Bio-geochemical evolution and critical element mineralization in the Cretaceous-Cenozoic coals from the southern Far East Russia and northeastern China

Биогеохимическая эволюция и минерализация критических элементов в углях мелового–кайнозойского возраста южной части Дальнего Востока России и Северо-Восточного Китая
Victor P. Nechaev, Achim Bechtel, Shifeng Dai, I. Yu. Chekryzhov, B. I. Pavlyutkin, S. V. Vysotskiy, Alexander V. Ignatiev, T. A. Velivetskaya, Wenmu Guo, Irina A. Tarasenko, Evgeniya V. Nechaeva, David French, James C. Hower
2020-04-16

Cretaceous-Cenozoic coalscritical element mineralizationgeodynamic evolutionorganic matter-mediated metal mobilityrare earth elements and Y
A total of 23 coal and two carbonaceous shale samples of the Early Cretaceous-Miocene, collected from different basins in the Primorye and Sakhalin regions of Russia, and the Hunchun basin of northeastern China, were used in this study for determination of major oxides (by AES and XRF), trace elements (by ICP-MS), sulfur, carbon, carbon isotopes, and major components of extractable organic matter (wet-chemical and gas-chromatographic analyses). Interpretation of the obtained data was intended to elucidate geodynamic and other geological processes controlling bio-geochemical compositions and critical element mineralization of the studied coals. The data suggest that inorganic matter in the studied coals was derived mainly from the Paleozoic granites and the Cenozoic felsic and intermediate tuffs. The Early Eocene and, in particular, Oligocene epochs represent the two major mineralization events in the regions, resulting in enrichment of Ge, W, Be, Mo, Sb, Sr, Ba, REY (rare earth elements and Y), Th, and U in the coals. The two events were related respectively to the Indo-Eurasian collision followed by plate reorganization in the Pacific and the opening of the Sea of Japan. The geodynamic changes were probably associated with mantle-derived volcanic activity and intensive degassing, which enhanced the capability of surficial and ground waters to leach and redistribute trace metals. Organic matter played a significant role in the system of mineralization, starting from weathering of source rocks and ending at the coal diagenetic stage. Organic acids significantly accelerated leaching and transportation of the metals, while they, together with sulfate-reducing bacteria, kerogen, alcohols + ketones, and n-alkanols in particular, played an important role in metal precipitation, mainly through reactions of cation exchange and adsorption.
1
Early Eocene and Oligocene mineralization events enriched the coals in Ge, W, Be, Mo, Sb, Sr, Ba, REY, Th, and U.
2
Mantle-derived volcanism and intensive degassing likely enhanced water-mediated leaching and redistribution of trace metals.
3
Organic acids promoted metal leaching and transport, while sulfate-reducing bacteria, kerogen, alcohols, ketones, and n-alkanols facilitated precipitation through cation exchange and adsorption.
4
The studied coals’ inorganic matter was derived mainly from Paleozoic granites and Cenozoic felsic to intermediate volcanic tuffs.
5
These mineralization events were linked to Indo-Eurasian collision-related plate reorganization and subsequent opening of the Sea of Japan.

Cretaceous–Cenozoic coals and carbonaceous shales from the Primorye and Sakhalin regions of Russia and the Hunchun Basin of northeastern China

Bio-geochemical evolution and the geological, geodynamic, and organic-matter controls on critical-element mineralization, including trace-metal enrichment, leaching, transport, and precipitation

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2020-04-16
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Victor P. Nechaev
Achim Bechtel
Shifeng Dai
I. Yu. Chekryzhov
B. I. Pavlyutkin
S. V. Vysotskiy
Alexander V. Ignatiev
T. A. Velivetskaya
Wenmu Guo
Irina A. Tarasenko
Evgeniya V. Nechaeva
David French
James C. Hower
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