Subsurface structural control of geothermal resources in a magmatic rift: gravity and magnetic study of the Tulu Moye geothermal prospect, Main Ethiopian Rift
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G. Corti | D. Keir | A. Alemu | K. Mickus | A. Muluneh | Z. Demissie | Yoseph Muhabaw | Wubamlak Nigussie | Esubalew Yehualaw
[1] F. Sigmundsson,et al. Constraints on ground deformation processes at the Tulu Moye volcanic complex, Main Ethiopian Rift , 2023, Journal of Volcanology and Geothermal Research.
[2] A. Alemu,et al. Formation of magmatic segments within the Aluto-Gedemsa area, Main Ethiopian Rift , 2023, Italian Journal of Geosciences.
[3] G. Corti,et al. Transverse tectonics control on the Late Quaternary development of the Central Main Ethiopian Rift , 2023, Italian Journal of Geosciences.
[4] P. Laha,et al. Pre-eruptive storage conditions and magmatic evolution of the Bora-Baricha-Tullu Moye volcanic system, Main Ethiopian Rift , 2023, Lithos.
[5] D. Keir,et al. Subsurface structure of magmatic segments during continental breakup: Perspectives from a gravity data analysis along the Main Ethiopian Rift , 2023, Frontiers in Earth Science.
[6] A. Alemu,et al. Determination of Conrad and Curie point depth relationship with the variations in lithospheric structure, geothermal gradient and heat flow beneath the central main Ethiopian rift , 2022, Heliyon.
[7] T. Kidane,et al. Paleomagnetism of Gedemsa magmatic segment, Main Ethiopian Rift: Implication for clockwise rotation of the segment in the Early Pleistocene , 2022, Tectonophysics.
[8] A. Alemu,et al. Structure of the upper crust at the axis segmentation stage of rift evolution as revealed by gravity data: Case study of the Gedemsa magmatic segment, Main Ethiopian Rift , 2022, Journal of African Earth Sciences.
[9] E. Lewi,et al. Geothermal energy resources in Ethiopia: Status review and insights from hydrochemistry of surface and groundwaters , 2021, WIREs Water.
[10] G. Corti,et al. Caldera collapse and tectonics along the Main Ethiopian Rift: reviewing possible relationships , 2021, Comptes Rendus. Géoscience.
[11] Y. Fujimitsu,et al. Interpretation of gravity data to delineate the subsurface structures and reservoir geometry of the Aluto–Langano geothermal field, Ethiopia , 2021, Geothermics.
[12] C. Del Ventisette,et al. A Database of Laboratory Analogue Models of Caldera Collapse Testing the Role of Inherited Structures , 2021, Frontiers in Earth Science.
[13] J. Biggs,et al. Magmatic Processes in the East African Rift System: Insights From a 2015–2020 Sentinel‐1 InSAR Survey , 2021, Geochemistry, Geophysics, Geosystems.
[14] M. Saar,et al. Integrated magnetotelluric and petrological analysis of felsic magma reservoirs: Insights from Ethiopian rift volcanoes , 2021, Earth and Planetary Science Letters.
[15] G. Corti,et al. Tectonics of the Asela‐Langano Margin, Main Ethiopian Rift (East Africa) , 2020, Tectonics.
[16] Hailemichael Kebede,et al. Magnetic anomaly patterns and volcano-tectonic features associated with geothermal prospect areas in the Ziway-Shala Lakes basin, Central Main Ethiopian Rift , 2020, Geological Society of America Abstracts with Programs.
[17] D. Pyle,et al. Morphological comparison of distributed volcanic fields in the Main Ethiopian Rift using high-resolution digital elevation models , 2020, Journal of Volcanology and Geothermal Research.
[18] Hailemichael Kebede,et al. Upward continuation and polynomial trend analysis as a gravity data decomposition, case study at Ziway-Shala basin, central Main Ethiopian rift , 2020, Heliyon.
