Process optimization for microcystin-LR degradation by Response Surface Methodology and mechanism analysis in gas-liquid hybrid discharge system

J Environ Manage. 2016 Dec 1;183(Pt 3):726-732. doi: 10.1016/j.jenvman.2016.09.030. Epub 2016 Sep 15.

Abstract

A gas-liquid hybrid discharge system was applied to microcystin-LR (MC-LR) degradation. MC-LR degradation was completed after 1 min under a pulsed high voltage of 16 kV, gas-liquid interface gap of 10 mm and oxygen flow rate of 160 L/h. The Box-Behnken Design was proposed in Response Surface Methodology to evaluate the influence of pulsed high voltage, electrode distance and oxygen flow rate on MC-LR removal efficiency. Multiple regression analysis, focused on multivariable factors, was employed and a reduced cubic model was developed. The ANOVA analysis shows that the model is significant and the model prediction on MC-LR removal was also validated with experimental data. The optimum conditions for the process are obtained at pulsed voltage of 16 kV, gas-liquid interface gap of 10 mm and oxygen flow rate of 120 L/h with ta removal efficiency of MC-LR of 96.6%. The addition of catalysts (TiO2 or Fe2+) in the gas-liquid hybrid discharge system was found to enhance the removal of MC-LR. The intermediates of MC-LR degradation were analyzed by liquid chromatography/mass spectrometry. The degradation pathway proposed envisaged the oxidation of hydroxyl radicals and ozone, and attack of high-energy electrons on the unsaturated double bonds of Adda and Mdha, with MC-LR finally decomposing into small molecular products.

Keywords: Catalysts addition; Degradation pathway; Gas–liquid hybrid discharge; Microcystin-LR degradation; Multivariable optimization.

MeSH terms

  • Analysis of Variance
  • Catalysis
  • Chromatography, Liquid / methods
  • Hydrogen Peroxide / chemistry
  • Hydroxyl Radical / chemistry
  • Iron / chemistry
  • Marine Toxins
  • Mass Spectrometry / methods
  • Microcystins / chemistry*
  • Oxidation-Reduction
  • Ozone / chemistry
  • Regression Analysis
  • Titanium / chemistry
  • Water Pollutants, Chemical / chemistry
  • Water Purification / methods*

Substances

  • Marine Toxins
  • Microcystins
  • Water Pollutants, Chemical
  • titanium dioxide
  • Hydroxyl Radical
  • Ozone
  • Hydrogen Peroxide
  • Titanium
  • Iron
  • cyanoginosin LR