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http://hdl.handle.net/11189/8916| Title: | Predictive capability of response surface methodology and cybernetic models for cyanogenic simultaneous nitrification and aerobic denitrification facilitated by cyanide-resistant bacteria | Authors: | Mpongwana, Ncumisa Ntwampe, Seteno Karabo Obed Razanamahandry, Lovasoa Christine Chidi, Boredi Silas Omodanisi, Elizabeth Ife |
Keywords: | Aerobic denitrification;cybernetic model;free cyanide;nitrification;response surface methodology (RSM);simultaneous nitrification;aerobic denitrification (SNaD) | Issue Date: | 2021 | Publisher: | Korean Society of Environmental Engineers | Source: | Mpongwana, N., Ntwampe, S.K.O., Razanamahandry, L.C. et al. 2021. Predictive capability of response surface methodology and cybernetic models for cyanogenic simultaneous nitrification and aerobic denitrification facilitated by cyanide-resistant bacteria. Environmental Engineering Research, 26(6): 1-9. [https://doi.org/10.4491/eer.2020.346] | Journal: | Environmental Engineering Research | Abstract: | Free cyanide (CN⁻) is a threat to metabolic functions of the microbial population used for the treatment of wastewater, particularly, total nitrogen removal (TN) consortia which gets inhibited by CN⁻ in wastewater treatment plants (WWTPs). Many other methods are used to treat CN⁻ prior to the TN removal stages; however, these methods increase the operational cost of the WWTPs. The capability of a microbial population to use multiple substrates is critical in WWTP and in eliminating inhibition associated with CN⁻. Previously, cyanide resistant bacteria were used to eliminate the inhibitory effect of CN⁻ towards simultaneous nitrification and aerobic denitrification (SNaD). However, a study to predict the degradation efficiency of the microorganism was required. In this study, response surface methodology (RSM) and cybernetic models were used to predict and optimize SNaD performance for TN removal under CN⁻ conditions. Physiological parameters influencing the SNaD were pH 6.5 and 36.5ᵒC, with TN and CN⁻ degradation efficiency of 78.6 and 80.2%, respectively. These results show a complete elimination of the CN⁻ inhibitory effect towards SNaD and show the prediction ability of both RSM and the cybernetic models used. These results exhibited a promising solution in the control, management, and optimization of SNaD. | URI: | http://hdl.handle.net/11189/8916 | ISSN: | 2005-968X 1226-1025 |
DOI: | https://doi.org/10.4491/eer.2020.346 |
| Appears in Collections: | Appsc - Journal Articles (DHET subsidised) |
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| File | Description | Size | Format | |
|---|---|---|---|---|
| Predictive_capability_response_surface_methodology.pdf | 1.23 MB | Adobe PDF | View/Open |
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