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  5. Gravitational Potential Energy in Iberia: A Driver of Active Deformation in High-Topography Regions
 
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Gravitational Potential Energy in Iberia: A Driver of Active Deformation in High-Topography Regions

Author(s)
Neres, M  
Instituto Dom Luiz, Faculdade de Ciências, Universidade de Lisboa, , Lisbon, Portugal  
Neves, M. C.  
Instituto Dom Luiz, Universidade do Algarve, , Faro, Portugal  
Custódio, S.  
Instituto Dom Luiz, Faculdade de Ciências, Universidade de Lisboa, , Lisbon, Portugal  
Palano, Mimmo  
Istituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione OE, Catania, Italia  
Fernandes, R.  
Instituto Dom Luiz, Universidade da Beira Interior, Covilhã, Portugal  
Matias, L.  
Instituto Dom Luiz, Faculdade de Ciências, Universidade de Lisboa, , Lisbon, Portugal  
Carafa, Michele M. C.  
Istituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione Roma1, Roma, Italia  
Terrinha, P.  
Instituto Dom Luiz, Faculdade de Ciências, Universidade de Lisboa, , Lisbon, Portugal  
Language
English
Obiettivo Specifico
1T. Struttura della Terra
Status
Published
JCR Journal
JCR Journal
Peer review journal
Yes
Journal
Journal of Geophysical Research: Solid Earth  
Issue/vol(year)
/123 (2018)
Pages (printed)
10277-10296
Date Issued
October 17, 2018
DOI
10.1029/2017JB015002
Alternative Location
https://agupubs.onlinelibrary.wiley.com/doi/full/10.1029/2017JB015002#
URI
https://www.earth-prints.org/handle/2122/12209
Subjects
Gravitational Potential Energy in Iberia
Subjects

Iberia

Gravitational Potenti...

stress field

strain rates

intraplate deformatio...

plate driving mechani...

Abstract
In this study, we present a new estimation of the gravitational potential energy (GPE) in Iberia and use numerical modeling to evaluate its relative contribution to the present‐day stress field and deformation. We also present an improved (larger time span and denser coverage) compilation of Global Navigation Satellite System velocities, which we use to compute the strain rate field of Iberia. We take advantage of recent neotectonic modeling developed for Iberia and northwest Africa to study the isolated dynamic contribution of GPE‐related stresses. We present two models—one including only the stress generated by GPE and another reproducing the net stress field—and compare their predictions with the most up‐to‐date compilations of stress indicators, hypocenter clusters, and geodetic strain rates. The main effect of GPE is to induce second‐order spatial variations in the stress field. GPE appears to play an important role in high‐topography regions, where it explains deviatoric stress patterns mainly associated with extensional regimes. In north Iberia, especially in the Pyrenees and Cantabria, GPE causes an extensional regime over the highest peaks. In the Iberian Chain and eastern Betics, GPE is in agreement with the observed extensional deformation. Normal focal mechanisms of shallow earthquake clusters appear to be related with GPE maxima and GPE‐induced extensional regimes. Wavelength analysis suggests that both GPE and the long‐wavelength topography of intraplate Iberia record the plate boundary forces that acted in Iberia during the Alpine orogeny at Eocene to lower Miocene times.
Sponsors
Ministry of Education and Science | Fundação para a Ciência e a Tecnologia (FCT). Grant Number: FCT UID/GEO/50019/2013 ‐ Instituto Dom Luiz. FCT. Grant Number: UID/GEO/50019/2013
References
Amante, C., & C. W. Eakins (2009). ETOPO1 1 Arc‐Minute Global Relief Model: Procedures, data sources and analysis NOAA Technical Memorandum NESDIS NGDC‐24. National Geophysical Data Center, NOAA. https://doi.org/10.7289/V5C8276M

Andeweg, B. (2002). Cenozoic tectonic evolution of the Iberian Peninsula: Effects and causes of changing stress fields, Vrije Universiteit.

