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Improving energy efficiency of electrochemical blackwater disinfection through sequential reduction of suspended solids and chemical oxygen demand.

Publication ,  Journal Article
Hawkins, BT; Rogers, TW; Davey, CJ; Stoner, MH; McAdam, EJ; Stoner, BR
Published in: Gates open research
January 2018

Onsite reuse of blackwater requires removal of considerable amounts of suspended solids and organic material in addition to inactivation of pathogens. Previously, we showed that electrochemical treatment could be used for effective pathogen inactivation in blackwater, but was inadequate to remove solids and organics to emerging industry standards. Further, we found that as solids and organics accumulate with repeated recycling, electrochemical treatment becomes less energetically sustainable. Here, we describe a pilot study in which concentrated blackwater is pretreated with ultrafiltration and granular activated carbon prior to electrochemical disinfection, and show that this combination of treatments removes 75-99% of chemical oxygen demand, 92-100% of total suspended solids, and improves the energy efficiency of electrochemical blackwater treatment by an order of magnitude.

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Published In

Gates open research

DOI

EISSN

2572-4754

ISSN

2572-4754

Publication Date

January 2018

Volume

2

Start / End Page

50

Related Subject Headings

  • 42 Health sciences
  • 32 Biomedical and clinical sciences
 

Citation

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Hawkins, B. T., Rogers, T. W., Davey, C. J., Stoner, M. H., McAdam, E. J., & Stoner, B. R. (2018). Improving energy efficiency of electrochemical blackwater disinfection through sequential reduction of suspended solids and chemical oxygen demand. Gates Open Research, 2, 50. https://doi.org/10.12688/gatesopenres.12873.2
Hawkins, Brian T., Tate W. Rogers, Christopher J. Davey, Mikayla H. Stoner, Ewan J. McAdam, and Brian R. Stoner. “Improving energy efficiency of electrochemical blackwater disinfection through sequential reduction of suspended solids and chemical oxygen demand.Gates Open Research 2 (January 2018): 50. https://doi.org/10.12688/gatesopenres.12873.2.
Hawkins BT, Rogers TW, Davey CJ, Stoner MH, McAdam EJ, Stoner BR. Improving energy efficiency of electrochemical blackwater disinfection through sequential reduction of suspended solids and chemical oxygen demand. Gates open research. 2018 Jan;2:50.
Hawkins, Brian T., et al. “Improving energy efficiency of electrochemical blackwater disinfection through sequential reduction of suspended solids and chemical oxygen demand.Gates Open Research, vol. 2, Jan. 2018, p. 50. Epmc, doi:10.12688/gatesopenres.12873.2.
Hawkins BT, Rogers TW, Davey CJ, Stoner MH, McAdam EJ, Stoner BR. Improving energy efficiency of electrochemical blackwater disinfection through sequential reduction of suspended solids and chemical oxygen demand. Gates open research. 2018 Jan;2:50.

Published In

Gates open research

DOI

EISSN

2572-4754

ISSN

2572-4754

Publication Date

January 2018

Volume

2

Start / End Page

50

Related Subject Headings

  • 42 Health sciences
  • 32 Biomedical and clinical sciences