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Heat Transfer Behaviors on Combinational Insulation of Spray-On Foam and Variable Density Multilayer for Cryogenic Propellant Tanks

机译:低温推进剂罐喷涂泡沫和可变密度多层复合隔热的传热行为

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摘要

Efficient and reliable thermal insulation for cryogenic propellant storage in orbit is an essential ingredient for long-duration missions in future space exploration. A new combinational thermal insulation composed of spray-on foam insulation (SOFI) and variable density multilayer insulation (VD-MLI), is suitable for cryogenic propellant storage due to its excellent heat insulation and light quality. Based on the heat transfer calculation model of SOFI/VD-MLI for ground and space stages, the variations of total heat flux through the combinational insulation with the thickness of SOFI and VD-MLI, the warm boundary temperature, and storage medium were analyzed. Comparison between numerical results and experimental results from the literature shows that the model is feasible to be applied in engineering. In the ground stage, the heat flux through the SOFI/VD-MLI decreases by approximately 92.7% with a SOFI thickness of 10 mm than 150 mm in the condition of constant VD-MLI thickness, and declines by 8.4% with the VD-MLI thickness of 10 mm than 150 mm in the condition of constant SOFI thickness. In the space stage, however, the descent degree of the heat flux is approximately 13% and 90%, respectively, in the corresponding aforementioned conditions. Because the warm boundary temperature is constant, the total heat flux through the combinational insulation will be less sensitive to the storage medium. Furthermore, variations in VD-MLI thermal resistance and heat fluxes by solid heat conduction and heat radiation with layer position presented a jumping change at the interface of different layer density regions. The results show that there is an optimal combination thickness for SOFI and VD-MLI on the ground and in space. (c) 2019 American Society of Civil Engineers.
机译:在轨道上进行低温推进剂存储的高效可靠的绝热是未来太空探索中长期任务的重要组成部分。由喷涂泡沫隔热材料(SOFI)和可变密度多层隔热材料(VD-MLI)组成的新型组合式隔热材料,因其出色的隔热性能和轻质性而适合用于低温推进剂储存。基于SOFI / VD-MLI地面和空间级的传热计算模型,分析了组合绝缘层的总热通量与SOFI和VD-MLI的厚度,热边界温度和存储介质的变化。数值结果与文献实验结果的比较表明,该模型在工程上可行。在地面阶段,在SOFI厚度为10 mm的情况下,通过SOFI / VD-MLI的热通量在恒定VD-MLI厚度的情况下比150 mm减小约92.7%,而在VD-MLI的情况下则下降8.4%在恒定SOFI厚度的条件下,厚度比150毫米厚10毫米。然而,在空间阶段,在相应的前述条件下,热通量的下降程度分别约为13%和90%。因为热边界温度是恒定的,所以通过组合隔热层的总热通量将对存储介质不那么敏感。此外,由于固体热传导和热辐射随层位置的变化,VD-MLI热阻和热通量的变化在不同层密度区域的界面处呈现跳跃式变化。结果表明,地面和空间中的SOFI和VD-MLI都有最佳的组合厚度。 (c)2019美国土木工程师学会。

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  • 来源
    《Journal of aerospace engineering》 |2019年第4期|04019052.1-04019052.8|共8页
  • 作者单位

    Lanzhou Univ Technol, Coll Petrochem Engn, Lanzhou 730050, Gansu, Peoples R China;

    Lanzhou Univ Technol, Coll Petrochem Engn, Lanzhou 730050, Gansu, Peoples R China;

    Lanzhou Univ Technol, Coll Petrochem Engn, Lanzhou 730050, Gansu, Peoples R China;

    Lanzhou Univ Technol, Coll Petrochem Engn, Lanzhou 730050, Gansu, Peoples R China;

    Lanzhou Inst Phys, Sci & Technol Vacuum Technol & Phys Lab, Lanzhou 730050, Gansu, Peoples R China;

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