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Yanming Liu, Xuan Yang, Lixin Xuan, Weiwei Men, Xiao Wu, and Yuping Duan, Performance and electromagnetic mechanism of radar- and infrared-compatible stealth materials based on photonic crystals, Int. J. Miner. Metall. Mater.,(2024). https://dx.doi.org/10.1007/s12613-024-2986-5
Yanming Liu, Xuan Yang, Lixin Xuan, Weiwei Men, Xiao Wu, and Yuping Duan, Performance and electromagnetic mechanism of radar- and infrared-compatible stealth materials based on photonic crystals, Int. J. Miner. Metall. Mater.,(2024). https://dx.doi.org/10.1007/s12613-024-2986-5
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基于光子晶体的雷达和红外兼容隐形材料的性能和电磁机理

摘要: 传统的隐形材料不符合雷达波高吸收率和红外波低发射率的要求。此外,它们还可能被各种技术探测到,严重威胁武器安全。因此,我们根据光子晶体的光子带隙特性,设计了一种兼容雷达和红外线的隐形材料。雷达隐身层(底层)为羰基铁/二氧化硅/环氧树脂复合材料,红外隐身层(顶层)为锗和氮化硅交替、周期性堆叠的一维光子晶体。通过成分优化和结构调整,兼容隐身材料的有效吸收带宽达到4.95 GHz,反射损耗小于−10 dB。拟议设计的平均红外发射率为0.1063,显示出良好的隐身性能。理论分析证明,采用这种结构设计的光子晶体可以在光子带隙内产生红外波,实现高雷达波透过率和低红外发射率。在不影响雷达隐身层吸收性能的前提下实现了红外隐身,解决了雷达和红外隐身性能之间的矛盾。这项工作旨在促进光子晶体在兼容隐身材料中的应用和隐身技术的发展,并为相关实验和研究提供设计和理论基础。

 

Performance and electromagnetic mechanism of radar- and infrared-compatible stealth materials based on photonic crystals

Abstract: Traditional stealth materials do not fulfill the requirements of high absorption for radar waves and low emissivity for infrared waves. Furthermore, they can be detected by various technologies, considerably threatening weapon safety. Therefore, a stealth material compatible with radar and infrared was designed based on the photonic bandgap characteristics of photonic crystals. The radar stealth layer (bottom layer) is a composite of carbonyl iron/silicon dioxide/epoxy resin, and the infrared stealth layer (top layer) is a 1D photonic crystal with alternately and periodically stacked germanium and silicon nitride. Through composition optimization and structural adjustment, the effective absorption bandwidth of the compatible stealth material with a reflection loss of less than −10 dB has reached 4.95 GHz. The average infrared emissivity of the proposed design is 0.1063, indicating good stealth performance. The theoretical analysis proves that photonic crystals with this structural design can produce infrared waves within the photonic bandgap, achieving high radar wave transmittance and low infrared emissivity. Infrared stealth is achieved without affecting the absorption performance of the radar stealth layer, and the conflict between radar and infrared stealth performance is resolved. This work aims to promote the application of photonic crystals in compatible stealth materials and the development of stealth technology and to provide a design and theoretical foundation for related experiments and research.

 

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