Broadband (0–4 Hz) Ground Motions for a Magnitude 7.0 Hayward Fault Earthquake With Three‐Dimensional Structure and Topography. Issue 2 (30th January 2018)
- Record Type:
- Journal Article
- Title:
- Broadband (0–4 Hz) Ground Motions for a Magnitude 7.0 Hayward Fault Earthquake With Three‐Dimensional Structure and Topography. Issue 2 (30th January 2018)
- Main Title:
- Broadband (0–4 Hz) Ground Motions for a Magnitude 7.0 Hayward Fault Earthquake With Three‐Dimensional Structure and Topography
- Authors:
- Rodgers, Arthur J.
Pitarka, Arben
Petersson, N. Anders
Sjögreen, Björn
McCallen, David B. - Abstract:
- Abstract: We performed fully deterministic broadband (0–4 Hz) high‐performance computing ground motion simulations of a magnitude 7.0 scenario earthquake on the Hayward Fault (HF) in the San Francisco Bay Area of Northern California. Simulations consider average one‐dimensional (1‐D) and three‐dimensional (3‐D) anelastic structure with flat and topographic free surfaces. Ground motion intensity measures (GMIMs) for the 3‐D model display dramatic differences across the HF due to geologic heterogeneity, with low wave speeds east of the HF amplifying motions. The median GMIMs agree well with Ground Motion Prediction Equations (GMPEs); however, the 3‐D model generates more scatter than the 1‐D model. Ratios of 3‐D/1‐D GMIMs from the same source allow isolation of path and site effects for the 3‐D model. These ratios show remarkably similar trends as site‐specific factors for the GMPE predictions, suggesting that wave propagation effects in our 3‐D simulations are on average consistent with empirical data. Plain Language Summary: With the use of powerful supercomputers and an efficient numerical method, modeling of ground shaking for a magnitude 7.0 earthquake on the Hayward Fault results in more realistic motions than previously achieved. The model includes the current best representation of the Earth (geology and surface topography) to compute seismic wave ground shaking throughout the region. Shaking intensity shows differences across the Hayward Fault that arise from rocks ofAbstract: We performed fully deterministic broadband (0–4 Hz) high‐performance computing ground motion simulations of a magnitude 7.0 scenario earthquake on the Hayward Fault (HF) in the San Francisco Bay Area of Northern California. Simulations consider average one‐dimensional (1‐D) and three‐dimensional (3‐D) anelastic structure with flat and topographic free surfaces. Ground motion intensity measures (GMIMs) for the 3‐D model display dramatic differences across the HF due to geologic heterogeneity, with low wave speeds east of the HF amplifying motions. The median GMIMs agree well with Ground Motion Prediction Equations (GMPEs); however, the 3‐D model generates more scatter than the 1‐D model. Ratios of 3‐D/1‐D GMIMs from the same source allow isolation of path and site effects for the 3‐D model. These ratios show remarkably similar trends as site‐specific factors for the GMPE predictions, suggesting that wave propagation effects in our 3‐D simulations are on average consistent with empirical data. Plain Language Summary: With the use of powerful supercomputers and an efficient numerical method, modeling of ground shaking for a magnitude 7.0 earthquake on the Hayward Fault results in more realistic motions than previously achieved. The model includes the current best representation of the Earth (geology and surface topography) to compute seismic wave ground shaking throughout the region. Shaking intensity shows differences across the Hayward Fault that arise from rocks of different geologic origin. On average, results are consistent with models based on actual recorded earthquake motions from around the world. This study shows that powerful supercomputing can be used to calculate earthquake shaking with more realism than previously obtained. Key Points: Efficient high‐performance computing simulations greatly increase ground motion frequencies of a Hayward Fault earthquake Path effects result in higher motions on the eastern side of the fault compared to the western side Simulated intensities are consistent with Ground Motion Prediction Equations, but path and site effects for the 3D model lead to greater scatter … (more)
- Is Part Of:
- Geophysical research letters. Volume 45:Issue 2(2018)
- Journal:
- Geophysical research letters
- Issue:
- Volume 45:Issue 2(2018)
- Issue Display:
- Volume 45, Issue 2 (2018)
- Year:
- 2018
- Volume:
- 45
- Issue:
- 2
- Issue Sort Value:
- 2018-0045-0002-0000
- Page Start:
- 739
- Page End:
- 747
- Publication Date:
- 2018-01-30
- Subjects:
- Hayward Fault -- earthquake strong motion -- high‐performance computing high‐performance computing simulation
Geophysics -- Periodicals
Planets -- Periodicals
Lunar geology -- Periodicals
550 - Journal URLs:
- http://www.agu.org/journals/gl/ ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1002/2017GL076505 ↗
- Languages:
- English
- ISSNs:
- 0094-8276
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4156.900000
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