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Simulation for ground penetrating radar (GPR) study of the subsurface structure of the Moon

机译:月球地下结构的探地雷达模拟研究

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摘要

Ground penetrating radar (GPR) is currently within the scope of China's Chang-E 3 lunar mission, to study the shallow subsurface of the Moon. In this study, key factors that could affect a lunar GPR performance, such as frequency, range resolution, and antenna directivity, are discussed firstly. Geometrical optics and ray tracing techniques are used to model GPR echoes, considering the transmission, attenuation, reflection, geometrical spreading of radar waves, and the antenna directivity. The influence on A-scope GPR echoes and on the simulated radargrams for the Sinus Iridum region by surface and subsurface roughness, dielectric loss of the lunar regolith, radar frequency and bandwidth, and the distance between the transmit and receive antennas are discussed. Finally, potential scientific return about lunar subsurface properties from GPR echoes is also discussed. Simulation results suggest that subsurface structure from several to hundreds of meters can be studied from GPR echoes at P and VHF bands, and information about dielectric permittivity and thickness of subsurface layers can be estimated from GPR echoes in combination with regolith composition data.
机译:探地雷达(GPR)目前在中国的Chang-E 3月球任务范围内,用于研究月球的浅层地下。在这项研究中,首先讨论了可能影响月球GPR性能的关键因素,例如频率,距离分辨率和天线方向性。考虑到雷达波的传输,衰减,反射,几何扩展以及天线方向性,使用了几何光学和射线追踪技术对GPR回波进行建模。讨论了表面和亚表面的粗糙度,月球重波石的介电损耗,雷达频率和带宽以及发射天线和接收天线之间的距离对窦性铱地区对A谱GPR回波和模拟雷达图的影响。最后,还讨论了来自GPR回波的月球地下特征的潜在科学回报。仿真结果表明,可以从P和VHF波段的GPR回波研究几米至几百米的地下结构,并结合Regolith成分数据从GPR回波估算有关介电常数和地下层厚度的信息。

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