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常规推进剂火箭发动机膜冷却长度试验与仿真

侯瑞峰 陈建华 李龙飞 杨建文 张国栋

侯瑞峰, 陈建华, 李龙飞, 等. 常规推进剂火箭发动机膜冷却长度试验与仿真[J]. 航空动力学报, 2023, 38(11):2799-2808 doi: 10.13224/j.cnki.jasp.20230038
引用本文: 侯瑞峰, 陈建华, 李龙飞, 等. 常规推进剂火箭发动机膜冷却长度试验与仿真[J]. 航空动力学报, 2023, 38(11):2799-2808 doi: 10.13224/j.cnki.jasp.20230038
HOU Ruifeng, CHEN Jianhua, LI Longfei, et al. Test and simulation of film cooling length in conventional propellant rocket engine[J]. Journal of Aerospace Power, 2023, 38(11):2799-2808 doi: 10.13224/j.cnki.jasp.20230038
Citation: HOU Ruifeng, CHEN Jianhua, LI Longfei, et al. Test and simulation of film cooling length in conventional propellant rocket engine[J]. Journal of Aerospace Power, 2023, 38(11):2799-2808 doi: 10.13224/j.cnki.jasp.20230038

常规推进剂火箭发动机膜冷却长度试验与仿真

doi: 10.13224/j.cnki.jasp.20230038
基金项目: 173科技基础加强计划重点基础研究项目
详细信息
    作者简介:

    侯瑞峰(1995-),男,博士生,主要从事液体火箭发动机高压推力室热防护技术研究。E-mail:hrfchina@163.com

  • 中图分类号: V434

Test and simulation of film cooling length in conventional propellant rocket engine

  • 摘要:

    针对液体火箭发动机推力室中膜冷却技术的有效作用范围,基于型号样机采用试验方法获得了液膜和气膜的有效长度数据、再生冷却剂的温升数据、外壁面测点温度,采用仿真方法获得了液膜的升温/蒸发长度、气膜冷却效率的分布、温升结果和外壁温结果。试验获得的再生冷却剂温升差值为90.1 K,测点外壁温约340 K。仿真计算的温升差值为89.7 K,测点外壁温约330 K。试验获得的液膜有效长度为74.67 mm,气膜有效长度为124.2 mm。仿真得到的液膜有效长度为75.0 mm,其中升温长度为66.0 mm,蒸发长度为9.0 mm。校验后得到气膜有效的冷却效率判断标准为≮0.687。通过比对试验结果和仿真结果,验证了仿真程序的适用性和准确性,得到了判断气膜是否有效的冷却效率临界值,可为推力室热防护设计提供参考。

     

  • 图 1  试验系统的主要组成

    Figure 1.  Main components of the test system

    图 2  温度传感器的位置

    Figure 2.  Position of temperature sensor

    图 3  推力室外形及冷却剂流路

    Figure 3.  Thrust chamber profile and coolant flow path

    图 4  起动和关机的时序

    Figure 4.  Time sequence of start-up and shutdown

    图 5  从后方尾部观察的推力室情况

    Figure 5.  Thrust chamber condition observed from the rear

    图 6  推力室剖切结果及理化检验情况

    Figure 6.  Thrust chamber cutting observation and metallographic examination

    图 7  辐射传热当量的处理方法

    Figure 7.  Equivalent treatment of radiation heat transfer

    图 8  仿真计算程序逻辑

    Figure 8.  Computational logic of simulation program

    图 9  推力室头部局部的壁温不均现象

    Figure 9.  Non-uniformity of wall temperature at the head of thrust chamber

    图 10  异向非等温流体交汇处的温度

    Figure 10.  Temperature of opposite non-isothermal fluid intersection

    图 11  三维仿真计算模型

    Figure 11.  Three-dimensional simulation model

    图 12  三维传热计算结果

    Figure 12.  Results of three-dimensional heat transfer simulation

    图 13  喷注器处的氧化剂温度的实测值

    Figure 13.  Temperature test result of oxidizer in the injector

    图 14  推力室圆柱段尾部的外壁面温度的实测值

    Figure 14.  Temperature test result of the external wall of cylinder rear of thrust chamber

    图 15  液膜温度和流量的仿真结果

    Figure 15.  Simulation of temperature and flow of liquid film

    表  1  推力室尺寸及工作参数

    Table  1.   Thrust chamber size and working parameters

    类别参数数值
    尺寸推力室长度/mm525
    圆柱段直径/mm150
    喷管喉部直径/mm90
    压强燃烧室压强/MPa4.4
    冷却通道压强/MPa6.0
    推进剂氧化剂总流量/(kg/s)11.3
    燃料总流量/(kg/s)4.9
    燃料液膜流量/(kg/s)0.7
    燃料入口温度/K300
    氧化剂入口温度/K278
    下载: 导出CSV

    表  2  液/气膜有效长度的测量结果

    Table  2.   Measurement of the effective length of liquid film and gas film

    试件序号工作时间/s液膜长度/mm气膜长度/mm
    1135076122
    271177125
    313674125
    480372122
    565075126
    665074125
    平均值74.67124.17
    下载: 导出CSV

    表  3  燃气流物性参数计算结果

    Table  3.   Results of physical property of gas flow

    参数数值
    总温/K3337.4
    密度/(kg/m33.6
    比定压热容/(J/(kg·K))2059.9
    比热比1.2
    动力黏度/10−7 (N·s/m21031.9
    热导率/10−3 (W/(m·K))321.7
    下载: 导出CSV

    表  4  燃气流化学组成成分

    Table  4.   Chemical composition of gas flow

    成分摩尔分数/%成分摩尔分数/%
    H2O33.803CO27.191
    N228.168H29.054
    CO15.456NO0.627
    下载: 导出CSV

    表  5  异向非等温流体交汇处的热流方向

    Table  5.   Heat flux direction of opposite non-isothermal fluid intersection

    热流类别头部处平衡处身部处
    辐射传热
    (燃气发出)
    朝外↑朝外↑朝外↑
    表面传热
    (燃气-液膜)
    朝外↑朝外↑朝外↑
    表面传热
    (液膜-气壁面)
    朝内↓朝内↓朝内↓
    表面传热
    (液壁面-再生冷却剂)
    朝内↓平衡→朝外↑
    下载: 导出CSV

    表  6  液膜流量对有效长度的影响

    Table  6.   Influence of liquid film flow on effective length

    液膜流量/(kg/s)液膜长度/mm
    0.643.5(−42%)
    0.775.0(0%)
    0.8131.0(75%)
    下载: 导出CSV

    表  7  气膜有效长度的校验情况

    Table  7.   Verification of effective lengths of gas film

    气膜长度/mm气膜冷却效率
    1200.704
    1220.695
    1240.687
    1260.679
    1280.671
    下载: 导出CSV
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  • 收稿日期:  2023-01-19
  • 网络出版日期:  2023-09-12

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