Artyushkov, E. (1973). Stresses in the lithosphere caused by crustal thickness inhomogeneities. Journal of Geophysical Research, 78, 7675–7708. https://doi.org/10.1029/JB078i032p07675

Basili, R., Kastelic, V., Demircioglu, M., Garcia Moreno, D., Nemser, E., Petricca, P., Sboras, S., Besana‐Ostman, G., Cabral, J., & Camelbeeck, T. (2013). The European Database of Seismogenic Faults (EDSF) compiled in the framework of the Project SHARE. http://diss.rm.ingv.it/share‐edsf

Becker, T. W., Lowry, A. R., Faccenna, C., Schmandt, B., Borsa, A., & Yu, C. (2015). Western US intermountain seismicity caused by changes in upper mantle flow. Nature, 524(7566), 458–461. https://doi.org/10.1038/nature14867

Becker, T. W., & O'Connell, R. J. (2001). Predicting plate velocities with mantle circulation models. Geochemistry, Geophysics, Geosystems, 2, 1060–1054. https://doi.org/10.1029/2001GC000171

Bird, P. (1989). New finite element techniques for modeling deformation histories of continents with stratified temperature‐dependent rheology. Journal of Geophysical Research, 94, 3967–3990. https://doi.org/10.1029/JB094iB04p03967

Bird, P. (1999). Thin‐plate and thin‐shell finite‐element programs for forward dynamic modeling of plate deformation and faulting. Computers & Geosciences, 25(4), 383–394. https://doi.org/10.1016/S0098‐3004(98)00142‐3
Bird, P., Liu, Z., & Rucker, W. K. (2008). Stresses that drive the plates from below: Definitions, computational path, model optimization, and error analysis. Journal of Geophysical Research, 113, B11406. https://doi.org/10.1029/2007JB005460

Bird, P., & Piper, K. (1980). Plane‐stress finite‐element models of tectonic flow in southern California. Physics of the Earth and Planetary Interiors, 21(2–3), 158–175. https://doi.org/10.1016/0031‐9201(80)90067‐9

Boehm, J., Kouba, J., & Schuh, H. (2009). Forecast Vienna Mapping Functions 1 for real‐time analysis of space geodetic observations. Journal of Geodesy, 83(5), 397–401. https://doi.org/10.1007/s00190‐008‐0216‐y

Bos, M., Fernandes, R., Williams, S., & Bastos, L. (2013). Fast error analysis of continuous GNSS observations with missing data. Journal of Geodesy, 87(4), 351–360. https://doi.org/10.1007/s00190‐012‐0605‐0

Bousquet, J. (1979). Quaternary strike‐slip faults in southeastern Spain. Tectonophysics, 52(1–4), 277–286. https://doi.org/10.1016/0040‐1951(79)90232‐4

Buforn, E., De Galdeano, C. S., & Udías, A. (1995). Seismotectonics of the Ibero‐Maghrebian region. Tectonophysics, 248(3–4), 247–261. https://doi.org/10.1016/0040‐1951(94)00276‐F

Cabral, J. (1989). An example of intraplate neotectonic activity, Vilariça basin, Northeast Portugal. Tectonics, 8, 285–303. https://doi.org/10.1029/TC008i002p00285

Cabral, J. (2012). Neotectonics of mainland Portugal: State of the art and future perspectives/Neotectónica de Portugal peninsular—Estado de la cuestión y perspectivas de futuro. Journal of Iberian Geology, 38(1), 71–84.

