Sedimentation in the Makran active margin is governed by a complex interaction of atmospheric, tectonics, and hydrodynamic setting of the northern flank of the Gulf of Oman. The mixed clastic carbonate sediments in the tectonically and hydrodynamically active environment have complicated the distribution pattern. The region is suffering from basic sedimentological data, and specifically, the sedimentation history of the Holocene deposits has been rarely studied in the Iranian coast. To deal with this deficiency, surface and core sediment samples from the Iranian continental shelf and upper slope of the Gulf of Oman have been studied using standard sedimentological techniques. The overall sediment distribution pattern demonstrates that the grain size gradually decreases from the shoreline to the deeper zones. However, some medium- to coarse-grained sand patches can be found in the deeper parts, especially in the middle part of the studied area that can be related to sediment supply of ephemeral rivers discharging into the sea in rainy seasons and (or) high-energy events (i.e., turbidites and tsunamis during the Holocene). Several horizons of the coarse-grained detrital sediments are detectable in the upper slope sediment cores. The coarse-grained materials are received from the hinterland during flash floods and could be accumulated due to mass wasting events. The elevated amount of organic materials in the upper slope indicates a deficit of dissolved oxygen that leads to preservation of organic materials in the bottom sediments.
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Research Article|
December 11, 2018
Makran continental margin sedimentation during the Late Holocene Available to Purchase
H.A.K. Lahijani;
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
Corresponding author: H.A.K. Lahijani (email: [email protected]).
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S. Amjadi;
S. Amjadi
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
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M. Pourkerman;
M. Pourkerman
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
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A. Naderi;
A. Naderi
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
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M. Hosseindoost;
M. Hosseindoost
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
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P. Habibi
P. Habibi
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
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Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
S. Amjadi
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
M. Pourkerman
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
A. Naderi
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
M. Hosseindoost
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
P. Habibi
Iranian National Institute for Oceanography and Atmospheric Science, No. 3, Etemadzadeh St., Fatemi Ave., Tehran, Iran.
Corresponding author: H.A.K. Lahijani (email: [email protected]).
Publisher: Canadian Science Publishing
Received:
12 May 2018
Accepted:
30 Aug 2018
First Online:
07 Apr 2020
Online ISSN: 1480-3313
Print ISSN: 0008-4077
Published by NRC Research Press
Canadian Journal of Earth Sciences (2019) 56 (6): 629–636.
Article history
Received:
12 May 2018
Accepted:
30 Aug 2018
First Online:
07 Apr 2020
Citation
H.A.K. Lahijani, S. Amjadi, M. Pourkerman, A. Naderi, M. Hosseindoost, P. Habibi; Makran continental margin sedimentation during the Late Holocene. Canadian Journal of Earth Sciences 2018;; 56 (6): 629–636. doi: https://doi.org/10.1139/cjes-2018-0087
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Index Terms/Descriptors
- absolute age
- alkali metals
- Arabian Sea
- Asia
- C-14
- carbon
- Cenozoic
- cesium
- continental margin
- cores
- Cs-137
- Gulf of Oman
- Holocene
- Indian Ocean
- Iran
- isotopes
- lead
- lithostratigraphy
- Makran
- marine environment
- marine sedimentation
- marine sediments
- metals
- Middle East
- paleoenvironment
- Pb-210
- Quaternary
- radioactive isotopes
- sedimentation
- sedimentation rates
- sediments
- shelf environment
- slope environment
- turbidite
- upper Holocene
Latitude & Longitude
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