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涡轮发动机热力循环与流路几何参数耦合设计方法

王家俊 刘传凯 丁水汀 魏志远 张凡 郭佳凡 杜慧鹏 黄祥钦

王家俊, 刘传凯, 丁水汀, 等. 涡轮发动机热力循环与流路几何参数耦合设计方法[J]. 航空动力学报, 2026, 41(8):20250520 doi: 10.13224/j.cnki.jasp.20250520
引用本文: 王家俊, 刘传凯, 丁水汀, 等. 涡轮发动机热力循环与流路几何参数耦合设计方法[J]. 航空动力学报, 2026, 41(8):20250520 doi: 10.13224/j.cnki.jasp.20250520
Wang Jiajun, Liu Chuankai, Ding Shuiting, et al. Coupling design method for thermodynamic cycle and flow path geometric parameters of turbine engine[J]. Journal of Aerospace Power, 2026, 41(8):20250520 doi: 10.13224/j.cnki.jasp.20250520
Citation: Wang Jiajun, Liu Chuankai, Ding Shuiting, et al. Coupling design method for thermodynamic cycle and flow path geometric parameters of turbine engine[J]. Journal of Aerospace Power, 2026, 41(8):20250520 doi: 10.13224/j.cnki.jasp.20250520

涡轮发动机热力循环与流路几何参数耦合设计方法

doi: 10.13224/j.cnki.jasp.20250520
基金项目: 航空发动机及燃气轮机基础科学中心项目(P2021-A-Ⅰ-001-001); 航空科学基金(2024L039051002);北京航空航天大学博士研究生卓越学术基金
详细信息
    作者简介:

    王家俊(1997-),男,博士,研究方向为发动机总体性能与仿真、发动机系统科学

    通讯作者:

    刘传凯(1979-),男,副研究员、博士生导师,博士,研究方向为发动机空气系统总体性能与仿真。E-mail:liuchuankai@buaa.edu.cn

  • 中图分类号: V231.1

Coupling design method for thermodynamic cycle and flow path geometric parameters of turbine engine

  • 摘要:

    针对未来先进发动机匹配机制复杂,热力循环参数及部件性能与流路几何参数高度耦合,且概念设计阶段输入参数较为欠缺的特点,建立具有通用性的耦合仿真架构和流程;基于经验关系式及部件耦合图,形成热力循环参数与流路几何参数耦合设计方法,可在不同的热力循环参数下预测部件效率水平,并得到关键叶轮部件的进出口尺寸参数。利用上述方法,对混排涡扇发动机、自适应变循环发动机、“双变”循环发动机模型开展仿真验证。结果表明:本文方法得到的旋转部件流路几何参数估算值与实际设计值或文献设计值的误差可控制在10%以内,达到美国NASA发动机流路尺寸预测精度,可有效缩短方案迭代周期,减小后期颠覆设计风险,为发动机详细设计提供参考。

     

  • 图 1  总体流程图

    Figure 1.  Overall flow chart

    图 2  不同变循环发动机各风扇位置标识[17]

    Figure 2.  Fan station designations in different variable cycle engine configurations [17]

    图 3  不同技术水平下压缩部件多变效率曲线

    Figure 3.  Polytropic efficiency characteristics of compression components at different technology levels

    图 4  压缩部件迭代流程

    Figure 4.  Compression components iteration process

    图 5  涡轮史密斯图[22]

    Figure 5.  Turbine Smith chart[22]

    图 6  考虑间隙影响的涡轮效率修正

    Figure 6.  Turbine efficiency correction considering tip clearance effects

    图 7  考虑低雷诺数影响的涡轮效率修正

    Figure 7.  Turbine efficiency correction considering low Reynolds number effects

    图 8  涡轮效率及尺寸耦合计算流程

    Figure 8.  Turbine efficiency and dimension coupled calculation process

    图 9  涡轮进口速度三角形

    Figure 9.  Turbine inlet velocity triangle

    图 10  变效率和定效率的对比

    Figure 10.  Comparison between variable efficiency and fixed efficiency

    图 11  生成的涡扇发动机流路简图

    Figure 11.  Generated turbofan engine flow path schematic

    图 12  叶尖半径数值对比

    Figure 12.  Tip radius value comparison

    图 13  叶尖半径误差对比

    Figure 13.  Tip radius error comparison

    图 14  小涵道比涡扇发动机叶尖半径误差对比

    Figure 14.  Comparison of blade tip radius errors for a low-bypass-ratio turbofan engine

