首页> 外文学位 >Multi-functional materials by powder processing for a thermal protection system with self-cooling capability: Perspirable skin.
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Multi-functional materials by powder processing for a thermal protection system with self-cooling capability: Perspirable skin.

机译:经过粉末处理的多功能材料,用于具有自冷功能的热保护系统:可汗的皮肤。

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摘要

Aerodynamic heating generated by the friction between the atmosphere and the space vehicle's surface at reentry can enhance the temperature on the surface as high as 1700°C. A Thermal Protection System (TPS) is needed to inhibit the heat entering into the vehicle. Presently, the completely passive thermal protection is used for TPS. The thermal ablation/erosion and oxidization reaction of the current TPS is the major threat to the safety of the space vehicle. Therefore, a new design for TPS with actively self-cooling capability was proposed by bio-mimicking the perspiration of the human body, henceforth called Perspirable skin. The design of Perspirable Skin consists of core material shrink-fitted into a skin panel such as Reinforced Carbon-Carbon (RCC) Composite. The core material contains a very small Coefficient of Thermal Expansion (CTE) compared to the panel material. As temperature increases, the gap between the core and the skin are produced due to the CTE difference. Compressed gas on board the space vehicle will blow out from the gap once the surface temperature reaches a critical value. The cold gas flows over the surface and mixes with the atmospheric air to compensate for the frictional heat. With Perspirable Skin, the highest temperature on the surface is expected to decrease, and we assumed it to be around half of the present temperature.;This dissertation focuses on the selection of the core materials and their manufacturing by powder processing. Based on a series of experiments, several results were obtained: (1) the effect of powder mixing on the compaction capability and sintering capability was determined; (2) a flat 3-layered Al 2O3/ZrO2 Functionally Graded Material (FGM) without cracks was fabricated; (3) the factors contributing to the cracks in the multi-layered materials were investigated; (4) an isotropic negative thermal expansion material, ZrW2O8, as well as its composites with ZrO2 were processed by in-situ reaction of WO3 and ZrO2; (5) several CTE prediction models on composites containing ZrW2O 8 were studied and proposed as a better scheme for applying the contiguity of phase; (6) a novel processing technique to produce ZrW2O 8-ZrO2 continuous FGMs was developed; and (7) the thermal and mechanical properties of the various materials were measured. Finally, using finite element analysis (FEA), the complete design of Perspirable Skin has been accomplished.
机译:再入大气层和航天器表面之间的摩擦产生的空气动力加热可使表面温度升高至1700°C。需要一个热保护系统(TPS)来抑制热量进入车辆。目前,TPS使用了完全被动的热保护。当前TPS的热烧蚀/腐蚀和氧化反应是对航天器安全的主要威胁。因此,提出了一种具有主动自冷却能力的TPS新设计,该技术通过生物模仿人体的汗液,此后称为可汗皮肤。透气皮肤的设计包括收缩配合在皮肤面板中的核心材​​料,例如增强碳-碳(RCC)复合材料。与面板材料相比,芯材的热膨胀系数(CTE)非常小。随着温度的升高,由于CTE的差异,在芯和表皮之间会产生间隙。一旦表面温度达到临界值,航天器上的压缩气体将从间隙中吹出。冷气在表面上流动,并与大气混合以补偿摩擦热。对于可渗透性皮肤,预期表面的最高温度会降低,我们假设该温度约为当前温度的一半。;本论文着重于核心材料的选择及其通过粉末加工的制造。在一系列实验的基础上,获得了一些结果:(1)确定粉末混合对压实能力和烧结能力的影响; (2)制造了没有裂纹的平坦的三层Al 2O3 / ZrO2功能梯度材料(FGM)。 (3)研究了造成多层材料裂纹的因素; (4)通过WO 3和ZrO 2的原位反应处理各向同性的负热膨胀材料ZrW 2 O 8以及其与ZrO 2的复合材料。 (5)研究了几种含ZrW2O 8的复合材料的CTE预测模型,并将其作为应用相近性的更好方案; (6)开发了一种新的生产ZrW2O 8-ZrO2连续FGM的工艺技术; (7)测量了各种材料的热和机械性能。最后,使用有限元分析(FEA),完成了可汗皮肤的完整设计。

著录项

  • 作者

    Sun, Li.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Engineering Mechanical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 183 p.
  • 总页数 183
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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