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RF Field Mapping Inside a Large Passenger-Aircraft Cabin Using a Refi ned Ray-Tracing Algorithm

机译:使用改进的射线追踪算法在大型客机舱内进行RF场映射

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摘要

Radio-frequency (RF) field mapping and its analysis inside a large passenger aircraft is a complex EM analysis problem, owing to its inherent concavity. The further hybrid surface modeling required for such concave enclosures leads to ray proliferation, thereby making the problem computationally intractable. In this paper, a large passenger-aircraft cabin is modeled as a single curved elliptical cylindrical cavity having a floorboard and windows. Unlike the available ray-tracing packages that use extensive numerical search methods, a quasi-analytical ray-propagation model is proposed here. This involves uniform ray launching, an intelligent scheme for ray bunching, and an adaptive reception algorithm to obtain the ray-path details inside the concave cabin. Although the image method yields precise point-to-point solutions, it cannot be used for curved concave environments. The developed method is therefore validated with respect to the RF field inside a cuboid. The RF field at the receiver within the cabin is determined using the ray-path descriptions and the constitutive EM parameters of the aircraft's cabin materials. The convergence analysis of the RF field buildup is carried out with respect to the propagation time and the number of bounces.
机译:由于其固有的凹度,大型客机内部的射频(RF)场映射及其分析是一个复杂的EM分析问题。这种凹形外壳所需的进一步的混合表面建模导致射线扩散,从而使该问题在计算上难以解决。在本文中,大型客机舱被建模为具有地板和窗户的单个弯曲椭圆形圆柱腔。与使用广泛的数值搜索方法的可用射线跟踪软件包不同,此处提出了一种准分析射线传播模型。这涉及均匀的射线发射,用于射线聚束的智能方案,以及用于获得凹舱内部的射线路径细节的自适应接收算法。尽管图像方法产生精确的点对点解,但它不能用于弯曲的凹面环境。因此,相对于长方体内部的RF场验证了开发的方法。机舱内接收器的RF场是使用射线路径描述和飞机机舱材料的本构EM参数确定的。针对传播时间和跳动次数对RF场建立进行收敛性分析。

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