The Microbial Synergy and Response Mechanisms of Hydrolysis-Acidification Combined Microbial Electrolysis Cell System with Stainless-Steel Cathode for Textile-Dyeing Wastewater Treatment

43 Pages Posted: 28 Jul 2022

See all articles by Jiawei Xie

Jiawei Xie

Tongji University

Xinyi Zou

affiliation not provided to SSRN

Yaofeng Chang

affiliation not provided to SSRN

Junxiang Xie

Tongji University

He Liu

Jiangnan University

Min-Hua Cui

Jiangnan University

Tian C. Zhang

University of Nebraska at Lincoln

Chongjun Chen

Suzhou University of Science & Technology - School of Environmental Science and Engineering

Abstract

Microbial electrolysis cell (MEC) has been existing problems such as poor applicability to real wastewater and lack of cost-effective electrode materials in the practical application of refractory wastewater. A hydrolysis-acidification combined MEC system (HAR-MECs) with four inexpensive stainless-steel and conventional carbon cloth cathodes for the treatment of real textile-dyeing wastewater, which was fully evaluated the technical feasibility in terms of parameter optimization, spectral analysis, succession and cooperative/competition effect of microbial. Results showed that the optimum performance was achieved with a 12 h hydraulic retention time (HRT) and an applied voltage of 0.7 V in the HAR-MEC system with a 100 μm aperture stainless-steel mesh cathode (SSM-100 μm), and the associated optimum BOD5/COD improvement efficiency (74.75 ± 4.32%) and current density (5.94 ± 0.03 A·m-2) were increased by 30.36% and 22.36% compared to a conventional carbon cloth cathode. The optimal system had effective removal of refractory organics and produced small molecules by electrical stimulation. The HAR segment could greatly alleviate the imbalance between electron donors and electron acceptors in the real refractory wastewater and reduce the treatment difficulty of the MEC segment, while the MEC system improved wastewater biodegradability, amplified the positive and specific interactions between degraders, fermenters and electroactive bacteria due to the substrate complexity. The SSM-100 μm-based system constructed by phylogenetic molecular ecological network (pMEN) exhibited moderate complexity and significantly strong positive correlation between electroactive bacteria and fermenters. It is highly feasible to use HAR-MEC with inexpensive stainless-steel cathode for textile-dyeing wastewater treatment.

Keywords: Hydrolysis acidification, Microbial electrolysis cell, Textile-dyeing wastewater, Stainless-steel material, Biodegradability, microbial community

Suggested Citation

Xie, Jiawei and Zou, Xinyi and Chang, Yaofeng and Xie, Junxiang and Liu, He and Cui, Min-Hua and Zhang, Tian C. and Chen, Chongjun, The Microbial Synergy and Response Mechanisms of Hydrolysis-Acidification Combined Microbial Electrolysis Cell System with Stainless-Steel Cathode for Textile-Dyeing Wastewater Treatment. Available at SSRN: https://ssrn.com/abstract=4174980 or http://dx.doi.org/10.2139/ssrn.4174980

Jiawei Xie

Tongji University ( email )

Xinyi Zou

affiliation not provided to SSRN ( email )

No Address Available

Yaofeng Chang

affiliation not provided to SSRN ( email )

No Address Available

Junxiang Xie

Tongji University ( email )

He Liu

Jiangnan University ( email )

1800 Lihu Ave.
Wuxi, 214122
China

Min-Hua Cui

Jiangnan University ( email )

1800 Lihu Ave.
Wuxi, 214122
China

Tian C. Zhang

University of Nebraska at Lincoln ( email )

730 N. 14th Street

Chongjun Chen (Contact Author)

Suzhou University of Science & Technology - School of Environmental Science and Engineering ( email )

China

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