Structure type | Evaporite Diapir |
Deformed/Undeformed | Deformed |
Geological Setting | Iberian Range, Maestrat Basin |
Outcropping/buried | Outcropping |
Evaporite unit/s name | Keuper facies |
Evaporite unit/s age | Carnian-Rhaetian (Upper Triassic) |
Evaporite unit/s origin | Marine |
Classif. (Hudec and Jackson, 2009) | Thrust piercement |
Classif. (Jackson and Talbot, 1986) | Salt wall |
Age of evaporite flow or deformation (when deformed) | Lower Cretaceous, Upper Jurassic |
Other comments | SE continuation of the Pancrudo (ID #094) salt wall. Halokinesis and growing stages reinterpreted by Vergés et al. (2020) and considered in this work. |
Unique ID | 93 |
Name | Cañada-Vellida |
Structure type | Evaporite diapir |
Deformed/Undeformed | Deformed |
Buried/Outcropping | Outcropping |
Geological setting | Iberian Range |
Geological Regional Setting | Maestrat Basin (Galve sub-basin) |
Evaporite unit/s name | Keuper facies |
Evaporite unit/s age | Carnian-Rhaetian (Upper Triassic) |
Evaporite unit/s era | Mesozoic |
Evaporite unit/s origin | Marine |
Evaporite unit/s composition | Shale-Gypsum-Anhydrite |
Post-kinematic unit/s (or post-evaporite units when evaporites are undeformed) | Quaternary (alluvial and colluvial detrital deposits) |
Post-kinematic unit/s age (or post-evaporite units when evaporites are undeformed) | Pleistocene-Holocene |
Classification (Hudec and Jackson, 2009) | Thrust piercement |
Classification (Jackson and Talbot, 1986) | Salt wall |
Mining activity? | Y |
Mining activity start | |
Mining activity end | Active |
Mining galleries? | Y |
Mining products | Clay |
Mining sub-products | – |
Evaporite flow? | Y |
Age of evaporite flow | Upper Jurassic (early salt mobilization) ; Upper Valanginian-Upper Albian (main stage) |
Flow or deformation triggering mechanisms | Late Jurassic-Early Cretaceous rifting and alpine compression |
Flow-linked structures? | Y |
Halokinetic structures | Thickness variations / progressive unconformities / thrust faults / overturned flanks |
Post-evaporite and pre-kinematic unit/s (overbuden) | Early Jurassic (Cortes de Tajuña and Cuevas Labradas Fm., limestones and dolostones) ; Late Jurassic (Loriguilla and Higueruelas Fms., limestones and sandstones) |
Syn-kinematic unit/s | Uppermost Jurassic (Arzobispo Fm., limestones and sandy limestones) ; Hauterivian (El Castellar Fm., limestones and sandstones) ; Barremian (Camarillas, Artoles, Morella and Xert Fms., clays, sandstones, marlstones, limestones) ; Early Aptian (Forcall and Villaroya de los Pinares Fms., marlstones, limestones and nodular limestones) ; Late Aptian (Benassal Fm., marlstone, limestone, nodular limestone) Albian (Escucha and Utrillas Fms., sandstones, claystones and quartz microconglomerates) |
Available seismic profiles | |
Available boreholes | |
Additional comments | SE continuation of the Pancrudo salt wall. Halokinesis and growing stages reinterpreted by Vergés et al. (2020) and considered in this work. |
UNIQUE_ID | 93 |
Minning exploitations within <2km? | Y |
Historical/Active | Historical (not indexed in the Spanish National Minning Cadastre) |
Exploitation name #1 | n.a. |
Exploitation ID (Spanish National Mining Cadastre) #1 | n.a. |
Municipality #1 | n.a. |
Province #1 | n.a. |
Company #1 | n.a. |
Main minning Products #1 | Clay |
Exploitation name #2 | |
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UNIQUE_ID | 93 |
