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用于尿液供料微生物燃料电池发电的陶瓷膜内部结构优化

Optimisation of the internal structure of ceramic membranes for electricity production in urine-fed microbial fuel cells.

作者信息

Salar-García M J, Ieropoulos I

机构信息

Bristol BioEnergy Centre, Bristol Robotics Laboratory, T-Block, UWE Coldharbour Lane, Bristol BS16 1QY, UK.

出版信息

J Power Sources. 2020 Mar 1;451:227741. doi: 10.1016/j.jpowsour.2020.227741.

Abstract

The need to find a feasible alternative to commercial membranes for microbial fuel cells (MFCs) poses an important challenge for the practical implementation of this technology. This work aims to analyse the influence of the internal structure of low-cost terracotta clay-based membranes on the behaviour of MFCs. To this purpose, 9 different combinations of temperature and time were used to prepare 27 MFC separators. The results show that the temperature has a significant effect on both porosity and pore size distribution, whereas the ramp time do not show a significant influence on these parameters. It was observed that kilning temperatures higher than 1030 °C dramatically reduce the porosity of the samples, reaching a minimum value of 16.85%, whereas the pore size increases as the temperature also increases. Among the membranes with similar porosities, those with a medium pore size distribution exhibited the lowest bulk resistance allowing MFCs to reach the highest power output (94.67 μW cm). These results demonstrate the importance of not only the porosity but also the pore size distribution of the separator in terms of MFC performance and longevity, which for these experiments was for 90 days.

摘要

为微生物燃料电池(MFC)寻找一种可行的商业膜替代方案,对该技术的实际应用构成了一项重大挑战。这项工作旨在分析低成本陶土基膜的内部结构对MFC性能的影响。为此,采用9种不同的温度和时间组合制备了27个MFC分离器。结果表明,温度对孔隙率和孔径分布均有显著影响,而升温时间对这些参数没有显著影响。据观察,高于1030°C的焙烧温度会显著降低样品的孔隙率,最低可达16.85%,而孔径则随温度升高而增大。在孔隙率相似的膜中,孔径分布中等的膜表现出最低的体电阻,使MFC能够达到最高的功率输出(94.67μW/cm)。这些结果表明,对于这些为期90天的实验而言,分离器的孔隙率和孔径分布不仅对MFC性能很重要,而且对其寿命也很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3009/7074064/8c4a4ff0ff06/gr1.jpg

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