First Balanced Cross Section Across the Taurides Fold‐Thrust Belt: Geological Constraints on the Subduction History of the Antalya Slab in Southern Anatolia
Eastern Mediterranean subduction accommodated Africa‐Eurasia convergence since Mesozoic time and produced multiple subducted slab fragments in the mantle below Anatolia. These included the north dipping Cyprus and ENE‐dipping Antalya slabs, which are currently separated by an upper mantle slab gap....
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Published in: | Tectonics (Washington, D.C.) Vol. 37; no. 10; pp. 3738 - 3759 |
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01-10-2018
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Abstract | Eastern Mediterranean subduction accommodated Africa‐Eurasia convergence since Mesozoic time and produced multiple subducted slab fragments in the mantle below Anatolia. These included the north dipping Cyprus and ENE‐dipping Antalya slabs, which are currently separated by an upper mantle slab gap. Segmentation of these slabs, and associated mantle flow, may have contributed to <8 Ma uplift of the Central Anatolian Plateau. The western Central Taurides fold‐thrust belt in southern Turkey is in the upper plate above the Antalya slab and contains a geological record of its subduction. We present the first orogen‐scale balanced cross section of the Taurides and find that it formed in two stages: (1) Cretaceous to middle Eocene thrusting resulted in a minimum of 73‐km shortening, and (2) Mio‐Pliocene thrusting resulted in a minimum of 17.5‐km shortening. Eocene shortening accounts for only ~5 Myr of Africa‐Eurasia plate convergence. It is unlikely that >400 km of post to middle Eocene plate convergence was accommodated between the Taurides and its Beydağları platform foreland and instead must have been accommodated south of Beydağları. The associated southward plate boundary jump separated the Antalya slab from the African plate and the Cyprus slab. The isolated Antalya slab was left in an intraplate setting and is probably still attached to Beydağları today. We suggest the continental composition of the Antalya slab may have prevented its detachment. Finally, the gap between the Antalya and Cyprus slabs existed since at least Eocene time; their decoupling likely did not contribute to late Neogene Central Anatolian Plateau uplift.
Key Points
The Taurides fold‐thrust belt contains a minimum of 90.5‐km shortening that occurred in Eocence and Mio‐Pliocene phases
The Antalya slab has been decoupled from the Cyprus slab and isolated in an upper plate position since Eocene times
The Antalya slab consists mostly of continental lithosphere, which may have prevented it from sinking and detaching |
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AbstractList | Abstract
Eastern Mediterranean subduction accommodated Africa‐Eurasia convergence since Mesozoic time and produced multiple subducted slab fragments in the mantle below Anatolia. These included the north dipping Cyprus and ENE‐dipping Antalya slabs, which are currently separated by an upper mantle slab gap. Segmentation of these slabs, and associated mantle flow, may have contributed to <8 Ma uplift of the Central Anatolian Plateau. The western Central Taurides fold‐thrust belt in southern Turkey is in the upper plate above the Antalya slab and contains a geological record of its subduction. We present the first orogen‐scale balanced cross section of the Taurides and find that it formed in two stages: (1) Cretaceous to middle Eocene thrusting resulted in a minimum of 73‐km shortening, and (2) Mio‐Pliocene thrusting resulted in a minimum of 17.5‐km shortening. Eocene shortening accounts for only ~5 Myr of Africa‐Eurasia plate convergence. It is unlikely that >400 km of post to middle Eocene plate convergence was accommodated between the Taurides and its Beydağları platform foreland and instead must have been accommodated south of Beydağları. The associated southward plate boundary jump separated the Antalya slab from the African plate and the Cyprus slab. The isolated Antalya slab was left in an intraplate setting and is probably still attached to Beydağları today. We suggest the continental composition of the Antalya slab may have prevented its detachment. Finally, the gap between the Antalya and Cyprus slabs existed since at least Eocene time; their decoupling likely did not contribute to late Neogene Central Anatolian Plateau uplift.
