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SURFACE ROUGHNESS IMPACT ON LOW-PRESSURE TURBINE PERFORMANCE DUE TO OPERATIONAL DETERIORATION

机译:由于操作性能下降,表面粗糙度对低压涡轮机性能的影响

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The overall efficiency and operational behavior of aircraft engines are influenced by the surface finish of the airfoils. During operation, the surface roughness significantly increases due to erosion and deposition processes. The aim of this study is to analyze the influence of roughness on the aerodynamics of the low-pressure turbine of a mid-sized high bypass turbofan. In order to gain a better insight into the operational roughness structures, a sample of new, used, cleaned and reworked turbine blades and vanes are measured using the confocal laser scanning microscopy technique. The measurement results show local inhomogeneities. The roughness distributions measured are then converted into their equivalent sand grain roughness k_(s,eq) to permit an evaluation of the impact on aerodynamic losses. The numerical study is performed using the CFD-solver TRACE which was validated before with existing data from Rig experiments. It is observed that the influence of the surface roughness on the turbine efficiency is significant at take-off but negligible at cruise. A detailed analysis on the aerodynamics at take-off shows that very rough airfoils lead to higher profile and secondary loss. Due to the higher disturbances present in flows circulating over rough walls, the transition occurs earlier and the momentum thickness increases in the turbulent boundary layer. The service-induced roughness structures cause an efficiency drop in the low pressure turbine of η_T = -0.16% compared to new parts. A gas path analysis showed that this results in an increased fuel flow of △m_f = +0.06% and an exhaust gas temperature rise of △EGT = +1.2K for fixed engine pressure ratio which is equivalent to roughly 4 percent of the typical EGT margin of a fully refurbished engine. This result stresses the importance of roughness induced loss in low pressure turbines.
机译:飞机发动机的整体效率和操作性能受机翼表面光洁度的影响。在操作过程中,由于腐蚀和沉积过程,表面粗糙度显着增加。这项研究的目的是分析粗糙度对中型高旁通涡轮风扇低压涡轮空气动力学的影响。为了更好地了解运行粗糙度结构,使用共聚焦激光扫描显微镜技术测量了新的,使用过的,清洁过的和返工的涡轮机叶片和叶片的样本。测量结果表明局部不均匀。然后将测得的粗糙度分布转换为其等效的沙粒粗糙度k_(s,eq),以评估对空气动力学损失的影响。数值研究是使用CFD求解器TRACE进行的,该TRACE已使用Rig实验的现有数据进行了验证。可以看出,表面粗糙度对涡轮效率的影响在起飞时很明显,而在巡航时则可以忽略不计。对起飞时空气动力学的详细分析表明,非常粗糙的机翼会导致更高的轮廓和二次损失。由于在粗糙壁上循环流动中存在较高的扰动,因此过渡发生得更早,动量厚度在湍流边界层中增加。与新零件相比,维修引起的粗糙度结构导致低压涡轮机的效率下降η_T= -0.16%。气路分析表明,对于固定的发动机压力比,这导致燃料流量增加△m_f = + 0.06%,废气温度升高△EGT = + 1.2K,大约相当于典型EGT余量的4%完全翻新的发动机。该结果强调了低压涡轮中粗糙度引起的损耗的重要性。

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