Structural vibration avoidance method of aerospace thin-spoke plate gearing system under “mechanical-inertial-thermal” loads
-
摘要:
考虑传动系统各轴转速与功率、壳体变形导致的轴端偏心量、齿轮材料特性和齿面摩擦等因素,构建了“机械-惯性-热”载荷作用下某航空发动机齿轮传动系统动力学数值模型,描述了考虑锥齿轮传动在内的真实啮合状态下系统的模态特征;补充了高速齿轮传动链振动的传递形式,包含了齿轮副之间节径-节径、节径-涡动、节径-扭转,双联或三联轴及其齿轮的节径-涡动、节径-节径等多种耦合形式,还包括上述形式在整个传动链中的传递;开展了薄辐板齿轮传动系统结构避振方法研究,发现通过改进该航空发动机传动系统中齿轮的辐板厚度、轴内径等结构参数,可实现传动系统仅增加质量11%的前提下,传动系统中各齿轮振动应力的最大值降低15%~59%。
Abstract:A numerical model of an aero-engine gear transmission system dynamics under “mechanical-inertial-thermal” loading was constructed by considering the speed and power of each axis of the transmission system, the eccentricity of the shaft end due to the deformation of the casing, the material properties of the gears and the friction of the gear surface. The modal characteristics of the system under the real meshing state, including the bevel gear transmission, were described. The form of transmission of vibration in a high-speed gear chain was supplemented. Various forms of coupling such as pitch-pitch, pitch-vortex, pitch-torsion between gear pairs, pitch-vortex, pitch-pitch and other forms of coupling between duplex or triple shafts and their gears were included. The transfer of the above forms throughout the transmission chain was also included. A study of structural vibration avoidance methods for thin-spoke plate gear drive systems was carried out. It was found that by improving the thickness of the spoke plate of the gears in the transmission system of the aircraft development, the inner diameter of the shaft and other structural parameters, it was possible to achieve a reduction of the maximum value of the vibration stress in the gears of the transmission system by 15% to 59% under the prerequisite that the mass of the transmission system can be increased by only 11%.
-
表 1 该航空发动机齿轮传动系统轴的结构参数
Table 1. Structural parameters of shaft of gear transmission of this aero-engine
mm 轴 轴长 轴内径 轴外径 输入轴Ⅰ 290 15 30 转接轴Ⅱ 190 40 50 转接轴Ⅲ 190 40 60 输出轴Ⅳ 220 30 40 输出轴Ⅴ 250 25 40 输出轴Ⅵ 170 20 30 轴Ⅶ 210 20 30 轴Ⅷ 70 15 25 表 2 连续运转工况的额定转速与功率
Table 2. Rated speed and power under continuous operation
轴 额定转速/(r/min) 齿轮 输入轴Ⅰ 22000 Ⅰ Ⅲ 转接轴Ⅲ 15098 Ⅴ Ⅸ 输出轴Ⅳ 16947 Ⅶ 输出轴Ⅵ 12249 Ⅹ Ⅰ 输出轴Ⅶ 9643 Ⅹ Ⅲ 表 3 连续运转工况时的直齿轮副受力情况
Table 3. Forces on spur gears under continuous operation
直齿轮副 传递扭矩/
(N·m)啮合力/
N啮合
偏角/(°)轴向力/
NⅤ-Ⅵ 214 3970 0.12 8.32 Ⅶ-Ⅷ 109 2831 0.13 6.42 Ⅸ-Ⅹ 115 1736 0.09 2.73 Ⅹ Ⅰ-Ⅹ Ⅱ 147 2502 0.10 4.37 Ⅹ Ⅲ-Ⅹ Ⅳ 43 1012 0.05 0.88 参数 常温数值 温度系数 Em/GPa 200 −0.187 ρn/(kg/m3) 7860 −0.26 μl 0.3 8×10−5 α/10−6 (1/℃) 12.4 0 表 5 连续运转工况下系统转频与啮频
Table 5. Rotation and engagement frequency of the system under continuous operation
