Experimental study on the evolution process of single-stage fan mild surge and the surge identification method by cross-correlation time-frequency analysis
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摘要:
为获得单级风扇发生气动失稳时内部流动特性并发展喘振辨识方法,在入口截面和出口截面布置动态压力传感器,通过控制节流阀开度的方式进行不同转速下风扇逼喘试验,获得风扇发生旋转失速和喘振时的动态压力数据。通过时域信号和频域信号相结合的方法分析单级风扇旋转失速和喘振特性及喘振演变过程。试验结果表明:单级风扇在不同转速下发生喘振时均伴随失速团的产生、发展和消失;在节流逼喘的过程中,存在过渡周期使得风扇由旋转失速向喘振过渡,且退出喘振时也存在1~2个周期的恢复过程;不同转速均存在温和喘振的现象,该现象是由于风扇在喘振过程中气体压缩使得上游和下游产生迟滞效应所导致,并将该风扇喘振演变过程简化为等效力学模型进行分析,根据等效力学模型发展同一周向、不同轴向位置传感器的互相关分析,提出基于互相关时频分析的喘振监测与辨识方法。该研究为获得风扇旋转失速及喘振演变过程、风扇喘振在线监测与故障分析提供依据,但受限于试验条件,并未安装更多的动态压力传感器,无法获得关于旋转失速及喘振过程的更多细节。
Abstract:To obtain the internal flow characteristics and develop a method for identifying flutter instability in single-stage fans, dynamic pressure sensors were installed at the inlet and outlet sections, and the fan was subjected to forced flutter experimental by controlling the throttle valve opening at different speeds. The dynamic pressure data during the fan’s rotational stall and flutter were obtained. The rotational stall and flutter characteristics and the evolution process of flutter were analyzed by combining time-domain signals and frequency-domain signals. The experimental results show that when the fan experiences flutter at different speeds, the stall vortex is produced, developed, and dissipated; during the throttling flutter process, there is a transition period during which the fan transitions from rotational stall to flutter, and there is also a 1—2 cycle recovery process when exiting flutter; there are mild flutter phenomena at all speeds, which are caused by the gas compression in the flutter process that leads to a lag effect upstream and downstream, and the flutter evolution process of the fan is simplified into an equivalent force mechanical model for analysis. The mutual correlation analysis between sensors at the same circumferential and different axial positions is proposed based on the equivalent force mechanical model, and a flutter monitoring and identification method based on mutual correlation time-frequency analysis is developed. This study provides a basis for obtaining the rotational stall and flutter evolution process of the fan, as well as online monitoring and fault analysis of flutter. However, due to experimental conditions, additional dynamic pressure sensors were not installed, and more details about the rotational stall and flutter process could not be obtained.
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表 1 不同转速旋转失速及喘振频率
Table 1. Rotation stall and surge frequency at different speed
转速/% 旋转失速频率/Hz 喘振频率/Hz 70 101 8.4 100 136.7 7.8 -
[1] Day I J. Active suppression of rotating stall and surge in axial compressors[J]. Journal of Turbomachinery, 1993, 115(1): 40-47. [2] Freeman C, Wilson A G, Day I J, et al. Experiments in active control of stall on an aeroengine gas turbine[J]. Computer Standards & Interfaces, 1999, 21(2): 122. doi: 10.1115/1.2841773 [3] Luo Shuai, Wu Sujun. Fatigue failure analysis of rotor compressor blades concerning the effect of rotating stall and surge[J]. Engineering Failure Analysis, 2016, 68: 1-9. doi: 10.1016/j.engfailanal.2016.05.021 [4] Wang Ziwei, Ma Shuai, Wang Jiantao, et al. Study on rotating stall of multistage compressor using wavelets[J]. Journal of Physics: Conference Series, 2022, 2280(1): 012002. doi: 10.1088/1742-6596/2280/1/012002 [5] Liu Yang, Li Jichao, Du Juan, et al. Stall warning strategy based on fast wavelet analysis in a multistage axial flow compressor[J]. Journal of Engineering for Gas Turbines and Power, 2022, 144(4): 044501. doi: 10.1115/1.4053104 [6] 李继超, 雷建伟, 刘洋, 等. 