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液氧温度仿真及其对离心喷嘴声学频率影响

张亚 田原 潘亮

张亚, 田原, 潘亮. 液氧温度仿真及其对离心喷嘴声学频率影响[J]. 航空动力学报, 2023, 38(11):2785-2790 doi: 10.13224/j.cnki.jasp.20220022
引用本文: 张亚, 田原, 潘亮. 液氧温度仿真及其对离心喷嘴声学频率影响[J]. 航空动力学报, 2023, 38(11):2785-2790 doi: 10.13224/j.cnki.jasp.20220022
ZHANG Ya, TIAN Yuan, PAN Liang. Simulation of liquid oxygen temperature and its influence on acoustic frequency of swirl injector[J]. Journal of Aerospace Power, 2023, 38(11):2785-2790 doi: 10.13224/j.cnki.jasp.20220022
Citation: ZHANG Ya, TIAN Yuan, PAN Liang. Simulation of liquid oxygen temperature and its influence on acoustic frequency of swirl injector[J]. Journal of Aerospace Power, 2023, 38(11):2785-2790 doi: 10.13224/j.cnki.jasp.20220022

液氧温度仿真及其对离心喷嘴声学频率影响

doi: 10.13224/j.cnki.jasp.20220022
详细信息
    作者简介:

    张亚(1983-),男,高级工程师,硕士,主要从事氢氧火箭发动机和燃料电池设计、仿真等研究工作。E-mail:zhangya0226@163.com

  • 中图分类号: V434.1

Simulation of liquid oxygen temperature and its influence on acoustic frequency of swirl injector

  • 摘要:

    针对文献中采用离心喷嘴的氢氧预燃室热试车出现液膜声学相关频率的现象,采用两相流温度瞬态传热仿真计算了30 s热试车中喷嘴内液氧膜平均温度的变化过程。为节约计算资源和时间,采用Fluent多相流模型计算获得稳态等温速度场,采用二维轴对称传热模型调用两相流速度场和相分布结果进行流固耦合瞬态温度仿真。传热计算结果显示:喷嘴出口燃气温度对液氧膜温度有较为显著的影响。喷嘴出口气体温度升高50 K会导致液氧平均温度升高约2 K,喷嘴出口气体温度为105 K时,仿真计算得到的液氧平均温度数值与文献中经验修正值较为吻合,验证了其温度经验修正方法具有一定的合理性。模型计算结果能够解释固体热容对液氧加温作用导致喷嘴声学频率降低的现象。

     

  • 图 1  多相流模型网格边界及离心喷嘴主要尺寸

    Figure 1.  Mesh boundaries of multiphase model and major dimensions of the swirl injector

    图 2  瞬态传热模型计算区域及边界

    Figure 2.  Computational domain and boundarys of transient heat transfer model

    图 3  瞬态传热模型网格

    Figure 3.  Mesh of transient heat transfer model

    图 4  稳态速度和相场分布

    Figure 4.  Steady velocity and phase field distribution of

    图 5  流场时变修正系数

    Figure 5.  Time-varying correction coefficient of flow field

    图 6  修正后的初始速度场

    Figure 6.  Modified initial velocity field

    图 7  瞬态传热模型边界条件温度设置

    Figure 7.  Temperature setting of boundaries of transient heat transfer model

    图 8  喷嘴出口气体温度影响

    Figure 8.  Influence of outlet gas temperature of injector

    图 9  不同时刻温度分布

    Figure 9.  Temperature distribution at different times

    图 10  液膜、气涡及壁面平均温度对比

    Figure 10.  Comparison of average temperature of liquid film, gas core and wall

    图 11  仿真液氧平均温度与文献经验修正值对比

    Figure 11.  Comparison of simulated average temperature of liquid oxygen and empirical correction value of literature

    图 12  仿真温度与文献经验修正值计算频率对比

    Figure 12.  Comparison of frequencies caculated using simulated temperature and empirical correction value of literature

    表  1  离心喷嘴几何参数

    Table  1.   Geometrical parameters of the swirl injector

    参数数值
    氧喷嘴长度 L/mm59.8
    氧喷嘴半径 r0/mm2.35
    氢喷嘴内径 r1/mm3
    氢喷嘴外径 r2/mm4.1
    计算区域外径 r3/mm8
    切向孔直径 dt /mm1.5
    氧喷嘴缩进 Lr/mm4
    下载: 导出CSV
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出版历程
  • 收稿日期:  2022-01-14
  • 网络出版日期:  2023-06-30

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