Hz 轴 编号 转频 一倍啮频 二倍啮频 三倍啮频 输入轴Ⅰ 锥Ⅰ 367 15033 30067 45100 锥Ⅲ 12833 25667 38500 转接轴Ⅱ 锥Ⅱ 242 15033 30066 45099 转接轴Ⅲ 锥Ⅳ 252 12833 25667 38500 直Ⅴ 13840 27680 41520 直Ⅸ 10820 21640 32461 输出轴Ⅳ 直Ⅵ 282 13840 27680 41520 直Ⅶ 18924 37848 56772 输出轴Ⅴ 直Ⅷ 541 18924 37848 56772 输出轴Ⅵ 直Ⅹ 204 10820 21640 32460 直Ⅹ Ⅰ 7554 15107 22661 输出轴Ⅶ 直Ⅹ Ⅱ 161 7554 15107 22661 直Ⅹ Ⅲ 3054 6107 9161 输出轴Ⅷ 直Ⅹ Ⅳ 90 3054 6108 9161 表 6 传动系统的危险模态信息
Table 6. Hazardous modal information for driveline systems
模态振型 频率/Hz 危险
齿轮辐板振动
应力/MPa一-三节径耦合 2108 Ⅱ 198 一-一节径耦合 2285 Ⅴ 127 一-一节径耦合 2700 Ⅵ 138 二-三节径耦合 2810 Ⅳ 132 二-三节径耦合 3120 Ⅳ 120 涡动-涡动耦合 3680 Ⅷ 103 节径节圆-涡动耦合 3912 Ⅹ Ⅰ 103 二-三节径耦合 4212 Ⅲ 113 二-四节径耦合 5610 Ⅰ 122 二-四节径耦合 6778 Ⅳ 110 四节径-涡动耦合 7100 Ⅶ 135 节径节圆-涡动耦合 7940 Ⅶ 103 二节径-节径节圆耦合 8410 Ⅹ Ⅱ 103 表 7 该航空发动机传动系统中各级齿轮避振改进前后的结构参数对比
Table 7. Comparison of structural parameters before and after the improvement of vibration avoidance of gears at all levels in gear transmission of this aero-engine
mm 结构参数 齿轮编号 Ⅰ Ⅱ Ⅲ Ⅳ Ⅴ Ⅵ Ⅶ Ⅷ Ⅹ Ⅰ Ⅹ Ⅱ 改进前 辐板厚度 21.6 10 10 10 5 5 5 5 5 5 轴内径 15 40 15 40 40 30 30 25 20 20 改进后 辐板厚度 24 17 11 8.5 6 6 5 5.5 6.5 5.5 轴内径 15 35 15 35 35 25 25 25 20 18 表 8 该航空发动机传动系统中各级齿轮避振改进前后的动力学特性对比
Table 8. Comparison of the dynamic characteristics before and after the improvement of vibration avoidance of the gears at all levels of gear transmission of this aero-engine
参数 齿轮编号 Ⅰ Ⅱ Ⅲ Ⅳ Ⅹ Ⅰ 一节径 二节径 三节径 四节径 二节径 三节径 四节径 节圆-节圆耦合 改进前 频率/Hz 2101 5610 2108 5600 4212 2810 3120 6778 3912 应力/MPa 162 122 198 112 113 132 120 110 103 改进后 频率/Hz 2678 5871 2787 5723 4465 2756 2998 6534 4121 应力/MPa 76 57 81 62 78 84 76 89 74 参数 齿轮编号 Ⅴ Ⅵ Ⅶ Ⅷ Ⅹ Ⅱ 受Ⅵ影响 一节径 四节径 节径-节圆耦合 涡动 节圆-节圆耦合 改进前 频率/Hz 2285 2622 2280 2700 7100 7940 2530 3680 8410 应力/MPa 127 107 106 138 135 103 102 103 103 改进后 频率/Hz 2421 2812 2364 2812 7121 7956 2621 3753 8536 应力/MPa 79 71 76 81 89 87 73 81 78 -
[1] 刘宏本. 飞机附件的振动问题[J]. 南京航空航天大学学报, 1960(2): 26-31. LIU Hongben. Vibration problem of aircraft accessories[J]. Journal of Nanjing University of Aeronautics & Astronautics, 1960(2): 26-31. (in ChineseLIU Hongben. Vibration problem of aircraft accessories[J]. Journal of Nanjing University of Aeronautics & Astronautics, 1960(2): 26-31. (in Chinese) [2] ZHANG Han, CHEN Xuefeng, CHEN Wei, et al. Collaborative sparse classification for aero-engine’s gear hub crack diagnosis[J]. Mechanical Systems and Signal Processing, 2020, 141: 106426. doi: 10.1016/j.ymssp.2019.106426 [3] HAN Hongzheng, ZHAO Zhifang, TIAN Hongxu, et al. Fault feature analysis of planetary gear set influenced by cracked gear tooth and pass effect of the planet gears[J]. Engineering Failure Analysis, 2021, 121: 105162. doi: 10.1016/j.engfailanal.2020.105162 [4] 程浩, 张爱强, 倪德, 等. 计及陀螺效应的高速齿轮轴系涡动现象及临界转速分析[J]. 