    图 15  生成的自适应变循环流路简图

    Figure 15.  Generated adaptive variable cycle flow path schematic

    图 16  自适应循环发动机叶尖半径误差对比

    Figure 16.  Adaptive cycle engine tip radius error comparison

    图 17  “双变”循环发动机原理构型

    Figure 17.  Principle-based configuration of dual-variable cycle engine

    图 18  “双变”循环发动机叶尖半径误差对比

    Figure 18.  Dual-variable cycle engine tip radius error comparison

    表  1  中涵道比涡扇发动机总体循环参数

    Table  1.   Overall cycle parameters of a medium-bypass-ratio turbofan engine

    空气流量/(kg/s) 总增压比 涵道比 涡轮前温度/K
    101.1 25.0 0.7 1672
    下载: 导出CSV

    表  2  小涵道比涡扇发动机总体循环参数

    Table  2.   Overall cycle parameters of a low-bypass-ratio turbofan engine

    空气流量/(kg/s) 总增压比 涵道比 涡轮前温度/K
    110 25.0 0.3 1 860
    下载: 导出CSV

    表  3  自适应循环发动机总体循环参数

    Table  3.   Overall cycle parameters of adaptive variable cycle engine

    参数 数值 参数 数值
    高度/km 11 马赫数 1.5
    前风扇压比 1.8 核心风扇压比 1.37
    高压压气机压比 4.65 第一涵道比 0.2
    第二涵道比 0.25 第三涵道比 0.15
    涡轮前温度/K 1 833
    下载: 导出CSV

    表  4  “双变”循环发动机总体循环参数

    Table  4.   Overall cycle parameters of dual-variable cycle engine

    参数 数值 参数 数值
    高度/km 0 马赫数 0
    流量/(kg/s) 125 后风扇压比 1.28
    高压压气机压比 4.33 第一涵道比 1.44
    第二涵道比 0.22 第三涵道比 0.06
    主燃温度/K 1600 双变温度/K 1473
    下载: 导出CSV
  • [1] Halliwell L. Exoskeletal Engine Concept: Feasibility Studies for Medium and Small Thrust Engines[R]. Washington DC: NASA, 2001.
    [2] 王占学, 刘增文, 蔡元虎, 等. 推重比15一级发动机关键技术及分析[J]. 航空发动机, 2010, 36(1): 58-62. Wang Zhanxue, Liu Zengwen, Cai Yuanhu, et al. Key technologies and analysis of aeroengine with thrust to weight ratio up to level of 15[J]. Aeroengine, 2010, 36(1): 58-62. (in Chinese

    Wang Zhanxue, Liu Zengwen, Cai Yuanhu, et al. Key technologies and analysis of aeroengine with thrust to weight ratio up to level of 15[J]. Aeroengine, 2010, 36(1): 58-62. (in Chinese)
    [3] Pera R J, Onat E, Klees G W, etal. A Method to Estimate Weight and Dimensions of Aircraftgas Turbine Engines[R]. Washington DC: NASA, 1977.
    [4] Onet E, Kless G W. A Method to Estimate Weight And Dimensions of Large and Small Gasturbine Engines[R]. Washington DC: NASA, 1979.
    [5] Hale P L. A Method to Estimate Weight And Dimensions of Small Aircraft Propulsion Gasturbine Engines[R]. Washington: NASA, 1982.
    [6] Tong M T, Halliwell I, Ghosn L J. A Computer code for gas turbine engine weight and disk life estimation[J]. Journal of Engineering for Gas Turbines and Power, 2004, 126(2): 265-270. doi: 10.1115/1.1691980
    [7] 樊巍, 陈玉春, 杨龙龙, 等. 基于综合设计的涡轴发动机热力循环方案研究[J]. 航空工程进展, 2014, 5(2): 175-181. Fan Wei, Chen Yuchun, Yang Longlong, et al. Study on cycle design projects of turbo-shaft engine based on integration design method[J]. Advances in Aeronautical Science and Engineering, 2014, 5(2): 175-181. (in Chinese

    Fan Wei, Chen Yuchun, Yang Longlong, et al. Study on cycle design projects of turbo-shaft engine based on integration design method[J]. Advances in Aeronautical Science and Engineering, 2014, 5(2): 175-181. (in Chinese)
    [8] 樊巍, 黄红超, 曹铭栋, 等. 考虑部件约束的涡扇发动机循环参数分析方法研究[J]. 推进技术, 2022, 43(6): 200907. Fan Wei, Huang Hongchao, Cao Mingdong, et al. A method for analyzing cycle parameters of turbofan engine with component constraints[J]. Journal of Propulsion Technology, 2022, 43(6): 200907. (in Chinese doi: 10.13675/j.cnki.tjjs.200907

