[Biogeochemical processes of the major ions and dissolved inorganic carbon in the Guijiang River].

Wen-Kui Tang, Zhen Tao, Quan-Zhou Gao, Hai-Ruo Mao, Guang-Hui Jiang, Shu-Lin Jiao, Xiong-Bo Zheng, Qian-Zhu Zhang, Zan-Wen Ma
Author Information

Abstract

Within the drainage basin, information about natural processes and human activities can be recorded in the chemical composition of riverine water. The analysis of the Guijiang River, the first level tributary of the Xijiang River, demonstrated that the chemical composition of water in the Guijiang River was mainly influenced by the chemical weathering of carbonate rocks within the drainage basin, in which CO2 was the main erosion medium, and that the weathering of carbonate rock by H2SO4 had a remarkable impact on the water chemical composition in the Guijiang River. Precipitation, human activities, the weathering of carbonate rocks and silicate rocks accounted for 2.7%, 6.3%, 72.8% and 18.2% of the total dissolved load, respectively. The stable isotopic compositions of dissolved inorganic carbon (delta13C(DIC)) indicated that DIC in the Guijiang River had been assimilated by the phytoplankton in photosynthesis. The primary production of phytoplankton contributed to 22.3%-30.9% of particulate organic carbon (POC) in the Guijiang River, which implies that phytoplankton can transform DIC into POC by photosynthesis, and parts of POC will sink into the bottom of the river in transit, which leads into the formation of burial organic carbon.

MeSH Term

Carbon
Carbon Isotopes
Carbon Sequestration
China
Environmental Monitoring
Ions
Organic Chemicals
Rivers
Water Pollutants, Chemical

Chemicals

Carbon Isotopes
Ions
Organic Chemicals
Water Pollutants, Chemical
Carbon

Word Cloud

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