Outcropping area (km2) | 3.61194 |
Horizontal intersection area (km2) (when buried) | Not buried |
Depth of intersection area (km2) (when buried) | Not buried |
Max. Width (Km) | 9.9408137 |
Max. Length (Km) | 3.43630297 |
Max. Evaporites thickness (km) | |
Max. Deformation age (Ma) | 148 |
Min. Deformation age (Ma) | 100 |
Deformation stages | 2 |
UNIQUE_ID | 93 |
Section source | IGME MAGNA 50. SHEET 543 (VILLALUENGO) |
Well / Borehole availability #1 | n.a. |
Well / Borehole availability #2 | n.a. |
Available data (Stratigraphy) #1 | Vergés, J., Poprawski, Y., Almar, Y., Drzewiecki, P. A., Moragas, M., Bover‐Arnal, T., …, Hunt, D., 2020. Tectono‐Sedimentary Evolution of Jurassic‐Cretaceous diapiric structures: Miravete anticline, Maestrat Basin, Spain. Basin Research, 1-55. [link] |
Available data (Stratigraphy) #2 | Liesa, C. L., Simón, J. L., Casas, A. M., 2018. La tectónica de inversión en una región intraplaca: la Cordillera Ibérica. Revista de la Sociedad Geológica de España, 31(2), 23-50. [link] |
Available data (Stratigraphy) #3 | Bover-Arnal, T., Moreno-Bedmar, J. A., Frijia, G., Pascual-Cebrian, E., Salas, R., 2016. Chronostratigraphy of the Barremian–Early Albian of the Maestrat Basin (E Iberian Peninsula): integrating strontium-isotope stratigraphy and ammonoid biostratigraphy. Newsletters on Stratigraphy, 49(1), 41-68. [link] |
Available data (Stratigraphy) #4 | Meléndez, N., Liesa, C. L., Soria, A. R., Meléndez, A., 2009. Lacustrine system evolution during early rifting: el Castellar formation (Galve sub-basin, Central Iberian Chain). Sedimentary Geology, 222(1-2), 64-77. [link] |
Available data (Stratigraphy) #5 | Aurell, M., Bádenas, B., Gasca, J. M., Canudo, J. I., Liesa, C. L., Soria, A. R., …, Najes, L., 2016. Stratigraphy and evolution of the Galve sub-basin (Spain) in the middle Tithonian–early Barremian: implications for the setting and age of some dinosaur fossil sites. Cretaceous Research, 65, 138-162. [link] |
Available data (Stratigraphy) #6 | Nebot, M., Guimera, J., 2016. Structure of an inverted basin from subsurface and field data: the Late Jurassic-Early Cretaceous Maestrat Basin (Iberian Chain). Geologica Acta, 14(2). 0155-177. [link] |
Regional Stratigraphy | Vergés, J., Poprawski, Y., Almar, Y., Drzewiecki, P. A., Moragas, M., Bover‐Arnal, T., …, Hunt, D., 2020. Tectono‐Sedimentary Evolution of Jurassic‐Cretaceous diapiric structures: Miravete anticline, Maestrat Basin, Spain. Basin Research, 1-55. [link] |
Seismic data availability #1 | n.a. |
Seismic data availability #2 | n.a. |
Seismic data availability #3 | n.a. |
Available data (Structure) #1 | Vergés, J., Poprawski, Y., Almar, Y., Drzewiecki, P. A., Moragas, M., Bover‐Arnal, T., …, Hunt, D., 2020. Tectono‐Sedimentary Evolution of Jurassic‐Cretaceous diapiric structures: Miravete anticline, Maestrat Basin, Spain. Basin Research, 1-55. [link] |
Available data (Structure) #2 | Salas, R., Guimerà, J., 1996. Rasgos estructurales principales de la cuenca cretácica inferior del Maestrazgo (Cordillera Ibérica oriental). Geogaceta, 20(7), 1704-1706. [link] |
Available data (Structure) #3 | Liesa, C. L., Simón, J. L., Casas, A. M., 2018. La tectónica de inversión en una región intraplaca: la Cordillera Ibérica. Revista de la Sociedad Geológica de España, 31(2), 23-50. [link] |
