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GPR detectability of rocks in a Martian-like shallow subsoil: A numerical approach

机译:火星状浅层地下岩石的GPR可探测性:一种数值方法

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In this work, the ability of Ground Penetrating Radar (GPR) to detect rocks buried in composite soil is studied in connection with the planned ExoMars mission, as GPR will be used during this mission to scan the Martian subsurface to help define feasible sites for shallow drilling. A realistic model of the operating environment is implemented through a full-wave electromagnetic simulator, taking into account the antenna system and the signal features. The flexibility and efficiency of this numerical approach has allowed for the analysis of a great variety of configurations. The regolith is modeled based on data from recent explorations, while various kinds of embedded rocks are considered that have different geometrical and physical characteristics. The simulated results are compared with ad hoc GPR measurements performed on basalts buried in a mixture of glass beads, as an analogue of a dry sandy Martian soil. A very good agreement between theoretical and experimental results is found, thus validating the proposed numerical approach. This research has defined useful and reliable information concerning the prediction of scattering effects from buried objects in the environment where the ExoMars rover will operate.
机译:在这项工作中,结合计划的ExoMars任务,研究了探地雷达(GPR)检测埋在复合土壤中的岩石的能力,因为在此任务期间将使用GPR扫描火星地下,以帮助确定可行的浅层地点。钻孔。考虑到天线系统和信号特征,可以通过全波电磁模拟器来实现逼真的操作环境模型。这种数值方法的灵活性和效率允许分析各种各样的配置。基于最近勘探的数据对重灰岩进行了建模,同时考虑了各种具有不同几何和物理特征的埋入岩石。将模拟结果与掩埋在玻璃珠混合物中的玄武岩(作为干燥的沙质火星土壤的类似物)进行的GPR临时测量结果进行了比较。理论与实验结果之间找到了很好的一致性,从而验证了所提出的数值方法。这项研究已经定义了有用的和可靠的信息,有关预测ExoMars流浪者将在其工作的环境中来自地下物体的散射效应的预测。

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