Camelbeeck, T., de Viron, O., Van Camp, M., & Kusters, D. (2013). Local stress sources in Western Europe lithosphere from geoid anomalies. Lithosphere, 5(3), 235–246. https://doi.org/10.1130/L238.1

Cannavò, F., & Palano, M. (2016). Defining geodetic reference frame using Matlab®: PlatEMotion 2.0. Pure and Applied Geophysics, 173(3), 937–944. https://doi.org/10.1007/s00024‐015‐1112‐z

Carafa, M., & Barba, S. (2011). Determining rheology from deformation data: The case of central Italy. Tectonics, 30, TC2003. https://doi.org/10.1029/2010TC002680

Carafa, M., & Barba, S. (2013). The stress field in Europe: Optimal orientations with confidence limits. Geophysical Journal International, 193(2), 531–548. https://doi.org/10.1093/gji/ggt024

Carafa, M., Barba, S., & Bird, P. (2015). Neotectonics and long‐term seismicity in Europe and the Mediterranean region. Journal of Geophysical Research: Solid Earth, 120, 5311–5342. https://doi.org/10.1002/2014JB011751

Carafa, M. M., Tarabusi, G., & Kastelic, V. (2015). SHINE: Web application for determining the horizontal stress orientation. Computers & Geosciences, 74, 39–49. https://doi.org/10.1016/j.cageo.2014.10.001

Casas‐Sainz, A., & De Vicente, G. (2009). On the tectonic origin of Iberian topography. Tectonophysics, 474(1‐2), 214–235. https://doi.org/10.1016/j.tecto.2009.01.030

Chevrot, S., Villaseñor, A., Sylvander, M., Benahmed, S., Beucler, E., Cougoulat, G., Delmas, P., de Saint Blanquat, M., Diaz, J., Gallart, J., Grimaud, F., Lagabrielle, Y., Manatschal, G., Mocquet, A., Pauchet, H., Paul, A., Péquegnat, C., Quillard, O., Roussel, S., Ruiz, M., & Wolyniec, D. (2014). High‐resolution imaging of the Pyrenees and Massif Central from the data of the PYROPE and IBERARRAY portable array deployments. Journal of Geophysical Research: Solid Earth, 119, 6399–6420. https://doi.org/10.1002/2014JB010953

Cloetingh, S., Burov, E., Beekman, F., Andeweg, B., Andriessen, P., Garcia‐Castellanos, D., DeVicente, G., & Vegas, R. (2002). Lithospheric folding in Iberia. Tectonics, 21(5), 1041. https://doi.org/10.1029/2001TC901031

Cloetingh, S., Thybo, H., & Faccenna, C. (2009). TOPO‐EUROPE: Studying continental topography and Deep Earth–Surface processes in 4D. Tectonophysics, 474(1–2). 4–32. https://doi.org/10.1016/j.tecto.2009.04.015

Coblentz, D. D., & Sandiford, M. (1994). Tectonic stresses in the African plate: Constraints on the ambient lithospheric stress state. Geology, 22(9), 831–834. https://doi.org/10.1130/0091‐7613(1994)022<0831:TSITAP>2.3.CO;2

Cunha, T., Matias, L., Terrinha, P., Negredo, A., Rosas, F., Fernandes, R., & Pinheiro, L. (2012). Neotectonics of the SW Iberia margin, Gulf of Cadiz and Alboran Sea: A reassessment including recent structural, seismic and geodetic data. Geophysical Journal International, 188(3), 850–872. https://doi.org/10.1111/j.1365‐246X.2011.05328.x

Custódio, S., Lima, V., Vales, D., Cesca, S., & Carrilho, F. (2016). Imaging active faulting in a region of distributed deformation from the joint clustering of focal mechanisms and hypocentres: Application to the Azores–western Mediterranean region. Tectonophysics, 676, 70–89. https://doi.org/10.1016/j.tecto.2016.03.013

DeLarouzière, F., Bolze, J., Bordet, P., Hernandez, J., Montenat, C., & d'Estevou, P. O. (1988). The Betic segment of the lithospheric Trans‐Alboran shear zone during the Late Miocene. Tectonophysics, 152(1–2), 41–52. https://doi.org/10.1016/0040‐1951(88)90028‐5

De Vicente, G., & Vegas, R. (2009). Large‐scale distributed deformation controlled topography along the western Africa–Eurasia limit: Tectonic constraints. Tectonophysics, 474(1‐2), 124–143. https://doi.org/10.1016/j.tecto.2008.11.026

