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- W2892041909 abstract "PreviousNext No AccessSEG Technical Program Expanded Abstracts 2018Time-lapse ground-penetrating radar full-waveform inversion to detect tracer plumes: A numerical studyAuthors: Peleg HaruziNils GuetingAnja KlotzscheJan VanderborghtHarry VereeckenJan van der KrukPeleg HaruziAgrosphere Institute, IBG-3, Forschungszentrum Jülich GmbHSearch for more papers by this author, Nils GuetingAgrosphere Institute, IBG-3, Forschungszentrum Jülich GmbHSearch for more papers by this author, Anja KlotzscheAgrosphere Institute, IBG-3, Forschungszentrum Jülich GmbH; Centre for High-Performance Scientific Computing in Terrestrial Systems (HPSC-TerrSys), Geoverbund ABC/JSearch for more papers by this author, Jan VanderborghtAgrosphere Institute, IBG-3, Forschungszentrum Jülich GmbH; Centre for High-Performance Scientific Computing in Terrestrial Systems (HPSC-TerrSys), Geoverbund ABC/JSearch for more papers by this author, Harry VereeckenAgrosphere Institute, IBG-3, Forschungszentrum Jülich GmbH; Centre for High-Performance Scientific Computing in Terrestrial Systems (HPSC-TerrSys), Geoverbund ABC/JSearch for more papers by this author, and Jan van der KrukAgrosphere Institute, IBG-3, Forschungszentrum Jülich GmbH; Centre for High-Performance Scientific Computing in Terrestrial Systems (HPSC-TerrSys), Geoverbund ABC/JSearch for more papers by this authorhttps://doi.org/10.1190/segam2018-2996599.1 SectionsSupplemental MaterialAboutPDF/ePub ToolsAdd to favoritesDownload CitationsTrack CitationsPermissions ShareFacebookTwitterLinked InRedditEmail AbstractTime-lapse geophysical imaging of tracer tests is essential to infer channelized transport properties. Cross-hole ground-penetrating radar (GPR) tomography is a high resolution imaging method to characterize the near-surface. We present preliminary results of crosshole GPR full-waveform inversion of time-lapse synthetic data during a saline tracer test. The tracer movement was obtained from a 3D transport simulation in a hydrogeological model representing the Krauthausen aquifer where in future also field tests will be performed. The full-waveform inversion accurately resolved the infiltrated tracer distribution in the plane within decimeter scale. The results indicate the potential of GPR full-waveform inversion for saline tracer detection and high-resolution time-lapse transport characterization.Presentation Date: Monday, October 15, 2018Start Time: 1:50:00 PMLocation: 204A (Anaheim Convention Center)Presentation Type: OralKeywords: ground-penetrating radar (GPR), full-waveform inversion, crosswell, time-lapse, numericalPermalink: https://doi.org/10.1190/segam2018-2996599.1FiguresReferencesRelatedDetailsCited byImprovement of ground-penetrating radar full-waveform inversion images using cone penetration test dataZhen Zhou, Anja Klotzsche, Jessica Schmäck, Harry Vereecken, and Jan van der Kruk18 March 2021 | GEOPHYSICS, Vol. 86, No. 3Improved resolution of ground penetrating radar full-waveform inversion by using cone penetration test data: A synthetic studyZhen Zhou, Anja Klotzsche, Nils Güting, Peleg Haruzi, Harry Vereecken, and Jan van der Kruk10 August 2019 SEG Technical Program Expanded Abstracts 2018ISSN (print):1052-3812 ISSN (online):1949-4645Copyright: 2018 Pages: 5520 publication data© 2018 Published in electronic format with permission by the Society of Exploration GeophysicistsPublisher:Society of Exploration Geophysicists HistoryPublished Online: 27 Aug 2018 CITATION INFORMATION Peleg Haruzi, Nils Gueting, Anja Klotzsche, Jan Vanderborght, Harry Vereecken, and Jan van der Kruk, (2018), Time-lapse ground-penetrating radar full-waveform inversion to detect tracer plumes: A numerical study, SEG Technical Program Expanded Abstracts : 2486-2490. https://doi.org/10.1190/segam2018-2996599.1 Plain-Language Summary Keywordsground-penetrating radar (GPR)full-waveform inversioncrosswelltime-lapsenumericalPDF DownloadLoading ..." @default.
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