布鲁姆
浮游植物
水华
背景(考古学)
环境科学
生态学
浊度
气候变化
联轴节(管道)
产量(工程)
蓝藻
全球变化
海洋学
气候学
大气科学
全球变暖
作者
Wei Zou,Boqiang Qin,HJ Xu,Hans W. Paerl,Yunlin Zhang,Zhixu Wu,Mengyuan Zhu,Guangwei Zhu
出处
期刊:ACS ES&T water
[American Chemical Society]
日期:2026-06-11
卷期号:6 (7): 4340-4349
标识
DOI:10.1021/acsestwater.6c00152
摘要
Abnormal phytoplankton proliferation is increasingly observed in nutrient-poor lakes, yet studies focusing on severe blooms defined by absolute cell-density thresholds remain limited. Through 4 years of high-frequency monitoring in the deep and overall nutrient-poor Lake Qiandaohu, China, we documented recurrent blooms with cyanobacterial densities exceeding 2 × 10 7 cells/L (peaking >4 × 10 7 cells/L) in its river-lake transition zone. We propose a Liebig–Blackman sequential constraint-alleviation framework to mechanistically explain these events. Rainstorms first alleviate Liebig-type final yield limitation by supplying nitrogen and phosphorus, thereby increasing the attainable cyanobacterial density ceiling for ∼30 days. Subsequent heatwaves, coupled with poststorm declines in turbidity and flow, alleviate Blackman-type growth rate limitation, thereby favoring rapid cyanobacterial accumulation. The temporal overlap of these two switches forms a critical “bloom window” that enables cyanobacterial densities to rapidly reach severe levels. A mechanism-informed forecasting model, integrating lagged rainfall, current hydrology and water quality, and future short-term meteorological data, achieved good predictive accuracy ( R 2 = 0.60–0.95). This transferable mechanism is particularly important in the context of the rapid global expansion of deep drinking-water reservoirs and the increasing occurrence of storm–heatwave coupling under climate change, offering a general framework for understanding bloom risk in river–lake transition zones in oligotrophic lakes and reservoirs.
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