MT论文观察(2024第1期)

文摘   科学   2024-03-02 19:09   北京  

*收录时间2024.1.1-2024.1.31.

Benevides, A.S., Meju, M.A., Fontes, S.L., Maurya, V.P., Meqbel, N.M., Ribeiro, P.L., La Terra, E.F., 2024. Deep Structure of the Santos Basin, Offshore Brazil From 3D Inversion of magnetotelluric Data. Journal of Geophysical Research: Solid Earth 129, e2023JB027329. 
https://doi.org/10.1029/2023JB027329.

Bezák, V., Ondrášová, L., Vozár, J., Oryński, S., Madzin, J., Majcin, D., Klanica, R., Bilčík, D., 2024. Traces of collisional and transtensional processes between the Carpathia and the European platform in the geoelectric image (NE Slovakia and SE Poland). Acta Geophysica. 
10.1007/s11600-023-01239-6.

Büyük, E., Karaman, A., 2024. Caprock integrity at Çanakkale-Tuzla hydrothermal system inferred from magnetotelluric modeling using particle swarm optimization. GEOPHYSICS 89, B119-B129. 
10.1190/geo2023-0192.1.

Christiansen, R., Mebrahtu, T.K., Aguil, N., Wohnlich, S., 2024. Numerical modelling of an advective geothermal system in the Central Andes: Sustainable utilization through borehole heat exchangers. Renewable Energy 223, 119989. 
https://doi.org/10.1016/j.renene.2024.119989.

Dong, H., Sun, K., Egbert, G., Kelbert, A., Meqbel, N., 2024. Hybrid CPU-GPU solution to regularized divergence-free curl-curl equations for electromagnetic inversion problems. Computers & Geosciences 184, 105518. 
https://doi.org/10.1016/j.cageo.2024.105518.

Fu, L., Guo, J., Shen, W., Wang, X., Liu, X., Chen, X., Hu, X., 2024. Geophysical Evidence of the Collisional Suture Zone in the Prydz Bay, East Antarctica. Geophysical Research Letters 51, e2023GL106229. 
https://doi.org/10.1029/2023GL106229.

Gomo, M., Ngobe, T., 2024. Groundwater exploration in a granite aquifer using the telluric electric frequency selection method (TEFSM) in Eswatini, Southern Africa. Sustainable Water Resources Management 10, 22. 
10.1007/s40899-023-01009-8.

Grayver, A., 2024. Unravelling the Electrical Conductivity of Earth and Planets. Surveys in Geophysics. 
10.1007/s10712-023-09813-9.

Heise, W., Bannister, S., Williams, C.A., McGavin, P., Caldwell, T.G., Bertrand, E.A., Usui, Y., Kilgour, G., 2024. Magmatic priming of a phreatic eruption sequence: the 2012 Te Maari eruptions at Mt Tongariro (New Zealand) imaged by magnetotellurics and seismicity. Geophysical Journal International 236, 1848-1862. 
10.1093/gji/ggae022.

Isaev, I.V., Obornev, I.E., Obornev, E.A., Rodionov, E.A., Shimelevich, M.I., Dolenko, S.A., 2023. Study of the Integration of Physical Methods in Neural Network Solution of the Inverse Problem of Exploration Geophysics with Variable Physical Properties of the Medium. Moscow University Physics Bulletin 78, S122-S127. 
10.3103/S0027134923070123.

Jia, X., Li, Z., Han, J., Hou, H., Xin, Z., Liu, L., Liu, W., 2024. Two Sets of High-Conductivity Systems with Different Scales Reveal the Seismogenic Mechanism of Earthquakes in the Songyuan Area, Northeastern China. Remote Sensing 16, 547. 
doi:10.3390/rs16030547.

Khan, A.Y., Niaz, A., Nisar, U.B., 2024. Multi-dimensional characterization of groundwater distribution in sub-Himalayan region of Pakistan. Environmental Earth Sciences 83, 64. 
10.1007/s12665-023-11368-2.

Li, J., Luo, Y., Li, G., Liu, Y., Tang, J., 2024. APrU dictionary learning with NSAM sparse coding for audio magnetotelluric denoising. GEOPHYSICS, 1-59. 
10.1190/geo2023-0205.1.

Li, S., Xu, Y., Yang, B., Yang, W., Chen, X., 2024. Evaluating the groundwater quality in Northern Tarim Basin by resistivity inverted from magnetotelluric data. Journal of Applied Geophysics 221, 105285. 
https://doi.org/10.1016/j.jappgeo.2024.105285.

Li, W., Yu, C., Zou, C., Wei, D., Zhang, H., Zeng, X., Fan, P., Liu, C., 2024. Evidence for partial melting and earthquake activity in the crust from a 2-D electrical resistivity model in the vicinity of the Chayu region, southeastern Jiali-Chayu fault, Tibetan Plateau. Tectonophysics 872, 230212. 
https://doi.org/10.1016/j.tecto.2024.230212.

