摘要
为解决无源雷达吸波材料带宽有限的问题,基于传输线理论设计了一种有源可调微波吸收体.该吸收体是在Salisbury屏的拓扑结构基础上,用基于PIN二极管可控的有源频率选择表面(FSS)代替传统的电阻层.反射率测量结果表明,通过改变二极管的偏置电流可以动态调节吸收体的最佳吸波频率;当偏置电流在0~0.5mA之间变化时,吸收体的最佳吸波频率在7~12.5GHz频率范围内动态调整.基于遗传算法,优化设计了一种具有双极化吸波特性的十字型可调微波吸收体,仿真结果表明该吸收体在5.6~17.6GHz范围内实现了最佳吸波频率的可控迁移.
In order to improve the limited band of passive radar absorbing materials, an active tunable microwave absorber was designed based on transmission line theory. The absorber was a planar structure based upon the topology of a Salisbury screen, but in which the conventional resistive layer was replaced by an active frequency selective surface (FSS) controlled by PIN diodes. Measured data of reflectivity are presented and show that the reflectivity response of the absorber can be controlled by changing bias current. When bias cur- rent changes from 0 to 0.5 mA, the optimal absorbing frequency can be controlled over the frequency band from 7 GHz to 12.5 GHz. A double polarization tunable microwave absorber is optimized based on genetic algo- rithm, simulation results show that the reflectivity response of the absorber can be controlled over the frequency band from 5.6 GHz to 17.6 GHz.
出处
《北京航空航天大学学报》
EI
CAS
CSCD
北大核心
2015年第10期1853-1858,共6页
Journal of Beijing University of Aeronautics and Astronautics
关键词
传输线理论
微波吸收体
频率选择表面(FSS)
偏置电流
优化
transmission line theory
microwave absorber
frequency selective surface (FSS)
bias cur-rent
optimization