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The heat dissipation, transport and reuse management for hypersonic vehicles based on regenerative cooling and thermoelectric conversion

机译:基于再生冷却和热电转换的高超声速车辆的散热,运输和重用管理

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摘要

The thermal energy management (TM) of a hypersonic vehicle should concern the full process of the heat dissipation, transport and reuse. In this paper, the aerodynamic heat of a hypersonic cruiser is dissipated by passive thermal protection system (TPS), transported by regenerative cooling (RC) network, and reused by RC network and thermoelectric (TE) conversion component. The TM system accordingly includes three subsystems of TPS, RC network and TE component. An equivalent thermal equilibrium model and an overall equivalent heat transfer coefficient are developed to build up the mutual correlation between the aerodynamic heating and TM system instead of the one-way influence, and account for the coupling design rationale of the TM subsystems. For passive TPS, the distribution, area and weight of relevant concepts are obtained; for RC network, the determination method of the heat capacity and coolant mass-flow-rate is developed, and the heat transport performance at specific vehicle regions is numerically analyzed by using hydrocarbon and liquid hydrogen fuel as coolants; for TE component, a TE-AFRSI concept is established by integrating mid- and low-temperature TE stages into the advanced flexible reusable surface insulation (AFRSI), and the concept is optimized by considering the thermal protection, weight increment and heat reuse performance. The design roadmap of TM system is finally proposed and the influence of the overall equivalent heat transfer coefficient is clarified. The results show that the aerodynamic heat and the transported or reused heat proportion will increase, while the scale of passive TPS will be reduced by the increase of overall equivalent heat transfer coefficient. (C) 2020 Elsevier Masson SAS. All rights reserved.
机译:高超声速车辆的热能管理(TM)应涉及散热,运输和重用的完整过程。在本文中,超声巡洋舰的空气动力学热由无源热保护系统(TPS)消散,通过再生冷却(RC)网络传输,并通过RC网络和热电(TE)转换组分重复使用。因此,TM系统包括TPS,RC网络和TE组件的三个子系统。开发了一种等效的热平衡模型和整体等同的传热系数,以建立空气动力加热和TM系统之间的互相关而不是单向影响,并考虑到TM子系统的耦合设计理由。对于被动TPS,获得相关概念的分布,面积和重量;对于RC网络,开发了热容量和冷却剂质量流量的测定方法,并且通过使用烃和液体氢燃料作为冷却剂来数值分析特定车辆区域的热传输性能;对于TE组件,通过将中低温TE阶段集成到先进的柔性可重复使用的表面绝缘(AFRSI)中来建立TE-AFRSI概念,并且通过考虑热保护,重量增量和热再利用性能来优化该概念。最终提出了TM系统的设计路线图,阐明了整个等效传热系数的影响。结果表明,空气动力学和运输或重复使用的热比例会增加,而无源TPS的规模将通过增加总体等同的传热系数而降低。 (c)2020 Elsevier Masson SAS。版权所有。

著录项

  • 来源
    《Aerospace science and technology》 |2021年第1期|106373.1-106373.22|共22页
  • 作者单位

    Northwestern Polytech Univ Sch Astronaut Shaanxi Aerosp Flight Vehicle Design Key Lab Xian 710072 Peoples R China;

    Northwestern Polytech Univ Sch Astronaut Shaanxi Aerosp Flight Vehicle Design Key Lab Xian 710072 Peoples R China;

    Northwestern Polytech Univ Sch Astronaut Shaanxi Aerosp Flight Vehicle Design Key Lab Xian 710072 Peoples R China;

    Northwestern Polytech Univ Sch Astronaut Shaanxi Aerosp Flight Vehicle Design Key Lab Xian 710072 Peoples R China;

    Northwestern Polytech Univ Sch Astronaut Shaanxi Aerosp Flight Vehicle Design Key Lab Xian 710072 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Thermal energy management; Hypersonic vehicle; Heat reuse; Thermoelectric conversion; Regenerative cooling;

    机译:热能管理;超音速车辆;热再利用;热电转换;再生冷却;

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