigate turbine vane and blade material surface deterioration caused by solid particle impacts. Tests are conducted in the erosion wind tunnel for coated and uncoated blade materials at various impact conditions. Surface roughness measurements obtained prior and subsequent to the erosion tests are used to characterize the change in roughness caused by erosion. Numerical simulations for the three dimensional flow field and particle trajectories through a low pressure gas turbine are employed to determine the particle impact conditions with stator vanes and rotor blades using experimentally-based particle restitution models. Experimental results are presented for the measured blade material/coating erosion and surface roughness. The measurements indicate that both erosion and surface roughness increase with impact angle and particle size. Computational results are presented for the particle trajectories though the first stage of a low-pressure turbine of a high bypass turbofan engine. The trajectories indicate that the particles impact the vane pressure surface and the aft part of the suction surface. The impacts reduce the particle momentum through the stator but increase it through the rotor. Vane and blade surface erosion patterns are predicted based on the computed trajectories and the experimentally measured blade coating erosion characteristics.
机译:本文介绍了结合实验和计算研究程序的结果,以研究由固体颗粒撞击引起的涡轮叶片和叶片材料表面退化。在侵蚀风洞中针对各种冲击条件下的涂层和未涂层​​叶片材料进行了测试。在腐蚀试验之前和之后获得的表面粗糙度测量值用于表征由腐蚀引起的粗糙度变化。通过基于低压燃气轮机的三维流场和颗粒轨迹的数值模拟,通过基于实验的颗粒复原模型,确定了定子叶片和转子叶片的颗粒碰撞条件。给出了针对测得的叶片材料/涂层侵蚀和表面粗糙度的实验结果。测量结果表明,腐蚀和表面粗糙度均随冲击角和粒径的增加而增加。通过高旁路涡轮风扇发动机的低压涡轮的第一级,给出了粒子轨迹的计算结果。轨迹表明,颗粒撞击叶片压力表面和吸力表面的后部。这些冲击会减少通过定子的粒子动量,但会增加通过转子的粒子动量。叶片和叶片表面侵蚀模式是根据计算的轨迹和实验测量的叶片涂层侵蚀特性预测的。

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