首页> 外文会议>ASME International Conference on Micro/Nanoscale Heat and Mass Transfer >OPTIMUM STRUCTURAL DESIGN OF THERMAL PROTECTION USING PHOTONIC CRYSTAL MATERIAL CONSIDERING THERMOPHYSICAL PROPERTIES IN MICRO/NANOSCALE
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OPTIMUM STRUCTURAL DESIGN OF THERMAL PROTECTION USING PHOTONIC CRYSTAL MATERIAL CONSIDERING THERMOPHYSICAL PROPERTIES IN MICRO/NANOSCALE

机译:考虑微/纳米尺度热神族材料的光子晶体材料的最佳结构设计

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With the rapid development of the supersonic aircraft technology, tremendously, the aircraft Mach numbers get higher and higher, but on the other hand, the working condition become worse and worse. The photonic crystal material which is formed by the periodic micro/nanoscale structures can generate the photonic band gaps, and the photonic band gaps could reflect the energy of the electromagnetic wave effectively. Consequently, the photonic crystal material turns into the newly-developing hotspot on the field of thermal protection for the supersonic aircraft. In this paper, the aircraft states of Mach 6 are set as the target operating condition, and 5 optimum proposals are presented for the structures of typical photonic crystal material. The energy which gets into the body material is calculated; Based on the theory of the electromagnetic field, using the method of transmission matrix and Plane Wave Expansion (PWE), the characteristics of the photonic band gaps for one-and-three dimensional photonic crystals are calculated. Finally, the characteristics of the photonic band gaps are discussed, and optimal design for the performance of the photonic crystal material thermal protection are proposed.
机译:随着超音速飞机技术的快速发展,巨大地,飞机马赫数得到更高更高,但另一方面,工作条件变得更糟,更糟糕。由周期性微/纳米结构形成的光子晶体可以产生光子带间隙,并且光子带间隙可以有效地反映电磁波的能量。因此,光子晶体材料变成了用于超音速飞机的热保护领域的新开发热点。在本文中,将Mach 6的飞机状态设定为目标操作条件,并且为典型光子晶体材料的结构提供了5个最佳建议。计算进入体材料的能量;基于电磁场的理论,使用透射矩阵和平面波膨胀(PWE)的方法,计算了用于一三维光子晶体的光子带间隙的特性。最后,讨论了光子带隙的特性,提出了对光子晶体材料热保护的性能的最佳设计。

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