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Life cycle, techno-economic and dynamic simulation assessment of bioelectrochemical systems: A case of formic acid synthesis

机译:生物电化学系统的生命周期,技术经济和动态模拟评估:以甲酸合成为例

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摘要

A novel framework integrating dynamic simulation (DS), life cycle assessment (LCA) and techno-economic assessment (TEA) of bioelectrochemical system (BES) has been developed to study for the first time wastewater treatment by removal of chemical oxygen demand (COD) by oxidation in anode and thereby harvesting electron and proton for carbon dioxide reduction reaction or reuse to produce products in cathode. Increases in initial COD and applied potential increase COD removal and production (in this case formic acid) rates. DS correlations are used in LCA and TEA for holistic performance analyses. The cost of production of HCOOH is €0.015–0.005g–1 for its production rate of 0.094–0.26kgyr–1 and a COD removal rate of 0.038–0.106kgyr–1. The life cycle (LC) benefits by avoiding fossil-based formic acid production (93%) and electricity for wastewater treatment (12%) outweigh LC costs of operation and assemblage of BES (–5%), giving a net 61MJkg-1HCOOH saving.
机译:已开发出一个集成了动态模拟(DS),生命周期评估(LCA)和生物电化学系统(BES)的技术经济评估(TEA)的新颖框架,以首次研究去除化学需氧量(COD)的废水处理通过阳极氧化,从而收集电子和质子以进行二氧化碳还原反应或再利用以在阴极产生产物。初始COD的增加和施加的电势会增加COD的去除和产生(在这种情况下为甲酸)的比率。 DS关联在LCA和TEA中用于整体性能分析。 HCOOH的生产成本为0.094-0.26kgyr-1,生产成本为0.015-0.005g-1,其COD去除率为0.038-0.106kgyr-1。通过避免基于化石的甲酸生产(93%)和废水处理用电(12%),生命周期(LC)的收益超过了BES的运行和组装成本(–5%),从而节省了61MJkg-1HCOOH的净成本。

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