周向畸变条件下压气机失速先兆分布特征[J]. 航空动力学报, 2021, 36(7): 1356-1366. Li Jichao, Lei Jianwei, Liu Yang, et al. Distribution characteristics of compressor stall precursor under circumferential distortion[J]. Journal of Aerospace Power, 2021, 36(7): 1356-1366. (in ChineseLi Jichao, Lei Jianwei, Liu Yang, et al. Distribution characteristics of compressor stall precursor under circumferential distortion[J]. Journal of Aerospace Power, 2021, 36(7): 1356-1366. (in Chinese) [7] 杜娟, 王偲臣, 李继超, 等. 轴流压气机叶顶泄漏流与突尖先兆失稳机理的研究进展[J]. 推进技术, 2017, 38(10): 2208-2217. Du Juan, Wang Sichen, Li Jichao, et al. Research progress on tip leakage flow and spike-inception stall mechanism in axial compressors[J]. Journal of Propulsion Technology, 2017, 38(10): 2208-2217. (in Chinese doi: 10.13675/j.cnki.tjjs.2017.10.006Du Juan, Wang Sichen, Li Jichao, et al. Research progress on tip leakage flow and spike-inception stall mechanism in axial compressors[J]. Journal of Propulsion Technology, 2017, 38(10): 2208-2217. (in Chinese) doi: 10.13675/j.cnki.tjjs.2017.10.006 [8] Huang Song, Han Ge, Yang Chengwu. Experimental research on flow instability mechanism of a highly loaded axial compressor[J]. Journal of Engineering for Gas Turbines and Power, 2023, 145(9): 091006. doi: 10.1115/1.4062766 [9] Guan Di, Liu Yang, Zhao Dan, et al. Experimental mode decomposition investigation on 3-stage axial flow compressor stall phenomena using aeroacoustics measurements[J]. Aerospace Science and Technology, 2023, 139: 108386. doi: 10.1016/j.ast.2023.108386 [10] Zhu Mingmin, Teng Jinfang, Qiang Xiaoqing. Unsteady near-stall flow mechanisms in a transonic compressor rotor at different rotating speeds[J]. Aerospace Science and Technology, 2021, 119: 107124. doi: 10.1016/j.ast.2021.107124 [11] 李宏新, 贾博博, 陈禹西, 等. 多级高压比压气机气动失稳试验研究[J]. 航空动力学报, 2025, 40(7): 20230302. Li Hongxin, Jia Bobo, Chen Yuxi, et al. Experimental investigation of aerodynamic instabilities in a multistage high pressure ratio compressor[J]. Journal of Aerospace Power, 2025, 40(7): 20230302. (in Chinese doi: 10.13224/j.cnki.jasp.20230302Li Hongxin, Jia Bobo, Chen Yuxi, et al. Experimental investigation of aerodynamic instabilities in a multistage high pressure ratio compressor[J]. Journal of Aerospace Power, 2025, 40(7): 20230302. (in Chinese) doi: 10.13224/j.cnki.jasp.20230302 [12] 孙晓峰, 何晨, 刘小华, 等. 航空压气机流动稳定性预测研究进展[J]. 推进技术, 2017, 38(10): 2172-2185. Sun Xiaofeng, He Chen, Liu Xiaohua, et al. Research progress in prediction of flow instability of aero-compressor[J]. Journal of Propulsion Technology, 2017, 38(10): 2172-2185. (in Chinese doi: 10.13675/j.cnki.tjjs.2017.10.003Sun Xiaofeng, He Chen, Liu Xiaohua, et al. Research progress in prediction of flow instability of aero-compressor[J]. Journal of Propulsion Technology, 2017, 38(10): 2172-2185. (in Chinese) doi: 10.13675/j.cnki.tjjs.2017.10.003 [13] 闫昭琦, 潘天宇, 孙大坤, 等. 系统响应对局部喘振发展影响的实验研究[J]. 工程热物理学报, 2022, 43(5): 1219-1225. Yan Zhaoqi, Pan Tianyu, Sun Dakun, et al. Experimental study on effect of system response on development of partial surge initiated instability[J]. Journal of Engineering Thermophysics, 2022, 43(5): 1219-1225. (in ChineseYan Zhaoqi, Pan Tianyu, Sun Dakun, et al. Experimental study on effect of system response on development of partial surge initiated instability[J]. Journal of Engineering Thermophysics, 2022, 43(5): 1219-1225. (in Chinese) [14] Zhao Hongliang, Du Juan, Zhang Wenqiang, et al. A review on theoretical and numerical research of axial compressor surge[J]. Journal of Thermal Science, 2023, 32(1): 254-263. doi: 10.1007/s11630-022-1682-x [15] 王进春, 曹传军. 