[19] Binyam Tesfaw Hailu,et al. Detection of geothermal anomalies using Landsat 8 TIRS data in Tulu Moye geothermal prospect, Main Ethiopian Rift , 2019, Int. J. Appl. Earth Obs. Geoinformation.
[20] D. Keir,et al. Seismicity of the Bora‐Tullu Moye Volcanic Field, 2016–2017 , 2019, Geochemistry, Geophysics, Geosystems.
[21] Martin O. Saar,et al. Magnetotelluric Image of Transcrustal Magmatic System Beneath the Tulu Moye Geothermal Prospect in the Ethiopian Rift , 2018, Geophysical Research Letters.
[22] G. Yirgu,et al. Contrasting styles of post-caldera volcanism along the Main Ethiopian Rift: Implications for contemporary volcanic hazards , 2018 .
[23] P. Dobson,et al. Utilizing supercritical geothermal systems: a review of past ventures and ongoing research activities , 2017, Geothermal Energy.
[24] J. Wookey,et al. Seismicity associated with magmatism, faulting and hydrothermal circulation at Aluto Volcano, Main Ethiopian Rift , 2017 .
[25] J. Biggs,et al. The eruptive history and magmatic evolution of Aluto volcano : new insights into silicic peralkaline volcanism in the Ethiopian rift , 2016 .
[26] G. Wadge,et al. Historical Volcanism and the State of Stress in the East African Rift System , 2016, Front. Earth Sci..
[27] J. Stix,et al. Caldera collapse at near-ridge seamounts: an experimental investigation , 2016, Bulletin of Volcanology.
[28] T. Wright,et al. Use of a high-precision gravity survey to understand the formation of oceanic crust and the role of melt at the southern Red Sea rift in Afar, Ethiopia , 2015, Special Publications.
[29] A. Jackson,et al. 3-D analysis and interpretation of magnetotelluric data from the Aluto-Langano geothermal field, Ethiopia , 2015 .
[30] J. Biggs,et al. Structural controls on fluid pathways in an active rift system: A case study of the Aluto volcanic complex , 2015 .
[31] Roland Pail,et al. New ultrahigh‐resolution picture of Earth's gravity field , 2013 .
[32] V. Acocella,et al. Kinematic analysis of vertical collapse on volcanoes using experimental models time series , 2012 .
[33] T. Abiye,et al. The interference of a deep thermal system with a shallow aquifer: the case of Sodere and Gergedi thermal springs, Main Ethiopian Rift, Ethiopia , 2012, Hydrogeology Journal.
[34] Elias Lewi,et al. Pulses of deformation reveal frequently recurring shallow magmatic activity beneath the Main Ethiopian Rift , 2011 .
[35] G. Bigazzi,et al. The Central Main Ethiopian Rift is younger than 8 Ma: confirmation through apatite fission‐track thermochronology , 2010 .
[36] G. Stuart,et al. Melt‐induced seismic anisotropy and magma assisted rifting in Ethiopia: Evidence from surface waves , 2010 .
[37] T. Mammo. Delineation of sub-basalt sedimentary basins in hydrocarbon exploration in North Ethiopia , 2010 .
[38] G. Corti,et al. Continental rift evolution: From rift initiation to incipient break-up in the Main Ethiopian Rift, East Africa , 2009 .
[39] T. Korme,et al. Quaternary faulting and volcanism in the Main Ethiopian Rift , 2007 .
[40] K. Mickus,et al. Gravity analysis of the main Ethiopian rift , 2007 .
[41] C. Ebinger,et al. Strain accommodation by magmatism and faulting as rifting proceeds to breakup: Seismicity of the northern Ethiopian rift , 2006 .
[42] Xiong Li,et al. Understanding 3D analytic signal amplitude , 2006 .
[43] Z. Shipton,et al. Elliptical calderas in active tectonic settings: an experimental approach , 2005 .
[44] J. Cole,et al. Calderas and caldera structures: a review , 2005 .
[45] Richard Gloaguen,et al. Three-dimensional seismic imaging of a protoridge axis in the Main Ethiopian rift , 2004 .
