Literature DB >> 29857323

Direct oxygen uptake from air by novel glycogen accumulating organism dominated biofilm minimizes excess sludge production.

Md Iqbal Hossain1, Andrea Paparini2, Ralf Cord-Ruwisch3.   

Abstract

The cost associated with treatment and disposal of excess sludge produced is one of the greatest operational expenses in wastewater treatment plants. In this study, we quantify and explain greatly reduced excess sludge production in the novel glycogen accumulating organism (GAO) dominated drained biofilm system previously shown to be capable of extremely energy efficient removal of organic carbon (biological oxygen demand or BOD) from wastewater. The average excess sludge production rate was 0.05 g VSS g-1 BOD (acetate) removed, which is about 9-times lower than that of comparative studies using the same acetate based synthetic wastewater. The substantially lower sludge yield was attributed to a number of features such as the high oxygen consumption facilitated by direct oxygen uptake from air, high biomass content (21.41 g VSS L-1 of reactor), the predominance of the GAO (Candidatus competibacter) with a low growth yield and the overwhelming presence of the predatory protozoa (Tetramitus) in the biofilm. Overall, the combination of low-energy requirement for air supply (no compressed air supply) and the low excess sludge production rate, could make this novel "GAO drained biofilm" process one of the most economical ways of biological organic carbon removal from wastewater.
Copyright © 2018 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Biofilm; Excess sludge reduction; Microbial community analysis; Protozoa; Wastewater treatment

Mesh:

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Year:  2018        PMID: 29857323     DOI: 10.1016/j.scitotenv.2018.05.292

Source DB:  PubMed          Journal:  Sci Total Environ        ISSN: 0048-9697            Impact factor:   7.963


  1 in total

1.  Dual Effect of Acetic Acid Efficiently Enhances Sludge-Based Biochar to Recover Uranium From Aqueous Solution.

Authors:  Shoufu Yu; Xiaoyan Wu; Jian Ye; Mi Li; Qiucai Zhang; Xiaowen Zhang; Chunxue Lv; Wenjie Xie; Keyou Shi; Yong Liu
Journal:  Front Chem       Date:  2022-02-22       Impact factor: 5.221

  1 in total

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