Enhanced Simultaneous Nitrogen and Phosphorus Removal in A Denitrifying Biological Filter Using Waterworks Sludge Ceramsite Coupled with Iron-Carbon

Int J Environ Res Public Health. 2019 Jul 24;16(15):2646. doi: 10.3390/ijerph16152646.

Abstract

In this study, waterworks sludge ceramsite (WSC) was combined with 3% iron-carbon matrix in a denitrifying biological filter (ICWSC-DNBF) to enhance the simultaneous removal of carbon, nitrogen and phosphorus in secondary effluent of wastewater treatment plant (SE-WTP). The chemical oxygen demand (COD) and nitrogen removal, as well as phosphorus removal and the adsorbed forms of phosphorus were measured and the removal mechanism of these pollutants by the ICWSC-DNBF system for treating SE-WTP were investigated. The results showed that the ICWSC-DNBF achieved good removals of COD, NH4+-N, NO3--N, total N and total P; effluent concentrations were 17.23 mg/L, 3.72 mg/L, 14.32 mg/L, 17.38 mg/L and 0.82 mg/L, respectively. WSC enhanced the P removal due to its high specific surface area and the high number of adsorption sites. Fe-P and Al-P were the main forms of P adsorbed by WSC, accounting for 78.53% of the total adsorbed P. WSC coupled with Fe and C improved the biodegradability of SE-WTP and promoted the removal of organic matter. The removal of N was attributed to the abundant denitrifying microorganisms in the system and the electrochemical effect produced by the internal electrolysis of Fe and C.

Keywords: Waterworks sludge ceramsite; denitrifying biological filter; iron-carbon internal electrolysis; nitrogen and phosphorus removal; secondary effluent.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Biological Oxygen Demand Analysis
  • Bioreactors
  • Carbon*
  • Complex Mixtures*
  • Denitrification
  • Electrolysis
  • Iron*
  • Nitrogen / metabolism*
  • Phosphorus / metabolism*
  • Sewage
  • Waste Disposal, Fluid / methods*
  • Water Pollutants, Chemical / metabolism*

Substances

  • Complex Mixtures
  • Sewage
  • Water Pollutants, Chemical
  • ceramsite
  • Phosphorus
  • Carbon
  • Iron
  • Nitrogen