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节流制冷对低温贮箱主流液体控温影响分析

周振君 刘欣 刘晨 孟楠 陈世奎

周振君,刘欣,刘 晨,等.节流制冷对低温贮箱主流液体控温影响分析[J].航空动力学报,2022,37(9):2001‑2008. doi: 10.13224/j.cnki.jasp.20210212
引用本文: 周振君,刘欣,刘 晨,等.节流制冷对低温贮箱主流液体控温影响分析[J].航空动力学报,2022,37(9):2001‑2008. doi: 10.13224/j.cnki.jasp.20210212
ZHOU Zhenjun,LIU Xin,LIU Chen,et al.Analysis of JT refrigeration influence on temperature control of mainstream liquid in cryogenic storage tank[J].Journal of Aerospace Power,2022,37(9):2001‑2008. doi: 10.13224/j.cnki.jasp.20210212
Citation: ZHOU Zhenjun,LIU Xin,LIU Chen,et al.Analysis of JT refrigeration influence on temperature control of mainstream liquid in cryogenic storage tank[J].Journal of Aerospace Power,2022,37(9):2001‑2008. doi: 10.13224/j.cnki.jasp.20210212

节流制冷对低温贮箱主流液体控温影响分析

doi: 10.13224/j.cnki.jasp.20210212
详细信息
    作者简介:

    周振君(1987-),男,高级工程师,博士,主要从事低温推进剂贮存技术研究。

  • 中图分类号: V511+.6

Analysis of JT refrigeration influence on temperature control of mainstream liquid in cryogenic storage tank

  • 摘要:

    为研究低温流体节流特性及冷量引入对贮箱主流体控温影响,首先对低温流体节流干度和体积含气率进行了分析,结果表明质量占比较小的气相占据了大部分空间体积,对流动速率及换热产生较大影响;建立了节流制冷性能测试平台,采用液氮工质开展了节流前压力为0.3~0.37 MPa工况下的减压降温试验,节流前后降温达到了11.3~14.2 K;在集成节流阀孔的热力学排气系统(TVS)系统中,通过节流制冷使贮箱流体产生了平均6.5 K的温降,将贮箱压力控制在150~160 kPa范围;冷量的引入使主流区液体温度持续波浪式降低,气液界面热分层处的降温效果更加明显。

     

  • 图 1  液氢节流背压与温差等参数关系曲线

    Figure 1.  Curve of relationship between back pressure of JT and temperature difference of liquid hydrogen

    图 2  不同背压下液氢节流干度增长率曲线

    Figure 2.  Growth curve of JT dryness under different back pressures of liquid hydrogen

    图 3  不同背压下液氢节流体积含气率增长曲线

    Figure 3.  Growth curve of JT volume void fraction under different back pressures of liquid hydrogen

    图 4  液氮节流背压与温差等参数关系曲线

    Figure 4.  Curve of relationship between back pressure of JT and temperature difference of liquid nitrogen

    图 5  不同背压下液氮节流干度增长率曲线

    Figure 5.  Growth curve of JT dryness under different back pressures of liquid nitrogen

    图 6  不同背压下液氮节流体积含气率增长曲线

    Figure 6.  Growth curve of volume void fraction under different back pressures of liquid nitrogen

    图 7  液氮节流制冷测试流程

    Figure 7.  Flowchart of JT refrigeration test with liquid nitrogen

    图 8  液氮节流阀示意图

    Figure 8.  Schematic diagram of throttle valve with liquid nitrogen

    图 9  压力为0.3 MPa的液氮节流降温曲线

    Figure 9.  Cooling curve of liquid nitrogen when the pressure is 0.3 MPa before throttle valve

    图 10  压力为0.37 MPa液氮节流降温曲线

    Figure 10.  Cooling curve of 0.37 MPa before throttle

    图 11  基于节流冷却的TVS控压系统

    Figure 11.  TVS pressure control system based on JT effect

    图 12  150~160 kPa控压区降温效应

    Figure 12.  Effect of temperature drop in pressure control zone of 150-160 kPa

    图 13  贮箱内流体降温曲线

    Figure 13.  Curve of liquid temperature drop in cryogenic tank

    图 14  主流区流体测点降温幅度

    Figure 14.  Temperature drop of mainstream liquid

    表  1  不同背压节流制冷特性参数增长(节流前0.35 MPa,节流后0.05~0.20 MPa)

    Table  1.   Influence of different back pressure on the growth of refrigeration parameters in throttling process (0.35 MPa before throttling and 0.05-0.20 MPa after throttling)

    介质增长率/%
    ρxη
    液氢278.413639
    液氮284.616814
    下载: 导出CSV
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  • 收稿日期:  2021-05-04

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