Key Points
The Taurides fold‐thrust belt contains a minimum of 90.5‐km shortening that occurred in Eocence and Mio‐Pliocene phases
The Antalya slab has been decoupled from the Cyprus slab and isolated in an upper plate position since Eocene times
The Antalya slab consists mostly of continental lithosphere, which may have prevented it from sinking and detaching Eastern Mediterranean subduction accommodated Africa‐Eurasia convergence since Mesozoic time and produced multiple subducted slab fragments in the mantle below Anatolia. These included the north dipping Cyprus and ENE‐dipping Antalya slabs, which are currently separated by an upper mantle slab gap. Segmentation of these slabs, and associated mantle flow, may have contributed to <8 Ma uplift of the Central Anatolian Plateau. The western Central Taurides fold‐thrust belt in southern Turkey is in the upper plate above the Antalya slab and contains a geological record of its subduction. We present the first orogen‐scale balanced cross section of the Taurides and find that it formed in two stages: (1) Cretaceous to middle Eocene thrusting resulted in a minimum of 73‐km shortening, and (2) Mio‐Pliocene thrusting resulted in a minimum of 17.5‐km shortening. Eocene shortening accounts for only ~5 Myr of Africa‐Eurasia plate convergence. It is unlikely that >400 km of post to middle Eocene plate convergence was accommodated between the Taurides and its Beydağları platform foreland and instead must have been accommodated south of Beydağları. The associated southward plate boundary jump separated the Antalya slab from the African plate and the Cyprus slab. The isolated Antalya slab was left in an intraplate setting and is probably still attached to Beydağları today. We suggest the continental composition of the Antalya slab may have prevented its detachment. Finally, the gap between the Antalya and Cyprus slabs existed since at least Eocene time; their decoupling likely did not contribute to late Neogene Central Anatolian Plateau uplift. The Taurides fold‐thrust belt contains a minimum of 90.5‐km shortening that occurred in Eocence and Mio‐Pliocene phases The Antalya slab has been decoupled from the Cyprus slab and isolated in an upper plate position since Eocene times The Antalya slab consists mostly of continental lithosphere, which may have prevented it from sinking and detaching Eastern Mediterranean subduction accommodated Africa‐Eurasia convergence since Mesozoic time and produced multiple subducted slab fragments in the mantle below Anatolia. These included the north dipping Cyprus and ENE‐dipping Antalya slabs, which are currently separated by an upper mantle slab gap. Segmentation of these slabs, and associated mantle flow, may have contributed to <8 Ma uplift of the Central Anatolian Plateau. The western Central Taurides fold‐thrust belt in southern Turkey is in the upper plate above the Antalya slab and contains a geological record of its subduction. We present the first orogen‐scale balanced cross section of the Taurides and find that it formed in two stages: (1) Cretaceous to middle Eocene thrusting resulted in a minimum of 73‐km shortening, and (2) Mio‐Pliocene thrusting resulted in a minimum of 17.5‐km shortening. Eocene shortening accounts for only ~5 Myr of Africa‐Eurasia plate convergence. It is unlikely that >400 km of post to middle Eocene plate convergence was accommodated between the Taurides and its Beydağları platform foreland and instead must have been accommodated south of Beydağları. The associated southward plate boundary jump separated the Antalya slab from the African plate and the Cyprus slab. The isolated Antalya slab was left in an intraplate setting and is probably still attached to Beydağları today. We suggest the continental composition of the Antalya slab may have prevented its detachment. Finally, the gap between the Antalya and Cyprus slabs existed since at least Eocene time; their decoupling likely did not contribute to late Neogene Central Anatolian Plateau uplift. Key Points The Taurides fold‐thrust belt contains a minimum of 90.5‐km shortening that occurred in Eocence and Mio‐Pliocene phases The Antalya slab has been decoupled from the Cyprus slab and isolated in an upper plate position since Eocene times The Antalya slab consists mostly of continental lithosphere, which may have prevented it from sinking and detaching Eastern Mediterranean subduction accommodated Africa-Eurasia convergence since Mesozoic time and produced multiple subducted slab fragments in the mantle below Anatolia. These included the north dipping Cyprus and ENE-dipping Antalya slabs, which are currently separated by an upper mantle slab gap. Segmentation of these slabs, and associated mantle flow, may have contributed to <8 Ma uplift of the Central Anatolian Plateau. The western Central Taurides fold-thrust belt in southern Turkey is in the upper plate above the Antalya slab and contains a geological record of its subduction. We present the first orogen-scale balanced cross section of the Taurides and find that it formed in two stages: (1) Cretaceous to middle Eocene thrusting resulted in a minimum