Active Seismic Refraction, Reflection, and Surface-Wave Surveys in Thick Debris-Covered Glacial Environments

被引:0
|
作者
Kuehn, Tyler [1 ]
Holt, John W. [1 ,2 ]
Johnson, Roy [1 ]
Meng, Tyler [2 ]
机构
[1] Univ Arizona, Dept Geosci, Tucson, AZ 85721 USA
[2] Univ Arizona, Lunar & Planetary Lab, Tucson, AZ 85721 USA
基金
美国国家科学基金会;
关键词
Seismology; debris-covered glaciers; MASW; refraction tomography; GPR; cryosphere; INTERNAL STRUCTURE; ROCK GLACIER; MULTICHANNEL ANALYSIS; CLIMATE-CHANGE; ICE; RESISTIVITY; TOMOGRAPHY; INVERSION; ANDES; WATER;
D O I
10.1029/2023JF007304
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Debris-covered glaciers (DCG) and rock glaciers have been increasingly studied in recent years because of the role they play within local watersheds, glacial ablation models due to climate change, and as analogs for buried ice features on planetary bodies such as Mars. Characterizing the supraglacial debris layer is a large part of these efforts. Geophysical exploration of DCG has mostly excluded active seismic methods, with the exception of refraction studies, due to the attenuating properties of the debris cover and field survey efficiency. We evaluate the accuracy, field efficiency, and effectiveness of seismic refraction, reflection, and surface-wave surveys for determining the elastic properties of the debris layer and any underlying layers on DCG using the Sourdough Rock Glacier in Southcentral Alaska as a test site. We provide evidence for imaging an ultra-shallow seismic reflection from the bottom of the loose debris layer using ultra-dense receiver arrays and compare it to ground-penetrating radar (GPR) images taken along the same profiles. We also detail how reliable dispersion curve images can be extracted from the surface wave package of the seismic data using the multi-channel analysis of surface waves technique, which allows for the (s)-wave profile to be inverted for. We find this could be a valuable addition to the toolbox of future geophysical investigations on DCG. Debris-covered glaciers and rock glaciers are glaciers with a loose rock layer covering all or most of their surface. This layer can be several meters thick and plays an important role in how fast the glacier melts. These types of glaciers are an important analog to similar buried ice features observed on other planetary bodies, such as Mars. Typically, the subsurface of these glaciers is studied using the geophysical method of ground-penetrating radar (GPR), though in this paper we explore how active-source seismic methods could be utilized in future surveys. We demonstrate that using active-seismic techniques can provide information on the "stiffness" of the debris layer, which can add context to a GPR survey and ultimately aid in interpreting glacial features. We use ultra-dense receiver spacing to image a seismic reflection from the bottom of the loose debris layer on a debris-covered glacierWe demonstrate that we can obtain the shear-wave velocity structure (stiffness) observations for debris cover on glaciers
引用
收藏
页数:14
相关论文
共 12 条
  • [2] Shallow seismic surveys and ice thickness estimates of the Mullins Valley debris-covered glacier, McMurdo Dry Valleys, Antarctica
    Shean, David E.
    Head, James W., III
    Marchant, David R.
    ANTARCTIC SCIENCE, 2007, 19 (04) : 485 - 496
  • [3] SEISMIC REFRACTION AND SHORT-PERIOD SURFACE-WAVE STUDIES IN EASTERN IRELAND
    MURPHY, NP
    GEOPHYSICAL JOURNAL OF THE ROYAL ASTRONOMICAL SOCIETY, 1984, 77 (01): : 299 - 299
  • [4] Seasonal Cold-Wave Propagation Into the Near-Surface Ice of Debris-Covered Khumbu Glacier, Nepal
    Miles, Katie E.
    Hubbard, Bryn
    Quincey, Duncan J.
    Miles, Evan S.
    Doyle, Samuel H.
    Rowan, Ann V.
    FRONTIERS IN EARTH SCIENCE, 2021, 9
  • [5] Optimization of Drone-Based Surface-Wave Seismic Surveys Using a Multiple Traveling Salesman Problem
    Hamasato, Yohei
    Sakaguchi, Akinori
    Tsuji, Takeshi
    Yamamoto, Kaoru
    JOURNAL OF ROBOTICS AND MECHATRONICS, 2023, 35 (02) : 271 - 278
  • [6] Obtaining reliable S-wave velocity depth profile by joint inversion of geophysical data: the combination of active surface-wave, seismic refraction and electric sounding data
    Senkaya, Mustafa
    Karsli, Hakan
    Socco, Laura Valentina
    Foti, Sebastiano
    NEAR SURFACE GEOPHYSICS, 2020, 18 (06) : 659 - 682
  • [7] Coupled Lithospheric Deformation in the Qinling Orogen, Central China: Insights From Seismic Reflection and Surface-Wave Tomography
    Zhang, Yueqiao
    Dong, Shuwen
    Wang, Haiyan
    Feng, Mei
    Thybo, H.
    Li, Jianhua
    Gao, Rui
    Shi, Wei
    GEOPHYSICAL RESEARCH LETTERS, 2022, 49 (14)
  • [8] Surface waves: use them then lose them. Surface-wave analysis, inversion and attenuation in land reflection seismic surveying
    Strobbia, Claudio
    Laake, Andreas
    Vermeer, Peter
    Glushchenko, Anna
    NEAR SURFACE GEOPHYSICS, 2011, 9 (06) : 503 - 514
  • [9] 2D body-wave seismic interferometry as a tool for reconnaissance studies and optimization of passive reflection seismic surveys in hardrock environments
    Chamarczuk, Michal
    Malinowski, Michal
    Draganov, Deyan
    JOURNAL OF APPLIED GEOPHYSICS, 2021, 187
  • [10] Comparison of surface-wave techniques to estimate S- and P-wave velocity models from active seismic data
    Khosro Anjom, Farbod
    Adler, Frank
    Socco, Laura Valentina
    SOLID EARTH, 2024, 15 (03) : 367 - 386