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Micro-patterned graphite electrodes: An analysis and optimization of process parameters on hydrogen evolution in water electrolysis

机译:微图形石墨电极:水电解中氢化过程参数的分析与优化

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摘要

The aim of this investigation is to enhance the hydrogen production rate using developed micro-patterned graphite electrode in water electrolysis method. Alkaline sodium hydroxide was used as an electrolyte for enhancing the hydrogen production through the continuous electrolysis process. The Box-Behnken design based four-factor three-level full factorial design was utilized to develop the regression model for the hydrogen production process. The response surface methodology was used to analyze the combined effects of voltage supplied, electrolyte molarity and electrode distance on hydrogen production rate. The maximum hydrogen production rate of 2.3 ml/min was achieved under the optimum conditions such as supply voltage of 2 V, electrolyte molarity of 0.3 M and an electrode distance of 10 cm. The predicted regression equation for the hydrogen production process showed positive effect with the experimental value. Also, the individual parameter on hydrogen yield has been evaluated using ANOVA analysis. The coefficient of determination (R-2) of 0.98 showed that the model obtained was highly significant to predict the response accurately with below 2% error. The surface of the graphite microstructure considerably influenced the reaction of the electrolysis on hydrogen evolution rate. The micro-patterned electrode was compared with the planar electrode on the hydrogen production rate at optimum conditions and found a 60% increase in yield.
机译:该研究的目的是通过在水电解方法中产生显影的微图形石墨电极来提高氢生产速率。碱性氢氧化钠用作电解质,用于通过连续电解过程增强氢气。基于Box-Behnken设计的四因素三级完整因子设计,用于开发氢生产过程的回归模型。响应面方法用于分析所提供的电压,电解质摩尔和电极距离对氢气产生率的组合效应。在最佳条件下实现2.3ml / min的最大氢气生产速率,例如电源电压为2V,电解质摩尔0.3μm的电解质且电极距离为10cm。氢生产过程的预测回归方程显示了实验值的阳性效果。此外,使用ANOVA分析评估了氢产率的个体参数。 0.98的测定系数(R-2)表明,所获得的模型非常重要,可以准确地预测响应,误差低于2%。石墨微观结构的表面显着影响了电解对氢进化率的反应。将微图案化电极与平面电极进行比较,在最佳条件下,含有60%的产率增加。

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