DeMets, C., Gordon, R. G., & Argus, D. F. (2010). Geologically current plate motions. Geophysical Journal International, 181(1), 1–80. https://doi.org/10.1111/j.1365‐246X.2009.04491.x

Duarte, J. C., Rosas, F. M., Terrinha, P., Gutscher, M.‐A., Malavieille, J., Silva, S., & Matias, L. (2011). Thrust–wrench interference tectonics in the Gulf of Cadiz (Africa–Iberia plate boundary in the north‐East Atlantic): Insights from analog models. Marine Geology, 289(1‐4), 135–149. https://doi.org/10.1016/j.margeo.2011.09.014

Duarte, J. C., Rosas, F. M., Terrinha, P., Schellart, W. P., Boutelier, D., Gutscher, M.‐A., & Ribeiro, A. (2013). Are subduction zones invading the Atlantic? Evidence from the southwest Iberia margin. Geology, 41(8), 839–842. https://doi.org/10.1130/G34100.1

Faccenna, C., & Becker, T. W. (2010). Shaping mobile belts by small‐scale convection. Nature, 465(7298), 602–605. https://doi.org/10.1038/nature09064

Farolfi, G., & Del Ventisette, C. (2017). Strain rates in the Alpine Mediterranean region: Insights from advanced techniques of data processing. GPS Solutions, 21(3), 1027–1036. https://doi.org/10.1007/s10291‐016‐0588‐z

Fernandes, R., Ambrosius, B., Noomen, R., Bastos, L., Wortel, M., Spakman, W., & Govers, R. (2003). The relative motion between Africa and Eurasia as derived from ITRF2000 and GPS data. Geophysical Research Letters, 30(16), 1828. https://doi.org/10.1029/2003GL017089

Fleitout, L., & Froidevaux, C. (1982). Tectonics and topography for a lithosphere containing density heterogeneities. Tectonics, 1, 21–56. https://doi.org/10.1029/TC001i001p00021

Flesch, L. M., Holt, W. E., Haines, A. J., Wen, L., & Shen‐Tu, B. (2007). The dynamics of western North America: Stress magnitudes and the relative role of gravitational potential energy, plate interaction at the boundary and basal tractions. Geophysical Journal International, 169(3), 866–896. https://doi.org/10.1111/j.1365‐246X.2007.03274.x

Flesch, L. M., & Kreemer, C. (2010). Gravitational potential energy and regional stress and strain rate fields for continental plateaus: Examples from the central Andes and Colorado Plateau. Tectonophysics, 482(1–4), 182–192. https://doi.org/10.1016/j.tecto.2009.07.014

García‐Mayordomo, J. (2012). The Quaternary Active Faults Database of Iberia (QAFI v. 2.0)/La Base de Datos de Fallas Activas en el Cuaternario de Iberia (QAFI v. 2.0). Journal of Iberian Geology, 38(1), 285–302.

Genti, M., Chery, J., Vernant, P., & Rigo, A. (2016). Impact of gravity forces and topography denudation on normal faulting in Central–Western Pyrenees: Insights from 2D numerical models. Comptes Rendus Geoscience, 348(3‐4), 173–183. https://doi.org/10.1016/j.crte.2015.08.004

Ghosh, A., Becker, T., & Humphreys, E. (2013). Dynamics of the North American continent. Geophysical Journal International, 194(2), 651–669. https://doi.org/10.1093/gji/ggt151

Ghosh, A., Holt, W., & Wen, L. (2013). Predicting the lithospheric stress field and plate motions by joint modeling of lithosphere and mantle dynamics. Journal of Geophysical Research: Solid Earth, 118, 346–368. https://doi.org/10.1029/2012JB009516

Ghosh, A., & Holt, W. E. (2012). Plate motions and stresses from global dynamic models. Science, 335(6070), 838–843. https://doi.org/10.1126/science.1214209

Ghosh, A., Holt, W. E., Flesch, L. M., & Haines, A. J. (2006). Gravitational potential energy of the Tibetan Plateau and the forces driving the Indian plate. Geology, 34(5), 321–324. https://doi.org/10.1130/G22071.1

