There is a growing need to characterize the engineering material properties of the shallow subsurface in three dimensions for advanced engineering analyses. However, imaging the near-surface in three dimensions at spatial resolutions required for such purposes remains in its infancy and requires further study before it can be adopted into practice. To enable and accelerate research in this area, we present a large subsurface imaging data set acquired using a dense network of three-component (3C) nodal stations acquired in 2019 at the Garner Valley Downhole Array (GVDA) site. Acquisition of this data set involved the deployment of 196 stations positioned on a 14 × 14 grid with a 5 m spacing. The array was used to acquire active-source data generated by a vibroseis truck and an instrumented sledgehammer, and passive-wavefield data containing ambient noise. The active-source acquisition included 66 vibroseis and 209 instrumented sledgehammer source locations. Multiple source impacts were recorded at each source location to enable stacking of the recorded signals. The active-source recordings are provided in terms of both raw, uncorrected units of counts and corrected engineering units of meters per second. For each source impact, the force output from the vibroseis or instrumented sledgehammer was recorded and is provided in both raw counts and engineering units of kilonewtons. The passive-wavefield data include 28 h of ambient noise recorded over two nighttime deployments. The data set is shown to be useful for active-source and passive-wavefield three-dimensional imaging and other subsurface characterization techniques, which include horizontal-to-vertical spectral ratios (HVSRs), multichannel analysis of surface waves (MASW), and microtremor array measurements (MAM).
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Research Article|
February 01, 2024
Subsurface imaging dataset acquired at the Garner Valley Downhole Array site using a dense network of three-component nodal stations
Joseph P Vantassel, M.EERI;
1
Virginia Polytechnic Institute and State University, Blacksburg, VA, USAJoseph P Vantassel, Virginia Polytechnic Institute and State University, 750 Drillfield Drive, Blacksburg, VA 24061, USA. Email: [email protected]
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Jodie A Crocker;
Jodie A Crocker
2
The University of Texas at Austin, Austin, TX, USA
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Brady R Cox, M.EERI;
Brady R Cox, M.EERI
3
Utah State University, Logan, UT, USA
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Khiem Tran
Khiem Tran
4
University of Florida, Gainesville, FL, USA
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1
Virginia Polytechnic Institute and State University, Blacksburg, VA, USA
Jodie A Crocker
2
The University of Texas at Austin, Austin, TX, USA
Brady R Cox, M.EERI
3
Utah State University, Logan, UT, USA
Khiem Tran
4
University of Florida, Gainesville, FL, USAJoseph P Vantassel, Virginia Polytechnic Institute and State University, 750 Drillfield Drive, Blacksburg, VA 24061, USA. Email: [email protected]
Publisher: Earthquake Engineering Research Institute
Received:
03 Feb 2023
Accepted:
27 Sep 2023
First Online:
02 Feb 2024
Online ISSN: 1944-8201
Print ISSN: 8755-2930
Funding
- Funder(s):National Science Foundation
- Award Id(s): CMMI-1931162
- Award Id(s):
© The Author(s) 2023
Earthquake Engineering Research Institute
Earthquake Spectra (2024) 40 (1): 783–802.
Article history
Received:
03 Feb 2023
Accepted:
27 Sep 2023
First Online:
02 Feb 2024
Citation
Joseph P Vantassel, Jodie A Crocker, Brady R Cox, Khiem Tran; Subsurface imaging dataset acquired at the Garner Valley Downhole Array site using a dense network of three-component nodal stations. Earthquake Spectra 2024;; 40 (1): 783–802. doi: https://doi.org/10.1177/87552930231209734
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Index Terms/Descriptors
- arrays
- California
- civil engineering
- data acquisition
- data processing
- downhole methods
- earthquakes
- elastic waves
- geophysical methods
- ground motion
- guided waves
- imagery
- instruments
- inverse problem
- microearthquakes
- multichannel methods
- passive methods
- seismic methods
- seismic networks
- seismic waves
- seismographs
- site exploration
- Southern California
- surface waves
- three-component seismographs
- three-dimensional models
- tomography
- United States
- Vibroseis
- waveforms
- HVSR
- Garner Valley Downhole Array
- ambient noise methods
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