首页> 外文期刊>International Journal of Environmental Research and Public Health >Concurrent Phosphorus Recovery and Energy Generation in Mediator-Less Dual Chamber Microbial Fuel Cells: Mechanisms and Influencing Factors
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Concurrent Phosphorus Recovery and Energy Generation in Mediator-Less Dual Chamber Microbial Fuel Cells: Mechanisms and Influencing Factors

机译:介体较少的双室微生物燃料电池中同时进行的磷回收和能量产生:机理和影响因素

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This study investigated the mechanism and key factors influencing concurrent phosphorus (P) recovery and energy generation in microbial fuel cells (MFC) during wastewater treatment. Using a mediator-less dual chamber microbial fuel cell operated for 120 days; P was shown to precipitate as struvite when ammonium and magnesium chloride solutions were added to the cathode chamber. Monitoring data for chemical oxygen demand (COD), pH, oxidation reduction potential (ORP) and aeration flow rate showed that a maximum 38% P recovery was achieved; and this corresponds to 1.5 g/L, pH > 8, ?550 ± 10 mV and 50 mL/min respectively, for COD, pHcathode, ORP and cathode aeration flow rate. More importantly, COD and aeration flow rate were shown to be the key influencing factors for the P recovery and energy generation. Results further show that the maximum P recovery corresponds to 72 mW/m2 power density. However, the energy generated at maximum P recovery was not the optimum; this shows that whilst P recovery and energy generation can be concurrently achieved in a microbial fuel cell, neither can be at the optimal value.
机译:这项研究调查了废水处理过程中影响微生物燃料电池(MFC)的同时磷(P)回收和能量产生的机理和关键因素。使用无介体的双室微生物燃料电池运行120天;当将铵和氯化镁溶液添加到阴极室中时,P表现为鸟粪石沉淀。监测化学需氧量(COD),pH,氧化还原电位(ORP)和通气流量的数据表明,最大的P回收率达到了38%。对于COD,pH阴极,ORP和阴极曝气流速,这分别对应于1.5 g / L,pH> 8,≥550±10 mV和50 mL / min。更重要的是,化学需氧量和曝气流速是影响磷回收和能量产生的关键因素。结果还表明,最大的P回收率对应于72 mW / m2的功率密度。但是,在最大磷回收率下产生的能量不是最佳的。这表明,虽然在微生物燃料电池中可以同时实现P的回收和能量的产生,但两者都不是最佳值。

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