Design and Verification of a Versatile and Lightweight Radar Platform for High-Resolution Imaging of Glacial Subsurface Structures

IF 6.9 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Lena Krabbe;Niklas Haberberger;Michael Stelzig;Felix Pfluger;Matthias Braun;Martin Vossiek
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Abstract

Ground penetrating radar (GPR) is an effective tool in cryosphere and climate research, as it can provide detailed, non-invasive insights into ice thickness, internal structures, and subglacial conditions. This technology uncovers critical data on glacier dynamics and climate change impacts, enhancing our understanding of past, present, and future environmental shifts. In this contribution, the design and experimental verification of a lightweight, surface-based GPR platform intended for imaging glacial subsurface structures is presented. Therein, the system requirements for glaciological applications and the design implications for the developed platform and its components are described. In addition, a detailed overview of the utilized radar system, including the 3D-printed horn antennas and the localization concept, is provided. Furthermore, the imaging properties of the developed system are introduced, and the processing chain to retrieve subsurface images from the raw radar data using synthetic aperture radar concepts is presented. The platform was tested during a field campaign in March 2024 on the Jungfraufirn glacier in Switzerland. The data from this field campaign provide detailed imaging results of the glacier subsurface, including its stratification with high resolution and contrast. Moreover, a comparison of our rather broadband ultra-high frequency GPR measurements to the data acquired with a high-performance state-of-the-art low frequency GPR system is provided. Finally, this contribution concludes with current limitations and an outlook on future improvements.
设计并验证用于冰川地表下结构高分辨率成像的多功能轻型雷达平台
探地雷达(GPR)是冰冻圈和气候研究的有效工具,因为它可以提供详细的、非侵入性的冰厚、内部结构和冰下条件的信息。这项技术揭示了冰川动态和气候变化影响的关键数据,增强了我们对过去、现在和未来环境变化的理解。本文介绍了一种用于冰川地下结构成像的轻型地面GPR平台的设计和实验验证。其中,描述了冰川学应用的系统要求以及开发的平台及其组件的设计含义。此外,还提供了所使用雷达系统的详细概述,包括3d打印喇叭天线和定位概念。在此基础上,介绍了该系统的成像特性,提出了利用合成孔径雷达概念从原始雷达数据中提取地下图像的处理链。该平台于2024年3月在瑞士少女峰冰川进行了实地测试。这次野外活动的数据提供了详细的冰川地下成像结果,包括其高分辨率和对比度的分层。此外,还将我们的宽带超高频探地雷达测量结果与高性能最先进的低频探地雷达系统获得的数据进行了比较。最后,本文总结了当前的局限性和对未来改进的展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
10.70
自引率
0.00%
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0
审稿时长
8 weeks
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