Curie point depth, thermal gradient, and heat flow in the Colombian Caribbean (northwestern South America)

被引:0
作者
Wilson Quintero
Oscar Campos-Enríquez
Orlando Hernández
机构
[1] Universidad Nacional de Colombia,Dep. de Geociencias
[2] Servicio Geológico Colombiano,Instituto de Geofísica
[3] Universidad Nacional Autónoma de México,undefined
来源
Geothermal Energy | / 7卷
关键词
Geothermal gradient; Curie point depth; Heat flow; Spectral analysis; Fractal method;
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摘要
Geothermal gradients were estimated at the points of a grid with cell size of 50 km by 50 km in northwestern Colombia. Depths to the bottom of magnetic sources were assumed to represent Curie depths, and were estimated by means of statistical-spectral analysis of aeromagnetic data contained in square windows of 100 km by 100 km, 200 km by 200 km, and 300 km by 300 km. The centroid method and a variation of it that considers the fractal distribution of magnetization were applied. The modified centroid method provided better estimations of Curie depths, which range between 13 km and 47 km. Obtained Curie depths are comparable to those reported in other studies of regional character. The corresponding estimated geothermal gradients correlate quite well with estimations based on the bottom simulating reflector and bottom hole temperatures. Observed differences are small and can be accounted for by local heat flow variations due to shallow ground water flow, or recent sedimentation. Elaborated geothermal gradient and heat flow maps for northwestern Colombia are accurate and consistent with estimates of the thickness of the oceanic crust and continental cortical thicknesses, reported by previous authors. The maps presented in this study represent a contribution to the heat flow studies in northwestern South America.
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[31]  
Campos-Enriquez J(1997)Curie-temperature depth estimation using a self-similar magnetization model Geophys J Int 42 677-434
[32]  
Arroyo-Esquivel M(2009)EMAG2: a 2–arc min resolution Earth Magnetic Anomaly Grid compiled from satellite, airborne, and marine magnetic measurements Geochem Geophys Geosyst 169 421-L59
[33]  
Urrutia-Fucugauchi J(1995)Potential distribution of methane hydrate beneath the European continental margins Geophys Res Lett 71 L51-547
[34]  
Campos-Enríquez JO(1997)Digital isochrons of the world’s ocean floor J Geophys Res Solid Earth 159 521-413
[35]  
Espinosa-Cardeña JM(2016)Investigating heat and magnetic source depths in the Soutpansberg Basin, South Africa: exploring the Soutpansberg Basin Geothermal Field Geotherm Energy 694 400-86
[36]  
Oksum E(2018)Fractal-based computation of heat source depths and temperatures for the Soutpansberg Basin, South Africa J Geogr Geol 624 75-302
[37]  
Chopping R(1985)Curie point depths of the Island of Kyushu and surrounding area, Japan Geophysics 35 293-470
[38]  
Kennett BL(2000)A General Correlation for Predicting the Hydrate-Free Zone of Reservoir Fluids SPE Production & Facilities 306 461-343
[39]  
Davies JH(1994)Using fractal crustal magnetization models in magnetic interpretation 1 Geophys Prospect 10 339-159
[40]  
Dickens Gerald R.(2007)A study of spectral methods of estimating the depth to the bottom of magnetic sources from near-surface magnetic anomaly data Geophys J Int 151 147-undefined