Aerodynamic Optimization of a Transonic Centrifugal Compressor by Using Arbitrary Blade Surfaces

被引:51
作者
Hehn, Alexander [1 ]
Mosdzien, Moritz [1 ]
Grates, Daniel [1 ]
Jeschke, Peter [1 ]
机构
[1] Rhein Westfal TH Aachen, Inst Jet Prop & Turbomachinery, Templergraben 55, D-52062 Aachen, Germany
来源
JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME | 2018年 / 140卷 / 05期
关键词
Computational efficiency - Optimization - Computational fluid dynamics - Impellers - Centrifugation - Transonic aerodynamics;
D O I
10.1115/1.4038908
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A transonic centrifugal compressor was aerodynamically optimized by means of a numerical optimization process. The objectives were to increase the isentropic efficiency and to reduce the acoustic signature by decreasing the amplitude of pre-shock pressure waves at the inlet of the compressor. The optimization was performed at three operating points on the 100% speed line in order to maintain choke mass flow and surge margin. At the design point, the specific work input was kept equal. The baseline impeller was designed by using ruled surfaces due to requirements for flank milling. To investigate the benefits of arbitrary blade surfaces, the restrictions of ruled surfaces were abolished and fully three- dimensional (3D) blade profiles allowed. In total, therefore, 45 parameters were varied during the optimization. The combined geometric and aerodynamic analysis reveals that a forward swept leading edge (LE) and a concave suction side at the tip of the LE are effective design features for reducing the shock strength. Beyond that, the blade shape of the optimized compressor creates a favorable impeller outlet flow, which is the main reason why the performance of the vaneless diffuser improves. In total, a gain of 1.4% points in isentropic total-to-static efficiency, evaluated by computational fluid dynamics (CFD) at the exit plane of the vaneless diffuser, is achieved.
引用
收藏
页数:10
相关论文
共 23 条
[1]  
[Anonymous], GT200727100 ASME
[2]  
[Anonymous], TURBOMACHINERY BLADE
[3]  
[Anonymous], 1998, Report No.: 98-GT-561
[4]  
Barsi D., 2014, GT201426465 ASME
[5]  
Demeulenaere A., 2015, GT201543631 ASME
[6]  
Diener O. H. F., 2016, GT201657008 ASME
[7]  
Elfert M., 2016, GT201656546 ASME
[8]  
Hayden RE, 1977, Report No.: NASA-CR-135092
[9]  
Krain H., 2005, 810 DLR I ANTR FVV C
[10]  
Perrone A., 2016, GT201657278 ASME