1. 西安交通大学能源与动力工程学院,西安,710049
2. 沈阳航空航天大学航空发动机学院,沈阳,110136
3. 大连理工大学能源与动力学院,辽宁,大连,116024
: 2024-03-12。作者简介: 徐永祥(1999—),男,硕士生
李震(通信作者),男,助理教授,硕士生导师。基金项目: 国家自然科学基金资助项目(52376030)。
网络首发:2024-08-10,
纸质出版:2024
移动端阅览
徐永祥, 琚亚平, 秦瑞鸿, 等. 离心压气机进口径向总压畸变不确定性分析[J]. 西安交通大学学报, 2024,58(8):69-79.
XU Yongxiang, JU Yaping, QIN Ruihong, et al. Uncertainty Quantification of a Centrifugal Compressor Considering Uncertain Inlet Total Pressure Distortion[J]. 2024, 58(8): 69-79.
徐永祥, 琚亚平, 秦瑞鸿, 等. 离心压气机进口径向总压畸变不确定性分析[J]. 西安交通大学学报, 2024,58(8):69-79. DOI: 10.7652/xjtuxb202408008.
XU Yongxiang, JU Yaping, QIN Ruihong, et al. Uncertainty Quantification of a Centrifugal Compressor Considering Uncertain Inlet Total Pressure Distortion[J]. 2024, 58(8): 69-79. DOI: 10.7652/xjtuxb202408008.
针对离心压气机实际运行过程中的进口畸变不确定性问题
提出了一种离心压气机进口径向总压畸变不确定性参数化表征模型。以跨声速Radiver离心压气机为研究对象
采用非嵌入式多项式混沌法和Sobol敏感性分析方法
研究了压气机气动性能受叶尖畸变、轮毂畸变两类进口径向总压畸变不确定性的影响
获得了对压气机气动性能影响最为显著的不确定性因素
并分析了不确定性因素影响压气机气动性能的相关流动机理。结果表明:相比于均匀来流
叶尖畸变、轮毂畸变均使压气机级多变效率下降近1.0%; 轮毂畸变、叶尖畸变分别对级总压比、扩压器总压损失系数带来的影响较为显著
级多变效率受轮毂畸变影响下降1.4%
叶尖畸变使损失系数增大11.0%; 相较于轮毂侧和叶尖侧畸变峰之间的相对位置
压气机气动性能对畸变峰的数值大小更敏感; 受进口径向总压畸变影响下的压气机的性能恶化与扩压器叶片进口冲角不均匀分布导致的流动分离现象密切相关。研究工作表明了进口畸变不确定性在离心压气机不确定性分析中的重要性
对未来发展离心压气机鲁棒优化设计具有一定的学术意义和工程应用价值。
As for the effect of uncertain upstream distortion on the aerodynamic performance of in-service centrifugal compressors
this paper proposes a parametrization model of uncertain inlet radial total pressure distortion in the centrifugal compressor. Based on this model
the study adopts non-intrusive polynomial chaos and Sobol sensitivity analysis methods to perform the uncertainty quantification of Radiver
a transonic centrifugal compressor. The influence of two types of inlet total pressure distortion
i.e.
tip distortion and hub distortion uncertainties on the aerodynamic performance of the compressor is investigated
the most influential uncertain factor is obtained
and the flow mechanism under influence of uncertainties on the aerodynamic performance is analyzed. The results show that
compared with the uniform inflow
the considered two types of inlet total pressure distortion decrease the stage polytropic efficiency by nearly 1.0%
and the hub distortion and tip distortion have a significant impact on the stage total pressure ratio and the diffuser total pressure loss coefficient
respectively. The stage polytropic efficiency declines by 1.4% due to hub distortion and the loss coefficient increases by 11.0% due to tip distortion. The aerodynamic performance of the compressor is more sensitive to the magnitude of distortion peaks than to the relative position between distortion peaks in two sides(hub side and tip side). The performance degradation of the compressor induced by the two types of distortion is closely related to the flow separation caused by the non-uniform incidence distribution at the leading edge of the diffuser vane. The study highlights the importance of inlet distortion uncertainty in the uncertainty analysis of centrifugal compressors
and is of important academic and engineering application significance to the future robust optimization design of centrifugal compressors.
TANG Xinzi, WANG Zhe, XIAO Peng, et al. Uncertainty quantification based optimization of centrifugal compressor impeller for aerodynamic robustness under stochastic operational conditions [J]. Energy, 2020, 195: 116930.
ZHU Rui, JU Yaping, ZHANG Chuhua. Effects of geometric and operational uncertainties on aerodynamic performance of centrifugal compressor stage [J]. Proceedings of the Institution of Mechanical Engineers: Part A Journal of Power and Energy, 2022, 236(3): 490-505.
ARIGA I, KASAI N, MASUDA S, et al. The effect of inlet distortion on the performance characteristics of a centrifugal compressor [J]. Journal of Engineering for Power, 1983, 105(2): 223-230.
周颂东, 温泉. 进口总压径向畸变对离心压气机性能的影响 [J]. 燃气涡轮试验与研究, 2005, 18(3): 10-14.
ZHOU Songdong, WEN Quan. The effects of inlet total pressure radial distortions on the performance characteristics of a centrifugal compressor [J]. Gas Turbine Experiment and Research, 2005, 18(3): 10-14.
JAHANI Z, KHALEGHI H, TABEJAMAAT S. Using tip injection to stability enhancement of a transonic centrifugal impeller with inlet distortion [J]. Journal of Applied Fluid Mechanics, 2022, 15(6): 1815-1824.
