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Coproduction of acetic acid and electricity by application of microbial fuel cell technology to vinegar fermentation

机译:微生物燃料电池技术在醋发酵中联合生产乙酸和电

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摘要

The coproduction of a useful material and electricity via a novel application of microbial fuel cell (MFC) technology to oxidative fermentation was investigated. We focused on vinegar production, i.e., acetic acid fermentation, as an initial and model useful material that can be produced by oxidative fermentation in combination with MFC technology. The coproduction of acetic acid and electricity by applying MFC technology was successfully demonstrated by the simultaneous progress of acetic acid fermentation and electricity generation through a series of repeated batch fermentations. Although the production rate of acetic acid was very small, it increased with the number of repeated batch fermentations that were conducted. We obtained nearly identical (73.1%) or larger (89.9%) acetic acid yields than that typically achieved by aerated fermentation (75.8%). The open-cycle voltages measured before and after fermentation increased with the total fermentation time and reached a maximum value of 0.521 V prior to the third batch fermentation. The maximum current and power densities measured in this study (19.1 μA/cm~2 and 2.47 nW/cm~2, respectively) were obtained after the second batch fermentation.
机译:研究了通过微生物燃料电池(MFC)技术在氧化发酵中的新型应用来联合生产有用的材料和电力。我们专注于醋的生产,即醋酸发酵,作为可以通过氧化发酵与MFC技术结合生产的初始和模型有用材料。通过一系列重复的分批发酵,乙酸发酵和发电的同时进行,成功证明了应用MFC技术联产乙酸和电。尽管乙酸的产率非常小,但随着重复分批发酵次数的增加,乙酸的产率增加。我们获得了比通气发酵通常获得的乙酸产率(75.8%)几乎相同的乙酸产率(73.1%)或更大的乙酸酯产率(89.9%)。发酵前后测量的开环电压随总发酵时间的增加而增加,并在第三批发酵之前达到最大值0.521V。在第二批发酵之后,获得了本研究中测量的最大电流密度和功率密度(分别为19.1μA/ cm〜2和2.47 nW / cm〜2)。

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