    Fan Wei, Huang Hongchao, Cao Mingdong, et al. A method for analyzing cycle parameters of turbofan engine with component constraints[J]. Journal of Propulsion Technology, 2022, 43(6): 200907. (in Chinese) doi: 10.13675/j.cnki.tjjs.200907
    [9] 张少锋, 陈玉春, 李夏鑫, 等. 基于涡轴发动机性能与尺寸重量的耦合评估方法[J]. 推进技术, 2018, 39(12): 2670-2678. Zhang Shaofeng, Chen Yuchun, Li Xiaxin, et al. A coupling assessment method based on turboshaft engine performance and size-weight[J]. Journal of Propulsion Technology, 2018, 39(12): 2670-2678. (in Chinese doi: 10.13675/j.cnki.tjjs.2018.12.004

    Zhang Shaofeng, Chen Yuchun, Li Xiaxin, et al. A coupling assessment method based on turboshaft engine performance and size-weight[J]. Journal of Propulsion Technology, 2018, 39(12): 2670-2678. (in Chinese) doi: 10.13675/j.cnki.tjjs.2018.12.004
    [10] 张少锋, 陈玉春, 甘晓华, 等. 基于难度系数平衡的涡轴发动机总体设计方法[J]. 航空动力学报, 2018, 33(10): 2465-2475. Zhang Shaofeng, Chen Yuchun, Gan Xiaohua, et al. Turboshaft engine overall design method based on balance of components' difficulty coefficients[J]. Journal of Aerospace Power, 2018, 33(10): 2465-2475. (in Chinese

    Zhang Shaofeng, Chen Yuchun, Gan Xiaohua, et al. Turboshaft engine overall design method based on balance of components' difficulty coefficients[J]. Journal of Aerospace Power, 2018, 33(10): 2465-2475. (in Chinese)
    [11] 李瑞军, 计自飞. 发动机热力循环参数对流路参数的影响[J]. 沈阳航空航天大学学报, 2022, 39(5): 30-36. Li Ruijun, Ji Zifei. Influence of engine thermodynamic cycle parameters on flow path parameters[J]. Journal of Shenyang Aerospace Ace University, 2022, 39(5): 30-36. (in Chinese

    Li Ruijun, Ji Zifei. Influence of engine thermodynamic cycle parameters on flow path parameters[J]. Journal of Shenyang Aerospace Ace University, 2022, 39(5): 30-36. (in Chinese)
    [12] 郑恒斌, 王占学, 蔡元虎. 大涵道比涡扇发动机循环参数和几何流路优化设计[J]. 机械设计与制造, 2010(12): 15-17. Zheng Hengbin, Wang Zhanxue, Cai Yuanhu. Optimization of cycle parameters and gas path design for high bypass ratio turbofan engine[J]. Machinery Design & Manufacture, 2010(12): 15-17. (in Chinese

    Zheng Hengbin, Wang Zhanxue, Cai Yuanhu. Optimization of cycle parameters and gas path design for high bypass ratio turbofan engine[J]. Machinery Design & Manufacture, 2010(12): 15-17. (in Chinese)
    [13] 同王刚, 唐海龙, 陈敏, 等. 轴流压气机流道设计方法研究[J]. 航空发动机, 2015, 41(5): 53-57. Tong Wanggang, Tang Hailong, Chen Min, et al. Investigation on axial compressor flow path design methods[J]. Aeroengine, 2015, 41(5): 53-57. (in Chinese

    Tong Wanggang, Tang Hailong, Chen Min, et al. Investigation on axial compressor flow path design methods[J]. Aeroengine, 2015, 41(5): 53-57. (in Chinese)
    [14] 廉筱纯, 吴虎. 航空发动机原理[M]. 西安: 西北工业大学出版社, 2005. Lian Xiaochun, Wu Hu. Aeroengine principle[M]. Xi’an: Northwestern Polytechnical University Press, 2005. (in Chinese

    Lian Xiaochun, Wu Hu. Aeroengine principle[M]. Xi’an: Northwestern Polytechnical University Press, 2005. (in Chinese)
    [15] 焦玉莹. 基于二维流道下的航空发动机重量预估技术研究[D]. 南京: 南京航空航天大学, 2015. Jiao Yuying. Weight estimation of aero engine based on the 2D flowpath[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2015. (in Chinese

    Jiao Yuying. Weight estimation of aero engine based on the 2D flowpath[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2015. (in Chinese)
    [16] Farokhi S. Aircraft propulsion[M]. 2nd ed. Hoboken, US: Wiley, 2014. Aeroengine.
    [17] 徐义皓, 郑俊超, 张纪元, 等. 三种自适应循环发动机总体性能优化对比[J]. 航空动力学报, 2025, 40(9): 20230425. Xu Yihao, Zheng Junchao, Zhang Jiyuan, et al. Comparison of overall performance optimization for three adaptive cycle engines[J]. Journal of Aerospace Power, 2025, 40(9): 20230425. (in Chinese