多级高负荷轴流压气机喘振特征分析[J]. 推进技术, 2024, 45(1): 2210077. Wang Jinchun, Cao Chuanjun. Surge behavior of a multi-stage highly loaded axial compressor[J]. Journal of Propulsion Technology, 2024, 45(1): 2210077. (in Chinese doi: 10.13675/j.cnki.tjjs.2210077Wang Jinchun, Cao Chuanjun. Surge behavior of a multi-stage highly loaded axial compressor[J]. Journal of Propulsion Technology, 2024, 45(1): 2210077. (in Chinese) doi: 10.13675/j.cnki.tjjs.2210077 [16] Yamaguchi N. A study on the deep-surge frequencies in various conditions of axial flow compressors and flow-paths[J]. International Journal of Fluid Machinery and Systems, 2017, 10(4): 363-377. doi: 10.5293/ijfms.2017.10.4.363 [17] Yamaguchi N. Behaviors of surge frequencies in multi-stage axial flow compressors over a wide range of speeds[J]. International Journal of Fluid Machinery and Systems, 2021, 14(1): 62-79. doi: 10.5293/ijfms.2021.14.1.062 [18] Yamaguchi N. A comparison of surge behaviors in multi-stage and single-stage axial flow compressors[J]. International Journal of Fluid Machinery and Systems, 2016, 9(4): 338-353. doi: 10.5293/ijfms.2016.9.4.338 [19] 尼克·坎普施缇. 压气机气动力学[M]. 张健, 杜辉, 董威, 译. 上海: 上海交通大学出版社, 2021. Cumpsty N A. Compressor aerodynamics[M]. Translated by Zhang Jian, Du Hui, Dong Wei. Shanghai: Shanghai Jiao Tong University Press, 2021. (in ChineseCumpsty N A. Compressor aerodynamics[M]. Translated by Zhang Jian, Du Hui, Dong Wei. Shanghai: Shanghai Jiao Tong University Press, 2021. (in Chinese) [20] 雷杰, 房剑锋, 雷晓波. 基于脉动压力变化率的航空发动机喘振检测方法[J]. 燃气涡轮试验与研究, 2019, 32(2): 1-6. Lei Jie, Fang Jianfeng, Lei Xiaobo. Aero-engine surge detection method based on fluctuating pressure change rate[J]. Gas Turbine Experiment and Research, 2019, 32(2): 1-6. (in Chinese doi: 10.3969/j.issn.1672-2620.2019.02.001Lei Jie, Fang Jianfeng, Lei Xiaobo. Aero-engine surge detection method based on fluctuating pressure change rate[J]. Gas Turbine Experiment and Research, 2019, 32(2): 1-6. (in Chinese) doi: 10.3969/j.issn.1672-2620.2019.02.001 [21] Dremin I M, Furletov V I, Ivanov O V, et al. Precursors of stall and surge processes in gas turbines revealed by wavelet analysis[J]. Control Engineering Practice, 2002, 10(6): 599-604. doi: 10.1016/S0967-0661(02)00005-9 [22] Liskiewicz G, Kabalyk K, Jaeschke A, et al. Experimental analysis of surge-detection system based on pressure derivatives at part-speed operation[J]. Journal of Engineering for Gas Turbines and Power, 2021, 143(5): 051018. doi: 10.1115/1.4049770 [23] 李泽芃, 乔百杰, 文璧, 等. 基于声阵列信号的风扇喘振先兆特征识别[J]. 航空动力学报, 2021, 36(5): 923-934. Li Zepeng, Qiao Baijie, Wen Bi, et al. Identification of fan surge precursors based on acoustic array signals[J]. Journal of Aerospace Power, 2021, 36(5): 923-934. (in Chinese doi: 10.13224/j.cnki.jasp.2021.05.004Li Zepeng, Qiao Baijie, Wen Bi, et al. Identification of fan surge precursors based on acoustic array signals[J]. Journal of Aerospace Power, 2021, 36(5): 923-934. (in Chinese) doi: 10.13224/j.cnki.jasp.2021.05.004 [24] Hou Yaochun, Wang Yuxuan, Pan Yiran, et al. Vibration-based incipient surge detection and diagnosis of the centrifugal compressor using adaptive feature fusion and sparse ensemble learning approach[J]. Advanced Engineering Informatics, 2023, 56: 101947. doi: 10.1016/j.aei.2023.101947 [25] Hurst A M, Olsen T R, Goodman S, et al. An experimental frequency response characterization of MEMS piezoresistive pressure transducers[C]//ASME Turbo Expo 2014: Turbine Technical Conference and Exposition. New York: American Society of Mechanical Engineers, 2014: 45752. -

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