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Application of the finite difference method to model pH and substrate concentration in a double-chamber microbial fuel cell

机译:有限差分法在双室微生物燃料电池pH和底物浓度建模中的应用

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摘要

The purpose of this study was to develop a mathematical model that can describe glucose degradation in a microbial fuel cell (MFC) with the use of finite difference approach. The dynamic model can describe both substrate and pH changes in the anode chamber of a double-chamber MFC. It was developed using finite differences and incorporates basic mass transfer concepts. Model simulation results could fit the experimental data for substrate consumption well, while there was a moderate discrepancy (maximum 0.11 pH unit) between the simulated pH and the experimental data. A parametric sensitivity analysis showed that increases in acetate and propionate consumption rates can cause great decrease in chemical oxygen demand (COD) in the anode chamber, while an increase in glucose consumption rate does not result in significant changes of COD reduction. Therefore, the rate limitation steps of glucose degradation are the oxidations of secondary degradation products of glucose (acetate and propionate). Due to the buffering effect of the nutrient solution, the increases in glucose, acetate and propionate consumption rates did not result in much change on pH of the anode chamber.
机译:这项研究的目的是开发一种数学模型,该模型可以使用有限差分方法来描述微生物燃料电池(MFC)中的葡萄糖降解。动态模型可以描述双室MFC阳极室中底物和pH的变化。它是使用有限的差异开发的,并包含了基本的传质概念。模型模拟结果可以很好地拟合底物消耗的实验数据,而模拟pH和实验数据之间存在中等差异(最大0.11 pH单位)。参数敏感性分析表明,乙酸盐和丙酸盐消耗速率的增加可导致阳极室中化学需氧量(COD)大大降低,而葡萄糖消耗速率的增加不会导致COD降低的显着变化。因此,葡萄糖降解的速率限制步骤是葡萄糖的二次降解产物(乙酸盐和丙酸盐)的氧化。由于营养液的缓冲作用,葡萄糖,乙酸盐和丙酸盐消耗速率的增加并未导致阳极室pH的较大变化。

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