Identifying external nutrient reduction requirements and potential in the hypereutrophic Lake Taihu Basin, China

Environ Sci Pollut Res Int. 2018 Apr;25(10):10014-10028. doi: 10.1007/s11356-018-1250-9. Epub 2018 Jan 29.

Abstract

Reducing external nutrient loads is the first step for controlling eutrophication. Here, we identified external nutrient reduction requirements and potential of strategies for achieving reductions to remediate a eutrophic water body, Lake Taihu, China. A mass balance approach based on the entire lake was used to identify nutrient reduction requirements; an empirical export coefficient approach was introduced to estimate the nutrient reduction potential of the overall program on integrated regulation of Taihu Lake Basin (hereafter referred to as the "Guideline"). Reduction requirements included external total nitrogen (TN) and total phosphorus (TP) loads, which should be reduced by 41-55 and 25-50%, respectively, to prevent nutrient accumulation in Lake Taihu and to meet the planned water quality targets. In 2010, which is the most seriously polluted calendar year during the 2008-2014 period, the nutrient reduction requirements were estimated to be 36,819 tons of N and 2442 tons of P, and the potential nutrient reduction strategies would reduce approximately 25,821 tons of N and 3024 tons of P. Since there is a net N remaining in the reduction requirements, it should be the focus and deserves more attention in identifying external nutrient reduction strategies. Moreover, abatement measures outlined in the Guideline with high P reduction potential required large monetary investments. Achieving TP reduction requirement using the cost-effective strategy costs about 80.24 million USD. The design of nutrient reduction strategies should be enacted according to regional and sectoral differences and the cost-effectiveness of abatement measures.

Keywords: An entire lake; Eutrophication; Nutrient; Reduction cost; Reduction potential; Reduction requirements; The overall program on integrated regulation of Taihu Lake Basin.

MeSH terms

  • China
  • Environmental Monitoring*
  • Eutrophication
  • Lakes*
  • Nitrogen / analysis*
  • Phosphorus / analysis*
  • Water Pollutants, Chemical / analysis*
  • Water Quality

Substances

  • Water Pollutants, Chemical
  • Phosphorus
  • Nitrogen