Ying An, Yanhua Xu, Chen Tang, Xingzhi Du, Zihang Ma, Rui Tang, Bin Zhou, Zhan Qiu, Zhen Zhou
{"title":"混凝-活性焦炭吸附法提高城市污水中有机物浓度,提高碳捕获和厌氧产甲烷效率","authors":"Ying An, Yanhua Xu, Chen Tang, Xingzhi Du, Zihang Ma, Rui Tang, Bin Zhou, Zhan Qiu, Zhen Zhou","doi":"10.1016/j.cej.2025.159853","DOIUrl":null,"url":null,"abstract":"Up-concentration of organic matter plays a crucial role in recovering carbon resources and energy from municipal wastewater, and the capture of dissolved organic matter during coagulation process is essential for enhancing carbon separation and recovery efficiency. In this study, we employed active coke adsorption combined with ferric chloride (FeCl<sub>3</sub>) coagulation process to enhance organic matter capture efficiency from municipal wastewater. Subsequently, the anaerobic methanation performance and microbial mechanism of the resulting carbon-rich sludge were investigated. Results indicated that the combined process increased organic matter capture efficiency by 0.8 % – 29.2 % compared to single coagulation treatment. Prepositive active coke adsorption within the FeCl<sub>3</sub> coagulation process achieved superior carbon capture performance compared to synchronous and postpositive configurations. Optimal dosage for adsorption-coagulation process using FeCl<sub>3</sub> of 43.65 mg Fe/L and active coke of 7.6 mg/L was obtained by applying an integrative response surface methodology (RSM) coupled nonlinear programming approach under effluent COD constraint of 48 mg/L. The integrative optimization resulted in a 47.9 % cost reduction compared to the RSM optimized condition. Anaerobic experiments demonstrated that utilization of active coke adsorption boosted organic matter capture, resulting in a 22.1 % increase in methane yield (CH<sub>4</sub>/m<sup>3</sup> wastewater) compared to using coagulation alone. Microbial community structure analysis showed that active coke promoted enrichment of acetoclastic methanogen and electroactive microorganisms. These findings posed ideas and technical support for strengthening carbon separation and recovery efficiency from municipal wastewater.","PeriodicalId":270,"journal":{"name":"Chemical Engineering Journal","volume":"11 1","pages":""},"PeriodicalIF":13.3000,"publicationDate":"2025-01-22","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Up-concentration of organic matter from municipal wastewater by coagulation coupled with active coke adsorption to improve carbon capture and anaerobic methanogenesis efficiency\",\"authors\":\"Ying An, Yanhua Xu, Chen Tang, Xingzhi Du, Zihang Ma, Rui Tang, Bin Zhou, Zhan Qiu, Zhen Zhou\",\"doi\":\"10.1016/j.cej.2025.159853\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Up-concentration of organic matter plays a crucial role in recovering carbon resources and energy from municipal wastewater, and the capture of dissolved organic matter during coagulation process is essential for enhancing carbon separation and recovery efficiency. In this study, we employed active coke adsorption combined with ferric chloride (FeCl<sub>3</sub>) coagulation process to enhance organic matter capture efficiency from municipal wastewater. Subsequently, the anaerobic methanation performance and microbial mechanism of the resulting carbon-rich sludge were investigated. Results indicated that the combined process increased organic matter capture efficiency by 0.8 % – 29.2 % compared to single coagulation treatment. Prepositive active coke adsorption within the FeCl<sub>3</sub> coagulation process achieved superior carbon capture performance compared to synchronous and postpositive configurations. Optimal dosage for adsorption-coagulation process using FeCl<sub>3</sub> of 43.65 mg Fe/L and active coke of 7.6 mg/L was obtained by applying an integrative response surface methodology (RSM) coupled nonlinear programming approach under effluent COD constraint of 48 mg/L. The integrative optimization resulted in a 47.9 % cost reduction compared to the RSM optimized condition. Anaerobic experiments demonstrated that utilization of active coke adsorption boosted organic matter capture, resulting in a 22.1 % increase in methane yield (CH<sub>4</sub>/m<sup>3</sup> wastewater) compared to using coagulation alone. Microbial community structure analysis showed that active coke promoted enrichment of acetoclastic methanogen and electroactive microorganisms. 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Up-concentration of organic matter from municipal wastewater by coagulation coupled with active coke adsorption to improve carbon capture and anaerobic methanogenesis efficiency
Up-concentration of organic matter plays a crucial role in recovering carbon resources and energy from municipal wastewater, and the capture of dissolved organic matter during coagulation process is essential for enhancing carbon separation and recovery efficiency. In this study, we employed active coke adsorption combined with ferric chloride (FeCl3) coagulation process to enhance organic matter capture efficiency from municipal wastewater. Subsequently, the anaerobic methanation performance and microbial mechanism of the resulting carbon-rich sludge were investigated. Results indicated that the combined process increased organic matter capture efficiency by 0.8 % – 29.2 % compared to single coagulation treatment. Prepositive active coke adsorption within the FeCl3 coagulation process achieved superior carbon capture performance compared to synchronous and postpositive configurations. Optimal dosage for adsorption-coagulation process using FeCl3 of 43.65 mg Fe/L and active coke of 7.6 mg/L was obtained by applying an integrative response surface methodology (RSM) coupled nonlinear programming approach under effluent COD constraint of 48 mg/L. The integrative optimization resulted in a 47.9 % cost reduction compared to the RSM optimized condition. Anaerobic experiments demonstrated that utilization of active coke adsorption boosted organic matter capture, resulting in a 22.1 % increase in methane yield (CH4/m3 wastewater) compared to using coagulation alone. Microbial community structure analysis showed that active coke promoted enrichment of acetoclastic methanogen and electroactive microorganisms. These findings posed ideas and technical support for strengthening carbon separation and recovery efficiency from municipal wastewater.
期刊介绍:
The Chemical Engineering Journal is an international research journal that invites contributions of original and novel fundamental research. It aims to provide an international platform for presenting original fundamental research, interpretative reviews, and discussions on new developments in chemical engineering. The journal welcomes papers that describe novel theory and its practical application, as well as those that demonstrate the transfer of techniques from other disciplines. It also welcomes reports on carefully conducted experimental work that is soundly interpreted. The main focus of the journal is on original and rigorous research results that have broad significance. The Catalysis section within the Chemical Engineering Journal focuses specifically on Experimental and Theoretical studies in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. These studies have industrial impact on various sectors such as chemicals, energy, materials, foods, healthcare, and environmental protection.