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Electricity generation from mixed volatile fatty acids using microbial fuel cells

机译:使用微生物燃料电池从混合挥发性脂肪酸中发电

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Fermentative hydrogen production, as a process for clean energy recovery from organic wastewater, is limited by its low hydrogen yield due to incomplete conversion of substrates, with most of the fermentation products being volatile fatty acids (VFAs). Thus, further recovery of the energy from VFAs is expected. In this work, microbial fuel cell (MFC) was applied to recover energy in the form of electricity from mixed VFAs of acetate, propionate, and butyrate. Response surface methodology was adopted to investigate the relative contribution and possible interactions of the three components of VFAs. A stable electricity generation was demonstrated in MFCs after the enrichment of electrochemically active bacteria. Analysis showed that power density was more sensitive to the composition of mixed VFAs than coulombic efficiency. The electricity generation could mainly be attributed to the portion of acetate and propionate. However, the two components showed an antagonistic effect when propionate exceeded 19%, causing a decrease in coulombic efficiency. Butyrate was found to exert a negative impact on both power density and coulombic efficiency. Denaturing gradient gel electrophoresis profiles revealed the enrichment of electrochemically active bacteria from the inoculum sludge. Proteobacteria (Beta-, Delta-) and Bacteroidetes were predominant in all VFA-fed MFCs. Shifts in bacterial community structures were observed when different compositions of VFA mixtures were used as the electron donor. The overall electron recovery efficiency may be increased from 15.7% to 27.4% if fermentative hydrogen production and MFC processes are integrated.
机译:发酵制氢作为一种从有机废水中回收清洁能源的方法,受制于底物转化不完全而氢气产量低的问题,其中大部分发酵产物为挥发性脂肪酸(VFA)。因此,期望从VFA中进一步回收能量。在这项工作中,微生物燃料电池(MFC)用于从乙酸,丙酸酯和丁酸酯的混合VFA中以电形式回收能量。采用响应面方法研究了挥发性脂肪酸的三个成分的相对贡献和可能的相互作用。富集了电化学活性细菌后,MFC中证明了稳定的发电。分析表明,功率密度对混合VFA的组成比库仑效率更敏感。发电量主要可归因于乙酸盐和丙酸盐的部分。但是,当丙酸酯含量超过19%时,这两种成分均表现出拮抗作用,从而导致库仑效率降低。发现丁酸酯对功率密度和库仑效率均产生负面影响。变性梯度凝胶电泳图表明,接种污泥中富集了电化学活性细菌。蛋白质细菌(β-,δ-)和拟杆菌属在所有由VFA喂养的MFC中占主导地位。当使用不同成分的VFA混合物作为电子供体时,观察到细菌群落结构发生了变化。如果将发酵产氢和MFC工艺整合在一起,则总的电子回收效率可以从15.7%提高到27.4%。

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