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Updated: Aug 5, 2026

Visualization of Productivity Zones Based on Nitrogen Mass Balance Model in Narragansett Bay, Rhode Island
Published on: July 14, 2023
Nutrient emission policies for multiple clean emissions goals based on water elemental balance
Yuxin Tian1, Zhaohui Song1, Xianghong Guan1
1School of Environment and Energy, South China University of Technology, Guangzhou, Guangdong, 510006, PR China.
None:
China has substantially improved wastewater collection and concentration-based control of total nitrogen and total phosphorus, yet nutrient stoichiometric imbalance remains a persistent pressure on river basins. This study developed a national-scale C:N:P stoichiometric assessment of nutrient generation, wastewater discharge, and receiving-water conditions within the coupled social-natural water cycle. Literature-derived wastewater data from 450 publications, provincial wastewater and socio-environmental statistics from 2001 to 2023, and 9.86 million receiving-water monitoring records from 1705 national control stations during 2015-2024 were harmonized under a unified C(CODeq):N(TN):P(TP) framework. The C:N:P ratio shifted from [(354.07 ± 121.33):(10.84 ± 1.85):1] in wastewater influent to [(73.44 ± 26.52):(10.10 ± 2.53):1] in effluent, whereas receiving waters showed [(136.30 ± 51.24):(75.15 ± 48.15):1]. This pattern indicates stronger removal of COD-equivalent organic matter than nitrogen and phosphorus, resulting in carbon-limited effluent and residual nitrogen-phosphorus enrichment. Nitrogen imbalance was mainly associated with agricultural irrigation (32.4%) and water-resource quantity (25.2%), while phosphorus imbalance was dominated by water consumption (32.5%), population pressure (21.3%), and water-resource quantity (21.2%). These findings reveal a stoichiometric feedback pathway from the social water cycle to the natural water cycle, whereby effluent with treatment-altered C:N:P stoichiometry enters receiving waters and may reshape nutrient-limitation conditions not fully captured by individual pollutant concentrations. Incorporating stoichiometric assessment alongside concentration- and load-based regulation therefore provides an additional management dimension for aligning treated-effluent quality with receiving-water ecological conditions and supporting region-specific watershed nutrient management.
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