Gölke, M., & Coblentz, D. (1996). Origins of the European regional stress field. Tectonophysics, 266(1–4), 11–24. https://doi.org/10.1016/S0040‐1951(96)00180‐1

Gutscher, M.‐A., Dominguez, S., Westbrook, G. K., LeRoy, P., Rosas, F., Duarte, J., Terrinha, P., Miranda, J., Graindorge, D., & Gailler, A. (2012). The Gibraltar subduction: A decade of new geophysical data. Tectonophysics, 574, 72–91.

Hackl, M., Malservisi, R., & Wdowinski, S. (2009). Strain rate patterns from dense GPS networks. Natural Hazards and Earth System Sciences, 9(4), 1177–1187. https://doi.org/10.5194/nhess‐9‐1177‐2009

Heidbach, O., M. Rajabi, M. Ziegler, & K. Reiter (2016). The World Stress Map database release 2016—Global crustal stress pattern vs. absolute plate motion, edited, p. 4861, GFZ data services.

Hodges, K., Hurtado, J., & Whipple, K. (2001). Southward extrusion of Tibetan crust and its effect on Himalayan tectonics. Tectonics, 20, 799–809. https://doi.org/10.1029/2001TC001281

Jones, C. H., Unruh, J. R., & Sonder, L. J. (1996). The role of gravitational potential energy in active deformation in the southwestern United States. Nature, 381(6577), 37–41. https://doi.org/10.1038/381037a0

Kagan, Y. (1991). 3‐D rotation of double‐couple earthquake sources. Geophysical Journal International, 106(3), 709–716. https://doi.org/10.1111/j.1365‐246X.1991.tb06343.x

Kong, X., & Bird, P. (1995). SHELLS: A thin‐shell program for modeling neotectonics of regional or global lithosphere with faults. Journal of Geophysical Research, 100, 22,129–22,131. https://doi.org/10.1029/95JB02435

Koulali, A., Ouazar, D., Tahayt, A., King, R., Vernant, P., Reilinger, R., McClusky, S., Mourabit, T., Davila, J. M., & Amraoui, N. (2011). New GPS constraints on active deformation along the Africa–Iberia plate boundary. Earth and Planetary Science Letters, 308(1‐2), 211–217. https://doi.org/10.1016/j.epsl.2011.05.048

Leblanc, D., & Olivier, P. (1984). Role of strike‐slip faults in the Betic‐Rifian orogeny. Tectonophysics, 101(3–4), 345–355. https://doi.org/10.1016/0040‐1951(84)90120‐3

Levandowski, W., Zellman, M., & Briggs, R. (2017). Gravitational body forces focus North American intraplate earthquakes. Nature Communications, 8. https://doi.org/10.1038/ncomms14314

Lichten, S., Bar‐Sever, Y., Bertiger, E., Heflin, M., Hurst, K., Muellerschoen, R., Wu, S., Yunck, T., & Zumberge, J. (2006). GIPSY‐OASIS II: A high precision GPS data processing system and general orbit analysis tool. Technology, 2(6), 2–4.

Lithgow‐Bertelloni, C., & Richards, M. A. (1998). The dynamics of Cenozoic and Mesozoic plate motions. Reviews of Geophysics, 36, 27–78. https://doi.org/10.1029/97RG02282

Lonergan, L., & White, N. (1997). Origin of the Betic‐Rif mountain belt. Tectonics, 16, 504–522. https://doi.org/10.1029/96TC03937

Mancilla, F. d. L., Booth‐Rea, G., Stich, D., Pérez‐Peña, J. V., Morales, J., Azañón, J. M., Martin, R., & Giaconia, F. (2015). Slab rupture and delamination under the Betics and Rif constrained from receiver functions. Tectonophysics, 663, 225–237. https://doi.org/10.1016/j.tecto.2015.06.028