机械科学与技术, 2023, 42(2): 173-180. CHENG Hao, ZHANG Aiqiang, NI De, et al. Analyzing vortex phenomenon of high-speed gear shafting system and its critical speed with gyroscopic effect considered[J]. Mechanical Science and Technology for Aerospace Engineering, 2023, 42(2): 173-180. (in ChineseCHENG Hao, ZHANG Aiqiang, NI De, et al. Analyzing vortex phenomenon of high-speed gear shafting system and its critical speed with gyroscopic effect considered[J]. Mechanical Science and Technology for Aerospace Engineering, 2023, 42(2): 173-180. (in Chinese) [5] 何刘海, 吴桂娇, 王平, 等. 航空发动机附件齿轮行波共振噪声测量与分析[J]. 振动与冲击, 2019, 38(22): 210-215. HE Liuhai, WU Guijiao, WANG Ping, et al. Noise measurement and analysis on the travelling wave resonance of aero-engine accessory gears[J]. Journal of Vibration and Shock, 2019, 38(22): 210-215. (in ChineseHE Liuhai, WU Guijiao, WANG Ping, et al. Noise measurement and analysis on the travelling wave resonance of aero-engine accessory gears[J]. Journal of Vibration and Shock, 2019, 38(22): 210-215. (in Chinese) [6] 窦作成, 李以农, 曾志鹏, 等. 复杂激励下复合行星传动系统频率耦合与耦合共振研究[J]. 振动与冲击, 2019, 38(3): 16-23. DOU Zuocheng, LI Yinong, ZENG Zhipeng, et al. Frequency coupling and coupling resonance of a composite planetary transmission system under complex excitations[J]. Journal of Vibration and Shock, 2019, 38(3): 16-23. (in ChineseDOU Zuocheng, LI Yinong, ZENG Zhipeng, et al. Frequency coupling and coupling resonance of a composite planetary transmission system under complex excitations[J]. Journal of Vibration and Shock, 2019, 38(3): 16-23. (in Chinese) [7] MO Shuai, HUANG Xuan, LIU Wenbin, et al. Study on nonlinear vibration and primary resonance characteristics of helicopter face gear-planetary gear coupling transmission system[J]. Proceedings of the Institution of Mechanical Engineers, Part K: Journal of Multi-body Dynamics, 2023, 237(3): 534-554. [8] WEI Tao, ZENG Xiaochun, ZHAO Zhisheng, et al. Influence analysis of the gear manufacturing error on TransmissionVibration response[J]. SAE International Journal of Passenger Vehicle Systems, 2022, 16(2): 93-103. doi: 10.4271/15-16-02-0006 [9] 万志国, 李锁斌, 窦益华, 等. 齿轮传动系统的参数稳定性及振动特性分析[J]. 机械强度, 2019, 41(5): 1211-1216. WAN Zhiguo, LI Suobin, DOU Yihua, et al. Parameter stability and vibration characteristics analysis of gear transmission system[J]. Journal of Mechanical Strength, 2019, 41(5): 1211-1216. (in ChineseWAN Zhiguo, LI Suobin, DOU Yihua, et al. Parameter stability and vibration characteristics analysis of gear transmission system[J]. Journal of Mechanical Strength, 2019, 41(5): 1211-1216. (in Chinese) [10] 郭梅, 陈聪慧, 王建军, 等. 发动机附件机匣结构系统振动特性[J]. 