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Anthropogenic and climatic influences on carbon fluxes from eastern North America to the Atlantic Ocean: A process‐based modeling study

溶解有机碳 环境科学 碳通量 沉积(地质) 碳纤维 海洋学 总有机碳 碳循环 焊剂(冶金) 温室气体 气候学 大气科学 地质学 环境化学 生态学 生态系统 化学 沉积物 生物 复合数 古生物学 复合材料 有机化学 材料科学
作者
Hanqin Tian,Qichun Yang,Raymond G. Najjar,Wei Ren,Marjorie A. M. Friedrichs,Charles S. Hopkinson,Shufen Pan
出处
期刊:Journal Of Geophysical Research: Biogeosciences [Wiley]
卷期号:120 (4): 757-772 被引量:88
标识
DOI:10.1002/2014jg002760
摘要

Abstract The magnitude, spatiotemporal patterns, and controls of carbon flux from land to the ocean remain uncertain. Here we applied a process‐based land model with explicit representation of carbon processes in streams and rivers to examine how changes in climate, land conversion, management practices, atmospheric CO 2 , and nitrogen deposition affected carbon fluxes from eastern North America to the Atlantic Ocean, specifically the Gulf of Maine (GOM), Middle Atlantic Bight (MAB), and South Atlantic Bight (SAB). Our simulation results indicate that the mean annual fluxes (±1 standard deviation) of dissolved organic carbon (DOC), particulate organic carbon (POC), and dissolved inorganic carbon (DIC) in the past three decades (1980–2008) were 2.37 ± 0.60, 1.06 ± 0.20, and 3.57 ± 0.72 Tg C yr −1 , respectively. Carbon export demonstrated substantial spatial and temporal variability. For the region as a whole, the model simulates a significant decrease in riverine DIC fluxes from 1901 to 2008, whereas there were no significant trends in DOC or POC fluxes. In the SAB, however, there were significant declines in the fluxes of all three forms of carbon, and in the MAB subregion, DIC and POC fluxes declined significantly. The only significant trend in the GOM subregion was an increase in DIC flux. Climate variability was the primary cause of interannual variability in carbon export. Land conversion from cropland to forest was the primary factor contributing to decreases in all forms of C export, while nitrogen deposition and fertilizer use, as well as atmospheric CO 2 increases, tended to increase DOC, POC, and DIC fluxes.

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