Electrical Resistivity Tomography Investigation of Permafrost Conditions in a Thermokarst Site in Fairbanks, Alaska

被引:1
|
作者
Basiru, Abdallah [1 ]
Kidanu, Shishay T. [1 ]
Rybakov, Sergei [2 ]
Hasson, Nicholas [2 ]
Kebe, Moustapha [3 ]
Acheampong, Emmanuel Osei [4 ]
机构
[1] Univ Alaska Fairbanks, Dept Civil Geol & Environm Engn, 1760 Tanana Loop Duckering 245, Fairbanks, AK 99775 USA
[2] Univ Alaska Fairbanks, Geophys Inst, 903 N Koyukuk Dr, Fairbanks, AK 99709 USA
[3] Univ Alaska Fairbanks, Dept Min & Minerals Engn, 1760 Tanana Loop Duckering 245, Fairbanks, AK USA
[4] Ohio Univ, Clippinger Labs, Dept Geol Sci, 316 Ohio Univ Athens, Athens, OH 45701 USA
来源
AIMS GEOSCIENCES | 2024年 / 10卷 / 01期
关键词
permafrost; thermokarst; ERT; Depth-of-Investigation; ice-wedge; Fairbanks; Alaska; WARMING PERMAFROST; ACTIVE LAYER; CLIMATE; DEPTH; DEGRADATION; INVERSION; RESOLUTION; NEWTON; FIELD;
D O I
10.3934/geosci.2024001
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The degradation of permafrost poses severe environmental threats to communities in cold regions. As near-surface permafrost warms, extensive topographic variability is prevalent in the Arctic and Sub-Arctic communities. Geologic hazards such as thermokarst are formed due to varying rates of permafrost degradation, resulting in ground subsidence. This gradual subsidence or abrupt collapse of the earth causes a danger to existing infrastructure and the economic activities of communities in cold regions. Understanding the causes of thermokarst development and its dynamics requires imaging its underground morpho-structures and characterizing the surface and subsurface controls. In this study, we conducted a two-dimensional (2D) electrical resistivity tomography (ERT) survey to characterize the permafrost conditions in a thermokarst prone site located in Fairbanks, Alaska. To increase the reliability in the interpretability of the ERT data, borehole data and the depth-of-investigation (DOI) methods were applied. By using the 2D and three-dimensional (3D) ERT methods, we gained valuable information on the spatial variability of transient processes, such as the movement of freezing and thawing fronts. Resistivity imaging across the site exhibited distinct variations in permafrost conditions, with both low and high resistive anomalies observed along the transects. These anomalies, representing taliks and ice wedges, were characterized by resistivity values ranging from 50 S2m and above 700 S2m, respectively. The results from this study showed the effectiveness of ERT to characterize permafrost conditions and thermokarst subsurface morpho-structures. The insights gained from this research contribute to a better understanding of the causes and dynamics of thermokarst, which can be instrumental for engineers in developing feasible remedial measures.
引用
收藏
页码:1 / 27
页数:27
相关论文
共 50 条
  • [31] Mapping subsea permafrost around Tuktoyaktuk Island (Northwest Territories, Canada) using electrical resistivity tomography
    Erkens, Ephraim
    Angelopoulos, Michael
    Tronicke, Jens
    Dallimore, Scott R.
    Whalen, Dustin
    Boike, Julia
    Overduin, Pier Paul
    CRYOSPHERE, 2025, 19 (03): : 997 - 1012
  • [32] Characteristics of Discontinuous Permafrost based on Ground Temperature Measurements and Electrical Resistivity Tomography, Southern Yukon, Canada
    Lewkowicz, Antoni G.
    Etzelmuller, Bernd
    Smith, Sharon L.
    PERMAFROST AND PERIGLACIAL PROCESSES, 2011, 22 (04) : 320 - 342
  • [33] Discontinuous permafrost detection from neural network-ensemble learning based electrical resistivity tomography
    Liu, Tianci
    Zhang, Feng
    Lin, Chuang
    Liang, Zhichao
    Wang, Guanfu
    Feng, Decheng
    COLD REGIONS SCIENCE AND TECHNOLOGY, 2024, 225
  • [34] Site Characterization during Bridge Foundation Construction Using Electrical Resistivity Tomography
    Torgashov, Evgeniy V.
    Varnavina, Aleksandra V.
    AIMS GEOSCIENCES, 2016, 2 (03): : 201 - 213
  • [35] Interrelationship between borehole lithology and electrical resistivity for geotechnical site investigation
    Ishak, M. F.
    Zolkepli, M. F.
    Masyhur, E. M. H.
    Yunus, N. Z. M.
    Rashid, A. S. A.
    Hezmi, M. A.
    Hasbollah, D. Z. A.
    Yusoff, A. R.
    PHYSICS AND CHEMISTRY OF THE EARTH, 2022, 128
  • [36] On the potential for a bottom active layer below coastal permafrost: the impact of seawater on permafrost degradation imaged by electrical resistivity tomography (Hornsund, SW Spitsbergen)
    Kasprzak, Marek
    Strzelecki, Mateusz C.
    Traczyk, Andrzej
    Kondracka, Marta
    Lim, Michael
    Migala, Krzysztof
    GEOMORPHOLOGY, 2017, 293 : 347 - 359
  • [37] Mapping Permafrost Variability and Degradation Using Seismic Surface Waves, Electrical Resistivity, and Temperature Sensing: A Case Study in Arctic Alaska
    Tourei, Ahmad
    Ji, Xiaohang
    Rocha dos Santos, Gabriel
    Czarny, Rafal
    Rybakov, Sergei
    Wang, Ziyi
    Hallissey, Matthew
    Martin, Eileen R.
    Xiao, Ming
    Zhu, Tieyuan
    Nicolsky, Dmitry
    Jensen, Anne
    JOURNAL OF GEOPHYSICAL RESEARCH-EARTH SURFACE, 2024, 129 (03)
  • [38] Geological assessment for tunnel excavation under river with shallow overburden using surface site investigation data and electrical resistivity tomography
    Ismail, Mohd Ashraf Mohamad
    Majid, Taksiah A.
    Goh, Chin Ong
    Lim, Siao Phin
    Tan, Chee Ghuan
    MEASUREMENT, 2019, 144 : 260 - 274
  • [39] Automated Electrical Resistivity Tomography Testing for Early Warning in Unstable Permafrost Rock Walls Around Alpine Infrastructure
    Keuschnig, M.
    Krautblatter, M.
    Hartmeyer, I.
    Fuss, C.
    Schrott, L.
    PERMAFROST AND PERIGLACIAL PROCESSES, 2017, 28 (01) : 158 - 171
  • [40] Pressurised water flow in fractured permafrost rocks revealed by borehole temperature, electrical resistivity tomography, and piezometric pressure
    Offer, Maike
    Weber, Samuel
    Krautblatter, Michael
    Hartmeyer, Ingo
    Keuschnig, Markus
    CRYOSPHERE, 2025, 19 (01): : 485 - 506