航空动力学报, 2013, 28(7): 1607-1612. GUO Mei, CHEN Conghui, WANG Jianjun, et al. Vibration characteristics of accessory gearbox structure system of engine[J]. Journal of Aerospace Power, 2013, 28(7): 1607-1612. (in ChineseGUO Mei, CHEN Conghui, WANG Jianjun, et al. Vibration characteristics of accessory gearbox structure system of engine[J]. Journal of Aerospace Power, 2013, 28(7): 1607-1612. (in Chinese) [11] 陈向前. 航空高速薄辐板锥齿轮行波共振特性与试验研究[D]. 重庆: 重庆大学, 2022. CHEN Xiangqian. Research on traveling wave resonance characteristics and experiment of aviation high speed thin-walled bevel gear[D]. Chongqing: Chongqing University, 2022. (in ChineseCHEN Xiangqian. Research on traveling wave resonance characteristics and experiment of aviation high speed thin-walled bevel gear[D]. Chongqing: Chongqing University, 2022. (in Chinese) [12] 栾孝驰, 柳贡民, 沙云东, 等. 中央传动锥齿轮行波共振特征精准识别试验研究[J]. 推进技术, 2020, 41(12): 2840-2847. LUAN Xiaochi, LIU Gongmin, SHA Yundong, et al. Experimental research on accurate identification of traveling wave resonance characteristics of central drive bevel gears[J]. Journal of Propulsion Technology, 2020, 41(12): 2840-2847. (in ChineseLUAN Xiaochi, LIU Gongmin, SHA Yundong, et al. Experimental research on accurate identification of traveling wave resonance characteristics of central drive bevel gears[J]. Journal of Propulsion Technology, 2020, 41(12): 2840-2847. (in Chinese) [13] 陈聪慧, 董书惠, 郭勇, 等. 航空发动机弧齿锥齿轮断裂故障分析[J]. 燃气涡轮试验与研究, 2018, 31(5): 17-20, 39. CHEN Conghui, DONG Shuhui, GUO Yong, et al. Investigation on spiral bevel gear fracture failure of an aero-engine[J]. Gas Turbine Experiment and Research, 2018, 31(5): 17-20, 39. (in ChineseCHEN Conghui, DONG Shuhui, GUO Yong, et al. Investigation on spiral bevel gear fracture failure of an aero-engine[J]. Gas Turbine Experiment and Research, 2018, 31(5): 17-20, 39. (in Chinese) [14] 刘天文. 某型航空发动机中心锥齿轮动力学特性研究[D]. 南京: 南京航空航天大学, 2015. LIU Tianwen. Dynamic characteristics research of the central bevel gear in an aero-engine[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2015. (in ChineseLIU Tianwen. Dynamic characteristics research of the central bevel gear in an aero-engine[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2015. (in Chinese) [15] LU Zehua, CHEN Yiming, LIU Huaiju, et al. A high-power-density design method for polymer gear systems via an adaptive non-dominated sorting genetic algorithm Ⅲ and surrogate sub-models[J]. Materials & Design, 2024, 240: 112875. [16] XU Zhiliang, YU Wennian, SHAO Yimin. A refined analytical model for the mesh stiffness calculation of plastic gear pairs[J]. Applied Mathematical Modelling, 2021, 98: 71-89. doi: 10.1016/j.apm.2021.04.032 [17] LIU Zimeng, HUANGFU Yifan, MA Hui, et al. Traveling wave resonance analysis of flexible spur gear system with angular misalignment[J]. International