[46] C. Ebinger,et al. Evolution of the northern Main Ethiopian rift: birth of a triple junction , 2004 .
[47] Richard Gloaguen,et al. Deformation Distribution and Type in the Main Ethiopian Rift , 2003 .
[48] P. Maguire,et al. Crustal Velocity Structure Across the Main Ethiopian Rift , 2003 .
[49] A. Peccerillo,et al. Relationships between mafic and peralkaline silicic magmatism in continental rift settings: A petrological, geochemical and isotopic study of the Gedemsa volcano, Central Ethiopian rift , 2003 .
[50] T. Korme,et al. Holocene extension direction along the Main Ethiopian Rift, East Africa , 2002 .
[51] V. Troll,et al. Cyclic caldera collapse: Piston or piecemeal subsidence? Field and experimental evidence , 2002 .
[52] J. Phillips. Designing matched bandpass and azimuthal filters for the separation of potential-field anomalies by source region and source type , 2001 .
[53] F. Cifelli,et al. The control of overburden thickness on resurgent domes: insights from analogue models , 2001 .
[54] C. Ebinger,et al. Continental breakup in magmatic provinces: An Ethiopian example , 2001 .
[55] L. Beard. Detection and identification of north–south trending magnetic structures near the magnetic equator , 2000 .
[56] M. Bonini,et al. Plio-Quaternary volcanotectonic activity in the northern sector of the Main Ethiopian Rift: relationships with oblique rifting , 1999 .
[57] Marco Bonini,et al. Quaternary oblique extensional tectonics in the Ethiopian Rift (Horn of Africa) , 1998 .
[58] Carlos L. V. Aiken,et al. Regional‐residual gravity anomaly separation using the minimum‐curvature technique , 1991 .
[59] R. Scandone. Chaotic collapse of calderas , 1990 .
[60] G. Woldegabriel,et al. Geology, geochronology, and rift basin development in the central sector of the Main Ethiopia Rift , 1990 .
[61] B. Jacobsen. A case for upward continuation as a standard separation filter for potential-field maps , 1987 .
[62] Robert W. Simpson,et al. Approximating edges of source bodies from magnetic or gravity anomalies , 1986 .
[63] H. Eysteinsson,et al. Geology and Conceptual Model of the Tulu Moye Geothermal Project, Oromia, Ethiopia , 2020 .
[64] P. Omenda,et al. Giant Geothermal Sites Along the East Africa Rift System (EARS): The Determinant Volcano-Structural Setting , 2020 .
[65] David G. Cornwell,et al. Imaging detailed crustal structure and magmatic intrusion across the Ethiopian Rift using a dense linear broadband array , 2010 .
[66] K. Alamdar,et al. Reduction to the Pole of Magnetic Anomalies Using Analytic Signal , 2009 .
[67] P. Omenda. THE GEOTHERMAL ACTIVITY OF THE EAST AFRICAN RIFT , 2007 .
[68] G. R. Keller,et al. Crustal structure of the northern Main Ethiopian Rift from the EAGLE controlled-source survey; a snapshot of incipient lithospheric break-up , 2006, Geological Society, London, Special Publications.
[69] Richard Gloaguen,et al. Strain accommodation in transitional rifts: extension by magma intrusion and faulting in Ethiopian rift magmatic segments , 2006, Geological Society, London, Special Publications.
[70] G. Stuart,et al. Mantle upwellings, melt migration and the rifting of Africa: insights from seismic anisotropy , 2006, Geological Society, London, Special Publications.
[71] F. Salvini,et al. Elliptic calderas in the Ethiopian Rift: control of pre-existing structures , 2003 .
[72] Jeffrey D. Phillips,et al. Locating Magnetic Contacts: a Comparison of the Horizontal Gradient, Analytic Signal, And Local Wavenumber Methods , 2000 .
[73] R. Mackie,et al. Density and magnetic susceptibility measurements of igneous rocks from the Marysvale volcanic field, west-central Utah , 1982 .