Circular Cavitation Based Lightweight and Broadband Radar Absorbing Structure

R. Yadav, R. Panwar
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Abstract

The search for low-cost practical radar absorbing structures (RAS) to decrease electromagnetic (EM) emissions has aroused interest. To strengthen electronic waste (e-waste) treatment and explore wideband absorber structure, perforated RASs are proposed and modelled with the magneto-dielectric properties of microwave heat treated e-waste composite. The investigation of proposed structures is carried out in 8.2 to 12.4 GHz (i.e., X-band). The thin and wideband single layer RAS is optimized with the help of multi-objective Jaya's optimization algorithm. As an outcome, a −16.8dB reflection coefficient (RC) is achieved in 2.4mm thick grid type RAS at 10.2 GHz exhibiting a −10dB bandwidth of 4.2 GHz. Furthermore, at a fixed optimized thickness, the proposed RAS is also examined against various oblique angles of incidence and found to be prominent. The full-wave simulation is utilized for the validation of optimized results and both are in good agreement with each other. The addition of a circular air gap in the structure regulates the composite EM characteristics at a higher frequency. It demonstrates that cavitation has magnificent advantages for the creation of wideband, lightweight, and low expense RAS for the stealth technology.
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基于圆空化的轻型宽带雷达吸波结构
寻找低成本实用的雷达吸波结构来降低电磁辐射已经引起了人们的兴趣。为了加强电子垃圾的处理和探索宽带吸收结构,提出了多孔吸收材料,并利用微波热处理后的电子垃圾复合材料的磁介电特性对其进行了建模。对拟议结构的研究在8.2至12.4 GHz(即x波段)进行。利用多目标Jaya优化算法对薄宽带单层RAS进行优化。结果表明,在10.2 GHz下,2.4mm厚栅格型RAS的反射系数(RC)为−16.8dB,带宽为4.2 GHz。此外,在固定的优化厚度下,所提出的RAS还针对各种斜入射角进行了测试,发现其突出。利用全波仿真对优化结果进行了验证,两者吻合较好。在结构中加入圆形气隙可在较高频率下调节复合材料的电磁特性。研究结果表明,空化技术对于研制宽带、轻量化、低成本的隐身技术具有巨大的优势。
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