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Backward Scattering Characteristics of a Reentry Vehicle Enveloped by a Hypersonic Flow Field

机译:超声波流场封闭式车辆的向后散射特性

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摘要

The hypersonic flow field around a reentry vehicle has a significant influence on the ground-vehicle communication as well as on the detection and recognition of the reentry vehicle. Backward scattering characteristics of a reentry vehicle enveloped by a hypersonic flow field are analyzed using a high-order auxiliary differential equation finite difference time-domain (ADE-FDTD) method in this paper. Flow field parameters, including electron density, neutral particle density, and temperature, are obtained by solving the Navier-Stokes (NS) equations numerically. According to the flow field parameters, distributions of the plasma frequency and the collision frequency are then derived. Based on a validity of the physical model and the high-order ADE-FDTD method, backward radar cross sections (RCSs) of a perfect electrical conductor (PEC) sphere enveloped by a hypersonic flow field under different Mach numbers, heights, and incident angles of the electromagnetic (EM) wave are then investigated. Numerical results show that the incident angle of the EM wave exerts noticeable effects on the backward RCS, which is due to an inhomogeneous distribution of the plasma. The flight height and Mach number have significant influences on the distribution of the plasma that they play an important role in the variation of the RCSs. The results presented in this paper provide useful reference data for practical tests in ballistic range or in the high-frequency plasma wind tunnels, where a sphere target is usually used due to its simple shape.
机译:重新入门车辆周围的高超声流场对地车辆通信以及再入式车辆的检测和识别具有显着影响。本文使用高阶辅助微分方程有限时间域(ADE-FDTD)方法分析由超声波流场封闭的再入式散射特性。流场参数,包括电子密度,中性粒子密度和温度,通过在数值上求解Navier-Stokes(NS)方程来获得。根据流场参数,然后导出等离子体频率和冲突频率的分布。基于物理模型的有效性和高阶ADE-FDTD方法,在不同马赫数,高度和入射角下由超声波流场封闭的完美电导体(PEC)球体的后向雷达横截面(RCS)然后研究了电磁(EM)波。数值结果表明,EM波的入射角对后向RCS产生显着的影响,这是由于等离子体的不均匀分布。飞行高度和马赫数对血浆的分布具有重大影响,它们在RCSS的变化中发挥着重要作用。本文提出的结果提供了有用的参考数据,用于弹道范围或高频等离子体风隧道中的实际测试,其中通常使用球形目标由于其简单的形状而使用。

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