Available data (Structure) #4 | Nebot, M., Guimera, J., 2016. Structure of an inverted basin from subsurface and field data: the Late Jurassic-Early Cretaceous Maestrat Basin (Iberian Chain). Geologica Acta, 14(2). 0155-177. [link] |
Available data (Structure) #5 | Nebot, M., Guimerà, J., 2018. Kinematic evolution of a fold-and-thrust belt developed during basin inversion: the Mesozoic Maestrat basin, E Iberian Chain. Geological Magazine, 155(3), 630-640. [link] |
Available data (Structure) #6 | Simón, J. L., Liesa, C. L., 2011. Incremental slip history of a thrust: diverse transport directions and internal folding of the Utrillas thrust sheet (NE Iberian Chain, Spain). Geological Society, London, Special Publications, 349(1), 77-97. [link] |
Available data (Analogue modelling) #1 | n.a. |
Available data (Analogue modelling) #2 | n.a. |
Available data (Analogue modelling) #3 | n.a. |
Available data (Gravimetry – Tomography) #1 | Ayala, C., Bohoyo, F., Maestro, A., Reguera, M. I., Torne, M., Rubio, F., Fernández, M., García-Lobón, J. L., 2016. Updated Bouguer anomalies of the Iberian Peninsula: a new perspective to interpret the regional geology. Journal of Maps, 12(5), 1089-1092. [link] |
Available data (Gravimetry – Tomography) #2 | n.a. |
Available data (Gravimetry – Tomography) #3 | n.a. |
Available data (Geochemistry) #1 | n.a. |
Available data (Geochemistry) #2 | n.a. |
Available data (Geochemistry) #3 | n.a. |
Available data (Geochemistry) #4 | n.a. |
Available data (Petrophysics) #1 | n.a. |
Available data (Petrophysics) #2 | n.a. |
IGME Geological Map (MAGNA50) Sheet number | 543-Villarluengo. [link] |
Other Maps #1 (source) | Guimerà, J. J., 2018. Structure of an intraplate fold-and-thrust belt: The Iberian Chain. A synthesis. Geologica Acta, 16(4), 427-438. [link] |
Other Maps #2 (source) | Vergés, J., Poprawski, Y., Almar, Y., Drzewiecki, P. A., Moragas, M., Bover‐Arnal, T., …, Hunt, D., 2020. Tectono‐Sedimentary Evolution of Jurassic‐Cretaceous diapiric structures: Miravete anticline, Maestrat Basin, Spain. Basin Research, 1-55. [link] |
Other related references #1 | Navarrete, R., Liesa, C. L., Castanera, D., Soria, A. R., Rodríguez-López, J. P., Canudo, J. I., 2014. A thick Tethyan multi-bed tsunami deposit preserving a dinosaur megatracksite within a coastal lagoon (Barremian, eastern Spain). Sedimentary Geology, 313, 105-127. [link] |
Other related references #2 | Peropadre, C., Liesa, C. L., Meléndez, N., 2013. High-frequency, moderate to high-amplitude sea-level oscillations during the late Early Aptian: Insights into the Mid-Aptian event (Galve sub-basin, Spain). Sedimentary Geology, 294, 233-250. [link] |
Other related references #3 | Navarrete, R., Rodríguez-López, J. P., Liesa, C. L., Soria, A. R., Fernanda de Mesquita, L. V., 2013. Changing physiography of rift basins as a control on the evolution of mixed siliciclastic–carbonate back-barrier systems (Barremian Iberian Basin, Spain). Sedimentary Geology, 289, 40-61. [link] |
Other related references #4 | Simón, J. L., 2004. Superposed buckle folding in the eastern Iberian Chain, Spain. Journal of Structural Geology, 26(8), 1447-1464. [link] |
UNIQUE_ID | 93 |
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UNIQUE_ID | 93 |
X Centroid (Structure shape) | -0.881250 |
Y Centroid (Structure shape) | -0.881250 |
Xmin (Structure shape) | -0.937345 |
Xmax (Structure shape) | -0.829567 |
Ymin (Structure shape) | 40.648864 |
Ymax (Structure shape) | 40.712370 |
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