Mancilla, F. d. L., Stich, D., Berrocoso, M., Martín, R., Morales, J., Fernandez‐Ros, A., Páez, R., & Pérez‐Peña, A. (2013). Delamination in the Betic Range: Deep structure, seismicity, and GPS motion. Geology, 41(3), 307–310. https://doi.org/10.1130/G33733.1

Martín‐González, F., Antón, L., Insua, J., DeVicente, G., Martínez‐Díaz, J., Muñoz‐Martín, A., Heredia, N., & Olaiz, A. (2012). Seismicity and potencially active faults in the northwest and central‐west Iberian Peninsula/Sismicidad y Fallas Potencialmente Activas en el Noroeste y Centro Oeste de la Península Ibérica. Journal of Iberian Geology, 38(1), 53.

Molinari, I., & Morelli, A. (2011). EPcrust: A reference crustal model for the European Plate. Geophysical Journal International, 185(1), 352–364. https://doi.org/10.1111/j.1365‐246X.2011.04940.x

Molnar, P., England, P. C., & Jones, C. H. (2015). Mantle dynamics, isostasy, and the support of high terrain. Journal of Geophysical Research: Solid Earth, 120, 1932–1957. https://doi.org/10.1002/2014JB011724

Molnar, P., & Lyon‐Caen, H. (1988). Some simple physical aspects of the support, structure, and evolution of mountain belts. Geological Society of America Special Papers, 218, 179–208. https://doi.org/10.1130/SPE218‐p179

Moucha, R., & Forte, A. M. (2011). Changes in African topography driven by mantle convection. Nature Geoscience, 4(10), 707–712. https://doi.org/10.1038/ngeo1235

Neres, M., Carafa, M., Fernandes, R., Matias, L., Duarte, J., Barba, S., & Terrinha, P. (2016). Lithospheric deformation in the Africa‐Iberia plate boundary: Improved neotectonic modeling testing a basal‐driven Alboran plate. Journal of Geophysical Research: Solid Earth, 121, 6566–6596. https://doi.org/10.1002/2016JB013012

Neves, M. C., Fernandes, R. M., & Adam, C. (2014). Refined models of gravitational potential energy compared with stress and strain rate patterns in Iberia. Journal of Geodynamics, 81, 91–104. https://doi.org/10.1016/j.jog.2014.07.010

Palano, M., González, P. J., & Fernández, J. (2013). Strain and stress fields along the Gibraltar Orogenic Arc: Constraints on active geodynamics. Gondwana Research, 23(3), 1071–1088. https://doi.org/10.1016/j.gr.2012.05.021

Palano, M., González, P. J., & Fernández, J. (2015). The diffuse plate boundary of Nubia and Iberia in the Western Mediterranean: Crustal deformation evidence for viscous coupling and fragmented lithosphere. Earth and Planetary Science Letters, 430, 439–447. https://doi.org/10.1016/j.epsl.2015.08.040

Palomeras, I., Villaseñor, A., Thurner, S., Levander, A., Gallart, J., & Harnafi, M. (2017). Lithospheric structure of Iberia and Morocco using finite‐frequency Rayleigh wave tomography from earthquakes and seismic ambient noise. Geochemistry, Geophysics, Geosystems, 18, 1824–1840. https://doi.org/10.1002/2016GC006657

Pascal, C. (2006). On the role of heat flow, lithosphere thickness and lithosphere density on gravitational potential stresses. Tectonophysics, 425(1‐4), 83–99. https://doi.org/10.1016/j.tecto.2006.07.012

Pascal, C., & Cloetingh, S. A. (2009). Gravitational potential stresses and stress field of passive continental margins: Insights from the south‐Norway shelf. Earth and Planetary Science Letters, 277(3‐4), 464–473. https://doi.org/10.1016/j.epsl.2008.11.014

Ramos, A., Fernández, O., Terrinha, P., & Muñoz, J. A. (2017). Neogene to recent contraction and basin inversion along the Nubia‐Iberia boundary in SW Iberia. Tectonics, 36, 257–286. https://doi.org/10.1002/2016TC004262