GRIMALDI A, MICHELASSI V. The impact of inlet distortion and reduced frequency on the performance of centrifugal compressors [J]. Journal of Engineering for Gas Turbines and Powers, 2019, 141(2): 021012.
王鹏. 非对称边界下离心压气机失速先兆特性及其调控研究 [D]. 北京: 华北电力大学(北京), 2022.
陈冠言. 弯管进气对离心压气机性能及进口流场影响的实验研究 [D]. 兰州: 兰州大学, 2023.
李聪. 进气管道对二级压气机效率影响的研究 [D]. 济南: 山东大学, 2020.
佟鼎, 田红艳, 刘欣源, 等. 进气弯管对离心压气机特性影响及弯管结构优化 [J]. 兵工学报, 2021, 42(4): 706-714.
TONG Ding, TIAN Hongyan, LIU Xinyuan, et al. Effect of inlet bend pipe on the centrifugal compressor performance and its optimization design [J]. Acta Armamentarii, 2021, 42(4): 706-714.
王铭毅, 王志恒, 武耀族, 等. 进口总压畸变在离心压气机中传播的非定常特性与时空演化过程 [J]. 风机技术, 2023, 65(5): 28-33.
WANG Mingyi, WANG Zhiheng, WU Yaozu, et al. Unsteady characteristics and spatial-temporal evolution of inlet total pressure distortion in a centrifugal compressor [J]. Chinese Journal of Turbomachinery, 2023, 65(5): 28-33.
王震飞, 王铭毅, 王志恒, 等. 进口总压畸变条件下离心压气机流动失稳特性的数值研究 [J]. 风机技术, 2023, 65(1): 1-8.
WANG Zhenfei, WANG Mingyi, WANG Zhiheng, et al. Numerical study on flow instability characteristics of centrifugal compressor with inlet total pressure distortion [J]. Chinese Journal of Turbomachinery, 2023, 65(1): 1-8.
HAN Mei, LIU Xuejun, HUANG Min, et al. Integrated parameter and tolerance optimization of a centrifugal compressor based on a complex simulator [J]. Journal of Quality Technology, 2020, 52(4): 404-421.
JAVED A, PECNIK R, VAN BUIJTENEN J P. Optimization of a centrifugal compressor impeller for robustness to manufacturing uncertainties [J]. Journal of Engineering for Gas Turbines and Power, 2016, 138(11): 112101.
PANIZZA A, VALENTE R, RUBINO D, et al. Impact of manufacturing variability on the aerodynamic performance of a centrifugal compressor stage with curvilinear blades [C]//ASME Turbo Expo 2016: Turbomachinery Technical Conference and Exposition. New York, NY, USA: ASME, 2016: V02CT45A027.
PANIZZA A, RUBINO D T, TAPINASSI L. Efficient uncertainty quantification of centrifugal compressor performance using polynomial chaos [C]//ASME Turbo Expo 2014: Turbine Technical Conference and Exposition. New York, NY, USA: ASME, 2014: V02BT45A001.
PANIZZA A, IURISCI G, SASSANELLI G,et al. Performance uncertainty quantification for centrifugal compressors: part 1 stage performance variation [C]//ASME Turbo Expo 2012: Turbine Technical Conference and Exposition. New York, NY, USA: ASME, 2012: 1863-1872.
BICCHI M, MARCONCINI M, BELLOBUONO E F, et al. Multi-point surrogate-based approach for assessing impacts of geometric variations on centrifugal compressor performance [J]. Energies, 2023, 16(4): 1584.
LIU Yiming, JU Yaping, QIN Ruihong, et al. Collaborative robust design optimization of blade geometry and manufacturing tolerance for a transonic centrifugal impeller [J]. Journal of Turbomachinery, 2023, 145(7): 071001.
柳一鸣. 考虑真实加工误差的离心叶轮气动外形和公差约束协同优化设计 [D]. 西安: 西安交通大学, 2020.
蒋伟. 离心压气机叶轮加工误差的不确定性流动分析及设计优化 [D]. 西安: 西安交通大学, 2019.
JU Yaping, LIU Yiming, JIANG Wei, et al. Aerodynamic analysis and design optimization of a centrifugal compressor impeller considering realistic manufacturing uncertainties [J]. Aerospace Science and Technology, 2021, 115: 106787.
唐新姿, 王喆, 王效禹, 等. 多源不确定耦合下离心压气机叶轮气动稳健性 [J]. 航空动力学报, 2020, 35(1): 196-204.
TANG Xinzi, WANG Zhe, WANG Xiaoyu, et al. Aerodynamic robustness of centrifugal compressor impeller under multi-source uncertainty coupling [J]. Journal of Aerospace Power, 2020, 35(1): 196-204.
ZIEGLER K U, GALLUS H E, NIEHUIS R. A study on impeller-diffuser interaction:part Ⅰ influence on the performance [J]. Journal of Turbomachinery, 2003, 125(1): 173-182.
ZIEGLER K U, GALLUS H E, NIEHUIS R. A study on impeller-diffuser interaction: part Ⅱ detailed flow analysis [J]. Journal of Turbomachinery, 2003, 125(1): 183-192.
CRESTAUX T, LE MAÎTRE O, MARTINEZ J M. Polynomial chaos expansion for sensitivity analysis [J]. Reliability Engineering System Safety, 2009, 94(7): 1161-1172.
0
浏览量
13
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621