The incorporated GNSS velocity solution of the southeastern Tibetan Plateau by Rui Xu from Sichuan University
收藏资源简介:
This repository saves the latest incorporated GNSS velocity solution (following GAMIT/GLOBK format) of the southeastern Tibetan Plateau by Rui Xu from Sichuan University. The velocity sources are from, Wang, M., & Shen, Z.‐K. (2020). Present‐day crustal deformation of continental China derived from GPS and its tectonic implications. Journal of Geophysical Research: Solid Earth, 125, e2019JB018774. https://doi.org/10.1029/2019JB018774 Dai, C., Gan, W., Li, Z., Liang, S., Xiao, G., Zhang, K., & Zhang, L. (2023). Characteristics of Regional GPS Crustal Deformation before the 2021 Yunnan Yangbi Ms 6.4 Earthquake and Its Implications for Determining Potential Areas of Future Strong Earthquakes. Remote Sensing, 15(12), 3195. Huang, Y., Meng, G.J., Cheng, X., Wu, W.W., Yang, Y.X. Present–day crustal deformation in the southeastern Tibetan Plateau: Insights from three–dimensional finite–element modeling. Tectonophysics, 2023, 863, 229983. Li, Y., Song, S., Hao, M., Zhuang, W., Cui, D., Yang, F., & Wang, Q., 2023.Present-day crustal deformation across the Daliang Shan,southeastern Tibetan Plateau constrained by a dense GPS network. Geophys. J. Int., 232, 1619–1638. doi: 10.1093/gji/ggac412. Li, Z., Wang, Y., Gan, W., Fang, L., Zhou, R., Seagren, E.G., et al.Diffuse deformation in the SE Tibetan Plateau: New insights from geodetic observations. Journal of Geophysical Research: Solid Earth, 2020, 125, e2020JB019383. Rui, X., Lindsey, E. O., & Wu, J. P. (2024). Geodetic slip rate partitioning in the central Anninghe and Daliangshan faults: Effects of fault geometry, elastic heterogeneity, and viscoelastic rheology. Tectonophysics, 230174. Rui, X., & Stamps, D. S. (2019). Strain accommodation in the Daliangshan Mountain area, southeastern margin of the Tibetan Plateau. Journal of Geophysical Research: Solid Earth, 124. https://doi.org/10.1029/2019JB017614 Zhang, L., Liang, S.M., Yang, X.P., Gan, W.J., Dai C.L. Geometric and kinematic evolution of the Jiali fault, eastern Himalayan Syntaxis. Journal of Asian Earth Sciences, 2021, 212, 104722. Zhou, Y.; Xu, L.; Pan, Z.; Hao, M.; Li, C. A Potential Earthquake with Magnitude Mw 7.2 on the Northern Xiaojiang Fault Revealed by GNSS Measurement. Remote Sens. 2023, 15, 944. https://doi.org/10.3390/rs15040944
本仓库存储了四川大学徐睿(Rui Xu)针对青藏高原东南部地区完成的最新整合式全球导航卫星系统(GNSS, Global Navigation Satellite System)速度解算结果,该结果遵循GAMIT/GLOBK格式规范。 本次速度解算的数据源如下: 1. Wang, M. 与 Shen, Z.-K. (2020). 基于全球定位系统(GPS, Global Positioning System)观测得到的中国大陆现今地壳形变及其构造启示. 《地球物理学研究杂志:固体地球》, 125, e2019JB018774. https://doi.org/10.1029/2019JB018774 2. Dai, C. 等 (2023). 2021年云南漾濞Ms6.4地震前区域GPS地壳形变特征及其对未来强震潜在发震区域判定的启示. 《遥感》, 15(12), 3195. 3. Huang, Y. 等. 青藏高原东南部现今地壳形变:基于三维有限元建模的研究视角. 《构造物理学》, 2023, 863, 229983. 4. Li, Y. 等 (2023). 基于密集GPS观测网络约束的青藏高原东南部大凉山地区现今地壳形变. 《国际地球物理学杂志》, 232, 1619–1638. doi: 10.1093/gji/ggac412. 5. Li, Z. 等. 青藏高原东南部的弥散形变:来自大地测量观测的新认知. 《地球物理学研究杂志:固体地球》, 2020, 125, e2020JB019383. 6. Rui, X.、Lindsey, E. O. 与 Wu, J. P. (2024). 安宁河中段与大凉山断裂的大地测量滑移速率分配:断裂几何形态、弹性非均质性与黏弹性流变学的影响. 《构造物理学》, 230174. 7. Rui, X. 与 Stamps, D. S. (2019). 青藏高原东南缘大凉山地区的应变调节机制. 《地球物理学研究杂志:固体地球》, 124. https://doi.org/10.1029/2019JB017614 8. Zhang, L. 等. 喜马拉雅东构造结嘉黎断裂的几何与运动学演化. 《亚洲地球科学杂志》, 2021, 212, 104722. 9. Zhou, Y. 等 (2023). 基于GNSS观测揭示的小江北段断裂Mw7.2级潜在地震风险. 《遥感》, 2023, 15, 944. https://doi.org/10.3390/rs15040944