    Xu Yihao, Zheng Junchao, Zhang Jiyuan, et al. Comparison of overall performance optimization for three adaptive cycle engines[J]. Journal of Aerospace Power, 2025, 40(9): 20230425. (in Chinese)
    [18] 肖国树. 航空发动机设计手册(第5册): 涡喷及涡扇发动机总体[M]. 北京: 航空工业出版社, 2001. Xiao Guoshu. Aircraft engine design manual (the fifth volumes): turbojet and turbofan engine overall [M]. Beijing: Aviation Industry Press, 2001. (in Chinese

    Xiao Guoshu. Aircraft engine design manual (the fifth volumes): turbojet and turbofan engine overall [M]. Beijing: Aviation Industry Press, 2001. (in Chinese)
    [19] Walsh P P, Paul F P. Gas turbine performance[M]. 2nd ed. New York: American Society of Mechanical Engineers, 2004.
    [20] Gerard E W, Michael D H, Gary J S. Rotary-wing relevant compressor aero research and technology development activities at glenn research center[R]. Cleveland: NASA, 2012.
    [21] 强艳, 陈云永, 李游, 等. 压气机效率计算方法的探讨[J]. 燃气涡轮试验与研究, 2019, 32(6): 26-30. Qiang Yan, Chen Yunyong, Li You, et al. Calculation methodology of compressor efficiency[J]. Gas Turbine Experiment and Research, 2019, 32(6): 26-30. (in Chinese

    Qiang Yan, Chen Yunyong, Li You, et al. Calculation methodology of compressor efficiency[J]. Gas Turbine Experiment and Research, 2019, 32(6): 26-30. (in Chinese)
    [22] Smith S F. A simple correlation of turbine efficiency[J]. The Journal of the Royal Aeronautical Society, 1965, 69(655): 467-470. doi: 10.1017/s0001924000059108
    [23] Gerard E W, Michael D H, Gary J S. Rotary-wing relevant compressor aero research and technology development activities at glenn research center[R]. Cleveland: NASA, 2012.
    [24] 胡骏. 航空叶片机原理[M]. 2版. 北京: 国防工业出版社, 2014.
    [25] Eshati S. An Evaluation of Operation and Creep Life of Stationary Gas Turbine Engine[D]. Bedfordshire: Cranfield University, 2012.
    [26] Bruno F. Performance of modern unmixed turbofan engines: model simulation, analysis and optimization using gasturb software[D]. Padua: University of Padua, 2019.
    [27] Biollo R, Benini E. Recent advances in transonic axial compressor aerodynamics[J]. Progress in Aerospace Sciences, 2013, 56: 1-18. doi: 10.1016/j.paerosci.2012.05.002
    [28] 李定乃, 蔡建兵. 航空发动机尺寸和质量估算技术[J]. 航空动力, 2022(3): 33-36. Li Dingnai, Cai Jianbing. Estimating technology of aero engine dimensions and mass[J]. Aerospace Power, 2022(3): 33-36. (in Chinese

    Li Dingnai, Cai Jianbing. Estimating technology of aero engine dimensions and mass[J]. Aerospace Power, 2022(3): 33-36. (in Chinese)
    [29] Xu Zhewen, Liu Xin, Chen Min, et al. Comprehensive flow path design method for the adaptive cycle engine considering the coupling relation of multiple components[J]. Journal of Engineering for Gas Turbines and Power, 2024, 146(9): 091017. doi: 10.1115/1.4065049
    [30] Liu Chuankai, Wang Jiajun, Ding Shuiting, et al. Research on the principle configuration and performance of a wide-speed-range, high-throughflow “dual-variable”cycle engine[J]. Aerospace Science and Technology, 2026, 177: 112325. doi: 10.1016/j.ast.2026.112325
    [31] 马艳红. 与气动热力方案匹配的新一代航空发动机总体结构布局设计报告[R]. 北京: 航空发动机及燃气轮机基础科学中心, 2024. Ma Yanhong. Research report on the overall structural layout design of the new generation of aero-engines matching the aerodynamic and thermodynamic scheme[R]. Beijing: Basic Science Center for Aero-Engines and Gas Turbines, 2024.

    Ma Yanhong. Research report on the overall structural layout design of the new generation of aero-engines matching the aerodynamic and thermodynamic scheme[R]. Beijing: Basic Science Center for Aero-Engines and Gas Turbines, 2024.
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  • 收稿日期:  2025-11-11
  • 网络出版日期:  2026-05-30

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