TY - JOUR
T1 - Performance deterioration of an aero-engine secondary air system caused by pre-swirl blade erosion
AU - Zheng, Tianyi
AU - Xu, Weijiang
AU - Liu, Cunliang
AU - Ye, Lin
AU - Wang, Xinyu
AU - Ren, Ming
AU - Zheng, Jiaqi
N1 - Publisher Copyright:
Copyright © 2026. Published by Elsevier Masson SAS.
PY - 2026/10
Y1 - 2026/10
N2 - During aero-engine operation, ingested sand and dust particles may enter the secondary air system and cause erosive wear of internal components, thereby degrading flow organization and cooling performance. In this study, an air-system sand-ingestion test rig was established to obtain real eroded pre-swirl blade geometries. Reverse reconstruction of the eroded blades was then conducted based on three-dimensional surface measurements, and numerical simulations were performed to investigate the performance deterioration of the secondary air system induced by blade wear. The results show that erosion is mainly concentrated at the trailing edge of the pre-swirl blade. Mild wear has only a limited influence on overall system performance and may slightly increase the discharge coefficient by weakening local separation and backflow. As wear intensifies, the circumferential flow guiding and pre-swirl capacities of the blade are progressively weakened, leading to deteriorated pressure distribution, poorer flow matching, and significant reductions in discharge coefficient and temperature-drop efficiency. Under the severe wear condition, the discharge coefficient decreases from 0.973 to 0.772, corresponding to a reduction of 20.66%, while the temperature-drop efficiency decreases from 0.248 to 0.188. Rapid performance deterioration occurs when the throat area between adjacent blade passages increases markedly, reaching 1.59 and 1.95 times the original value under PSB-ED4 and PSB-ED5, respectively. Therefore, throat-area variation is identified as a key geometric factor controlling system degradation.
AB - During aero-engine operation, ingested sand and dust particles may enter the secondary air system and cause erosive wear of internal components, thereby degrading flow organization and cooling performance. In this study, an air-system sand-ingestion test rig was established to obtain real eroded pre-swirl blade geometries. Reverse reconstruction of the eroded blades was then conducted based on three-dimensional surface measurements, and numerical simulations were performed to investigate the performance deterioration of the secondary air system induced by blade wear. The results show that erosion is mainly concentrated at the trailing edge of the pre-swirl blade. Mild wear has only a limited influence on overall system performance and may slightly increase the discharge coefficient by weakening local separation and backflow. As wear intensifies, the circumferential flow guiding and pre-swirl capacities of the blade are progressively weakened, leading to deteriorated pressure distribution, poorer flow matching, and significant reductions in discharge coefficient and temperature-drop efficiency. Under the severe wear condition, the discharge coefficient decreases from 0.973 to 0.772, corresponding to a reduction of 20.66%, while the temperature-drop efficiency decreases from 0.248 to 0.188. Rapid performance deterioration occurs when the throat area between adjacent blade passages increases markedly, reaching 1.59 and 1.95 times the original value under PSB-ED4 and PSB-ED5, respectively. Therefore, throat-area variation is identified as a key geometric factor controlling system degradation.
KW - Aero-engine
KW - Particle erosion
KW - Performance deterioration
KW - Pre-swirl blade
KW - Secondary air system
UR - https://www.scopus.com/pages/publications/105041339632
U2 - 10.1016/j.ast.2026.112846
DO - 10.1016/j.ast.2026.112846
M3 - 文章
AN - SCOPUS:105041339632
SN - 1270-9638
VL - 177
JO - Aerospace Science and Technology
JF - Aerospace Science and Technology
M1 - 112846
ER -