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面向推力优化的并联TBCC组合喷管设计方法

缪俊杰 蔡伊雯 汪东 尹超 李宪开 徐倩楠

缪俊杰, 蔡伊雯, 汪东, 等. 面向推力优化的并联TBCC组合喷管设计方法[J]. 航空动力学报, 2023, 38(6):1367-1377 doi: 10.13224/j.cnki.jasp.20220883
引用本文: 缪俊杰, 蔡伊雯, 汪东, 等. 面向推力优化的并联TBCC组合喷管设计方法[J]. 航空动力学报, 2023, 38(6):1367-1377 doi: 10.13224/j.cnki.jasp.20220883
MIAO Junjie, CAI Yiwen, WANG Dong, et al. Optimum design method oriented thrust for over-under TBCC combined nozzle[J]. Journal of Aerospace Power, 2023, 38(6):1367-1377 doi: 10.13224/j.cnki.jasp.20220883
Citation: MIAO Junjie, CAI Yiwen, WANG Dong, et al. Optimum design method oriented thrust for over-under TBCC combined nozzle[J]. Journal of Aerospace Power, 2023, 38(6):1367-1377 doi: 10.13224/j.cnki.jasp.20220883

面向推力优化的并联TBCC组合喷管设计方法

doi: 10.13224/j.cnki.jasp.20220883
详细信息
    作者简介:

    缪俊杰(1994-),男,工程师,博士,主要从事组合动力推进系统研究。E-mail:miaojunjie1031@nuaa.edu.cn

  • 中图分类号: V231.3

Optimum design method oriented thrust for over-under TBCC combined nozzle

  • 摘要:

    针对宽速域飞机机体/推进的强耦合,提出一种在给定几何尺寸约束下面向推力优化的并联涡轮冲压组合发动机(TBCC)组合喷管设计方法。通过理论分析和数值模拟相结合的手段,实现了宽速域组合喷管在欠膨胀和过膨胀流动状态下涡轮/冲压流道面积膨胀比的优化分配。在研究的涡轮/冲压落压比范围内,相比基准组合喷管,面向推力优化设计得到的组合喷管均能具有更高的推力性能,两者综合推力系数的差异在涡轮单独工作的过膨胀流动状态尤为明显,通过推力优化可使得马赫数为0.2和3时的推力系数分别提高4.89%和4.14%。推力优化喷管的升力和俯仰力矩随飞行马赫数的变化幅度相比基准喷管分别减小了33%和47.3%,这可以有效减小机体/推进耦合下全机气动焦点的变化范围,有利于减小宽速域飞机配平阻力并降低飞行器操稳控制难度。

     

  • 图 1  并联TBCC组合喷管示意图

    Figure 1.  Schematic diagram of over-under TBCC combined nozzle

    图 2  组合喷管网格划分示意图

    Figure 2.  Schematic diagram of grid division of combined nozzle

    图 3  算例验证

    Figure 3.  Code validation

    图 4  推力优化设计流程

    Figure 4.  Thrust optimization design flow

    图 5  欠膨胀状态下理论计算与数值仿真结果对比

    Figure 5.  Comparison of theoretical results and numerical results for under-expansion state

    图 6  过膨胀状态下的组合喷管推力系数

    Figure 6.  Thrust coefficient of combined nozzle for over-expansion state

    图 7  过膨胀状态下转级板调节过程组合喷管马赫数分布

    Figure 7.  Mach number contour of combined nozzle during regulation for over-expansion state

    图 8  组合喷管综合推力系数对比

    Figure 8.  Comparison of comprehensive thrust coefficient of combined nozzle

    图 9  组合喷管涡轮单独工作状态马赫数分布对比

    Figure 9.  Comparison of Mach number contour of combined nozzle under turbofan-only conditions

    图 10  组合喷管共同工作状态马赫数分布对比

    Figure 10.  Comparison of Mach number contour of combined nozzle under turbofan-ramjet conditions

    图 11  组合喷管的升力特性对比

    Figure 11.  Comparison of lift characteristics of combined nozzle

    图 12  组合喷管的俯仰力矩特性对比

    Figure 12.  Comparison of pitching moment characteristics of combined nozzle

    表  1  组合喷管计算工况

    Table  1.   Calculation conditions for combined nozzle

    状态Mah/kmπTt/K
    WLCYWLCY
    涡轮
    单独工作
    0.2~30~183~251~202000290~600
    涡轮、冲压
    共同工作
    2~3.512~2010~4515~3520002000
    下载: 导出CSV

    表  2  欠膨胀状态下的计算参数

    Table  2.   Calculation parameters for under-expansion state

    Mah/kmπTt/K$ A_{\text {out,ideal}} $/H$ A_{\text {out,real}} $/H
    WLCYWLCY
    2.5151220200020001.2251
    下载: 导出CSV

    表  3  过膨胀状态下的计算参数

    Table  3.   Calculation parameters for over-expansion state

    Mah/kmπTt/K$ A_{\text {out,ideal}} $/H$ A_{\text {out,real}} $/H
    WLCYWLCY
    1.5981.520003300.6251
    下载: 导出CSV
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出版历程
  • 收稿日期:  2022-11-19
  • 网络出版日期:  2023-05-12

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