Ribeiro, A., Cabral, J., Baptista, R., & Matias, L. (1996). Stress pattern in Portugal mainland and the adjacent Atlantic region, West Iberia. Tectonics, 15, 641–659. https://doi.org/10.1029/95TC03683

Rigo, A., Vernant, P., Feigl, K., Goula, X., Khazaradze, G., Talaya, J., Morel, L., Nicolas, J., Baize, S., & Chery, J. (2015). Present‐day deformation of the Pyrenees revealed by GPS surveying and earthquake focal mechanisms until 2011. Geophysical Journal International, 201(2), 947–964. https://doi.org/10.1093/gji/ggv052

Ritsema, J., Deuss, A., VanHeijst, H., & Woodhouse, J. (2011). S40RTS: A degree‐40 shear‐velocity model for the mantle from new Rayleigh wave dispersion, teleseismic traveltime and normal‐mode splitting function measurements. Geophysical Journal International, 184(3), 1223–1236. https://doi.org/10.1111/j.1365‐246X.2010.04884.x

Rockwell, T., Fonseca, J., Madden, C., Dawson, T., Owen, L. A., Vilanova, S., & Figueiredo, P. (2009). Palaeoseismology of the Vilariça Segment of the Manteigas‐Bragança Fault in northeastern Portugal. Geological Society, London, Special Publications, 316(1), 237–258. https://doi.org/10.1144/sp316.15

Rosenbaum, G., Lister, G. S., & Duboz, C. (2002). Relative motions of Africa, Iberia and Europe during Alpine orogeny. Tectonophysics, 359(1‐2), 117–129. https://doi.org/10.1016/S0040‐1951(02)00442‐0

Royden, L. H. (1993). Evolution of retreating subduction boundaries formed during continental collision. Tectonics, 12, 629–638. https://doi.org/10.1029/92TC02641

Rubey, M., Brune, S., Heine, C., Davies, D. R., Williams, S. E., & Müller, R. D. (2017). Global patterns in Earth's dynamic topography since the Jurassic: The role of subducted slabs. Solid Earth, 8(5), 899–919. https://doi.org/10.5194/se‐8‐899‐2017

Sallarès, V., Martínez‐Loriente, S., Prada, M., Gràcia, E., Ranero, C., Gutscher, M.‐A., Bartolome, R., Gailler, A., Dañobeitia, J. J., & Zitellini, N. (2013). Seismic evidence of exhumed mantle rock basement at the Gorringe Bank and the adjacent Horseshoe and Tagus abyssal plains (SW Iberia). Earth and Planetary Science Letters, 365, 120–131. https://doi.org/10.1016/j.epsl.2013.01.021

Schmid, R., Dach, R., Collilieux, X., Jäggi, A., Schmitz, M., & Dilssner, F. (2016). Absolute IGS antenna phase center model igs08. atx: Status and potential improvements. Journal of Geodesy, 90(4), 343–364. https://doi.org/10.1007/s00190‐015‐0876‐3

Silva, S., Terrinha, P., Matias, L., Duarte, J. C., Roque, C., Ranero, C. R., Geissler, W. H., & Zitellini, N. (2017). Micro‐seismicity in the Gulf of Cadiz: Is there a link between micro‐seismicity, high magnitude earthquakes and active faults? Tectonophysics, 717, 226–241. https://doi.org/10.1016/j.tecto.2017.07.026

Smith, W., & Wessel, P. (1990). Gridding with continuous curvature splines in tension. Geophysics, 55(3), 293–305. https://doi.org/10.1190/1.1442837

Spakman, W., & Wortel, R. (2004). A tomographic view on western Mediterranean geodynamics. In The TRANSMED Atlas: The Mediterranean region from crust to mantle, (pp. 31–52). https://doi.org/10.1007/978‐3‐642‐18919‐7_2

