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Optimal pulse penetration in Rocard-Powles-Debye model dielectrics using the Brillouin precursor

机译:使用布里渊前驱体在Rocard-Powles-Debye模型电介质中的最佳脉冲穿透

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When an ultrawideband electromagnetic pulse penetrates into a causally dispersive dielectric, the interrelated effects of phase dispersion and frequency dependent attenuation alter the pulse in a fundamental way that results in the appearance of precursor fields. For a dielectric described by the Rocard-Powles extension of the Debye model, the dynamical field evolution is dominated by the Brillouin precursor as the propagation depth typically exceeds a single penetration depth evaluated at the carrier frequency of the input pulse. This is because the peak amplitude in the Brillouin precursor decays only as the square root of the inverse of the propagation distance. Because of its unique nonexponential peak decay, the Brillouin precursor has direct application to foliage and ground penetrating radar, remote sensing and wireless communications in adverse environments. Of equal importance is the frequency structure of the Brillouin precursor which exhibits a complicated dependence on both the material dispersion and the input pulse characteristics. A Brillouin pulse is then defined and shown to possess near optimal (if not indeed optimal) material penetration.
机译:当超宽带电磁脉冲渗透到因果扩散的电介质中时,相位扩散和频率相关衰减的相互影响会从根本上改变脉冲,从而导致出现前驱场。对于由Debye模型的Rocard-Powles扩展描述的电介质,由于传播深度通常超过在输入脉冲的载波频率上评估的单个穿透深度,因此动态磁场的演化受布里渊前驱体的支配。这是因为布里渊前体中的峰值幅度仅以传播距离的倒数的平方根衰减。由于其独特的非指数峰衰减,布里渊前体可直接应用于恶劣环境中的树叶和地面穿透雷达,遥感和无线通信。同样重要的是布里渊前驱体的频率结构,它对材料色散和输入脉冲特性都表现出复杂的依赖性。然后定义布里渊脉冲,并显示其具有接近最佳的(如果不是最佳的话)材料穿透力。

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