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甲烷预冷器换热性能与场协同数值研究

王彦红 蒋雷 东明

王彦红, 蒋雷, 东明. 甲烷预冷器换热性能与场协同数值研究[J]. 航空动力学报, 2025, 40(4):20240504 doi: 10.13224/j.cnki.jasp.20240504
引用本文: 王彦红, 蒋雷, 东明. 甲烷预冷器换热性能与场协同数值研究[J]. 航空动力学报, 2025, 40(4):20240504 doi: 10.13224/j.cnki.jasp.20240504
WANG Yanhong, JIANG Lei, DONG Ming. Numerical study on heat transfer performance and field synergy of methane precooler[J]. Journal of Aerospace Power, 2025, 40(4):20240504 doi: 10.13224/j.cnki.jasp.20240504
Citation: WANG Yanhong, JIANG Lei, DONG Ming. Numerical study on heat transfer performance and field synergy of methane precooler[J]. Journal of Aerospace Power, 2025, 40(4):20240504 doi: 10.13224/j.cnki.jasp.20240504

甲烷预冷器换热性能与场协同数值研究

doi: 10.13224/j.cnki.jasp.20240504
基金项目: 国家自然科学基金(51876031); 吉林省教育厅科技项目(JJKH20220100KJ)
详细信息
    作者简介:

    王彦红(1983-),男,副教授,博士,主要从事航空航天换热器设计与优化研究。E-mail:wangyh.526@163.com

  • 中图分类号: V231.1

Numerical study on heat transfer performance and field synergy of methane precooler

  • 摘要:

    基于空天飞行器发动机模态衔接面临的高温空气冷却问题,提出以超临界压力甲烷作为冷却剂的预冷器方案,开展了甲烷进口参数和空气进口参数对换热性能影响的数值研究。阐述了通道内壁温度和传热系数的沿程变化情况。通过温度场、速度场及场协同角云图揭示了预冷器的综合换热机制。讨论了湍动能分布状况及其对换热的作用机制。定量评价了预冷器的换热性能和(火积)耗散量。通过密度比值修正Gnielinski公式实现了预冷通道的换热预测。数值结果表明:高温空气主要由预冷器外侧的通道进行冷却,空气侧观察到不均匀的速度场,出现密集的强涡流和强湍流斑团,起到改善场协同性和增强换热的作用。甲烷宜采用较低的压力,空气进口温度和甲烷流量越高,预冷器换热性能越好。新关联式对预冷通道换热的预测误差基本处于±18%范围。

     

  • 图 1  预冷器物理模型

    Figure 1.  Physical model of precooler

    图 2  网格划分情况

    Figure 2.  Mesh system

    图 3  空气侧传热系数随空气流量的变化情况

    Figure 3.  Heat transfer coefficient variation with mass flux of air side

    图 4  冷却剂压力对换热参数随沿程角度变化的影响

    Figure 4.  Effect of coolant pressure on heat transfer parameters variations along the angle

    图 5  冷却剂压力对温度、速度、湍动能、协同角分布影响

    Figure 5.  Effect of coolant pressure on temperature, velocity, turbulent kinetic energy and synergistic angle distributions

    图 6  不同冷却剂压力下的换热指标

    Figure 6.  Heat transfer indexes at different coolant pressures

    图 7  冷却剂流量对换热参数随沿程角度变化的影响

    Figure 7.  Effect of coolant mass flux on heat transfer parameters variations along the angle

    图 8  冷却剂流量对温度、速度、湍动能、协同角分布影响

    Figure 8.  Effect of coolant mass flux on temperature, velocity, turbulent kinetic energy and synergistic angle distributions

    图 9  不同冷却剂流量下的换热指标

    Figure 9.  Heat transfer indexes at different coolant mass fluxes

    图 10  空气进口温度对换热参数随沿程角度变化的影响

    Figure 10.  Effect of air inlet temperature on heat transfer parameters variations along the angle

    图 11  空气进口温度对温度、速度、湍动能、协同角分布影响

    Figure 11.  Effect of air inlet temperature on temperature, velocity, turbulent kinetic energy and synergistic angle distributions

    图 12  不同空气进口温度下的换热指标

    Figure 12.  Heat transfer indexes at different air inlet temperatures

    图 13  关联式计算Nu与数值结果的比较情况

    Figure 13.  Comparison of Nu between correlations and numerical results

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  • 收稿日期:  2024-07-26
  • 网络出版日期:  2024-11-15

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