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Energy recovery from tubular microbial electrolysis cell with stainless steel mesh as cathode

机译:以不锈钢网为阴极的管状微生物电解槽的能量回收

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摘要

In comparison to the transportation and storage of hydrogen, methane has advantages in the practical application, while the emerging product termed as ‘biohythane’ could be an alternative to pure hydrogen or methane in a new form of energy recovery from microbial electrolysis cell (MEC). However, the cathodic catalyst even for biohythane still bothers the performance and cost of total MEC. Herein, we fabricated the MEC reactor with surrounding stainless steel mesh (SSM) to investigate the feasibility of stainless steel mesh as an alternative to precious metal in biohythane production. The columbic efficiency (CE) of anode was around at 80%, representing the SSM would not limit the activity of anodic biofilm; the SEM image and ATP results accordingly indicated the anodic biofilm was mature and well constructed. The main contribution of methanogens that quantified by qPCR belonged to the hydrogenotrophic group (Methanobacteriales) at cathode. The energy efficiency reached more than 100%, reached up to approximately 150%, potentially suggesting the energetic feasibility of the application to obtain biohythane with SSM in scale-up MEC. Benefiting from the likely tubular configuration, the ohmic resistance of cathode was very low, while the main limitation associated with charge transfer was mainly caused by biofilm formation. The total performances of SSM used in the tubular configuration for biohythane production provide an insight into the implementation of non-precious metal in future scale-up pilot with energy recovery.
机译:与氢的运输和存储相比,甲烷在实际应用中具有优势,而新兴的被称为“生物hy烷”的产品可以通过微生物电解池(MEC)回收能量的新形式替代纯氢或甲烷。 。然而,即使是用于生物乙烷的阴极催化剂仍然困扰着整个MEC的性能和成本。在本文中,我们用周围的不锈钢网(SSM)制造了MEC反应器,以研究不锈钢网在生物丙烷生产中替代贵金属的可行性。阳极的哥伦布效率(CE)在80%左右,这代表SSM不会限制阳极生物膜的活性。 SEM图像和ATP结果相应地表明阳极生物膜已经成熟并且结构良好。通过qPCR量化的产甲烷菌的主要贡献是位于阴极的氢营养基团(Methanobacteriales)。能量效率达到100%以上,达到大约150%,这潜在地表明了在规模化的MEC中应用SSM来获得生物hy烷的应用的能源可行性。得益于可能的管状结构,阴极的欧姆电阻非常低,而与电荷转移相关的主要限制主要是由生物膜的形成引起的。用于生物气生产的管状构型中使用的SSM的总体性能,为在未来的能量回收规模扩大试验中非贵金属的实施提供了见识。

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