Maryadi, M., Sari, E.K., Zarkasyi, A., Mizunaga, H., 2024. Three-dimensional magnetotelluric and gravimetric imaging of Mount Lawu geothermal prospect area, Indonesia. Geothermics 118, 102917. 
https://doi.org/10.1016/j.geothermics.2024.102917.

Mazur, S., Jóźwiak, W., Nowożyński, K., Oryński, S., 2024. Magnetotelluric evidence for long-lasting crustal memory in an intraplate setting – the Grójec Fault and Mid-Polish Trough in central Poland. Tectonophysics 873, 230213. 
https://doi.org/10.1016/j.tecto.2024.230213.

Özaydın, S., Selway, K., Foley, S.F., Ezad, I.S., Griffin, W.L., Tarits, P.S., Hautot, S., 2024. Role of Metasomatism in the Development of the East African Rift at the Northern Tanzanian Divergence: Insights From 3D Magnetotelluric Modeling. Geochemistry, Geophysics, Geosystems 25, e2023GC011191. 
https://doi.org/10.1029/2023GC011191.

Patterson, C.J., Wild, J.A., Beggan, C.D., Richardson, G.S., Boteler, D.H., 2024. Modelling electrified railway signalling misoperations during extreme space weather events in the UK. Scientific Reports 14, 1583. 
10.1038/s41598-024-51390-3.

Pommier, A., Walter, M.J., Hao, M., Yang, J., Hrubiak, R., 2024. Acoustic and electrical properties of Fe-Ti oxides with application to the deep lunar mantle. Earth and Planetary Science Letters 628, 118570. 
https://doi.org/10.1016/j.epsl.2024.118570.

Qu, Y.-H., Hu, B., Tang, B., Wu, C.-F., Zhou, F., 2023. Genetic relationship between granite and pegmatite in the Kaluan lithium deposit, Western China: evidence from the inversion of audio-magnetotelluric data. Applied Geophysics 20, 62-76. 
10.1007/s11770-023-1050-y.

Taverna, N., Pauling, H., Trainor-Guitton, W., Kolker, A., Mibei, G., Dobson, P., Sonnenthal, E., Tu, X., Schultz, A., 2024. De-risking superhot EGS development through 3D play fairway analysis: Methodology development and application at Newberry Volcano, Oregon, USA. Geothermics 118, 102909. 
https://doi.org/10.1016/j.geothermics.2023.102909.

Yu, N., Chen, Z., Wu, X., Kong, W., Chen, H., Li, T., Feng, X., 2024. Unstructured Grid Finite Element Modeling of the Three-Dimensional Magnetotelluric Responses in a Model With Arbitrary Conductivity and Magnetic Susceptibility Anisotropies. IEEE Transactions on Geoscience and Remote Sensing 62, 1-13. 
10.1109/TGRS.2024.3360986.

Zaplavnova, A.A., Deev, E.V., Potapov, V.V., 2024. Structure of the Upper Part of the Earth’s Crust in the Area of the Lena River Delta: The First Magnetotelluric Data. Doklady Earth Sciences. 
10.1134/S1028334X23602833.

Zhan, Y., Sun, X., Zhao, G., Zhao, L., Yang, X., Yang, H., Jiang, D., Lou, X., 2024. Electrical Structure of Southwestern Longmenshan Fault Zone: Insights into Seismogenic Structure of 2013 and 2022 Lushan Earthquakes. Remote Sensing 16, 370. 
doi:10.3390/rs16020370.

Zhou, H., Song, R., Jin, T., Zhou, Z., Yan, F., 2024. On the magnetic field induced by swell in inhomogeneous seawater. Deep Sea Research Part I: Oceanographic Research Papers 205, 104244. 
https://doi.org/10.1016/j.dsr.2024.104244.

Zhu, S., Li, J., Hu, X., Yi, Y., 2024. One-dimensional parallel forward modeling for geophysical electromagnetic fields excited by sagging overhead transmission lines. Computers & Geosciences 185, 105542. 
https://doi.org/10.1016/j.cageo.2024.105542.

郝泽江, 张强, 龚胜平, 赵克强, 李勇, 陆桂福, 苏文利, 付燕刚, 段壮, 高健翁, 林鲁军, 王振亮, 2024. 东天山镜儿泉地区地壳电性结构特征及其地质含义. 地质学报, 1-11. 
10.19762/j.cnki.dizhixuebao.2023186.

罗鸣, 裴建新, 段双敏, 吴志强, 2024. 基于VTI介质海洋CSEM和MT数据联合反演的黄海海相残留盆地深部结构研究. 地球物理学报. 
10.6038/cjg2023Q0687.

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