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微生物电化学系统的功率密度响应于非离子选择性微生物分离器的传质特性。

Power density of microbial electrochemical system responds to mass transfer characters of non-ion-selective microbial separator.

机构信息

State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, No. 73 Huanghe Road, Nangang District, Harbin 150090, China.

State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, No. 73 Huanghe Road, Nangang District, Harbin 150090, China.

出版信息

Bioresour Technol. 2020 Sep;311:123478. doi: 10.1016/j.biortech.2020.123478. Epub 2020 May 5.

Abstract

The microbial separator (MS) was promising alternative of ion exchange membrane for biocathode microbial electrochemical system (MES). Four microbial separators developed from porous matrixes were equipped in biocathode MESs. The power generation of MESs responded to cross-separator transfer characters of ions, dissolved oxygen (DO) and chemical oxygen demand (COD). The MES with carbon felt (CF) obtained 31% higher maximum power density at 70 ± 3 mW m and 51% higher current density at 271 ± 21 mA m than those of cation exchange membrane (CEM) separator. All MSs showed higher ionic conductivity than CEM. However, the power variation was mainly due to cathodic equilibrium potential changes rather than internal resistance. The power density demonstrated negative correlation with mass transfer coefficients of DO and COD. The cross-separator transfer of COD caused cathode variation and was identified as the primary parameter for further optimization of MES with microbial separators.

摘要

微生物分离器(MS)是离子交换膜在生物阴极微生物电化学系统(MES)中很有前途的替代品。从多孔基质开发的四种微生物分离器被配备在生物阴极 MES 中。MES 的发电响应于离子、溶解氧(DO)和化学需氧量(COD)的跨分离器转移特性。与阳离子交换膜(CEM)分离器相比,带有碳纤维毡(CF)的 MES 在 70±3 mW m 时获得了 31%更高的最大功率密度,在 271±21 mA m 时获得了 51%更高的电流密度。所有 MS 的离子电导率均高于 CEM。然而,功率变化主要是由于阴极平衡电位的变化,而不是内阻。功率密度与 DO 和 COD 的传质系数呈负相关。COD 的跨分离器转移导致了阴极的变化,被确定为进一步优化带有微生物分离器的 MES 的主要参数。

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