Mapping Permafrost Variability and Degradation Using Seismic Surface Waves, Electrical Resistivity, and Temperature Sensing: A Case Study in Arctic Alaska

Author:

Tourei Ahmad1ORCID,Ji Xiaohang2ORCID,Rocha dos Santos Gabriel3ORCID,Czarny Rafal3,Rybakov Sergei4,Wang Ziyi2ORCID,Hallissey Matthew2,Martin Eileen R.15ORCID,Xiao Ming2ORCID,Zhu Tieyuan3ORCID,Nicolsky Dmitry46ORCID,Jensen Anne7ORCID

Affiliation:

1. Hydrologic Science and Engineering Program Colorado School of Mines Golden CO USA

2. Department of Civil and Environmental Engineering The Pennsylvania State University State College PA USA

3. Department of Geosciences The Pennsylvania State University State College PA USA

4. Geophysical Institute University of Alaska Fairbanks Fairbanks AK USA

5. Department of Geophysics Department of Applied Math and Statistics Colorado School of Mines Golden CO USA

6. Laboratory for Integrated Research of the Arctic Land‐Shelf System Tomsk State University Tomsk Russia

7. Department of Anthropology University of Alaska Fairbanks Fairbanks AK USA

Abstract

AbstractSubsurface processes significantly influence surface dynamics in permafrost regions, necessitating utilizing diverse geophysical methods to reliably constrain permafrost characteristics. This research uses multiple geophysical techniques to explore the spatial variability of permafrost in undisturbed tundra and its degradation in disturbed tundra in Utqiaġvik, Alaska. Here, we integrate multiple quantitative techniques, including multichannel analysis of surface waves (MASW), electrical resistivity tomography (ERT), and ground temperature sensing, to study heterogeneity in permafrost’s geophysical characteristics. MASW results reveal active layer shear wave velocities (Vs) between 240 and 370 m/s, and permafrost Vs between 450 and 1,700 m/s, typically showing a low‐high‐low velocity pattern. Additionally, we find an inverse relationship between in situ Vs and ground temperature measurements. The Vs profiles along with electrical resistivity profiles reveal cryostructures such as cryopeg and ice‐rich zones in the permafrost layer. The integrated results of MASW and ERT provide valuable information for characterizing permafrost heterogeneity and cryostructure. Corroboration of these geophysical observations with permafrost core samples’ stratigraphies and salinity measurements further validates these findings. This combination of geophysical and temperature sensing methods along with permafrost core sampling confirms a robust approach for assessing permafrost’s spatial variability in coastal environments. Our results also indicate that civil infrastructure systems such as gravel roads and pile foundations affect permafrost by thickening the active layer, lowering the Vs, and reducing heterogeneity. We show how the resulting Vs profiles can be used to estimate key parameters for designing buildings in permafrost regions and maintaining existing infrastructure in polar regions.

Funder

National Science Foundation

Publisher

American Geophysical Union (AGU)

Reference116 articles.

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