Abstract
AbstractTo estimate a watershed’s response to climate change, it is crucial to understand how human activities and climatic extremes have interacted over time. Over the last century, the Zarivar Lake watershed, Iran, has been subjected to various anthropogenic activates, including deforestation and inappropriate land-management practices alongside the implementation of conservation measures like check dams. To understand the effects of these changes on the magnitude of sediment, organic carbon (OC), and phosphorus supplies in a small sub-watershed connected to the lake over the last century, a lake sediment core was dated using 210Pbex and 137Cs as geochronometers. The average mass accumulation rate (MAR), organic carbon accumulation rates (OCAR), and particulate phosphorus accumulation rates (PPAR) of the sediment core were determined to be 6498 ± 2475, 205 ± 85, and 8.9 ± 3.3 g m−2 year−1, respectively. Between the late 1970s and early 1980s, accumulation rates were significantly higher than their averages at 7940 ± 3120, 220 ± 60, and 12.0 ± 2.8 g m−2 year−1 respectively. During this period, the watershed underwent extensive deforestation (12%) on steep slopes, coinciding with higher mean annual precipitations (more than double). Conversely, after 2009, when check dams were installed in the sub-watershed, the sediment load to the lake became negligible. The results of this research indicate that anthropogenic activities had a pronounced effect on MAR, OCAR, and PPAR, causing them to fluctuate from negligible amounts to values twice the averages over the last century, amplified by climatic factors. These results imply that implementing climate-smart watershed management strategies, such as constructing additional check dams and terraces, reinforcing restrictions on deforestation, and minimum tillage practices, can facilitate protection of lacustrine ecosystems under accelerating climate change conditions.
Graphical Abstract
Funder
International Atomic Energy Agency
Publisher
Springer Science and Business Media LLC
Reference87 articles.
1. Anderson, N. J., D’andrea, W., & Fritz, S. C. (2009). Holocene carbon burial by lakes in SW Greenland. Global Change Biology, 15(11), 2590–2598. https://doi.org/10.1111/j.1365-2486.2009.01942.x
2. Anderson, N. J., Dietz, R. D., & Engstrom, D. R. (2013). Land-use change, not climate, controls organic carbon burial in lakes. Proceedings of the Royal Society b: Biological Sciences, 280(1769), 2013–1278. https://doi.org/10.1098/rspb.2013.1278
3. Appleby, P. G. (2001). Chronostratigraphic techniques in recent sediments. In W. M. Last & J. P. Smol (Eds.), Tracking environmental change using lake sediments volume 1: Basin analysis, coring, and chronological techniques (pp. 171–203). Kluwer Academic.
4. Appleby, P. G. (2008). Three decades of dating recent sediments by fallout radionuclides: A review. Holocene, 18(1), 83–93. https://doi.org/10.1177/0959683607085598
5. Appleby, P. G., & Oldfield, F. (1978). The calculation of lead-210 dates assuming a constant rate of supply of unsupported 210Pb to the sediment. CATENA, 5(1), 1–8. https://doi.org/10.1016/S0341-8162(78)80002-2