Optimization of high-rate TN removal in a novel constructed wetland integrated with microelectrolysis system treating high-strength digestate supernatant

J Environ Manage. 2016 Aug 1:178:42-51. doi: 10.1016/j.jenvman.2016.04.044. Epub 2016 Apr 29.

Abstract

The potential of high-rate TN removal in three aerated horizontal subsurface-flow constructed wetlands to treat high-strength anaerobic digestate supernatant was evaluated. Different strategies of intermittent aeration and effluent recirculation were applied to compare their effect on nitrogen depuration performance. Additional glucose supply and iron-activated carbon based post-treatment systems were established and examined, respectively, to further remove nitrate that accumulated in the effluents from aerated wetlands. The results showed that intermittent aeration (1 h on:1 h off) significantly improved nitrification with ammonium removal efficiency of 90% (18.1 g/(m(2)·d)), but limited TN removal efficiency (53%). Even though effluent recirculation (a ratio of 1:1) increased TN removal from 53% to 71%, the effluent nitrate concentration was still high. Additional glucose was used as a post-treatment option and further increased the TN removal to 82%; however, this implementation caused additional organic pollution. Furthermore, the iron-activated carbon system stimulated with a microelectrolysis process achieved greater than 85% effluent nitrate removal and resulted in 86% TN removal. Considering the high TN removal rate, aerated constructed wetlands integrated with a microelectrolysis-driven system show great potential for treating high-strength digestate supernatant.

Keywords: Anaerobic digestate supernatant; Effluent recirculation; Horizontal flow constructed wetlands; Intermittent aeration; Microelectrolysis system.

MeSH terms

  • Animals
  • Bioreactors*
  • Electrolysis
  • Humans
  • Industrial Waste*
  • Nitrogen / chemistry*
  • Red Meat*
  • Swine
  • Waste Disposal, Fluid / methods*
  • Water Pollutants, Chemical / chemistry*
  • Wetlands

Substances

  • Industrial Waste
  • Water Pollutants, Chemical
  • Nitrogen