针对无源电磁调控中目标模拟样式单一且灵活性欠缺的问题,利用有源频率选择表面(active frequency selective surface,AFSS)电磁散射特性可调且不主动辐射电磁波的特性,提出了一种AFSS反射器电磁散射状态切换的双脉冲周期间歇调制方法...针对无源电磁调控中目标模拟样式单一且灵活性欠缺的问题,利用有源频率选择表面(active frequency selective surface,AFSS)电磁散射特性可调且不主动辐射电磁波的特性,提出了一种AFSS反射器电磁散射状态切换的双脉冲周期间歇调制方法。构建了AFSS反射器的双脉冲周期间歇调制信号模型,分析了调制信号的特点。通过理论推导,研究了AFSS反射器对雷达线性调频信号回波匹配滤波结果的影响。最后进行了仿真验证,结果证明了所提方法的有效性和可行性。该方法增加了控制参数维度,调制样式更为丰富,应用于雷达目标模拟时可以提高其可变性和灵活性。展开更多
An experimental double-layer active frequency-selective surface(AFSS) for stealth radome is proposed. The AFSS is a planar structure which is composed of a fixed frequency-selective surface(FSS), a PIN diodes arra...An experimental double-layer active frequency-selective surface(AFSS) for stealth radome is proposed. The AFSS is a planar structure which is composed of a fixed frequency-selective surface(FSS), a PIN diodes array, and a DC bias network. The AFSS elements incorporating switchable PIN diodes are discussed. By means of controlling the DC bias network, it is possible to switch the frequency response for reflecting and transmitting. Measured and simulated data validate that when the incidence angle varies from 0°to 30° the AFSS produces more than-11.5 dB isolation across6–18 GHz when forward biased. The insertion loss(IL) is less than 0.5 dB across 10–11 GHz when reverse biased.展开更多
文摘针对无源电磁调控中目标模拟样式单一且灵活性欠缺的问题,利用有源频率选择表面(active frequency selective surface,AFSS)电磁散射特性可调且不主动辐射电磁波的特性,提出了一种AFSS反射器电磁散射状态切换的双脉冲周期间歇调制方法。构建了AFSS反射器的双脉冲周期间歇调制信号模型,分析了调制信号的特点。通过理论推导,研究了AFSS反射器对雷达线性调频信号回波匹配滤波结果的影响。最后进行了仿真验证,结果证明了所提方法的有效性和可行性。该方法增加了控制参数维度,调制样式更为丰富,应用于雷达目标模拟时可以提高其可变性和灵活性。
基金Project supported by the National Basic Resarch Program of China(Grant No.2014CB339800)the National Natural Science Foundation of China(Grant No.11173015)
文摘An experimental double-layer active frequency-selective surface(AFSS) for stealth radome is proposed. The AFSS is a planar structure which is composed of a fixed frequency-selective surface(FSS), a PIN diodes array, and a DC bias network. The AFSS elements incorporating switchable PIN diodes are discussed. By means of controlling the DC bias network, it is possible to switch the frequency response for reflecting and transmitting. Measured and simulated data validate that when the incidence angle varies from 0°to 30° the AFSS produces more than-11.5 dB isolation across6–18 GHz when forward biased. The insertion loss(IL) is less than 0.5 dB across 10–11 GHz when reverse biased.