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Kuh-e Mond Field

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Journal Article
Published: 01 January 2013
Russ. Geol. Geophys. (2013) 54 (1): 64–81.
...Z. Shariatinia; M. Haghighi; S. Feiznia; A.H. Alizai; G. Levresse Abstract Kuh-e Mond Field is a conventional heavy oil resource in the Zagros foreland Basin, Iran, produced from the fractured carbonates partially filled by dolomite, calcite, and anhydrite cement. Vitrinite reflectance data from...
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Geographic location of the Kuh-e Mond heavy oil field. KZ, Kazerun Fault Zone.
Published: 01 January 2013
Fig. 1. Geographic location of the Kuh-e Mond heavy oil field. KZ, Kazerun Fault Zone.
Image
Field-scale facies model reconstructed for the Upper carbonates system in the Kuh-e Mond Oilfield. Twelve facies types are recognized in this environment that juxtaposed along the peritidal to off-shoal settings. Within the shallower part of this carbonate ramp, five main facies belts can be distinguished. The whole depositional realm was clearly above the fair weather wave base. Also shown is the schematic depositional facies model, based on the cores and thin sections, together with the idealized sequences for this environment. Peritidal and lagoon facies in which extensive dolomitization, anhydrite cementation and nodule formation occur. 1, limestone; 2, dolostone; 3, dolomitestone; 4, limy dolostone; 5, shale; 6, anhydrite/gypsum; 7, argillaceous limestone; 8, planctonic foraminifera; 9, Lepidocyclina; 10, Rotalids; 11, echinoids; 12, Discocyclina.
Published: 01 January 2013
Fig. 3. Field-scale facies model reconstructed for the Upper carbonates system in the Kuh-e Mond Oilfield. Twelve facies types are recognized in this environment that juxtaposed along the peritidal to off-shoal settings. Within the shallower part of this carbonate ramp, five main facies belts can
Journal Article
Journal: Geosphere
Published: 21 November 2019
Geosphere (2020) 16 (1): 62–81.
... Survey of Iran for assistance in the field and E. Delairis, O. Boudouma, M. Fialin, N. Rividi, and D. Deldicque for technical and analytical support. Special thanks to S. Guillot, J. Escartín, F. Rossetti, F. Meneghini, L. Jolivet, and to the ZIP and E-FIRE scientists for insightful discussions...
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Journal Article
Published: 01 June 1972
Bulletin of the Seismological Society of America (1972) 62 (3): 823–850.
... andesite to olvine-basalt (St~icklin, 1968). There are three Quaternary vol- canoes and one active volcano (known as Kuh-e-Taftan by local people) within the southern boundary. A line of earthquakes with focal depths between 50 to 150 km marks this southern boundary. The southwestern end of the boundary...
Journal Article
Published: 01 August 2011
Petroleum Geoscience (2011) 17 (3): 223–241.
... modelling at Kuh-E Mond, SW Iran . Journal of Petroleum Geology , 26 , 451 – 464 . Lambert L. Durlet C. Loreau J-P. Marnier G. 2006 . Burial dissolution of micrite in Middle East carbonate reservoirs (Jurassic–Cretaceous): keys for recognition and timing . Marine...
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Journal Article
Journal: AAPG Bulletin
Published: 15 June 2021
AAPG Bulletin (2021) 105 (6): 1149–1198.
... field * • Halegan field * • Hamoon field * • Homa field * • Irandahr field * • Kabir Kuh field * • Kangan field * • Kish field * • Kuh-e-Mond field * • Lavan field * • Nar field * • North Pars field * • Rashadat field...
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Journal Article
Journal: GeoArabia
Publisher: Gulf Petrolink
Published: 01 October 2014
GeoArabia (2014) 19 (4): 17–54.
... . Kamali , M.R. and M.R. Rezaee 2003 . Burial history reconstruction and thermal modelling at Kuh-E Mond, SW Iran . Journal of Petroleum Geology , v. 26 , p. 451 – 464 . Kirmaci , M.Z. 2008 . Dolomitization...
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