Vong Christophe, Chevalier Alexis, Maalouf Azar, Ville Julien, Rosnarho Jean-François, Laur Vincent
University Brest, Lab-STICC, UMR 6285, CNRS, 29200 Brest, France.
University Brest, IRDL, UMR 6027, CNRS, 29200 Brest, France.
Materials (Basel). 2022 May 5;15(9):3320. doi: 10.3390/ma15093320.
With the multiplication of electronic devices in our daily life, there is a need for tailored wideband electromagnetic (EM) absorbers that could be conformed on any type of surface-like antennas for interference attenuation or military vehicles for stealth applications. In this study, a wideband flexible flat electromagnetic absorber compatible with additive manufacturing has been studied in the X-Ku frequency bands. A multilayer structure has been optimized using a genetic algorithm (GA), adapting the restrictions of additive manufacturing and exploiting the EM properties of loaded and non-loaded filaments, of which the elaboration is described. After optimization, a bi-material multilayer absorber with a thickness of 4.1 mm has been designed to provide a reflectivity below -12 dB between 8 and 18 GHz. Finally, the designed multilayer structure was 3D-printed and measured in an anechoic chamber, achieving -11.8 dB between 7 and 18 GHz. Thus, the development of dedicated materials has demonstrated the strong potential of additive technologies for the manufacturing of thin wideband flexible EM absorbers.
随着电子设备在我们日常生活中的大量增加,需要有定制的宽带电磁(EM)吸收器,其可以贴合在任何类型的表面上,如用于干扰衰减的天线或用于隐身应用的军用车辆。在本研究中,对一种与增材制造兼容的宽带柔性平面电磁吸收器在X-Ku频段进行了研究。使用遗传算法(GA)对多层结构进行了优化,适应增材制造的限制并利用加载和未加载细丝的电磁特性,文中描述了其制造过程。经过优化,设计了一种厚度为4.1毫米的双材料多层吸收器,以在8至18吉赫兹之间提供低于-12分贝的反射率。最后,将设计的多层结构进行3D打印并在消声室中测量,在7至18吉赫兹之间实现了-11.8分贝。因此,专用材料的开发证明了增材技术在制造薄宽带柔性电磁吸收器方面的巨大潜力。