Journal of Mechanical Sciences, 2022, 232: 107617. doi: 10.1016/j.ijmecsci.2022.107617 [18] WANG Qibin, XU Kun, HUAI Tianshu, et al. A mesh stiffness method using slice coupling for spur gear pairs with misalignment and lead crown relief[J]. Applied Mathematical Modelling, 2021, 90: 845-861. doi: 10.1016/j.apm.2020.08.046 [19] LONG Guorong, WANG Liming, SHAO Yimin, et al. Vibration mechanism of gear system with angular misalignment error based on an improved meshing stiffness calculation method[R]. Vancouver, Canada: 2020 Asia-Pacific International Symposium on Advanced Reliability and Maintenance Modeling, 2020. [20] LI Shuting. Effects of misalignment error, tooth modifications and transmitted torque on tooth engagements of a pair of spur gears[J]. Mechanism and Machine Theory, 2015, 83: 125-136. doi: 10.1016/j.mechmachtheory.2014.09.011 [21] 谢成, 朱戈阳, 寻丹, 等. 16Cr3NiWMoVNbE渗碳淬火组织与热物理力学性能的数值模拟[J]. 湖南科技大学学报(自然科学版), 2018, 33(1): 78-83. XIE Cheng, ZHU Geyang, XUN Dan, et al. Simulation of carburizing quenched microstructure and thermo-physical mechanical properties for 16Cr3NiWMoVNbE steel[J]. Journal of Hunan University of Science & Technology (Natural Science Edition), 2018, 33(1): 78-83. (in ChineseXIE Cheng, ZHU Geyang, XUN Dan, et al. Simulation of carburizing quenched microstructure and thermo-physical mechanical properties for 16Cr3NiWMoVNbE steel[J]. Journal of Hunan University of Science & Technology (Natural Science Edition), 2018, 33(1): 78-83. (in Chinese) [22] 李润方, 王建军. 齿轮系统动力学: 振动、冲击、噪声[M]. 北京: 科学出版社, 1997. [23] YANG Qiyong, SONG Chaosheng, LIU Siyuan. Computerized analysis of traveling wave vibration characteristics of aviation thin-walled spiral bevel gears[J]. The Journal of Strain Analysis for Engineering Design, 2023, 58(5): 367-375. doi: 10.1177/03093247221133602 [24] 栾孝驰, 赵宇, 沙云东, 等. 弧齿锥齿轮参数调节状态下行波共振特性及其影响规律研究[J]. 中国机械工程, 2021, 32(24): 2899-2908, 2914. LUAN Xiaochi, ZHAO Yu, SHA Yundong, et al. Research on traveling wave resonance characteristics of spiral bevel gears and its influence laws under parameter adjustment[J]. China Mechanical Engineering, 2021, 32(24): 2899-2908, 2914. (in ChineseLUAN Xiaochi, ZHAO Yu, SHA Yundong, et al. Research on traveling wave resonance characteristics of spiral bevel gears and its influence laws under parameter adjustment[J]. China Mechanical Engineering, 2021, 32(24): 2899-2908, 2914. (in Chinese) [25] 李里. 转子系统的动力学建模与分析[D]. 北京: 华北电力大学, 2017. LI Li. Dynamic modeling and analysis of rotor system[D]. Beijing: North China Electric Power University, 2017. (in ChineseLI Li. Dynamic modeling and analysis of rotor system[D]. Beijing: North China Electric Power University, 2017. (in Chinese) -

下载: