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首页> 外文期刊>Experimental Heat Transfer >THERMAL PROTECTION PERFORMANCE OF METALLIC HONEYCOMB CORE PANEL STRUCTURES IN NON-STEADY THERMAL ENVIRONMENTS
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THERMAL PROTECTION PERFORMANCE OF METALLIC HONEYCOMB CORE PANEL STRUCTURES IN NON-STEADY THERMAL ENVIRONMENTS

机译:非稳态热环境中金属蜂窝芯板结构的热防护性能

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摘要

The thermal protection characteristics of metallic honeycomb core panel structures in high-temperature environments are important parameters for the structure design of thermal protection for high-speed aircraft. A self-developed transient aerodynamic thermal simulation system for high-speed aircraft is used to test the thermal protection performance of metallic honeycomb core panels in a dynamic high-temperature environment at temperatures up to 950 degrees C. The heat transfer characteristics of metallic honeycomb core panels in transient and steady states and the heat shield effects at various temperatures are determined. By considering the internal radiation of honeycomb core panels as well as the heat transfer between a metal structure and air within a honeycomb core cavity, three-dimensional finite element models are established for numerical simulations and computations of the thermal protection properties of metallic honeycomb core panels. The experimental results agree well with the numerical simulations. The credibility and effectiveness of the numerical simulation are verified. These results provide a solid foundation for replacement of expensive thermal simulations with numerical simulations to a certain extent. Several issues are discussed, such as the changes in the heat shield efficiency of the metallic honeycomb core panel in a complex dynamic high-temperature environment, the relevance of thermal protection efficiency, the rate of heating surface temperature change, and the selection of the metal surface emissivity. These findings offer important reference values for research in metal honeycomb thermal protection structures of high-speed aircraft.
机译:高温环境下金属蜂窝芯板结构的热保护特性是高速飞机热保护结构设计的重要参数。自主研发的用于高速飞机的瞬态气动热模拟系统用于测试动态温度高达950摄氏度的金属蜂窝芯板的热防护性能。金属蜂窝芯的传热特性确定了处于瞬态和稳态的太阳能电池板以及在各种温度下的隔热效果。通过考虑蜂窝芯板的内部辐射以及蜂窝芯腔内金属结构与空气之间的热传递,建立了三维有限元模型,用于数值模拟和计算金属蜂窝芯板的热防护性能。实验结果与数值模拟吻合良好。数值仿真的可信度和有效性得到了验证。这些结果为在一定程度上用数值模拟代替昂贵的热模拟提供了坚实的基础。讨论了几个问题,例如在复杂的动态高温环境下金属蜂窝芯板的隔热效率的变化,热保护效率的相关性,加热表面温度变化的速率以及金属的选择表面发射率。这些发现为高速飞机金属蜂窝热防护结构的研究提供了重要的参考价值。

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