of 73-km shortening, and (2) Mio-Pliocene thrusting resulted in a minimum of 17.5-km shortening. Eocene shortening accounts for only ~5 Myr of Africa-Eurasia plate convergence. It is unlikely that >400 km of post to middle Eocene plate convergence was accommodated between the Taurides and its Beydağları platform foreland and instead must have been accommodated south of Beydağları. The associated southward plate boundary jump separated the Antalya slab from the African plate and the Cyprus slab. The isolated Antalya slab was left in an intraplate setting and is probably still attached to Beydağları today. We suggest the continental composition of the Antalya slab may have prevented its detachment. Finally, the gap between the Antalya and Cyprus slabs existed since at least Eocene time; their decoupling likely did not contribute to late Neogene Central Anatolian Plateau uplift. Eastern Mediterranean subduction accommodated Africa‐Eurasia convergence since Mesozoic time and produced multiple subducted slab fragments in the mantle below Anatolia. These included the north dipping Cyprus and ENE‐dipping Antalya slabs, which are currently separated by an upper mantle slab gap. Segmentation of these slabs, and associated mantle flow, may have contributed to <8 Ma uplift of the Central Anatolian Plateau. The western Central Taurides fold‐thrust belt in southern Turkey is in the upper plate above the Antalya slab and contains a geological record of its subduction. We present the first orogen‐scale balanced cross section of the Taurides and find that it formed in two stages: (1) Cretaceous to middle Eocene thrusting resulted in a minimum of 73‐km shortening, and (2) Mio‐Pliocene thrusting resulted in a minimum of 17.5‐km shortening. Eocene shortening accounts for only ~5 Myr of Africa‐Eurasia plate convergence. It is unlikely that >400 km of post to middle Eocene plate convergence was accommodated between the Taurides and its Beydağları platform foreland and instead must have been accommodated south of Beydağları. The associated southward plate boundary jump separated the Antalya slab from the African plate and the Cyprus slab. The isolated Antalya slab was left in an intraplate setting and is probably still attached to Beydağları today. We suggest the continental composition of the Antalya slab may have prevented its detachment. Finally, the gap between the Antalya and Cyprus slabs existed since at least Eocene time; their decoupling likely did not contribute to late Neogene Central Anatolian Plateau uplift. |
Author | McPhee, Peter J. Altıner, Demir Hinsbergen, Douwe J. J. |
AuthorAffiliation | 1 Department of Earth Sciences Utrecht University, Vening Meineszgebouw A Utrecht Netherlands 2 Department of Geological Engineering Middle East Technical University Ankara Turkey |
AuthorAffiliation_xml | – name: 2 Department of Geological Engineering Middle East Technical University Ankara Turkey – name: 1 Department of Earth Sciences Utrecht University, Vening Meineszgebouw A Utrecht Netherlands |
Author_xml | – sequence: 1 givenname: Peter J. orcidid: 0000-0002-0039-6901 surname: McPhee fullname: McPhee, Peter J. email: p.j.mcphee@uu.nl organization: Utrecht University, Vening Meineszgebouw A – sequence: 2 givenname: Demir surname: Altıner fullname: Altıner, Demir organization: Middle East Technical University – sequence: 3 givenname: Douwe J. J. orcidid: 0000-0003-3410-0344 surname: Hinsbergen fullname: Hinsbergen, Douwe J. J. organization: Utrecht University, Vening Meineszgebouw A |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/30546194$$D View this record in MEDLINE/PubMed |
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ContentType | Journal Article |
Copyright | 2018. The Authors. 2018. American Geophysical Union. All Rights Reserved. |
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Snippet | Eastern Mediterranean subduction accommodated Africa‐Eurasia convergence since Mesozoic time and produced multiple subducted slab fragments in the mantle below... Eastern Mediterranean subduction accommodated Africa-Eurasia convergence since Mesozoic time and produced multiple subducted slab fragments in the mantle below... Abstract Eastern Mediterranean subduction accommodated Africa‐Eurasia convergence since Mesozoic time and produced multiple subducted slab fragments in the... |
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SubjectTerms | Central Anatolian Plateau Composition Continental Contractional Orogenic Belts and Inversion Tectonics continental subduction Continental Tectonics: Compressional Convergence Cretaceous eastern Mediterranean tectonics Eocene Geochemistry kinematic restoration Marine Geology and Geophysics Mesozoic Mineralogy and Petrology Neogene Obduction Tectonics Plate boundaries Plate convergence Pliocene slab segments Slabs Subduction Subduction Zone Processes Tectonophysics Uplift Upper mantle Volcanology |
Title | First Balanced Cross Section Across the Taurides Fold‐Thrust Belt: Geological Constraints on the Subduction History of the Antalya Slab in Southern Anatolia |
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