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3D printed components of microbial fuel cells: Towards monolithic microbial fuel cell fabrication using additive layer manufacturing

机译:微生物燃料电池的3D打印组件:迈向使用附加层制造的整体微生物燃料电池制造

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摘要

For practical applications of the MFC technology, the design as well as the processes of manufacturing and assembly, should be optimised for the specific target use. Another rising technology, additive manufacturing (3D printing), can contribute significantly to this approach by offering a high degree of design freedom. In this study, we investigated the use of commercially available 3D printable polymer materials as the MFC membrane and anode. The best performing membrane material, Gel-Lay, produced a maximum power of 240 ± 11 µW, which was 1.4 fold higher than the control CEM with PMAX of 177 ± 29 µW. Peak power values of Gel-Lay (133.8 – 184.6 µW) during fed-batch cycles were also higher than the control (133.4 – 160.5 µW). In terms of material cost, the tested membranes were slightly higher than the control CEM, primarily due to the small purchased quantity. Finally, the first 3D printable polymer anode, a conductive PLA material, showed significant potential as a low-cost and easy to build MFC anode, producing a stable level of power output, despite poor conductivity and relatively small surface area per unit volume. These results demonstrate the practicality of monolithic MFC fabrication with individually optimised components at relatively low cost.
机译:对于MFC技术的实际应用,应针对特定目标用途优化设计以及制造和组装过程。另一种新兴技术,即增材制造(3D打印),通过提供高度的设计自由度,可以为这种方法做出重要贡献。在这项研究中,我们调查了可商购的3D可打印聚合物材料作为MFC膜和阳极的用途。表现最好的膜材料Gel-Lay产生的最大功率为240±11 µW,比对照CEM(PMAX为177±29 µW)高1.4倍。在分批补料循环中,Gel-Lay的峰值功率值(133.8 – 184.6 µW)也高于对照(133.4 – 160.5 µW)。在材料成本方面,主要是由于购买数量少,测试的膜略高于对照CEM。最终,第一个3D可打印聚合物阳极,一种导电的PLA材料,显示了巨大的潜力,尽管它的电导率较差且每单位体积的表面积相对较小,但其价格低廉且易于制造MFC阳极,可产生稳定水平的功率输出。这些结果证明了以相对较低的成本使用单独优化的组件进行整体式MFC制造的实用性。

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