A Bayesian Source Model for the 2022 Mw6.6 Luding Earthquake, Sichuan Province, China, Constrained by GPS and InSAR Observations
Abstract
:1. Introduction
2. Observations and Coseismic Surface Deformation Field
2.1. InSAR Data
2.2. The Coseismic Displacement of GPS and Strong Motion Data
2.3. The Comparison between Coseismic InSAR and GPS Offsets
2.4. The Three-Dimension Coseismic Deformation of the 2022 Luding Earthquake
2.5. Aftershock Seismicity
3. Modelling
3.1. The Nonlinear Inversion for Model Parameters
3.2. The Linear Inversion for Slip Distribution
3.3. Accounting for Epistemic Uncertainties
4. Results
5. Discussion
5.1. The Comparison of Published Coseismic Slip Models
5.2. Some Thoughts on the 2022 Luding Coseismic Rupture
5.3. The Relationship between Coseismic Deformation and Landslides Triggered by the Earthquake
5.4. Coulomb Stress Change
6. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Satellite | Reference | Secondary | Direction | Track | Perpendicular Baseline (m) | Incident | Azimuth |
---|---|---|---|---|---|---|---|
Sentinel-1 | 26 August 2022 | 19 September 2022 | Ascending | 26 | 34 | 42 | −10 |
Sentinel-1 | 2 September 2022 | 14 September 2022 | Descending | 135 | 50 | 35 | −169 |
Source | Lon (°) | Lat (°) | Depth (km) | Strike (°) | Dip (°) | Rake (°) | Length (km) | Width (km) | Slip (m) | M0 (1019) | Mw | Data |
---|---|---|---|---|---|---|---|---|---|---|---|---|
USGS | 102.236 | 29.679 | 12 | 254/345 | 73/88 | 178/17 | - | - | - | 1.158 | 6.6 | seismic data |
GCMT | 102.24 | 29.50 | 18.0 | 164/73 | 78/83 | 7/167 | - | - | - | 1.2 | 6.7 | seismic data |
[7] | 102.104 | 29.533 | 6.10 | 167.37 | 73.66 | 3.3 | 21.78 | 10.98 | - | 6.56 | InSAR(Ascending + Descending) | |
[6] | - | - | - | 162,- | 80,79 | - | 70,- | 20,- | - | - | 6.67, 6.30 | GPS + InSAR(Descending) |
[8] | 102.086 | 29.589 | 9.5 | 163 | 80 | - | 50 | 25 | 1.5 | 1.12 | 6.63 | GPS + InSAR(Descending) + seismic data |
[13] | 102.086 | 29.589 | 9.3 | 166 | 86 | - | 39 | 21 | - | - | - | seismic data |
[31] | - | - | 6.0 | 161 | 86 | - | - | - | - | - | 6.5 | GPS |
Uniform slip model 1 | 102.133 [−0.68/0.75km] | 29.548 [−0.39/0.48km] | 2.89 [−2.47/1.48] | 163.22 [−2.16/1.95] | 71.87 [−13.10/16.59] | 7.00 | 27.88 [−7.17/3.43] | 2.21 [−0.96/5.44] | 4.59 | 0.85 | 6.59 | GPS |
Uniform slip model 2 | 102.153 [−1.04/0.43km] | 29.510 [−0.52/0.79km] | 1.97 [−1.90/1.47] | 173.94 [−5.40/2.49] | 57.27 [−8.11/3.55] | 14.83 | 17.01 [−0.88/0.89] | 6.55 [−4.06/2.90] | 1.97 | 0.66 | 6.51 | InSAR (Ascending + Descending) |
Uniform slip model 3 | 102.147 [−1.05/0.43km] | 29.53 [−0.52/0.79] | 0.09 [−0.08/0.38] | 164.33 [−0.72/0.76] | 73.62 [−2.53/2.61] | −0.13 | 18.74 [−0.84/1.42] | 13.92 [−1.80/0.95] | 1.09 | 0.85 | 6.59 | GPS + InSAR (Ascending + Descending) |
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Xu, G.; Xu, X.; Yi, Y.; Wen, Y.; Sun, L.; Wang, Q.; Lei, X. A Bayesian Source Model for the 2022 Mw6.6 Luding Earthquake, Sichuan Province, China, Constrained by GPS and InSAR Observations. Remote Sens. 2024, 16, 103. https://doi.org/10.3390/rs16010103
Xu G, Xu X, Yi Y, Wen Y, Sun L, Wang Q, Lei X. A Bayesian Source Model for the 2022 Mw6.6 Luding Earthquake, Sichuan Province, China, Constrained by GPS and InSAR Observations. Remote Sensing. 2024; 16(1):103. https://doi.org/10.3390/rs16010103
Chicago/Turabian StyleXu, Guangyu, Xiwei Xu, Yaning Yi, Yangmao Wen, Longxiang Sun, Qixin Wang, and Xiaoqiong Lei. 2024. "A Bayesian Source Model for the 2022 Mw6.6 Luding Earthquake, Sichuan Province, China, Constrained by GPS and InSAR Observations" Remote Sensing 16, no. 1: 103. https://doi.org/10.3390/rs16010103
APA StyleXu, G., Xu, X., Yi, Y., Wen, Y., Sun, L., Wang, Q., & Lei, X. (2024). A Bayesian Source Model for the 2022 Mw6.6 Luding Earthquake, Sichuan Province, China, Constrained by GPS and InSAR Observations. Remote Sensing, 16(1), 103. https://doi.org/10.3390/rs16010103