Stamps, D. S., Flesch, L. M., Calais, E., & Ghosh, A. (2014). Current kinematics and dynamics of Africa and the East African Rift System. Journal of Geophysical Research: Solid Earth, 119, 5161–5186. https://doi.org/10.1002/2013JB010717

Stamps, D. S., Iaffaldano, G., & Calais, E. (2015). Role of mantle flow in Nubia‐Somalia plate divergence. Geophysical Research Letters, 42, 290–296. https://doi.org/10.1002/2014GL062515

Stich, D., Martín, R., & Morales, J. (2010). Moment tensor inversion for Iberia–Maghreb earthquakes 2005–2008. Tectonophysics, 483(3‐4), 390–398. https://doi.org/10.1016/j.tecto.2009.11.006

Stich, D., Serpelloni, E., de Lis Mancilla, F., & Morales, J. (2006). Kinematics of the Iberia–Maghreb plate contact from seismic moment tensors and GPS observations. Tectonophysics, 426(3‐4), 295–317. https://doi.org/10.1016/j.tecto.2006.08.004

Terrinha, P., Matias, L., Vicente, J., Duarte, J., Luís, J., Pinheiro, L., Lourenço, N., Diez, S., Rosas, F., & Magalhães, V. (2009). Morphotectonics and strain partitioning at the Iberia–Africa plate boundary from multibeam and seismic reflection data. Marine Geology, 267(3‐4), 156–174. https://doi.org/10.1016/j.margeo.2009.09.012

Terrinha, P., Pinheiro, L. M., Henriet, J.‐P., Matias, L., Ivanov, M., Monteiro, J. H., Akhmetzhanov, A., Volkonskaya, A., Cunha, T., & Shaskin, P. (2003). Tsunamigenic‐seismogenic structures, neotectonics, sedimentary processes and slope instability on the southwest Portuguese Margin. Marine Geology, 195(1‐4), 55–73. https://doi.org/10.1016/S0025‐3227(02)00682‐5

Vautard, R., Yiou, P., & Ghil, M. (1992). Singular‐spectrum analysis: A toolkit for short, noisy chaotic signals. Physica D: Nonlinear Phenomena, 58(1‐4), 95–126. https://doi.org/10.1016/0167‐2789(92)90103‐T

Villaseñor, A., Chevrot, S., Harnafi, M., Gallart, J., Pazos, A., Serrano, I., Córdoba, D., Pulgar, J. A., & Ibarra, P. (2015). Subduction and volcanism in the Iberia–North Africa collision zone from tomographic images of the upper mantle. Tectonophysics, 663, 238–249. https://doi.org/10.1016/j.tecto.2015.08.042

Warners‐Ruckstuhl, K. N., Govers, R., & Wortel, R. (2013). Tethyan collision forces and the stress field of the Eurasian Plate. Geophysical Journal International, 195(1), 1–15. https://doi.org/10.1093/gji/ggt219

Wessel, P., & Bercovici, D. (1998). Interpolation with splines in tension: A Green's function approach. Mathematical Geology, 30(1), 77–93. https://doi.org/10.1023/A:1021713421882

Wessel, P., Smith, W. H., Scharroo, R., Luis, J., & Wobbe, F. (2013). Generic mapping tools: Improved version released. Eos, Transactions American Geophysical Union, 94(45), 409–410. https://doi.org/10.1002/2013EO450001

Zitellini, N., Gràcia, E., Matias, L., Terrinha, P., Abreu, M., DeAlteriis, G., Henriet, J., Dañobeitia, J., Masson, D., & Mulder, T. (2009). The quest for the Africa–Eurasia plate boundary west of the Strait of Gibraltar. Earth and Planetary Science Letters, 280(1‐4), 13–50. https://doi.org/10.1016/j.epsl.2008.12.005.

Zumberge, J., Heflin, M., Jefferson, D., Watkins, M., & Webb, F. H. (1997). Precise point positioning for the efficient and robust analysis of GPS data from large networks. Journal of Geophysical Research, 102, 5005–5017. https://doi.org/10.1029/96JB03860.
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