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Assessment of Microbial Fuel Cell Configurations and Power Densities

机译:评估微生物燃料电池的结构和功率密度

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摘要

Different microbial electrochemical technologies are being developed for a many diverse applications, including wastewater treatment, biofuel production, water desalination, remote power sources, and as biosensors. Current and energy densities will always be limited relative to batteries and chemical fuel cells, but these technologies have other advantages based on the self-sustaining nature of the microorganisms that can donate or accept electrons from an electrode, the range of fuels that can be used, and versatility in the chemicals that can be produced. The high cost of membranes will likely limit applications of microbial electrochemical technologies that might require a membrane. For microbial fuel cells, which do not need a membrane, questions remain on whether larger-scale systems can produce power densities similar to those obtained in laboratory-scale systems. It is shown here that configuration and fuel (pure chemicals in laboratory media versus actual wastewaters) remain the key factors in power production, rather than the scale of the application. Systems must be scaled up through careful consideration of electrode spacing and packing per unit volume of reactor.
机译:正在为许多不同的应用开发不同的微生物电化学技术,包括废水处理,生物燃料生产,水脱盐,远程电源以及作为生物传感器。相对于电池和化学燃料电池,电流和能量密度将始终受到限制,但是这些技术还具有其他优势,因为微生物可以自给自足或从电极接受电子,因此可以使用的燃料范围也很广。以及可以生产的化学品的多功能性。膜的高成本可能会限制可能需要膜的微生物电化学技术的应用。对于不需要膜的微生物燃料电池,仍然存在关于大型系统是否可以产生与实验室规模系统类似的功率密度的问题。此处显示,配置和燃料(实验室介质中的纯化学品与实际废水相比)仍然是发电的关键因素,而不是应用规模。必须仔细考虑电极间距和反应器每单位体积的填充量来扩大系统规模。

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